👤 Xiaojin Xu

🔍 Search 📋 Browse 🏷️ Tags ❤️ Favourites ➕ Add 🧪 BiometalDB 🧬 Extraction
1613
Articles
1035
Name variants
Also published as: Ai-Guo Xu, Aili Xu, Aimin Xu, Aishi Xu, Aixiao Xu, Andrew Z Xu, Anlong Xu, Anqi Xu, Anton Xu, Aohong Xu, Aoling Xu, Bai-Hui Xu, Baijie Xu, Banglao Xu, Baofeng Xu, Baoping Xu, Bei Xu, Beibei Xu, Beisi Xu, Benhong Xu, Bi-Yun Xu, Biao Xu, Bilian Xu, Bilin Xu, Bin Xu, Bing Xu, Bing-E Xu, Bingfang Xu, Bingqi Xu, Bingqian Xu, Bingqing Xu, Bingxin Xu, Binqiang Xu, Bo Xu, Bocheng Xu, Bojie Xu, Boming Xu, Boqing Xu, C C Xu, C F Xu, Cai Xu, Caiqiu Xu, Caixia Xu, Carrie Xu, Chan Xu, Chang Xu, Chang-Qing Xu, Changde Xu, Changfu Xu, Changlin Xu, Changliu Xu, Changlu Xu, Changwu Xu, Chao Xu, Chaoguang Xu, Chaohua Xu, Chaoqun Xu, Chaoyu Xu, Chen Xu, Chen-Run Xu, Chen-Yang Xu, Cheng Xu, Cheng-Bin Xu, Cheng-Jian Xu, Chengbi Xu, Chengkai Xu, Chengqi Xu, Chengxun Xu, Chengye Xu, Chengyun Xu, Chenhao Xu, Chenjie Xu, Chenqi Xu, Chentong Xu, Chong Xu, Chong-Feng Xu, Chuang Xu, Chuanrui Xu, Chun Xu, Chunhui Xu, Chunjie Xu, Chunlan Xu, Chunli Xu, Chunlin Xu, Chunming Xu, Chunwei Xu, Chunxiao Xu, Chunyan Xu, Chunyu Xu, Cian Xu, Cineng Xu, Cong Xu, Cong-jian Xu, Congjian Xu, Cun Xu, Cunshuan Xu, Cynthia M Xu, D Xu, D-J Xu, Da Xu, Da-Peng Xu, Daichao Xu, Daiqi Xu, Dan Xu, Dandan Xu, Danfeng Xu, Danning Xu, Danping Xu, Danyan Xu, Danyi Xu, Daohua Xu, Dapeng Xu, Daqian Xu, Dawei Xu, De Xu, De-Xiang Xu, Dequan Xu, Dexiang Xu, Di Xu, Di-Mei Xu, Dilin Xu, Ding Xu, Dong Xu, Dong-Hui Xu, Dong-Juan Xu, DongZhu Xu, Dongchen Xu, Donghang Xu, Dongju Xu, Dongjun Xu, Dongke Xu, Dongmei Xu, Enwei Xu, Erping Xu, F F Xu, F Xu, Fang Xu, Fang-Fang Xu, Fang-Yuan Xu, Fangfang Xu, Fanghua Xu, Fangmin Xu, Fangui Xu, Fei Xu, Feilai Xu, Fen Xu, Feng Xu, Feng-Qin Xu, Feng-Xia Xu, Feng-Yuan Xu, Fenghuang Xu, Fengqin Xu, Fengxia Xu, Fengyan Xu, Fengzhe Xu, Flora Mengyang Xu, Fu Xu, Fuyi Xu, G Xu, Gang Xu, Gangchun Xu, Gaosi Xu, Gaoyuan Xu, Genxing Xu, George X Xu, Geyang Xu, Gezhi Xu, Gu-Feng Xu, Guang Xu, Guang-Hong Xu, Guang-Qing Xu, Guanghao Xu, Guangquan Xu, Guangsen Xu, Guangwei Xu, Guangyan Xu, Guangyu Xu, Guanhua Xu, Guanlan Xu, Guanyi Xu, Gui-Ping Xu, Guifa Xu, Guiyun Xu, Guo Xu, Guo-Liang Xu, Guo-Tong Xu, Guo-Xing Xu, Guofeng Xu, Guogang Xu, Guoheng Xu, Guoliang Xu, Guoshuai Xu, Guowang Xu, Guoxu Xu, Guozheng Xu, H Eric Xu, H F Xu, H X Xu, H Y Xu, Haifeng Xu, Haijin Xu, Haikun Xu, Hailey Xu, Hailiang Xu, Haiman Xu, Haimin Xu, Haiming Xu, Haiqi Xu, Haixia Xu, Haixiang Xu, Haiyan Xu, Haiying Xu, Han Xu, Hanchen Xu, Hanfei Xu, Hang Xu, Hanqian Xu, Hanting Xu, Hanyuan Xu, Hao Xu, Haoda Xu, Haonan Xu, Haowen Xu, Haoyang Xu, Haoyu Xu, Heng Xu, Hengyi Xu, Heping Xu, Hong Xu, Hong-Yan Xu, Hong-tao Xu, Hong-wei Xu, Hongbei Xu, Hongbo Xu, Hongen Xu, Hongfa Xu, Hongjian Xu, Hongjiang Xu, Hongle Xu, Hongli Xu, Honglin Xu, Hongmei Xu, Hongming Xu, Hongrong Xu, Hongtao Xu, Hongwei Xu, Hongwen Xu, Hongxia Xu, Hongyan Xu, Hongzhi Xu, Houguo Xu, Houxi Xu, Hu Xu, Hua Xu, Huaisha Xu, Huaiyuan Xu, Huajun Xu, Huan Xu, Huaxiang Xu, Hui Ming Xu, Hui Xu, Hui-Lian Xu, HuiTing Xu, Huihui Xu, Huimian Xu, Huiming Xu, Huiqiong Xu, Huixuan Xu, Iris M J Xu, J T Xu, J Xu, Janfeng Xu, Jason Xu, Jia Xu, Jia-Chen Xu, Jia-Li Xu, Jia-Mei Xu, Jia-Xin Xu, Jia-Yue Xu, Jiaai Xu, Jiacheng Xu, Jiachi Xu, Jiahong Xu, Jiahui Xu, Jiajia Xu, Jiajie Xu, Jiake Xu, Jiali Xu, Jialin Xu, Jialu Xu, Jiaming Xu, Jian Hua Xu, Jian Xu, Jian-Guang Xu, Jiancheng Xu, Jianfeng Xu, Jiang Xu, Jiangang Xu, Jianguang Xu, Jianguo Xu, Jianhua Xu, Jianing Xu, Jianjuan Xu, Jianliang Xu, Jianming Xu, Jianping Xu, Jianqiu Xu, Jianwei Xu, Jianxin Xu, Jianyong Xu, Jianzhong Xu, Jiapei Xu, Jiapeng Xu, Jiaqi Xu, Jiaqian Xu, Jiaqin Xu, Jiawei Xu, Jiaying Xu, Jiayunzhu Xu, Jie Xu, Jie-Hua Xu, Jiean Xu, Jielin Xu, Jin Xu, Jinchao Xu, Jinfeng Xu, Jing Xu, Jing-Yi Xu, Jing-Ying Xu, Jing-Yu Xu, Jinghong Xu, Jinghua Xu, Jingjie Xu, Jingjing Xu, Jingjun Xu, Jinguo Xu, Jingya Xu, Jingyi Xu, Jingying Xu, Jingyu Xu, Jingzhou Xu, Jinhe Xu, Jinhua Xu, Jinjian Xu, Jinjie Xu, Jinjin Xu, Jinsheng Xu, Jinshu Xu, Jinsong Xu, Jinxian Xu, Jinxin Xu, Jinyi Xu, Jinying Xu, Jinyu Xu, Jinyuan Xu, Jishu Xu, Jixuan Xu, Jiyi Xu, Jiyu Xu, Julie Xu, Jun Xu, Jun-Chao Xu, Junchang Xu, Junfei Xu, Junfeng Xu, Junjie Xu, Junnv Xu, Kai Xu, Kaihao Xu, Kailian Xu, Kaishou Xu, Kaixiang Xu, Kaiyue Xu, Ke Xu, Keke Xu, Keli Xu, Kelin Xu, Keman Xu, Keshu Xu, Kewei Xu, Kexin Xu, Keyun Xu, Kuanfeng Xu, Kun Xu, L Xu, Laizhi Xu, Lanjin Xu, Lei Xu, Leilei Xu, Leisheng Xu, Leiting Xu, Leiyu Xu, Leyuan Xu, Li Xu, Li-Jun Xu, Li-Li Xu, Li-Ling Xu, Li-Wei Xu, Li-Yan Xu, Li-Zhi Xu, Lian-Wei Xu, Liang Xu, Lianjun Xu, Libin Xu, Lichi Xu, Lidan Xu, Lifen Xu, Lihui Xu, Lijiao Xu, Lijuan Xu, Lijun Xu, Lili Xu, Limin Xu, Lin Xu, Ling Xu, Lingjuan Xu, Lingli Xu, Lingling Xu, Lingna Xu, Lingxiang Xu, Lingyan Xu, Lingyang Xu, Lingyao Xu, Lingyi Xu, Linna Xu, Linyan Xu, Liping Xu, Liqun Xu, Lisha Xu, Lisi Xu, Liu Xu, Liwen Xu, Liyi Xu, Long Xu, Longfei Xu, Longsheng Xu, Lu Xu, Lu-Lu Xu, Lubin Xu, Lun-Shan Xu, Luyi Xu, M Xu, M-Y Xu, Mai Xu, Man Xu, Manman Xu, Manyi Xu, Mao Xu, Maochang Xu, Maodou Xu, Maotian Xu, Mei Xu, Mei-Jun Xu, Meifang Xu, Meifeng Xu, Meishu Xu, Meixi Xu, Meiyu Xu, Meng Xu, Mengjie Xu, Mengjun Xu, Mengmeng Xu, Mengping Xu, Mengqi Xu, Mengru Xu, Mengsi Xu, Mengyi Xu, Mengying Xu, Mengyue Xu, Miao Xu, Miaomiao Xu, Min Jie Xu, Min Xu, Min-Xuan Xu, Ming Xu, Ming-Jiang Xu, Ming-Zhu Xu, Mingcong Xu, Minghao Xu, Minghong Xu, Mingjie Xu, Minglan Xu, Mingli Xu, Mingliang Xu, Mingming Xu, Mingqian Xu, Mingyuan Xu, Mingzhu Xu, Minxuan Xu, Mu Xu, N Y Xu, Nan Xu, Nannan Xu, Nathan Xu, Nenggui Xu, Ning Xu, Ning'an Xu, Ningda Xu, Nong Xu, Nuo Xu, Pan Xu, Panpan Xu, Pao Xu, Peidi Xu, Peigang Xu, Peiwei Xu, Peiyu Xu, Peng Xu, Peng-Ju Xu, Peng-Yuan Xu, Pengfei Xu, Penghui Xu, Pengjie Xu, Pengli Xu, Pin-Xian Xu, Ping Xu, Pingwen Xu, Pu Xu, Q P Xu, Qi Xu, Qi-Qi Xu, Qian Xu, Qian-Fei Xu, Qianghua Xu, Qianhui Xu, Qianlan Xu, Qianqian Xu, Qianzhu Xu, Qiaoshi Xu, Qihang Xu, Qikui Xu, Qiming Xu, Qin Xu, Qin-Zhi Xu, Qing Xu, Qing-Wen Xu, Qing-Yang Xu, Qingchan Xu, Qingheng Xu, Qinghua Xu, Qingjia Xu, Qingqing Xu, Qingqiu Xu, Qingwen Xu, Qingxia Xu, Qingyuan Xu, Qinli Xu, Qinwen Xu, Qiong Xu, Qiongying Xu, Qiu-Han Xu, Qiuhong Xu, Qiuhui Xu, Qiulin Xu, Qiushi Xu, Qiuyu Xu, Qiuyue Xu, Qiuyun Xu, Quanzhong Xu, Ran Xu, Rang Xu, Ren Xu, Ren-He Xu, Renfang Xu, Renshi Xu, Renyuan Xu, Richard H Xu, Rong Xu, Rongbin Xu, Rongrong Xu, Rongying Xu, Ru-xiang Xu, Rui Xu, Rui-Hua Xu, Rui-Ming Xu, Rui-Xia Xu, Ruifeng Xu, Ruiling Xu, Run-Xiang Xu, Runhao Xu, Ruohong Xu, Ruonan Xu, Ruxiang Xu, S Xu, Shan Xu, Shan-Rong Xu, Shan-Shan Xu, Shang-Fu Xu, Shang-Rong Xu, Shanhai Xu, Shanqi Xu, Shanqiang Xu, Shanshan Xu, Shaonian Xu, Shaoqi Xu, Shendong Xu, Sheng-Qian Xu, Shengen Xu, Shengjie Xu, Shengtao Xu, Shengyu Xu, Shi-Na Xu, Shihao Xu, Shihui Xu, Shiliyang Xu, Shimeng Xu, Shiqing Xu, Shiwen Xu, Shiyao Sherrie Xu, Shiyi Xu, Shiyun Xu, Shoujia Xu, Shu-Xian Xu, Shu-Zhen Xu, Shuai Xu, Shuaili Xu, Shuang Xu, Shuangbing Xu, Shude Xu, Shufen Xu, Shuhua Xu, Shuiyang Xu, Shujing Xu, Shun Xu, Shunjiang Xu, Shuqia Xu, Shutao Xu, Shuwan Xu, Shuwen Xu, Shuxiang Xu, Sifan Xu, Sihua Xu, Siqun Xu, Song Xu, Song-Hui Xu, Song-Song Xu, Songli Xu, Songsong Xu, Steven Jing-Liang Xu, Suling Xu, Suo-Wen Xu, Suowen Xu, Suoyu Xu, Sutong Xu, T Xu, Tan Xu, Tao Xu, Tengfei Xu, Tengxiao Xu, Tengyun Xu, Tian Xu, Tian-Le Xu, Tian-Rui Xu, Tian-Ying Xu, TianBo Xu, Tiancheng Xu, Tianfeng Xu, Tianli Xu, Tianmin Xu, Tiantian Xu, Tianxiang Xu, Tianyi Xu, Tianyu Xu, Tieshan Xu, Ting Xu, Ting-Xin Xu, Tingting Xu, Tingxuan Xu, Tong Xu, Tongda Xu, Tonghong Xu, Tongtong Xu, Tongxin Xu, Tongyang Xu, W M Xu, W W Xu, W Xu, Wan-Ting Xu, Wancheng Xu, Waner Xu, Wanfu Xu, Wang-Dong Xu, Wang-Hong Xu, Wangdong Xu, Wanhai Xu, Wanqi Xu, Wanting Xu, Wanwan Xu, Wanxue Xu, Wei Xu, Weide Xu, Weidong Xu, Weifeng Xu, Weihai Xu, Weihong Xu, Weijie Xu, Weilan Xu, Weili Xu, Weiming Xu, Weiqun Xu, Weixia Xu, Weiyong Xu, Weizhi Xu, Wen Xu, Wen-Hao Xu, Wen-Hui Xu, Wen-Juan Xu, Wen-Xiong Xu, Wenbin Xu, Wenchun Xu, Wenhao Xu, Wenhuan Xu, Wenhui Xu, Wenjie Xu, Wenjing Xu, Wenjuan Xu, Wenjun Xu, Wenlong Xu, Wenming Xu, Wenping Xu, Wenqi Xu, Wenqing Xu, Wentao Xu, Wenwen Xu, Wenwu Xu, Wenxin Xu, Wenxuan Xu, Wenyan Xu, Wenyuan Xu, Wenzhuo Xu, X S Xu, X Xu, Xia Xu, Xia-Jing Xu, Xiang Xu, Xiang-Min Xu, Xiang-liang Xu, Xiangbin Xu, Xianghong Xu, Xiangshan Xu, Xiangyu Xu, Xianli Xu, Xiao Le Xu, Xiao Xu, Xiao-Dan Xu, Xiao-Hua Xu, Xiao-Hui Xu, Xiao-Lin Xu, Xiao-Shan Xu, Xiaobo Xu, Xiaocheng Xu, Xiaofang Xu, Xiaofeng Xu, Xiaoge Xu, Xiaohan Xu, Xiaohong Ruby Xu, Xiaohui Xu, Xiaojiang Xu, Xiaojiao Xu, Xiaojing Xu, Xiaojuan Xu, Xiaojun Xu, Xiaoke Xu, Xiaolei Xu, Xiaoli Xu, Xiaolin Xu, Xiaolong Xu, Xiaolu Xu, Xiaomeng Xu, Xiaoming Xu, Xiaopeng Xu, Xiaoqin Xu, Xiaoshuang Xu, Xiaotao Xu, Xiaoting Xu, Xiaowen Xu, Xiaowu Xu, Xiaoya Xu, Xiaoyan Xu, Xiaoyang Xu, Xiaoyin Xu, Xiaoyu Xu, Xiayun Xu, Xihui Xu, Xin Xu, Xin-Rong Xu, Xingmeng Xu, Xingsheng Xu, Xingshun Xu, Xingyan Xu, Xingyu Xu, Xingzhi Xu, Xinjie Xu, Xinxuan Xu, Xinyi Xu, Xinyin Xu, Xinyu Xu, Xinyuan Xu, Xinyue Xu, Xinyun Xu, Xiongfei Xu, Xiqi Xu, Xirui Xu, Xiufeng Xu, Xizhan Xu, Xizheng Xu, Xu Xu, Xuan Xu, Xuanqi Xu, Xuegong Xu, Xuejin Xu, Xuejun Xu, Xueni Xu, Xun Xu, Xuting Xu, Y Xu, Ya'nan Xu, Ya-Nan Xu, Ya-Peng Xu, Ya-Ru Xu, Ya-lin Xu, Yali Xu, Yaling Xu, Yan Xu, YanFeng Xu, Yana Xu, Yanan Xu, Yanchang Xu, Yancheng Xu, Yanfei Xu, Yang Xu, Yangbin Xu, Yangliu Xu, Yangxian Xu, Yangyang Xu, Yanjun