👤 Yixin Xu

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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, Xiaojin 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, 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
Qi Zhu, Qing Yang, Ling Shen +5 more · 2022 · Genes · MDPI · added 2026-04-24
The sequential meal pattern has recently received more attention because it reflects a phycological diet style for human beings. The present study investigated the effects of the second lipid meal on Show more
The sequential meal pattern has recently received more attention because it reflects a phycological diet style for human beings. The present study investigated the effects of the second lipid meal on lymphatic lipid absorption and transport in adult rats following a previous lipid meal. Using the well-established lymph fistula model, we found that the second lipid meal significantly increased the lymphatic output of triglycerides, cholesterol, phospholipids, and non-esterified fatty acids compared with a single lipid meal. Besides that, the time reaching the peak of each lipid output was significantly faster compared with the first lipid meal. Additionally, the second lipid meal significantly increased the lymphatic output of apolipoprotein A-IV (ApoA-IV), but not apolipoprotein B-48 (ApoB-48) or apolipoprotein A-I (ApoA-I). Interestingly, the triglyceride/apoB-48 ratio was significantly increased after the second lipid meal, indicating the increased chylomicron size in the lymph. Finally, the second lipid meal increased the lymphatic output of rat mucosal mast cell protease II (RMCPII). No change was found in the expression of genes related to the permeability of lymphatic lacteals, including Show less
📄 PDF DOI: 10.3390/genes13020277
APOA4
Hong Lin, Liping Xuan, Jiali Xiang +13 more · 2022 · Atherosclerosis · Elsevier · added 2026-04-24
The Apolipoprotein A5 (APOA5) rs662799 was significantly associated with blood lipid level at genome-wide significance level. Whether dynamic changes of adiposity influence the effect of lipid loci on Show more
The Apolipoprotein A5 (APOA5) rs662799 was significantly associated with blood lipid level at genome-wide significance level. Whether dynamic changes of adiposity influence the effect of lipid loci on long-term blood lipid profile remains unclear. We assessed interactions of 5-year body mass index (BMI) change and rs662799 genotypes with risk of incident dyslipidemia and longitudinal changes in serum lipids in a prospective cohort. We included 4329 non-dyslipidemia participants aged ≥ 40 years at baseline from a well-defined community-based cohort and followed up for an average of 5 years. BMI and blood lipids were measured at baseline and follow-up. The association of each rs662799 A-allele with risk of incident dyslipidemia was stronger along with the increase in BMI change level, with the odds ratios (OR) increasing from 1.03 in the lowest tertile of BMI change (< 0.02 kg/m BMI changes significantly modulate rs662799 genetic contribution to dyslipidemia and long-term lipid profile, which provide new evidence for personalized clinical management of lipids according to individual genetic background. Show less
no PDF DOI: 10.1016/j.atherosclerosis.2022.03.031
APOA5
Wenbiao Chen, Feng Zhang, Huixuan Xu +3 more · 2022 · Pathology oncology research : POR · Frontiers · added 2026-04-24
The heterogeneity of hepatocellular carcinoma (HCC) highlights the importance of precision therapy. In recent years, single-cell RNA sequencing has been used to reveal the expression of genes at the s Show more
The heterogeneity of hepatocellular carcinoma (HCC) highlights the importance of precision therapy. In recent years, single-cell RNA sequencing has been used to reveal the expression of genes at the single-cell level and comprehensively study cell heterogeneity. This study combined big data analytics and single-cell data mining to study the influence of genes on HCC prognosis. The cells and genes closely related to the HCC were screened through single-cell RNA sequencing (71,915 cells, including 34,414 tumor cells) and big data analysis. Comprehensive bioinformatics analysis of the key genes of HCC was conducted for molecular classification and multi-dimensional correlation analyses, and a prognostic model for HCC was established. Finally, the correlation between the prognostic model and clinicopathological features was analyzed. 