Xu, Yanli Xu, Yanling Xu, Yanming Xu, Yanni Xu, Yanqi Xu, Yanquan Xu, Yanwu Xu, Yanyan Xu, Yanyang Xu, Yanyong Xu, Yanzhe Xu, Yao Xu, Yaobo Xu, Yaowen Xu, Yaozeng Xu, Yaping Xu, Yaqi Xu, Yaqin Xu, Yaru Xu, Yawei Xu, Yayun Xu, Ye Xu, Yechun Xu, Yeqiu Xu, Yetao Xu, Yi Ran Xu, Yi Xu, Yi-Huan Xu, Yi-Liang Xu, Yi-Ni Xu, Yi-Tong Xu, Yi-Xian Xu, Yibin Xu, Yichi Xu, Yidan Xu, Yifan Xu, Yifeng Xu, Yigang Xu, Yihua Xu, Yimeng Xu, Yiming Xu, Yin Xu, Yinfeng Xu, Ying Xu, Yingju Xu, Yingli Xu, Yinglin Xu, Yingna Xu, Yingqianxi Xu, Yingzheng Xu, Yinhe Xu, Yinjie Xu, Yinli Xu, Yinxia Xu, Yinying Xu, Yiquan Xu, Yiting Xu, Yitong Xu, Yixin Xu, Yiyi Xu, Yong Xu, Yong-Nan Xu, Yongfeng Xu, Yongjian Xu, Yongmei Xu, Yongqing Xu, Yongsheng Xu, Yongsong Xu, You-Song Xu, Youjia Xu, Youping Xu, Youzhi Xu, Yu Xu, Yu-Fen Xu, Yu-Ming Xu, Yu-Peng Xu, Yu-Ping Xu, Yu-Xin Xu, Yuan Xu, Yuanfeng Xu, Yuanhong Xu, Yuanwei Xu, Yuanyuan Xu, Yuanzhi Xu, Yuanzhong Xu, Yubin Xu, Yuchen Xu, Yucheng Xu, Yue Xu, Yuejuan Xu, Yuerong Xu, Yuexin Xu, Yuexuan Xu, Yueyue Xu, Yuhan Xu, Yuheng Xu, Yujie Xu, Yuli Xu, Yuling Xu, Yun Xu, Yun-Teng Xu, Yunfang Xu, Yunfei Xu, Yungen Xu, Yunhe Xu, Yunjian Xu, Yunxi Xu, Yunxuan Xu, Yunyi Xu, Yuping Xu, Yurui Xu, Yushan Xu, Yuting Xu, Yuxiang Xu, Yuyang Xu, Yuzhen Xu, Yuzhi Xu, Yuzhong Xu, Z Xu, Zaibin Xu, Zaihua Xu, Zaikun Xu, Zaoyi Xu, Ze-Jun Xu, Zeao Xu, Zebang Xu, Zefeng Xu, Zejun Xu, Zekuan Xu, Zelin Xu, Zengliang Xu, Zeqing Xu, Zesheng Xu, Zetan Xu, Zeya Xu, Zeyu Xu, Zhan Xu, Zhanchi Xu, Zhanqiong Xu, Zhanyu Xu, Zhaofa Xu, Zhaojun Xu, Zhaoyao Xu, Zhe Xu, Zhen-Guo Xu, Zheng Xu, Zheng-Fan Xu, Zheng-Hong Xu, Zhengang Xu, Zhengshui Xu, Zhenming Xu, Zhenyu Xu, Zhenzhou Xu, Zhi Ping Xu, Zhi Xu, Zhi-Feng Xu, Zhi-Qing David Xu, Zhi-Zhen Xu, Zhicheng Xu, Zhidong Xu, Zhigang Xu, Zhihua Xu, Zhijie Xu, Zhiliang Xu, Zhilong Xu, Zhipeng Xu, Zhiqiang Xu, Zhiru Xu, Zhiting Xu, Zhiwei Xu, Zhixian Xu, Zhiyang Xu, Zhiyao Xu, Zhizhen Xu, Zhong Xu, Zhong-Hua Xu, Zhonghui Xu, Zhongwei Xu, Zhuangzhuang Xu, Zhunan Xu, Zi-Hua Xu, Zi-Xiang Xu, Zichuan Xu, Zifan Xu, Zihao Xu, Zihe Xu, Zihua Xu, Ziqi Xu, Ziwei Xu, Zixuan Xu, Ziyang Xu, Ziye Xu, Ziyu Xu, Zongli Xu, Zongren Xu, Zongzhen Xu, Zuojun Xu, Zuyuan Xu
articles
Longxin Qiu, Jianhui Lin, Fangui Xu +5 more · 2012 · Experimental diabetes research · added 2026-04-24
We previously demonstrated in streptozotocin-induced diabetic mice that deficiency or inhibition of aldose reductase (AR) caused significant dephosphorylation of hepatic transcriptional factor PPARα, Show more
We previously demonstrated in streptozotocin-induced diabetic mice that deficiency or inhibition of aldose reductase (AR) caused significant dephosphorylation of hepatic transcriptional factor PPARα, leading to its activation and significant reductions in serum lipid levels. Herein, we report that inhibition of AR by zopolrestat or by a short-hairpin RNA (shRNA) against AR caused a significant reduction in serum and hepatic triglycerides levels in 10-week old diabetic db/db mice. Meanwhile, hyperglycemia-induced phosphorylation of hepatic ERK1/2 and PPARα was significantly attenuated in db/db mice treated with zopolrestat or AR shRNA. Further, in comparison with the untreated db/db mice, the hepatic mRNA expression of Aco and ApoA5, two target genes for PPARα, was increased by 93% (P < 0.05) and 73% (P < 0.05) in zopolrestat-treated mice, respectively. Together, these data indicate that inhibition of AR might lead to significant amelioration in hyperglycemia-induced dyslipidemia and nonalcoholic fatty liver disease. Show less
📄 PDF DOI: 10.1155/2012/789730
APOA5
Yang Han, Yong Zhang, Lian-he Yang +10 more · 2012 · Radiation oncology (London, England) · BioMed Central · added 2026-04-24
Histone deacetylase (HDAC) plays an important role in the deacetylation of histone, which can alter gene expression patterns and affect cell behavior associated with malignant transformation. The aims Show more
Histone deacetylase (HDAC) plays an important role in the deacetylation of histone, which can alter gene expression patterns and affect cell behavior associated with malignant transformation. The aims of this study were to investigate the relationships between HDAC1, HDAC2, clinicopathologic characteristics, patient prognosis and apoptosis, to clarify the mechanism of upregulation of the Axis inhibitor Axin (an important regulator of the Wnt pathway) by X-radiation and to elucidate the effect of siRNA on radiation therapy of non-small cell lung cancer (NSCLC). HDAC1 and HDAC2 expression levels were measured by immunohistochemistry and reverse transcription PCR. Apoptosis was determined by terminal deoxynucleotidyl transferase-mediated dUTP-nick end labeling and fluorescence activated cell sorting. BE1 cells expressing Axin were exposed to 2 Gy of X-radiation. Expression of HDAC1 and that of HDAC2 were correlated, and significantly higher in NSCLC tissues than in normal lung tissues (P < 0.05). HDAC1 and HDAC2 expression was correlated with pTNM stage and negatively correlated with differentiation of NSCLC and apoptotic index (P < 0.05). The prognosis of patients with low expression of HDAC1 and HDAC2 was better than that of those with high expression. X-radiation and siRNA inhibited HDAC1 and HDAC2 expression in NSCLC cells and Axin levels were significantly higher in BE1 cells. X-radiation and siRNA inhibit expression of HDAC1 and HDAC2, weaken the inhibitory effect of HDAC on Axin, upregulate Axin expression and induce apoptosis of lung cancer cells. Inhibition of HDAC1 and HDAC2 is a means of enhancing the radiosensitivity of NSCLC. Show less
📄 PDF DOI: 10.1186/1748-717X-7-183
AXIN1
Zhiqiang Li, Yeqi Wang, Min Zhang +4 more · 2012 · The Journal of biological chemistry · American Society for Biochemistry and Molecular Biology · added 2026-04-24
The Motin family proteins can regulate cell polarity, cell mobility, and proliferation during embryonic development by controlling distinct signaling pathways. In this study, we demonstrate that amotl Show more
The Motin family proteins can regulate cell polarity, cell mobility, and proliferation during embryonic development by controlling distinct signaling pathways. In this study, we demonstrate that amotl2 knockdown in zebrafish wild-type embryos results in embryonic dorsalization, and this effect can be antagonized by co-knockdown of the dorsal inducer β-catenin2. Overexpression of amotl2 in masterblind (mbl) homozygous embryos, in which canonical Wnt signaling is up-regulated due to an axin1 mutation, transforms eyeless phenotype into smaller eyes, whereas co-knockdown of amot, amotl1, and amotl2 leads to development of smaller eyes in mbl heterozygotes. In cultured mammalian cells, Motin family members all possess the ability to attenuate Wnt/β-catenin signaling. Focusing on Amotl2, we show that Amotl2 can associate with and trap β-catenin in the Rab11-positive recycling endosomes, and as a result, the amount of β-catenin in the cytosol and nucleus is reduced. Thus, our findings provide novel insights into functions of Motin family members and regulation of Wnt/β-catenin signaling. Show less
no PDF DOI: 10.1074/jbc.M112.347419
AXIN1
Seamus Morrone, Zhihong Cheng, Randall T Moon +2 more · 2012 · Proceedings of the National Academy of Sciences of the United States of America · National Academy of Sciences · added 2026-04-24
Axin is a tumor suppressor and a key negative regulator of the Wnt/β-catenin signaling pathway. Axin turnover is controlled by its poly-ADP-ribosylation catalyzed by tankyrase (TNKS), which requires t Show more
Axin is a tumor suppressor and a key negative regulator of the Wnt/β-catenin signaling pathway. Axin turnover is controlled by its poly-ADP-ribosylation catalyzed by tankyrase (TNKS), which requires the direct interaction of Axin with TNKS. This interaction is thus an attractive drug target for treating cancers, brain injuries, and other diseases where β-catenin is involved. Here we report the crystal structure of a mouse TNKS1 fragment containing ankyrin-repeat clusters 2 and 3 (ARC2-3) in a complex with the TNKS-binding domain of mouse Axin1. Surprisingly, we found that Axin contains two discrete TNKS-binding segments, both of which bind simultaneously to the two ARC2 domains in the ARC2-3 homodimer. Our crystal structure shows that in each TNKS-binding segment of Axin there is a conserved glycine residue that lies in the bottom of a narrow "gate" formed by two parallel tyrosine side chains on the TNKS surface. This glycine-selection gate is crucial for TNKS-Axin interactions, as mutation of the TNKS gate-forming residues, or mutation of either glycine residue in the two Axin segments, completely abolishes the binding of the corresponding Axin segment to TNKS. The bivalent binding of Axin to TNKS is required for Axin turnover, since mutations in either gate-binding glycine residue in Axin lead to Axin stabilization in the cell. In addition, our analyses also reveal the structural basis for TNKS substrate recruitment, and shed light on the overall structure of TNKS that should help in developing specific inhibitors of Wnt/β-catenin signaling. Show less
no PDF DOI: 10.1073/pnas.1116618109
AXIN1
Jian Hong Sun, Yong Zhang, Bao Ying Yin +4 more · 2012 · Zygote (Cambridge, England) · added 2026-04-24
There is increasing evidence to show that 2-cell stage mouse blastomeres have differing developmental properties. Additionally, it has been suggested that such a difference might be due to their distr Show more