16,880 specific cells, screened from the single-cell expression profile matrix, were divided into 20 sub-clusters. Cell typing revealed that 97% of these cells corresponded to HCC cell lines, demonstrating the high specificity of cells derived from single-cell sequencing. 2,038 genes with high variability were obtained. The 371 HCC samples were divided into two molecular clusters. Cluster 1 (C1) was associated with tumorigenesis, high immune score, immunotherapy targets (PD-L1 and CYLA-4), high pathological stage, and poor prognosis. Cluster 2 (C2) was related to metabolic and immune function, low immune score, low pathological stage, and good prognosis. Seven differentially expressed genes (CYP3A4, NR1I2, CYP2C9, TTR, APOC3, CYP1A2, and AFP) identified between the two molecular clusters were used to construct a prognostic model. We further validated the correlation between the seven key genes and clinical features, and the established prognostic model could effectively predict HCC prognosis. Our study identified seven key genes related to HCC that were used to construct a prognostic model through single-cell sequencing and big data analytics. This study provides new insights for further research on clinical targets of HCC and new biomarkers for clinical application. Show less
📄 PDF DOI: 10.3389/pore.2022.1610199
APOC3
Xin Chen, Yuexin Xu, Chenlong Li +6 more · 2022 · ACS omega · ACS Publications · added 2026-04-24
As one of the common birth defects worldwide, nonsyndromic microtia is a complex disease that results from interactions between environmental and genetic factors. However, the underlying causes of non Show more
As one of the common birth defects worldwide, nonsyndromic microtia is a complex disease that results from interactions between environmental and genetic factors. However, the underlying causes of nonsyndromic microtia are currently not well understood. The present study determined transcriptomic and proteomic profiles of auricular cartilage tissues in 10 patients with third-degree nonsyndromic microtia and five control subjects by RNA microarray and tandem mass tag-based quantitative proteomics technology. Relative mRNA and protein abundances were compared and evaluated for their function and putative involvement in nonsyndromic microtia. A total of 3971 differentially expressed genes and 256 differentially expressed proteins were identified. Bioinformatics analysis demonstrated that some of these genes and proteins showed potential associations with nonsyndromic microtia. Thirteen proteins with the same trend at the mRNA level obtained by the integrated analysis were validated by parallel reaction monitoring analysis. Several key genes, namely, Show less
📄 PDF DOI: 10.1021/acsomega.1c07059
APOC3
Yitong Xu, Jiabao Guo, Ling Zhang +10 more · 2022 · Frontiers in cardiovascular medicine · Frontiers · added 2026-04-24
ApoC3 plays a central role in the hydrolysis process of triglyceride (TG)-rich lipoproteins mediated by lipoprotein lipase (LPL), which levels are positively associated with the incidence of cardiovas Show more
ApoC3 plays a central role in the hydrolysis process of triglyceride (TG)-rich lipoproteins mediated by lipoprotein lipase (LPL), which levels are positively associated with the incidence of cardiovascular disease (CVD). Although targeting ApoC3 by antisense oligonucleotide (ASO), Volanesorsen markedly reduces plasma TG level and increase high-density lipoprotein cholesterol (HDL-C) in patients with hypertriglyceridemia (HTG), the cholesterol-lowering effect of ApoC3 inhibition and then the consequential outcome of atherosclerotic cardiovascular disease (ASCVD) have not been reported in patients of familial hypercholesterolemia (FH) with severe refractory hypercholesterolemia yet. To investigate the precise effects of depleting ApoC3 on refractory hypercholesterolemia and atherosclerosis, we crossed ApoC3-deficient hamsters with a background of LDLR deficiency to generate a double knockout (DKO) hamster model (LDLR On the standard laboratory diet, DKO hamsters had reduced levels of plasma TG and total cholesterol (TC) relative to LDLR In this study, our novel findings provide new insight into the application of ApoC3 inhibition for severe refractory hypercholesterolemia and ASCVD. Show less