There is increasing evidence to show that 2-cell stage mouse blastomeres have differing developmental properties. Additionally, it has been suggested that such a difference might be due to their distribution of mRNA and/or protein asymmetry. However, to date, the exact genes that are involved in the orientation and order of blastomere division are not known. In this study, some differentially expressed transcripts were identified. Axin1, cell division cycle 25 homolog C (Cdc25c) and cyclin-dependent inhibitor 2D (Cdkn2d) were selected for validation by real-time polymerase chain reaction (PCR) based on published data. Our real-time PCR results demonstrated that Axin1, Cdc25c and Cdkn2d genes had different levels of expression among blastomeres of the mouse 2-cell embryo i.e. the level of Axin1 mRNA was significantly higher in one blastomere when compared with the other blastomeres of the 2-cell embryo (p < 0.05). The variation in Cdc25c (p < 0.05) and Cdkn2d (p < 0.01) mRNA expression followed a similar trend to that of Axin1. In addition, the highest levels of expression of these three genes were detected in the same blastomere in the 2-cell embryo. We confirmed that there was an asymmetrical distribution pattern for Axin1, Cdc25c and Cdkn2d transcripts in 2-cell embryos. In conclusion, this study demonstrated clearly that there is embryonic asymmetry at the 2-cell stage and that these differentially expressed genes may result in differentiation in expression in embryo development. Show less
no PDF DOI: 10.1017/S0967199411000347
AXIN1
Ping Jiao, Bin Feng, Haiyan Xu · 2012 · PloS one · PLOS · added 2026-04-24
MAP kinase phosphatase 3 (MKP-3) is known to attenuate the ERK signaling pathway. It has been recently demonstrated that MKP-3 is also a player in promoting hepatic glucose output in obese state by in Show more
MAP kinase phosphatase 3 (MKP-3) is known to attenuate the ERK signaling pathway. It has been recently demonstrated that MKP-3 is also a player in promoting hepatic glucose output in obese state by interacting and activating FOXO1. Reduction of hepatic MKP-3 expression is sufficient to reduce blood glucose levels in both diet-induced and genetically obese mice. In current study, the mechanism of MKP-3/FOXO1 interaction and the effects on transcription of gluconeogenic gene and glucose output was investigated in Fao hepatoma cells by using mutated MKP-3 and FOXO1 adenoviral constructs. The results indicate that MKP-3 phosphatase activity is not required for MKP-3/FOXO1 interaction but is essential for FOXO1 nuclear translocation and MKP-3 promoted gluconeogenesis. Compared to GFP control (1±0.38), MKP-3 increased G6Pase gene expression by 242% (3.42±0.62) while inactive MKP-3 does not change G6Pase expression (0.98±0.17). The residues 200-260 of MKP-3 and the residues 360-456 of FOXO1 are essential for mediating MKP-3/FOXO1 interaction. Interestingly, ERK phosphorylation deficient but not Akt phosphorylation deficient FOXO1 mutant lost interaction with MKP-3. Furthermore, in vivo experiments showed that Akt phosphorylation resistant FOXO1 3A mutant is sufficient to rescue the hypoglycemia caused by MKP-3 knock down in the liver of lean mice (from 141±6.78 to 209±14.64 mg/dL). 1) Critical residues mediating MKP-3/FOXO1 interaction have been identified; 2) ERK phosphorylation deficient FOXO1 mutant is as potent as Akt phosphorylation deficient FOXO1 mutant in activating transcription of gluconeogenic genes; 3) Constitutively active FOXO1 can rescue the hypoglycemic effect caused by reduced hepatic MKP-3 expression in vivo. Show less
📄 PDF DOI: 10.1371/journal.pone.0041168
DUSP6
Yechun Xu, Min-jun Li, Harry Greenblatt +10 more · 2012 · Acta crystallographica. Section D, Biological crystallography · added 2026-04-24
β-Secretase (β-site amyloid precursor protein-cleaving enzyme 1; BACE1) is a transmembrane aspartic protease that cleaves the β-amyloid precursor protein en route to generation of the amyloid β-peptid Show more
β-Secretase (β-site amyloid precursor protein-cleaving enzyme 1; BACE1) is a transmembrane aspartic protease that cleaves the β-amyloid precursor protein en route to generation of the amyloid β-peptide (Aβ) that is believed to be responsible for the Alzheimer's disease amyloid cascade. It is thus a prime target for the development of inhibitors which may serve as drugs in the treatment and/or prevention of Alzheimer's disease. In the following determination of the crystal structures of both apo and complexed BACE1, structural analysis of all crystal structures of BACE1 deposited in the PDB and molecular dynamics (MD) simulations of monomeric and `dimeric' BACE1 were used to study conformational changes in the active-site region of the enzyme. It was observed that a flap able to cover the active site is the most flexible region, adopting multiple conformational states in the various crystal structures. Both the presence or absence of an inhibitor within the active site and the crystal packing are shown to influence the flap's conformation. An open conformation of the flap is mostly observed in the apo structures, while direct hydrogen-bonding interaction between main-chain atoms of the flap and the inhibitor is a prerequisite for the flap to adopt a closed conformation in the crystal structures of complexes. Thus, a systematic study of the conformational flexibility of the enzyme may not only contribute to structure-based drug design of BACE1 inhibitors and of other targets with flexible conformations, but may also help to better understand the mechanistic events associated with the binding of substrates and inhibitors to the enzyme. Show less
no PDF DOI: 10.1107/S0907444911047251
DYM
Song Xu, Ann De Becker, Hendrik De Raeve +3 more · 2012 · Biochemical and biophysical research communications · Elsevier · added 2026-04-24
Mesenchymal stem cells (MSCs) have currently generated numerous interests in pre-clinical and clinical applications due to their multiple lineages differentiation potential and immunomodulary effects. Show more
Mesenchymal stem cells (MSCs) have currently generated numerous interests in pre-clinical and clinical applications due to their multiple lineages differentiation potential and immunomodulary effects. However, accumulating evidence indicates that MSCs, especially murine MSCs (mMSCs), can undergo spontaneous transformation after long-term in vitro culturing, which might reduce the therapeutic application possibilities of these stem cells. In the present study, we observed that in vitro expanded bone marrow (BM) derived mMSCs from the C57Bl/KaLwRij mouse strain can lose their specific stem cells markers (CD90 and CD105) and acquire CD34 expression, accompanied with an altered morphology and an impaired tri-lineages differentiation capacity. Compared to normal mMSCs, these transformed mMSCs exhibited an increased proliferation rate, an enhanced colony formation and migration ability as well as a higher sensitivity to anti-tumor drugs. Transformed mMSCs were highly tumorigenic in vivo, resulting in aggressive sarcoma formation when transplanted in non-immunocompromised mice. Furthermore, we found that Notch signaling downstream genes (hey1, hey2 and heyL) were significantly upregulated in transformed mMSCs, while Hedgehog signaling downstream genes Gli1 and Ptch1 and the Wnt signaling downstream gene beta-catenin were all decreased. Taken together, we observed that murine in vitro expanded BM-MSCs can transform into CD34 expressing cells that induce sarcoma formation in vivo. We assume that dysregulation of the Notch(+)/Hh(-)/Wnt(-) signaling pathway is associated with the malignant phenotype of the transformed mMSCs. Show less
no PDF DOI: 10.1016/j.bbrc.2012.06.118
HEY2
Guangfu Jin, Jielin Sun, Seong-Tae Kim +11 more · 2012 · Human molecular genetics · Oxford University Press · added 2026-04-24
Circulating androgen levels are often used as indicators of physiological or pathological conditions. More than half of the variance for circulating androgen levels is thought to be genetically influe Show more
Circulating androgen levels are often used as indicators of physiological or pathological conditions. More than half of the variance for circulating androgen levels is thought to be genetically influenced. A genome-wide association study (GWAS) has identified two loci, SHBG at 17p13 and FAM9B at Xp22, for serum testosterone (T) levels; however, these explain only a small fraction of inter-individual variability. To identify additional genetic determinants of androgen levels, a GWAS of baseline serum T and dihydrotestosterone (DHT) levels was conducted in 3225 men of European ancestry from the REduction by DUtasteride of Prostate Cancer Events (REDUCE) study. Cross-validation was used to confirm the observed associations between the drug (n = 1581) and placebo (n = 1644) groups of REDUCE. In addition to confirming the associations of two known loci with serum T levels (rs727428 in SHBG: P = 1.26 × 10(-12); rs5934505 in FAM9B: P = 1.61 × 10(-8)), we identified a new locus, JMJD1C at 10q21 that was associated with serum T levels at a genome-wide significance level (rs10822184: P = 1.12 × 10(-8)). We also observed that the SHBG locus was associated with serum DHT levels (rs727428: P = 1.47 × 10(-11)). Moreover, two additional variants in SHBG [rs72829446, in strong linkage equilibrium with the missense variant D356N (rs6259), and rs1799941] were also independently associated with circulating androgen levels in a statistical scale. These three loci (JMJD1C, SHBG and FAM9B) were estimated to account for ~5.3 and 4.1% of the variance of serum T and DHT levels. Our findings may provide new insights into the regulation of circulating androgens and potential targets for androgen-based therapy. Show less
no PDF DOI: 10.1093/hmg/dds361
JMJD1C
Yiwen Wu, Xinyi Wang, Wei Xu +5 more · 2012 · Neuroscience letters · Elsevier · added 2026-04-24
Studies of the relationship between Parkinson's disease (PD) and rs9652490 SNP in LINGO1 gene have reported inconsistent results. To assess the association between the variant and PD risk, a meta-anal Show more
Studies of the relationship between Parkinson's disease (PD) and rs9652490 SNP in LINGO1 gene have reported inconsistent results. To assess the association between the variant and PD risk, a meta-analysis from 12 case-control studies was performed. A total of 6053 PD cases and 5997 controls in 4 studies among Asians and 8 studies among non-Asians were included. The overall and geographic subgroups analysis was conducted, and odds ratios (OR) and 95% confidence intervals (95%CI) were calculated in the fixed-effects or random-effects model. The combined results of overall analysis showed a lack of association of rs9652490 and PD (fixed-effects model, OR 1.00, 95%CI 0.94-1.06), no matter what genetic model of rs9652490. The separate analysis in patients of Asian origin or non-Asian origin also failed to show any ethnic-dependent association. In conclusion, the present meta-analysis does not support the notion that LINGO1 rs9652490 SNP is a major genetic risk factor for PD. Show less
no PDF DOI: 10.1016/j.neulet.2012.06.018
LINGO1
Hui Liang, Wen Zheng, Hongbo Xu +5 more · 2012 · Parkinsonism & related disorders · Elsevier · added 2026-04-24
Essential tremor (ET) is shown an autosomal dominant mode of inheritance, with no disease-causing gene has been found. Genetic variations in the leucine-rich repeat and lg domain containing nogo recep Show more
Essential tremor (ET) is shown an autosomal dominant mode of inheritance, with no disease-causing gene has been found. Genetic variations in the leucine-rich repeat and lg domain containing nogo receptor-interacting protein genes (LINGO1 and LINGO2) were reported to be associated with an increased risk of developing ET. To explore whether the LINGO4 gene (a homologous gene of the LINGO1 and the LINGO2 genes) plays a role in ET susceptibility, we performed genetic analysis of coding region of the LINGO4 gene in 100 patients with ET from Mainland China. Two nucleotide variants had been identified: (1) T > A transition (rs61746299), predicted to lead to the amino acid change Thr444Ser, and (2) C > T transition (rs1521179), located 12 bp downstream to the end of coding region. To evaluate whether these variants are related to ET susceptibility, we investigated a total of 150 Chinese Han ET patients (77 familial ET and 73 sporadic ET) and 300 sex, age and ethnicity matched normal controls. No significant differences in genotypic and allele distributions between patients and control subjects for rs61746299 and rs1521179 (p = 0.531 and p = 0.867 for genotypic distributions; p = 1.000 and p = 0.844 for allele distributions) were observed, suggesting variants in coding region of the LINGO4 gene may play litter or no role in the risk of ET susceptibility. Show less
no PDF DOI: 10.1016/j.parkreldis.2011.10.017
LINGO1
Cheng Zhang, Xi Chen, Ren-Min Zhu +10 more · 2012 · Toxicology letters · Elsevier · added 2026-04-24
A link between fructose drinking and nonalcoholic fatty liver disease (NAFLD) has been demonstrated in human and rodent animals. The aim of the present study was to investigate whether endoplasmic ret Show more
A link between fructose drinking and nonalcoholic fatty liver disease (NAFLD) has been demonstrated in human and rodent animals. The aim of the present study was to investigate whether endoplasmic reticulum (ER) stress is mediated in the development of fructose-induced NAFLD. Female CD-1 mice were fed with 30% fructose solution for eight weeks. Hepatic lipid accumulation was assessed. Hepatic nuclear sterol regulatory element-binding protein (SREBP)-1c was measured. Results showed that hepatic SREBP-1c was activated in mice fed with fructose solution. Fatty acid synthase (fas) and acetyl-CoA carboxylase (acc), two target genes of SREBP-1c, were up-regulated. Fructose-evoked hepatic SREBP-1c activation seemed to be associated with insulin-induced gene (Insig)-1 depletion. An ER stress and unfolded protein response (UPR), as determined by an increased glucose-regulated protein (GRP78) expression and an increased eIF2α and PERK phosphorylation, were observed in liver of mice fed with fructose solution. Phenylbutyric acid (PBA), an ER chemical chaperone, not only significantly attenuated ER stress, but also alleviated fructose-induced hepatic Insig-1 depletion. PBA inhibited fructose-evoked hepatic SREBP-1c activation and the expression of SREBP-1c target genes, and protected against hepatic lipid accumulation. In conclusion, ER stress contributes, at least in part, to hepatic SREBP-1c activation and lipid accumulation in fructose-evoked NAFLD. Show less
no PDF DOI: 10.1016/j.toxlet.2012.06.002
MLXIPL
Min Gao, Yijun Zeng, Yaqun Guan +10 more · 2012 · The international journal of biochemistry & cell biology · Elsevier · added 2026-04-24
Endothelin-1 (ET-1), predominantly produced by vascular endothelial cells (VECs), plays an important role in the pathogenesis of inflammatory diseases. Liver X receptor (LXR), a typical nuclear recept Show more
Endothelin-1 (ET-1), predominantly produced by vascular endothelial cells (VECs), plays an important role in the pathogenesis of inflammatory diseases. Liver X receptor (LXR), a typical nuclear receptor, is known for inhibiting expression of inflammatory molecules. However, it remains unclear whether LXR suppresses ET-1 expression. In the present study, we showed that pretreatment with GW3965, a specific ligand of LXR, significantly attenuated lipopolysaccharide (LPS)-induced ET-1 in mice plasma. The in vitro experiments showed that both LXRα and β were expressed in human VECs, and they are functional as demonstrated by induction of the target gene ABCA1 after treatment with GW3965. Moreover, activation of LXR with GW3965 in human VECs dramatically attenuated the basal and LPS-stimulated ET-1 production at both transcriptional and translational levels. Luciferase reporter assays indicated that LXR activation suppressed the transcriptional activity of the human ET-1 gene promoter, and repressed the activity of a heterologous promoter driven by the response elements of activator-1 (AP-1) or nuclear factor-κB (NF-κB). Electrophoretic mobility shift and chromatin immunoprecipitation assays showed that activation of LXR reduced the binding of the transcriptional factors AP-1 and NF-κB to the ET-1 gene promoter region. In conclusion, activation of LXR represses ET-1 expression in vivo and in vitro, which may be involved in the negatively interfering with AP-1/NF-κB signaling. These results suggest that LXRs may serve as a novel molecular target for modulating ET-1 expression in VECs, and even for the treatment of ET-1-associated inflammatory diseases. Show less
no PDF DOI: 10.1016/j.biocel.2012.09.010
NR1H3
Ji-Shan Fan, Dan-Ning Liu, Gang Huang +5 more · 2012 · Journal of ethnopharmacology · Elsevier · added 2026-04-24
Panax notoginseng (Burk.) F.H. Chen has been used as a health product and natural remedy in traditional medicine for cardiovascular diseases for more than 1000 years in Asia, including China, Japan, a Show more
Panax notoginseng (Burk.) F.H. Chen has been used as a health product and natural remedy in traditional medicine for cardiovascular diseases for more than 1000 years in Asia, including China, Japan, and Korea. Panax notoginseng saponins (PNS) are the major effective ingredients extracted from Panax notoginseng. The purpose of this study was to investigate whether Panax notoginseng saponins (PNS) attenuated atherosclerosis by inducing liver X receptor alpha (LXRα) expression and to elucidate the mechanisms responsible for the effects. The AS rats were treated once daily with PNS (100 mg/kg, i.p.), and pathological changes in the aorta were observed using Sudan IV staining. The expression of LXRα in the aortic wall was measured by Western blot analysis. THP-1 macrophages were cultured with PNS in the presence or absence of geranylgeranyl pyrophosphate ammonium salt (GGPP), an LXRα antagonist. The expression of LXRα and its target genes ATP-binding cassette A1 and G1 (ABCA1, ABCG1) were determined by qRT-PCR. The transcriptional activation of the LXRα gene promoter was analyzed by a reporter assay. The NF-κB DNA binding activity and the expression of interleukin (IL)-6, monocyte chemotactic protein-1 (MCP-1) was evaluated respectively by Trans-AM NF-κB ELISA and ELISA in THP-1 macrophages that were stimulated with LPS after treatment with PNS and GGPP. PNS treatment alleviated the typical pathological changes associated with atherosclerosis in rats. The expression of LXRα was increased in rat aortas after treatment with PNS. In vitro, PNS increased LXRα mRNA levels in THP-1 macrophages. The reporter assays showed that PNS enhanced transcriptional activation of the LXRα gene promoter and led to the upregulation of ABCA1 and ABCG1 expression. This upregulation could be reversed by treatment with GGPP. Additionally, PNS inhibited NF-κB DNA binding activity and reduced secretion of IL-6 and MCP-1 in LPS-stimulated THP-1 macrophages. These effects could be reversed by GGPP. The results indicated that the PNS-mediated attenuation of AS may, at least partly, due to LXRα uprergulation. The mechanisms of action included enhancement transcriptional activation of the LXRα gene promoter by PNS and subsequent upregulation of ABCA1 and ABCG1 and inhibition of NF-κB DNA binding activity. Show less