📄 PDF DOI: 10.3389/fcvm.2022.840358
APOC3
Lin Liao, Lianxiang Duan, Yue Guo +9 more · 2022 · Molecular and cellular biochemistry · Springer · added 2026-04-24
Hypoxia can cause Epithelial-mesenchymal transition (EMT) in renal tubular cells, and in turn, renal fibrosis. We tested the expression of TRIM46, a member of tripartite motif-containing (TRIM) family Show more
Hypoxia can cause Epithelial-mesenchymal transition (EMT) in renal tubular cells, and in turn, renal fibrosis. We tested the expression of TRIM46, a member of tripartite motif-containing (TRIM) family proteins, and mesenchymal markers under hypoxia. Our results showed that hypoxia significantly enhanced expression of TRIM46 in HK2 human renal proximal tubular epithelial cells. Our data further showed that hypoxia led to upregulated expression of mesenchymal markers including α-smooth muscle actin, vimentin, and Snail, and downregulated expression of epithelial marker E-cadherin, coupled with an increased abundance of nuclear β-catenin. However, such effects were reversed when TRIM46 expression was knocked down. TRIM46 overexpression had similar effects as hypoxia exposure, and such effects were reversed when cells were treated with XAV-939, a selective inhibitor for β-catenin. Furthermore, we found that TRIM46 promoted ubiquitination and proteasomal degradation of Axin1 protein, a robust negative regulator of Wnt/β-catenin signaling activity. Finally, increased TRIM46 coupled with decreased Axin1 was observed in a rat renal fibrosis model. These data suggest a novel mechanism contributing to EMT that mediates hypoxia-induced renal fibrosis. Our results suggest that selectively inhibiting this pathway that activates fibrosis in human kidney may lead to development of a novel therapeutic approach for managing this disease. Show less
📄 PDF DOI: 10.1007/s11010-022-04467-4
AXIN1
Chuanrui Xu, Zhong Xu, Yi Zhang +3 more · 2022 · The Journal of clinical investigation · added 2026-04-24
Deregulated Wnt/β-catenin signaling is one of the main genetic alterations in human hepatocellular carcinoma (HCC). Comprehensive genomic analyses have revealed that gain-of-function mutation of CTNNB Show more
Deregulated Wnt/β-catenin signaling is one of the main genetic alterations in human hepatocellular carcinoma (HCC). Comprehensive genomic analyses have revealed that gain-of-function mutation of CTNNB1, which encodes β-catenin, and loss-of-function mutation of AXIN1 occur in approximately 35% of human HCC samples. Human HCCs with activation of the Wnt/β-catenin pathway demonstrate unique gene expression patterns and pathological features. Activated Wnt/β-catenin synergizes with multiple signaling cascades to drive HCC formation, and it functions through its downstream effectors. Therefore, strategies targeting Wnt/β-catenin have been pursued as possible therapeutics against HCC. Here, we review the genetic alterations and oncogenic roles of aberrant Wnt/β-catenin signaling during hepatocarcinogenesis. In addition, we discuss the implication of this pathway in HCC diagnosis, classification, and personalized treatment. Show less
📄 PDF DOI: 10.1172/JCI154515
AXIN1
Fubo Zhang, Yufang Yao, Na Miao +3 more · 2022 · Archives of gerontology and geriatrics · Elsevier · added 2026-04-24
Recent studies have revealed the close correlation between microRNAs (miRs) and Parkinson's disease (PD). Here, we aimed to investigate the neuroprotective effect of miR-124 in a PD mouse model. MiR-1 Show more
Recent studies have revealed the close correlation between microRNAs (miRs) and Parkinson's disease (PD). Here, we aimed to investigate the neuroprotective effect of miR-124 in a PD mouse model. MiR-124 expression in human plasma was detected by qRT-PCR. PD mouse model was established by stereotactic injection of 6-hydroxydopmine. Lentivirus were used to deliver and overexpress miR-124 and Axin1 into the substantia nigra. Multiple behavioral tests and oxidative stress assays were carried out to access the protective effect of miR-124 against PD. Western blot and luciferase assay were conducted to dissect the underlying molecular mechanisms. MiR-124 expression was decreased in PD patients. Overexpression of miR-124 in PD mice could improve motor defects, ameliorate dopaminergic neurons loss, and reduce oxidative stress. Mechanistically, miR-124 targeted Axin1 directly, and then attenuated PD progression via suppressing Axin1 and activating the Wnt/β-catenin pathways in PD mice. MiR-124 is an important neuroprotective factor, which suppresses Axin1 and activates Wnt/β-catenin signaling pathways in PD mice. Show less