no PDF DOI: 10.1016/j.jep.2012.05.053
NR1H3
Qianming Bai, Xin Zhang, Leyuan Xu +7 more · 2012 · Metabolism: clinical and experimental · Elsevier · added 2026-04-24
Cytosolic sulfotransferase (SULT2B1b) catalyzes oxysterol sulfation. 5-Cholesten-3β-25-diol-3-sulfate (25HC3S), one product of this reaction, decreases intracellular lipids in vitro by suppressing liv Show more
Cytosolic sulfotransferase (SULT2B1b) catalyzes oxysterol sulfation. 5-Cholesten-3β-25-diol-3-sulfate (25HC3S), one product of this reaction, decreases intracellular lipids in vitro by suppressing liver X receptor/sterol regulatory element binding protein (SREBP)-1c signaling, with regulatory properties opposite to those of its precursor 25-hydroxycholesterol. Upregulation of SULT2B1b may be an effective strategy to treat hyperlipidemia and hepatic steatosis. The objective of the study was to explore the effect and mechanism of oxysterol sulfation by SULT2B1b on lipid metabolism in vivo. C57BL/6 and LDLR(-/-) mice were fed with high-cholesterol diet or high-fat diet for 10 weeks and infected with adenovirus encoding SULT2B1b. SULT2B1b expressions in different tissues were determined by immunohistochemistry and Western blot. Sulfated oxysterols in liver were analyzed by high-pressure liquid chromatography. Serum and hepatic lipid levels were determined by kit reagents and hematoxylin and eosin staining. Gene expressions were determined by real-time reverse transcriptase polymerase chain reaction and Western Blot. Following infection, SULT2B1b was successfully overexpressed in the liver, aorta, and lung tissues, but not in the heart or kidney. SULT2B1b overexpression, combined with administration of 25-hydroxycholesterol, significantly increased the formation of 25HC3S in liver tissue and significantly decreased serum and hepatic lipid levels, including triglycerides, total cholesterol, free cholesterol, and free fatty acids, as compared with controls in both C57BL/6 and LDLR(-/-) mice. Gene expression analysis showed that increases in SULT2B1b expression were accompanied by reduction in key regulators and enzymes involved in lipid metabolism, including liver X receptor α, SREBP-1, SREBP-2, acetyl-CoA carboxylase-1, and fatty acid synthase. These findings support the hypothesis that 25HC3S is an important endogenous regulator of lipid biosynthesis. Show less
no PDF DOI: 10.1016/j.metabol.2011.11.014
NR1H3
Lingmin Hu, Chen Wu, Xueying Zhao +26 more · 2012 · Clinical cancer research : an official journal of the American Association for Cancer Research · added 2026-04-24
Genetic variation may influence chemotherapy response and overall survival in cancer patients. We conducted a genome-wide scan in 535 advanced-stage non-small cell lung cancer (NSCLC) patients from tw Show more
Genetic variation may influence chemotherapy response and overall survival in cancer patients. We conducted a genome-wide scan in 535 advanced-stage non-small cell lung cancer (NSCLC) patients from two independent cohorts (307 from Nanjing and 228 from Beijing). A replication was carried out on an independent cohort of 340 patients from Southeastern China followed by a second validation on 409 patients from the Massachusetts General Hospital (Boston, MA). Consistent associations with NSCLC survival were identified for five single-nucleotide polymorphisms (SNP) in Chinese populations with P values ranging from 3.63 × 10(-5) to 4.19 × 10(-7) in the additive genetic model. The minor allele of three SNPs (rs7629386 at 3p22.1, rs969088 at 5p14.1, and rs3850370 at 14q24.3) were associated with worse NSCLC survival while 2 (rs41997 at 7q31.31 and rs12000445 at 9p21.3) were associated with better NSCLC survival. In addition, rs7629386 at 3p22.1 (CTNNB1) and rs3850370 at 14q24.3 (SNW1-ALKBH1-NRXN3) were further replicated in the Caucasian population. In this three-stage genome-wide association studies, we identified five SNPs as markers for survival of advanced-stage NSCLC patients treated with first-line platinum-based chemotherapy in Chinese Han populations. Two of these SNPs, rs7629386 and rs3850370, could also be markers for survival among Caucasian patients. Show less
no PDF DOI: 10.1158/1078-0432.CCR-12-1202
NRXN3
Martine Behra, Viviana E Gallardo, John Bradsher +11 more · 2012 · BMC developmental biology · BioMed Central · added 2026-04-24
Because of the structural and molecular similarities between the two systems, the lateral line, a fish and amphibian specific sensory organ, has been widely used in zebrafish as a model to study the d Show more
Because of the structural and molecular similarities between the two systems, the lateral line, a fish and amphibian specific sensory organ, has been widely used in zebrafish as a model to study the development/biology of neuroepithelia of the inner ear. Both organs have hair cells, which are the mechanoreceptor cells, and supporting cells providing other functions to the epithelium. In most vertebrates (excluding mammals), supporting cells comprise a pool of progenitors that replace damaged or dead hair cells. However, the lack of regenerative capacity in mammals is the single leading cause for acquired hearing disorders in humans. In an effort to understand the regenerative process of hair cells in fish, we characterized and cloned an egfp transgenic stable fish line that trapped tnks1bp1, a highly conserved gene that has been implicated in the maintenance of telomeres' length. We then used this Tg(tnks1bp1:EGFP) line in a FACsorting strategy combined with microarrays to identify new molecular markers for supporting cells. We present a Tg(tnks1bp1:EGFP) stable transgenic line, which we used to establish a transcriptional profile of supporting cells in the zebrafish lateral line. Therefore we are providing a new set of markers specific for supporting cells as well as candidates for functional analysis of this important cell type. This will prove to be a valuable tool for the study of regeneration in the lateral line of zebrafish in particular and for regeneration of neuroepithelia in general. Show less
no PDF DOI: 10.1186/1471-213X-12-6
TNKS1BP1
Yi-sheng Wang, Rui Cao, Hong Jin +5 more · 2011 · Journal of hematology & oncology · BioMed Central · added 2026-04-24
Endometrial carcinoma is one of the most common gynecological malignancies in women. The diagnosis of the disease at early or premalignant stages is crucial for the patient's prognosis. To date, diagn Show more
Endometrial carcinoma is one of the most common gynecological malignancies in women. The diagnosis of the disease at early or premalignant stages is crucial for the patient's prognosis. To date, diagnosis and follow-up of endometrial carcinoma and hyperplasia require invasive procedures. Therefore, there is considerable demand for the identification of biomarkers to allow non-invasive detection of these conditions. In this study, we performed a quantitative proteomics analysis on serum samples from simple endometrial hyperplasia, complex endometrial hyperplasia, atypical endometrial hyperplasia, and endometrial carcinoma patients, as well as healthy women. Serum samples were first depleted of high-abundance proteins, labeled with isobaric tags (iTRAQ), and then analyzed via two-dimensional liquid chromatography and tandem mass spectrometry. Protein identification and quantitation information were acquired by comparing the mass spectrometry data against the International Protein Index Database using ProteinPilot software. Bioinformatics annotation of identified proteins was performed by searching against the PANTHER database. In total, 74 proteins were identified and quantified in serum samples from endometrial lesion patients and healthy women. Using a 1.6-fold change as the benchmark, 12 proteins showed significantly altered expression levels in at least one disease group compared with healthy women. Among them, 7 proteins were found, for the first time, to be differentially expressed in atypical endometrial hyperplasia. These proteins are orosomucoid 1, haptoglobin, SERPINC 1, alpha-1-antichymotrypsin, apolipoprotein A-IV, inter-alpha-trypsin inhibitor heavy chain H4, and histidine-rich glycoprotein. The differentially expressed proteins we discovered in this study may serve as biomarkers in the diagnosis and follow-up of endometrial hyperplasia and endometrial carcinoma. Show less
📄 PDF DOI: 10.1186/1756-8722-4-15
APOA4
Fengping He, Xin Xu, Deming Hu +6 more · 2011 · Clinical chemistry and laboratory medicine · added 2026-04-24
no PDF DOI: 10.1515/CCLM.2011.243
APOA5
Yong-Nan Xu, Xiang-Shun Cui, Jin-Cheol Tae +2 more · 2011 · Journal of assisted reproduction and genetics · Springer · added 2026-04-24
To evaluate DNA synthesis and epigenetic modification in mouse oocytes during the first cell cycle following the injection of human or hamster sperm. Mouse oocytes following the injection of human and Show more
To evaluate DNA synthesis and epigenetic modification in mouse oocytes during the first cell cycle following the injection of human or hamster sperm. Mouse oocytes following the injection of human and hamster sperm and cultured in M16 medium. Male and female pronucleus formation, DNA synthesis, histone protein modification, and heterochromatin formation were similar in mouse oocytes injected with human or hamster sperm. However, DNA methylation patterns were altered in mouse oocytes following human sperm injection. Immunocytochemical staining with a histone H3-MeK9 antibody revealed that human and hamster sperm chromatin associated normally with female mouse chromatin, then entered into the metaphase and formed normal, two-cell stage embryos. Although differences in epigenetic modification of DNA were observed, fertilization and cleavage occurred in a species non-specific manner in mouse oocytes. Show less
no PDF DOI: 10.1007/s10815-010-9509-1
CBX1
Bingfang Xu, Rana Abdel-Fattah, Ling Yang +3 more · 2011 · Biology of reproduction · added 2026-04-24
The initial segment of the epididymis is vital for male fertility; therefore, it is important to understand the mechanisms that regulate this important region. Deprival of testicular luminal fluid fac Show more
The initial segment of the epididymis is vital for male fertility; therefore, it is important to understand the mechanisms that regulate this important region. Deprival of testicular luminal fluid factors/lumicrine factors from the epididymis results in a wave of apoptosis in the initial segment. In this study, a combination of protein array and microarray analyses was used to examine the early changes in downstream signal transduction pathways following loss of lumicrine factors. We discovered the following cascade of events leading to the loss of protection and eventual apoptosis: in the first 6 h after loss of lumicrine factors, down-regulation of the ERK pathway components was observed at the mRNA expression and protein activity levels. Microarray analysis revealed that mRNA levels of several key components of the ERK pathway, Dusp6, Dusp5, and Etv5, decreased sharply, while the analysis from the protein array revealed a decline in the activities of MAP2K1/2 and MAPK1. Immunostaining of phospho-MAPK3/1 indicated that down-regulation of the ERK pathway was specific to the epithelial cells of the initial segment. Subsequently, after 12 h of loss of lumicrine factors, levels of mRNA expression of STAT and NFKB pathway components increased, mRNA levels of several genes encoding cell cycle inhibitors increased, and levels of protein expression of several proapoptotic phosphatases increased. Finally, after 18 h of loss of protection from lumicrine factors, apoptosis was observed. In conclusion, testicular lumicrine factors protect the cells of the initial segment by activating the ERK pathway, repressing STAT and NFKB pathways, and thereby preventing apoptosis. Show less
no PDF DOI: 10.1095/biolreprod.110.090324
DUSP6
Omai B Garner, Kevin T Bush, Kabir B Nigam +4 more · 2011 · Developmental biology · Elsevier · added 2026-04-24
Specific interactions of growth factors with heparan sulfate may function as "switches" to regulate stages of branching morphogenesis in developing mammalian organs, such as breast, lung, salivary gla Show more
Specific interactions of growth factors with heparan sulfate may function as "switches" to regulate stages of branching morphogenesis in developing mammalian organs, such as breast, lung, salivary gland and kidney, but the evidence derives mostly from studies of explanted tissues or cell culture (Shah et al., 2004). We recently provided in vivo evidence that inactivation of Ndst1, the predominant N-deacetylase/N-sulfotransferase gene essential for the formation of mature heparan sulfate, results in a highly specific defect in murine lobuloalveolar development (Crawford et al., 2010). Here, we demonstrate a highly penetrant dramatic defect in primary branching by mammary epithelial-specific inactivation of Ext1, a subunit of the copolymerase complex that catalyzes the formation of the heparan sulfate chain. In contrast to Ext1 deletion, inactivation of Hs2st (which encodes an enzyme required for 2-O-sulfation of uronic acids in heparan sulfate) did not inhibit ductal formation but displayed markedly decreased secondary and ductal side-branches as well as fewer bifurcated terminal end buds. Targeted conditional deletion of c-Met, the receptor for HGF, in mammary epithelial cells showed similar defects in secondary and ductal side-branching, but did not result in any apparent defect in bifurcation of terminal end buds. Although there is published evidence indicating a role for 2-O sulfation in HGF binding, primary epithelial cells isolated from Hs2st conditional deletions were able to activate Erk in the presence of HGF and there appeared to be only a slight reduction in HGF-mediated c-Met phosphorylation in these cells compared to control. Thus, both c-Met and Hs2st play important, but partly independent, roles in secondary and ductal side-branching. When considered together with previous studies of Ndst1-deficient glands, the data presented here raise the possibility of partially-independent regulation by heparan sulfate-dependent pathways of primary ductal branching, terminal end bud bifurcation, secondary branching, ductal side-branching and lobuloalveolar formation. Show less
📄 PDF DOI: 10.1016/j.ydbio.2011.04.035
EXT1
John C Chambers, Weihua Zhang, Joban Sehmi +140 more · 2011 · Nature genetics · Nature · added 2026-04-24
John C Chambers, Weihua Zhang, Joban Sehmi, Xinzhong Li, Mark N Wass, Pim Van der Harst, Hilma Holm, Serena Sanna, Maryam Kavousi, Sebastian E Baumeister, Lachlan J Coin, Guohong Deng, Christian Gieger, Nancy L Heard-Costa, Jouke-Jan Hottenga, Brigitte Kühnel, Vinod Kumar, Vasiliki Lagou, Liming Liang, Jian'an Luan, Pedro Marques Vidal, Irene Mateo Leach, Paul F O'Reilly, John F Peden, Nilufer Rahmioglu, Pasi Soininen, Elizabeth K Speliotes, Xin Yuan, Gudmar Thorleifsson, Behrooz Z Alizadeh, Larry D Atwood, Ingrid B Borecki, Morris J Brown, Pimphen Charoen, Francesco Cucca, Debashish Das, Eco J C de Geus, Anna L Dixon, Angela Döring, Georg Ehret, Gudmundur I Eyjolfsson, Martin Farrall, Nita G Forouhi, Nele Friedrich, Wolfram Goessling, Daniel F Gudbjartsson, Tamara B Harris, Anna-Liisa Hartikainen, Simon Heath, Gideon M Hirschfield, Albert Hofman, Georg Homuth, Elina Hyppönen, Harry L A Janssen, Toby Johnson, Antti J Kangas, Ido P Kema, Jens P Kühn, Sandra Lai, Mark Lathrop, Markus M Lerch, Yun Li, T Jake Liang, Jing-Ping Lin, Ruth J F Loos, Nicholas G Martin, Miriam F Moffatt, Grant W Montgomery, Patricia B Munroe, Kiran Musunuru, Yusuke Nakamura, Christopher J O'Donnell, Isleifur Olafsson, Brenda W Penninx, Anneli Pouta, Bram P Prins, Inga Prokopenko, Ralf Puls, Aimo Ruokonen, Markku J Savolainen, David Schlessinger, Jeoffrey N L Schouten, Udo Seedorf, Srijita Sen-Chowdhry, Katherine A Siminovitch, Johannes H Smit, Timothy D Spector, Wenting Tan, Tanya M Teslovich, Taru Tukiainen, Andre G Uitterlinden, Melanie M Van der Klauw, Ramachandran S Vasan, Chris Wallace, Henri Wallaschofski, H-Erich Wichmann, Gonneke Willemsen, Peter Würtz, Chun Xu, Laura M Yerges-Armstrong, Alcohol Genome-wide Association (AlcGen) Consortium, Diabetes Genetics Replication and Meta-analyses (DIAGRAM+) Study, Genetic Investigation of ANthropometric Traits (GIANT) Consortium, Global Lipids Genetics Consortium, Genetics of Liver Disease (GOLD) Consortium, International Consortium for Blood Pressure (ICBP-GWAS), Meta-analyses of Glucose and Insulin-Related Traits Consortium (MAGIC), Goncalo R Abecasis, Kourosh R Ahmadi, Dorret I Boomsma, Mark Caulfield, William O Cookson, Cornelia M Van Duijn, Philippe Froguel, Koichi Matsuda, Mark I McCarthy, Christa Meisinger, Vincent Mooser, Kirsi H Pietiläinen, Gunter Schumann, Harold Snieder, Michael J E Sternberg, Ronald P Stolk, Howard C Thomas, Unnur Thorsteinsdottir, Manuela Uda, Gérard Waeber, Nicholas J Wareham, Dawn M Waterworth, Hugh Watkins, John B Whitfield, Jacqueline C M Witteman, Bruce H R Wolffenbuttel, Caroline S Fox, Mika Ala-Korpela, Kari Stefansson, Peter Vollenweider, Henry Völzke, Eric E Schadt, James Scott, Marjo-Riitta Järvelin, Paul Elliott, Jaspal S Kooner Show less
Concentrations of liver enzymes in plasma are widely used as indicators of liver disease. We carried out a genome-wide association study in 61,089 individuals, identifying 42 loci associated with conc Show more
Concentrations of liver enzymes in plasma are widely used as indicators of liver disease. We carried out a genome-wide association study in 61,089 individuals, identifying 42 loci associated with concentrations of liver enzymes in plasma, of which 32 are new associations (P = 10(-8) to P = 10(-190)). We used functional genomic approaches including metabonomic profiling and gene expression analyses to identify probable candidate genes at these regions. We identified 69 candidate genes, including genes involved in biliary transport (ATP8B1 and ABCB11), glucose, carbohydrate and lipid metabolism (FADS1, FADS2, GCKR, JMJD1C, HNF1A, MLXIPL, PNPLA3, PPP1R3B, SLC2A2 and TRIB1), glycoprotein biosynthesis and cell surface glycobiology (ABO, ASGR1, FUT2, GPLD1 and ST3GAL4), inflammation and immunity (CD276, CDH6, GCKR, HNF1A, HPR, ITGA1, RORA and STAT4) and glutathione metabolism (GSTT1, GSTT2 and GGT), as well as several genes of uncertain or unknown function (including ABHD12, EFHD1, EFNA1, EPHA2, MICAL3 and ZNF827). Our results provide new insight into genetic mechanisms and pathways influencing markers of liver function. Show less
📄 PDF DOI: 10.1038/ng.970
FADS1
Ahmed Raafat, Anita S Goldhar, Malgorzata Klauzinska +8 more · 2011 · Journal of cellular physiology · Wiley · added 2026-04-24