no PDF DOI: 10.1016/j.archger.2021.104588
AXIN1
Mingyao You, Ping Yuan, Liangqian Li +1 more · 2022 · Frontiers in pharmacology · Frontiers · added 2026-04-24
📄 PDF DOI: 10.3389/fphar.2022.1066819
BACE1
Xiaojun Ma, Yujie Guo, Jingjing Xu +5 more · 2022 · Food research international (Ottawa, Ont.) · Elsevier · added 2026-04-24
Type 2 diabetes mellitus (T2DM) and Alzheimer's disease (AD) are prevalent diseases with similar pathophysiological characteristics and genetic predispositions. Polyunsaturated fatty acids (PUFAs) are Show more
Type 2 diabetes mellitus (T2DM) and Alzheimer's disease (AD) are prevalent diseases with similar pathophysiological characteristics and genetic predispositions. Polyunsaturated fatty acids (PUFAs) are essential in maintaining normal brain function. However, little is known about the effect of dietary n-6/n-3 PUFA ratio on AD-like pathology, particularly in high-fat diet (HFD)-fed AD model mice. In the present study, the APP/PS1 mice were fed with 60 % HFD for 3.5 months to induce insulin resistance. After that, 45 % HFD with various n-6/n-3 PUFA ratios (n-6/n-3 = 1:1, 5:1 or 16:1) was applied for an additional 3.5 months of treatment. The behavior of mice was observed using the water maze after dietary intervention. The animals were euthanized after behavioral testing, and serum and tissue samples were collected for biochemical, histological, and pathological tests and evaluation. HFD caused insulin resistance, increased serum IL-6 and TNF-α levels, cortical soluble Aβ Show less
no PDF DOI: 10.1016/j.foodres.2022.112207
BACE1
Longfei Xu, Mingzhe Li, Aili Wei +8 more · 2022 · Journal of neuroinflammation · BioMed Central · added 2026-04-24
Moderate physical exercise is conducive to the brains of healthy humans and AD patients. Previous reports have suggested that treadmill exercise plays an anti-AD role and improves cognitive ability by Show more
Moderate physical exercise is conducive to the brains of healthy humans and AD patients. Previous reports have suggested that treadmill exercise plays an anti-AD role and improves cognitive ability by promoting amyloid clearance, inhibiting neuronal apoptosis, reducing oxidative stress level, alleviating brain inflammation, and promoting autophagy-lysosome pathway in AD mice. However, few studies have explored the relationships between the ubiquitin-proteasome system and proper exercise in AD. The current study was intended to investigate the mechanism by which the exercise-regulated E3 ubiquitin ligase improves AD. Both wild type and APP/PS1 transgenic mice were divided into sedentary (WTC and ADC) and exercise (WTE and ADE) groups (n = 12 for each group). WTE and ADE mice were subjected to treadmill exercise of 12 weeks in order to assess the effect of treadmill running on learning and memory ability, Aβ plaque burden, hyperphosphorylated Tau protein and E3 ubiquitin ligase. The results indicated that exercise restored learning and memory ability, reduced Aβ plaque areas, inhibited the hyperphosphorylation of Tau protein activated PI3K/Akt/Hsp70 signaling pathway, and improved the function of the ubiquitin-proteasome system (increased UCHL-1 and CHIP levels, decreased BACE1 levels) in APP/PS1 transgenic mice. These findings suggest that exercise may promote the E3 ubiquitin ligase to clear β-amyloid and hyperphosphorylated Tau by activating the PI3K/Akt signaling pathway in the hippocampus of AD mice, which is efficient in ameliorating pathological phenotypes and improving learning and memory ability. Show less
📄 PDF DOI: 10.1186/s12974-022-02607-7
BACE1
Yangyang Wang, Jianwei Zhu, Weiqiang Jia +4 more · 2022 · ACS applied materials & interfaces · ACS Publications · added 2026-04-24
Alzheimer's disease is a neurodegenerative disease caused by excessive amyloid β protein-induced neurotoxicity. However, drugs targeting amyloid β protein production face many problems, such as the lo Show more