Notch genes play a critical role in mammary gland growth, development and tumorigenesis. In the present study, we have quantitatively determined the levels and mRNA expression patterns of the Notch re Show more
Notch genes play a critical role in mammary gland growth, development and tumorigenesis. In the present study, we have quantitatively determined the levels and mRNA expression patterns of the Notch receptor genes, their ligands and target genes in the postnatal mouse mammary gland. The steady state levels of Notch3 mRNA are the highest among receptor genes, Jagged1 and Dll3 mRNA levels are the highest among ligand genes and Hey2 mRNA levels are highest among expressed Hes/Hey target genes analyzed during different stages of postnatal mammary gland development. Using an immunohistochemical approach with antibodies specific for each Notch receptor, we show that Notch proteins are temporally regulated in mammary epithelial cells during normal mammary gland development in the FVB/N mouse. The loss of ovarian hormones is associated with changes in the levels of Notch receptor mRNAs (Notch2 higher and Notch3 lower) and ligand mRNAs (Dll1 and Dll4 are higher, whereas Dll3 and Jagged1 are lower) in the mammary gland of ovariectomized mice compared to intact mice. These data define expression of the Notch ligand/receptor system throughout development of the mouse mammary gland and help set the stage for genetic analysis of Notch in this context. Show less
📄 PDF DOI: 10.1002/jcp.22526
HEY2
A J Deshpande, A Rouhi, Y Lin +13 more · 2011 · Leukemia · Nature · added 2026-04-24
The t(10;11)(p13-14;q14-21) translocation, giving rise to the CALM-AF10 fusion gene, is a recurrent chromosomal rearrangement observed in patients with poor prognosis acute myeloid leukemia (AML). Alt Show more
The t(10;11)(p13-14;q14-21) translocation, giving rise to the CALM-AF10 fusion gene, is a recurrent chromosomal rearrangement observed in patients with poor prognosis acute myeloid leukemia (AML). Although splicing of the CALM-AF10 fusion transcripts has been described in AML patients, the contribution of different CALM and AF10 domains to in vivo leukemogenesis remains to be defined. We therefore performed detailed structure-function studies of the CALM-AF10 fusion protein. We demonstrate that fusion of the C-terminal 248 amino acids of CALM, which include the clathrin-binding domain, to the octapeptide motif-leucine-zipper (OM-LZ) domain of AF10 generated a fusion protein (termed CALM-AF10 minimal fusion (MF)), with strikingly enhanced transformation capabilities in colony assays, providing an efficient system for the expeditious assessment of CALM-AF10-mediated transformation. Leukemias induced by the CALM-AF10 (MF) mutant recapitulated multiple aspects of full-length CALM-AF10-induced leukemia, including aberrant Hoxa cluster upregulation, a characteristic molecular lesion of CALM-AF10 leukemias. In summary, this study indicates that collaboration of the clathrin-binding and the OM-LZ domains of CALM-AF10 is sufficient to induce AML. These findings further suggest that future approaches to antagonize CALM-AF10-induced transformation should incorporate strategies, which aim at blocking these key domains. Show less
no PDF DOI: 10.1038/leu.2011.153
MLLT10
Yanni Xu, Fangfang Lai, Yang Xu +10 more · 2011 · Biochemical and biophysical research communications · Elsevier · added 2026-04-24
ATP-binding cassette transporter A1 (ABCA1) promotes cholesterol and phospholipid efflux from cells to lipid-poor apolipoprotein A-I and plays an important role in atherosclerosis. In a previous study Show more
ATP-binding cassette transporter A1 (ABCA1) promotes cholesterol and phospholipid efflux from cells to lipid-poor apolipoprotein A-I and plays an important role in atherosclerosis. In a previous study, we developed a high-throughput screening method using an ABCA1p-LUC HepG2 cell line to find upregulators of ABCA1. Using this method in the present study, we found that mycophenolic acid (MPA) upregulated ABCA1 expression (EC50=0.09 μM). MPA upregulation of ABCA1 expression was confirmed by real-time quantitative reverse transcription-PCR and Western blot analysis in HepG2 cells. Previous work has indicated that MPA is a potent agonist of peroxisome proliferator-activated receptor gamma (PPARγ; EC50=5.2-9.3 μM). Liver X receptor α (LXRα) is a target gene of PPARγ and may directly regulate ABCA1 expression. Western blot analysis showed that MPA induced LXRα protein expression in HepG2 cells. Addition of PPARγ antagonist GW9662 markedly inhibited MPA-induced ABCA1 and LXRα protein expression. These data suggest that MPA increased ABCA1 expression mainly through activation of PPARγ. Thus, the effects of MPA on upregulation of ABCA1 expression were due mainly to activation of the PPARγ-LXRα-ABCA1 signaling pathway. This is the first report that the antiatherosclerosis activity of MPA is due to this mechanism. Show less
no PDF DOI: 10.1016/j.bbrc.2011.10.002
NR1H3
G Li, K C Biju, X Xu +9 more · 2011 · Gene therapy · Nature · added 2026-04-24
Liver X receptors (LXRs) are implicated in the regulation of cholesterol homeostasis, inflammatory response and atherogenesis. Administration of LXR agonists inhibits the progress of atherosclerosis, Show more
Liver X receptors (LXRs) are implicated in the regulation of cholesterol homeostasis, inflammatory response and atherogenesis. Administration of LXR agonists inhibits the progress of atherosclerosis, and also increases plasma triglyceride levels, representing an obstacle to their use in treating this disease. The objective of this study was to develop an alternative approach that could overcome this obstacle. Eight-week-old low-density lipoprotein receptor-deficient (LDLR(-/-)) mice were transplanted with hematopoietic stem cell (HSC)-enriched bone marrow cells transduced with lentivectors expressing either green fluorescent protein (GFP) (Lenti-SP-GFP, control) or LXRα (Lenti-SP-LXRα) driven by a synthetic macrophage promoter. At 4 weeks post-transplant, the mice were fed with a Western diet for 8 weeks and then killed. Compared with Lenti-SP-GFP mice, the Lenti-SP-LXRα mice had a 30% reduction in atherosclerotic lesions, which was accompanied by increases in levels of macrophage expression of cholesterol efflux genes apolipoprotein E and ATP-binding cassette A1, as well as decreases in plasma inflammatory cytokines interleukin-6 and tumor necrosis factor-α. Intriguingly, a 50% reduction of plasma triglyceride level was also observed. We conclude that HSC-based macrophage LXRα gene therapy ameliorates the development of atherosclerosis along with an unexpected concomitant reduction of plasma triglyceride levels in LDLR(-/-) mice. These findings highlight the potential value of macrophage LXR expression as an avenue for therapeutic intervention against atherosclerosis. Show less
no PDF DOI: 10.1038/gt.2011.29
NR1H3
Yu Zhang, Jingfa Zhang, Qingping Wang +4 more · 2011 · Investigative ophthalmology & visual science · added 2026-04-24
To evaluate the protective effect of intravitreal injection of exendin-4 analogue (E4a) in early diabetic retinopathy (DR) and to explore its possible mechanism. Forty Sprague-Dawley rats were divided Show more
To evaluate the protective effect of intravitreal injection of exendin-4 analogue (E4a) in early diabetic retinopathy (DR) and to explore its possible mechanism. Forty Sprague-Dawley rats were divided into three groups: normal (N), diabetic (D), and E4a-treated diabetic rats (E4a). Diabetes was induced by streptozotocin. Rats in the E4a group were treated with E4a (0.1 μg/2μL/eye), whereas the N and D groups were treated with the equivalent volume of normal saline. Electroretinography was performed at 1 month and 3 months after diabetes onset. Thicknesses and cell counts in each layer of the retina were evaluated. The concentration of glutamate was measured by high-performance liquid chromatography (HPLC). Expressions of glucagon-like peptide-1 receptor (GLP-1R) and GLAST (excitatory amino acid transporter) were detected at mRNA and protein levels and verified by immunohistochemistry in vitro and in vivo. The rMc-1 cells were cultured under high-glucose medium (25 mM), which mimicked diabetic conditions. Effects of E4a (10 μg/mL) were also tested in the rMc-1 culture system. E4a prevented the reduction in b-wave amplitude and oscillatory potential amplitude caused by diabetes. It also prevented the cell loss of outer nuclear layer and inner nuclear layer; the thickness and cell count in the outer nuclear layer were decreased in 1-month diabetic rats. The concentration of glutamate in the retina was higher in diabetic rats and was significantly reduced in the E4a-treated group. Consistent with such changes, retinal GLP-1R and GLAST expression were reduced in the diabetic retina but upregulated in E4a-treated rats. No improvement was found in the retina in both functional and morphologic parameters 3 months after treatment. Intravitreal administration of E4a can prevent the retina, functionally and morphologically, from the insults of diabetes in rats. GLP-1R and GLAST were proved to exist in the rat retina, and their lowered expressions in the diabetic retina might be related to retinal damage by increasing the retinal glutamate. E4a might protect the retina by reducing the glutamate level through upregulating GLP-1R and GLAST, as observed in retinal Müller cells in this study, but this protective effect was transient. Thus, this could be a potential approach for the treatment of DR. Show less
no PDF DOI: 10.1167/iovs.09-4727