Alzheimer's disease is a neurodegenerative disease caused by excessive amyloid β protein-induced neurotoxicity. However, drugs targeting amyloid β protein production face many problems, such as the low utilization rate of drugs by cells and the difficulty of drugs in penetrating the blood-brain barrier. A tetrahedral framework nucleic acid is a new type of nanonucleic acid structure that functions as a therapy and drug carrier. Here, we synthesized a BACE1 aptamer-modified tetrahedral framework nucleic acid and tested its therapeutic effect on Alzheimer's disease Show less
no PDF DOI: 10.1021/acsami.2c14626
BACE1
Nan Wang, Wenjie Liu, Lijun Zhou +11 more · 2022 · ACS omega · ACS Publications · added 2026-04-24
The pathogenesis of Alzheimer's disease (AD) is very complex, and there are many hypotheses. Therefore, the development of a multi-target-directed-ligand may be an effective therapeutic strategy. Our Show more
The pathogenesis of Alzheimer's disease (AD) is very complex, and there are many hypotheses. Therefore, the development of a multi-target-directed-ligand may be an effective therapeutic strategy. Our previous study showed that notopterol (a natural product from Show less
📄 PDF DOI: 10.1021/acsomega.2c03368
BACE1
Qiong Wu, Xiang Li, Xiao-Wen Jiang +6 more · 2022 · Frontiers in pharmacology · Frontiers · added 2026-04-24
Yuan-Zhi Decoction (YZD) is a traditional Chinese medical formulation with demonstrated clinical benefits in Alzheimer's disease (AD). We used liquid chromatography coupled with mass spectrometry to i Show more
Yuan-Zhi Decoction (YZD) is a traditional Chinese medical formulation with demonstrated clinical benefits in Alzheimer's disease (AD). We used liquid chromatography coupled with mass spectrometry to identify 27 unique chemical components of YZD. Analyzing these using network pharmacology and molecular docking models identified 34 potential interacting molecular targets involved in 26 biochemical pathways. When tested in an animal model of AD, the APP/PS1 transgenic mice showed measurable improvements in spatial orientation and memory after the administration of YZD. These improvements coincided with significantly reduced deposition of Aβ plaques and tau protein in the hippocampi in the treated animals. In addition, a decreased BACE1 and beta-amyloid levels, a downregulation of the p-GSK-3β/GSK-3β, and an upregulation of the PI3K and p-AKT/AKT pathway was seen in YZD treated animals. These Show less
📄 PDF DOI: 10.3389/fphar.2022.893244
BACE1
Wenjie Liu, Limeng Wu, Wenwu Liu +10 more · 2022 · European journal of medicinal chemistry · Elsevier · added 2026-04-24
Multi-targeted directed ligands (MTDLs) are emerging as promising Alzheimer's disease (AD) therapeutic possibilities. Coumarin is a multifunctional backbone with extensive bioactivity that has been ut Show more
Multi-targeted directed ligands (MTDLs) are emerging as promising Alzheimer's disease (AD) therapeutic possibilities. Coumarin is a multifunctional backbone with extensive bioactivity that has been utilized to develop innovative anti-neurodegenerative properties and is a desirable starting point for the construction of MTDLs. Herein, we explored and synthesized a series of novel coumarin derivatives and assessed their inhibitory effects on cholinesterase (AChE, BuChE), GSK-3β, and BACE1. Among these compounds, compound 30 displayed the multifunctional profile of targeting the AChE (IC Show less
no PDF DOI: 10.1016/j.ejmech.2022.114689
BACE1
Lei Jiang, Nannan Yuan, Na Zhao +9 more · 2022 · Brain research bulletin · Elsevier · added 2026-04-24
Diabetic encephalopathy (DE), a chronic complication of diabetes, is characterized by decline of cognitive function. The molecular mechanism of DE remains unclear. The purpose of this study is to eval Show more
Diabetic encephalopathy (DE), a chronic complication of diabetes, is characterized by decline of cognitive function. The molecular mechanism of DE remains unclear. The purpose of this study is to evaluate the roles of advanced glycation end products (AGEs) in the pathogenesis of DE and investigate its underlying mechanisms in this process. DE rats were developed by incorporating a high-fat diet and streptozotocin injection followed by the Morris Water Maze test. HT-22 cells were used to mimic the in vitro neuronal injuries of DE. Expression levels of long non-coding RNA H19, miR-15b and β-site amyloid precursor protein cleaving enzyme 1 (BACE1) mRNA in the hippocampus of DE rats or HT-22 cells were detected by quantitative real-time polymerase chain reaction (qRT-PCR). The levels of BACE1 proteins were analyzed by western blotting or immunohistochemical staining. The contents of Aβ We found that the accumulation of Aβ These results suggested that AGEs induced Aβ Show less
no PDF DOI: 10.1016/j.brainresbull.2022.08.007
BACE1
Liang Gu, Nan Cai, Meiting Li +9 more · 2022 · Frontiers in nutrition · Frontiers · added 2026-04-24
Alzheimer's disease (AD) is a neurodegenerative disorder mainly affecting old population. In this study, two Tau overexpressing cell lines (SH-SY5Y/Tau and HEK293/Tau), N2a/SweAPP cell line, and 3× Tr Show more
Alzheimer's disease (AD) is a neurodegenerative disorder mainly affecting old population. In this study, two Tau overexpressing cell lines (SH-SY5Y/Tau and HEK293/Tau), N2a/SweAPP cell line, and 3× Transgene (APPswe/PS1M146V/TauP301L) mouse primary nerve cell lines were used as AD models to study the activity and molecular mechanism of macelignan, a natural compound extracted from Show less
📄 PDF DOI: 10.3389/fnut.2022.892558
BACE1
Yuanhui Zhu, Xi Wang, Miaoyang Hu +7 more · 2022 · Oxidative medicine and cellular longevity · added 2026-04-24
Methamphetamine (Meth), a central nervous system (CNS) stimulant with strong neurotoxicity, causes progressive cognitive impairment with characterized neurodegenerative changes. However, the mechanism Show more
Methamphetamine (Meth), a central nervous system (CNS) stimulant with strong neurotoxicity, causes progressive cognitive impairment with characterized neurodegenerative changes. However, the mechanism underlying Meth-induced pathological changes remains poorly understood. In the current study, Meth elicited a striking accumulation of the pathological proteins hyperphosphorylated tau (p-tau) and amyloid beta (A Show less
📄 PDF DOI: 10.1155/2022/3344569
BACE1
Linshuang Wang, Xiaoyu Xu, Zikang Wang +8 more · 2022 · Evidence-based complementary and alternative medicine : eCAM · added 2026-04-24
Traditional Chinese herbal medicine draws more attention to explore an effective therapeutic strategy for Alzheimer's disease (AD). Shenqi Yizhi granule (SQYG), a Chinese herbal recipe, has been appli Show more
Traditional Chinese herbal medicine draws more attention to explore an effective therapeutic strategy for Alzheimer's disease (AD). Shenqi Yizhi granule (SQYG), a Chinese herbal recipe, has been applied to ameliorate cognitive impairment in mild-to-moderate AD patients. However, the overall molecular mechanism of SQYG in treating AD has not been clarified. This study aimed to investigate the molecular mechanism of SQYG on AD using an integration strategy of network pharmacology and molecular docking. The active compounds of SQYG and common targets between SQYG and AD were screened from databases. The herb-compound network, compound-target network, and protein-protein interaction network were constructed. The enrichment analysis of common targets and molecular docking were performed. 816 compounds and 307 common targets between SQYG and AD were screened. KEGG analysis revealed that common targets were mainly enriched in lipid metabolism, metal ion metabolism, IL-17 signaling pathway, GABA receptor signaling, and neuroactive ligand-receptor interaction. Molecular docking analysis showed high binding affinity between ginsenoside Rg1 and A The therapeutic mechanisms of SQYG on AD were associated with regulating lipid metabolism, metal ion metabolism, IL-17 signaling pathway, and GABA receptor signaling. Ginsenoside Rg1, tanshinone IIA, baicalin, astragaloside IV, and folic acid may play an important role in AD treatment. Show less
📄 PDF DOI: 10.1155/2022/8032036
BACE1
Cong Xue, Haifeng Li, Herui Yao +12 more · 2022 · NPJ breast cancer · Nature · added 2026-04-24
The prognosis of human epidermal growth factor receptor 2 (HER2) positive metastatic breast cancer (MBC) remained unsatisfactory currently, more anti-HER2 agents are needed. Here we report a phase I s Show more