RMC1
Ryan J Delahanty, Alicia Beeghly-Fadiel, Yong-Bing Xiang +9 more · 2011 · American journal of epidemiology · Oxford University Press · added 2026-04-24
Obesity is a well-established risk factor for endometrial cancer, the most common gynecologic malignancy. Recent genome-wide association studies (GWAS) have identified multiple genetic markers for obe Show more
Obesity is a well-established risk factor for endometrial cancer, the most common gynecologic malignancy. Recent genome-wide association studies (GWAS) have identified multiple genetic markers for obesity. The authors evaluated the association of obesity-related single nucleotide polymorphisms (SNPs) with endometrial cancer using GWAS data from their recently completed study, the Shanghai Endometrial Cancer Genetics Study, which comprised 832 endometrial cancer cases and 2,049 controls (1996-2005). Thirty-five SNPs previously associated with obesity or body mass index (BMI; weight (kg)/height (m)(2)) at a minimum significance level of ≤5 × 10(-7) in the US National Human Genome Research Institute's GWAS catalog (http://genome.gov/gwastudies) and representing 26 unique loci were evaluated by either direct genotyping or imputation. The authors found that for 22 of the 26 unique loci tested (84.6%), the BMI-associated risk variants were present at a higher frequency in cases than in population controls (P = 0.0003). Multiple regression analysis showed that 9 of 35 BMI-associated variants, representing 7 loci, were significantly associated (P ≤ 0.05) with the risk of endometrial cancer; for all but 1 SNP, the direction of association was consistent with that found for BMI. For consistent SNPs, the allelic odds ratios ranged from 1.15 to 1.29. These 7 loci are in the SEC16B/RASAL, TMEM18, MSRA, SOX6, MTCH2, FTO, and MC4R genes. The associations persisted after adjustment for BMI, suggesting that genetic markers of obesity provide value in addition to BMI in predicting endometrial cancer risk. Show less
no PDF DOI: 10.1093/aje/kwr233
SEC16B
Elizabeth K Speliotes, Cristen J Willer, Sonja I Berndt +374 more · 2010 · Nature genetics · Nature · added 2026-04-24
Elizabeth K Speliotes, Cristen J Willer, Sonja I Berndt, Keri L Monda, Gudmar Thorleifsson, Anne U Jackson, Hana Lango Allen, Cecilia M Lindgren, Jian'an Luan, Reedik Mägi, Joshua C Randall, Sailaja Vedantam, Thomas W Winkler, Lu Qi, Tsegaselassie Workalemahu, Iris M Heid, Valgerdur Steinthorsdottir, Heather M Stringham, Michael N Weedon, Eleanor Wheeler, Andrew R Wood, Teresa Ferreira, Robert J Weyant, Ayellet V Segrè, Karol Estrada, Liming Liang, James Nemesh, Ju-Hyun Park, Stefan Gustafsson, Tuomas O Kilpeläinen, Jian Yang, Nabila Bouatia-Naji, Tõnu Esko, Mary F Feitosa, Zoltán Kutalik, Massimo Mangino, Soumya Raychaudhuri, Andre Scherag, Albert Vernon Smith, Ryan Welch, Jing Hua Zhao, Katja K Aben, Devin M Absher, Najaf Amin, Anna L Dixon, Eva Fisher, Nicole L Glazer, Michael E Goddard, Nancy L Heard-Costa, Volker Hoesel, Jouke-Jan Hottenga, Asa Johansson, Toby Johnson, Shamika Ketkar, Claudia Lamina, Shengxu Li, Miriam F Moffatt, Richard H Myers, Narisu Narisu, John R B Perry, Marjolein J Peters, Michael Preuss, Samuli Ripatti, Fernando Rivadeneira, Camilla Sandholt, Laura J Scott, Nicholas J Timpson, Jonathan P Tyrer, Sophie van Wingerden, Richard M Watanabe, Charles C White, Fredrik Wiklund, Christina Barlassina, Daniel I Chasman, Matthew N Cooper, John-Olov Jansson, Robert W Lawrence, Niina Pellikka, Inga Prokopenko, Jianxin Shi, Elisabeth Thiering, Helene Alavere, Maria T S Alibrandi, Peter Almgren, Alice M Arnold, Thor Aspelund, Larry D Atwood, Beverley Balkau, Anthony J Balmforth, Amanda J Bennett, Yoav Ben-Shlomo, Richard N Bergman, Sven Bergmann, Heike Biebermann, Alexandra I F Blakemore, Tanja Boes, Lori L Bonnycastle, Stefan R Bornstein, Morris J Brown, Thomas A Buchanan, Fabio Busonero, Harry Campbell, Francesco P Cappuccio, Christine Cavalcanti-Proença, Yii-der Ida Chen, Chih-Mei Chen, Peter S Chines, Robert Clarke, Lachlan Coin, John Connell, Ian N M Day, Martin den Heijer, Jubao Duan, Shah Ebrahim, Paul Elliott, Roberto Elosua, Gudny Eiriksdottir, Michael R Erdos, Johan G Eriksson, Maurizio F Facheris, Stephan B Felix, Pamela Fischer-Posovszky, Aaron R Folsom, Nele Friedrich, Nelson B Freimer, Mao Fu, Stefan Gaget, Pablo V Gejman, Eco J C Geus, Christian Gieger, Anette P Gjesing, Anuj Goel, Philippe Goyette, Harald Grallert, Jürgen Grässler, Danielle M Greenawalt, Christopher J Groves, Vilmundur Gudnason, Candace Guiducci, Anna-Liisa Hartikainen, Neelam Hassanali, Alistair S Hall, Aki S Havulinna, Caroline Hayward, Andrew C Heath, Christian Hengstenberg, Andrew A Hicks, Anke Hinney, Albert Hofman, Georg Homuth, Jennie Hui, Wilmar Igl, Carlos Iribarren, Bo Isomaa, Kevin B Jacobs, Ivonne Jarick, Elizabeth Jewell, Ulrich John, Torben Jørgensen, Pekka Jousilahti, Antti Jula, Marika Kaakinen, Eero Kajantie, Lee M Kaplan, Sekar Kathiresan, Johannes Kettunen, Leena Kinnunen, Joshua W Knowles, Ivana Kolcic, Inke R König, Seppo Koskinen, Peter Kovacs, Johanna Kuusisto, Peter Kraft, Kirsti Kvaløy, Jaana Laitinen, Olivier Lantieri, Chiara Lanzani, Lenore J Launer, Cecile Lecoeur, Terho Lehtimäki, Guillaume Lettre, Jianjun Liu, Marja-Liisa Lokki, Mattias Lorentzon, Robert N Luben, Barbara Ludwig, MAGIC, Paolo Manunta, Diana Marek, Michel Marre, Nicholas G Martin, Wendy L McArdle, Anne McCarthy, Barbara McKnight, Thomas Meitinger, Olle Melander, David Meyre, Kristian Midthjell, Grant W Montgomery, Mario A Morken, Andrew P Morris, Rosanda Mulic, Julius S Ngwa, Mari Nelis, Matt J Neville, Dale R Nyholt, Christopher J O'Donnell, Stephen O'Rahilly, Ken K Ong, Ben Oostra, Guillaume Paré, Alex N Parker, Markus Perola, Irene Pichler, Kirsi H Pietiläinen, Carl G P Platou, Ozren Polasek, Anneli Pouta, Suzanne Rafelt, Olli Raitakari, Nigel W Rayner, Martin Ridderstråle, Winfried Rief, Aimo Ruokonen, Neil R Robertson, Peter Rzehak, Veikko Salomaa, Alan R Sanders, Manjinder S Sandhu, Serena Sanna, Jouko Saramies, Markku J Savolainen, Susann Scherag, Sabine Schipf, Stefan Schreiber, Heribert Schunkert, Kaisa Silander, Juha Sinisalo, David S Siscovick, Jan H Smit, Nicole Soranzo, Ulla Sovio, Jonathan Stephens, Ida Surakka, Amy J Swift, Mari-Liis Tammesoo, Jean-Claude Tardif, Maris Teder-Laving, Tanya M Teslovich, John R Thompson, Brian Thomson, Anke Tönjes, Tiinamaija Tuomi, Joyce B J van Meurs, Gert-Jan van Ommen, Vincent Vatin, Jorma Viikari, Sophie Visvikis-Siest, Veronique Vitart, Carla I G Vogel, Benjamin F Voight, Lindsay L Waite, Henri Wallaschofski, G Bragi Walters, Elisabeth Widen, Susanna Wiegand, Sarah H Wild, Gonneke Willemsen, Daniel R Witte, Jacqueline C Witteman, Jianfeng Xu, Qunyuan Zhang, Lina Zgaga, Andreas Ziegler, Paavo Zitting, John P Beilby, I Sadaf Farooqi, Johannes Hebebrand, Heikki V Huikuri, Alan L James, Mika Kähönen, Douglas F Levinson, Fabio Macciardi, Markku S Nieminen, Claes Ohlsson, Lyle J Palmer, Paul M Ridker, Michael Stumvoll, Jacques S Beckmann, Heiner Boeing, Eric Boerwinkle, Dorret I Boomsma, Mark J Caulfield, Stephen J Chanock, Francis S Collins, L Adrienne Cupples, George Davey Smith, Jeanette Erdmann, Philippe Froguel, Henrik Grönberg, Ulf Gyllensten, Per Hall, Torben Hansen, Tamara B Harris, Andrew T Hattersley, Richard B Hayes, Joachim Heinrich, Frank B Hu, Kristian Hveem, Thomas Illig, Marjo-Riitta Jarvelin, Jaakko Kaprio, Fredrik Karpe, Kay-Tee Khaw, Lambertus A Kiemeney, Heiko Krude, Markku Laakso, Debbie A Lawlor, Andres Metspalu, Patricia B Munroe, Willem H Ouwehand, Oluf Pedersen, Brenda W Penninx, Annette Peters, Peter P Pramstaller, Thomas Quertermous, Thomas Reinehr, Aila Rissanen, Igor Rudan, Nilesh J Samani, Peter E H Schwarz, Alan R Shuldiner, Timothy D Spector, Jaakko Tuomilehto, Manuela Uda, André Uitterlinden, Timo T Valle, Martin Wabitsch, Gérard Waeber, Nicholas J Wareham, Hugh Watkins, PROCARDIS Consortium, James F Wilson, Alan F Wright, M Carola Zillikens, Nilanjan Chatterjee, Steven A McCarroll, Shaun Purcell, Eric E Schadt, Peter M Visscher, Themistocles L Assimes, Ingrid B Borecki, Panos Deloukas, Caroline S Fox, Leif C Groop, Talin Haritunians, David J Hunter, Robert C Kaplan, Karen L Mohlke, Jeffrey R O'Connell, Leena Peltonen, David Schlessinger, David P Strachan, Cornelia M Van Duijn, H-Erich Wichmann, Timothy M Frayling, Unnur Thorsteinsdottir, Gonçalo R Abecasis, Inês Barroso, Michael Boehnke, Kari Stefansson, Kari E North, Mark I McCarthy, Joel N Hirschhorn, Erik Ingelsson, Ruth J F Loos Show less
Obesity is globally prevalent and highly heritable, but its underlying genetic factors remain largely elusive. To identify genetic loci for obesity susceptibility, we examined associations between bod Show more
Obesity is globally prevalent and highly heritable, but its underlying genetic factors remain largely elusive. To identify genetic loci for obesity susceptibility, we examined associations between body mass index and ∼ 2.8 million SNPs in up to 123,865 individuals with targeted follow up of 42 SNPs in up to 125,931 additional individuals. We confirmed 14 known obesity susceptibility loci and identified 18 new loci associated with body mass index (P < 5 × 10⁻⁸), one of which includes a copy number variant near GPRC5B. Some loci (at MC4R, POMC, SH2B1 and BDNF) map near key hypothalamic regulators of energy balance, and one of these loci is near GIPR, an incretin receptor. Furthermore, genes in other newly associated loci may provide new insights into human body weight regulation. Show less
📄 PDF DOI: 10.1038/ng.686
GIPR