The prognosis of human epidermal growth factor receptor 2 (HER2) positive metastatic breast cancer (MBC) remained unsatisfactory currently, more anti-HER2 agents are needed. Here we report a phase I study that evaluated the safety, activity, and biomarkers of LZM005, a HER2 antibody, used as a monotherapy or in combination with trastuzumab plus docetaxel in patients with HER2-positive MBC. From October 2017 to December 2019, 34 patients received LZM005 (14 monotherapy, 20 combination therapy). No DLT was observed. The common adverse events (AEs) in phase Ia included diarrhea (21.4%), infusion reaction (21.4%), and hypertriglyceridemia (21.4%), while those in phase Ib were leukopenia (85.0%), neutropenia (75.0%), anemia (60.0%), diarrhea (60.0%), and rash/pruritus (50.0%). All AEs were manageable. In phase Ia, partial response (PR) was achieved in one case (1/14, overall response rate [ORR]: 7.1%); the disease control rate was 42.90% (6/14). In phase Ib, 11 patients (55.0%) achieved PR, and eight (40.0%) had stable disease. The ORR was 100% (6/6) in trastuzumab-naive and 35.7% (5/14) in trastuzumab-pretreated patients. Biomarker analysis showed that chromatin remodeling genes KMT2B and BRWD1 were associated with better progression-free survival. LZM005 is well tolerated and shows potent activity in patients with HER2-positive MBC. Show less
📄 PDF DOI: 10.1038/s41523-022-00501-2
BRWD1
Jie Gao, Jun Lu, Junhui Qiu +4 more · 2022 · Journal of diabetes investigation · Blackwell Publishing · added 2026-04-24
To evaluate the correlation of circulating C1q tumor necrosis factor-related protein 4 (CTRP4) with coronary artery disease (CAD) in type 2 diabetes mellitus patients. A total of 240 individuals with Show more
To evaluate the correlation of circulating C1q tumor necrosis factor-related protein 4 (CTRP4) with coronary artery disease (CAD) in type 2 diabetes mellitus patients. A total of 240 individuals with type 2 diabetes mellitus were enrolled in our center between January 2020 and December 2020. They were assigned into two groups, including the CAD and non-CAD groups, based on coronary angiography or computed tomography angiography findings. Serum CTRP4 levels were detected by an enzyme-linked immunosorbent assay kit. The association of CTRP4 with CAD was determined by logistic regression analysis. The predictive value of CTRP4 for CAD was calculated by receiver operating characteristic curve analysis. Median serum CTRP4 amounts were markedly elevated in the CAD group in comparison with the non-CAD group (10.37 vs 3.75 ng/mL, P < 0.01). Binary logistic regression showed that CTRP4 was associated with CAD and even the amount of coronary artery lesions (P < 0.05). In receiver operating characteristic curve analysis, the area under the receiver operating characteristic curve was greater for CTRP4 compared with HbA1c or CRP (0.87 vs 0.74, 0.87 vs 0.80, P < 0.01). The area under the curve for CTRP4 and glycated hemoglobin in combination was larger than that obtained for CTRP4 combined with CRP (0.91 vs 0.87, P < 0.01). According to the maximum Youden index criteria, the optimal cut-off of CTRP4 was 5.42 ng/mL, which yielded a sensitivity of 84.4% and a specificity of 76.7% in predicting CAD in type 2 diabetes mellitus patients. Serum CTRP4 levels are positively correlated with CAD occurrence and severity. Combining CTRP4 and glycated hemoglobin has a better predictive value for CAD in type 2 diabetes mellitus patients. Show less
📄 PDF DOI: 10.1111/jdi.13842
C1QTNF4
Jin Liu, Haixiang Shen, Xiangliu Chen +4 more · 2022 · Genes · MDPI · added 2026-04-24
Esophageal cancer (EC) is one of the most common human malignant tumors worldwide. Chromobox (CBX) family proteins are significant components of epigenetic regulatory complexes. It is reported that CB Show more
Esophageal cancer (EC) is one of the most common human malignant tumors worldwide. Chromobox (CBX) family proteins are significant components of epigenetic regulatory complexes. It is reported that CBXs play critical roles in the oncogenesis and development of various tumors. Nonetheless, their functions and specific roles in EC remain vague and obscure. We used multiple bioinformatics tools, including Oncomine, Gene Expression Profiling Interactive Analysis 2 (GEPIA2), UALCAN, Kaplan-Meier plotter, cBioPortal, Metascape, TIMER2 and TISIDB, to investigate the expression profile, gene alterations and prognostic roles of CBX family proteins, as well as their association with clinicopathologic parameters, immune cells and immune regulators. In addition, RT-qPCR, Western blot, CCK8, colony formation, wound healing and transwell assays were performed to investigate the biological functions of CBX3 in EC cells. CBX3 and CBX5 were overexpressed in EC compared to normal tissues. Survival analysis revealed that high expression of CBX1 predicted worse disease-free survival (DFS) in EC patients. Functionally, CBXs might participate in mismatch repair, spliceosome, cell cycle, the Fanconi anemia pathway, tight junction, the mRNA surveillance pathway and the Hippo signaling pathway in EC development. Furthermore, CBXs were related to distinct immune cells infiltration and immune regulators. Additionally, depletion of CBX3 inhibited the proliferation, migration and invasion abilities of EC cells. Our study comprehensively investigated the expression pattern, prognostic value, and gene alterations of CBXs in EC, as well as their relationships with clinicopathologic variables, immune cells infiltration and immune regulators. These results suggested that CBX family proteins, especially CBX3, might be potential biomarkers in the progression of EC. Show less
📄 PDF DOI: 10.3390/genes13091582
CBX1
Kuan Hu, Lei Yao, Zhijie Xu +2 more · 2022 · Frontiers in cell and developmental biology · Frontiers · added 2026-04-24
📄 PDF DOI: 10.3389/fcell.2022.832354
CBX1
X L Zhu, W J Li, X E Wang +7 more · 2022 · Beijing da xue xue bao. Yi xue ban = Journal of Peking University. Health sciences · added 2026-04-24
To explore the correlation of cytochrome B-245 alpha chain ( The study was a case-control trial. A total of 372 GAgP patients and 133 periodontally healthy controls were recruited. The The mean age of Show more
To explore the correlation of cytochrome B-245 alpha chain ( The study was a case-control trial. A total of 372 GAgP patients and 133 periodontally healthy controls were recruited. The The mean age of GAgP group and control group was (27.5±5.2) years and (28.8±7.1) years respectively. There was significant difference in age between the two groups ( Show less
no PDF DOI: 10.19723/j.issn.1671-167X.2022.01.004
CETP
Jinjin Zhang, Haixia Wang, Hongbin Chen +6 more · 2022 · Autophagy · Taylor & Francis · added 2026-04-24
Idiopathic pulmonary fibrosis (IPF) is characterized by lung scarring and has no effective treatment. Fibroblast-to-myofibroblast differentiation and myofibroblast proliferation and migration are majo Show more
Idiopathic pulmonary fibrosis (IPF) is characterized by lung scarring and has no effective treatment. Fibroblast-to-myofibroblast differentiation and myofibroblast proliferation and migration are major clinical manifestations of this disease; hence, blocking these processes is a practical treatment strategy. Here, highly upregulated Show less
📄 PDF DOI: 10.1080/15548627.2022.2046448
CLN3
Yuxin Zhang, Qinghao Liu, Wangcang Su +5 more · 2022 · Pest management science · Wiley · added 2026-04-24
S-metolachlor (MET) was used to prevent weed infestation in sorghum fields, but inappropriate application could result in phytotoxicity on sorghum. Exogenous gibberellin A Leaf deformity of sorghum ca Show more
S-metolachlor (MET) was used to prevent weed infestation in sorghum fields, but inappropriate application could result in phytotoxicity on sorghum. Exogenous gibberellin A Leaf deformity of sorghum caused by 200 mg/L MET was alleviated by treating sorghum shoots with 800 mg/L GA In this study, exogenous GA Show less
no PDF DOI: 10.1002/ps.7068
CPS1
Lei Huang, Xinyu He, Wen Peng +11 more · 2022 · Biochemical and biophysical research communications · Elsevier · added 2026-04-24
The molecular mechanisms of uric acid (UA)-induced liver injury has not been clearly elucidated. In this study, we aimed to investigate the effect and action mechanisms of UA in liver injury. We analy Show more
The molecular mechanisms of uric acid (UA)-induced liver injury has not been clearly elucidated. In this study, we aimed to investigate the effect and action mechanisms of UA in liver injury. We analyzed the damaging effect of UA on mouse liver and L02 cells and subsequently performed metabolomics studies on L02 cells to identify abnormal metabolic pathways. Finally, we verified transcription factors that regulate related metabolic enzymes. UA directly activated the hepatic NLRP3 inflammasome and Bax apoptosis pathway invivo and invitro. Related metabolites in the arginine biosynthesis pathway (or urea cycle), l-arginine and l-argininosuccinate were decreased, and ammonia was increased in UA-stimulated L02 cells, which was mediated by carbamoyl phosphate synthase 1 (CPS1), argininosuccinate synthase (ASS) and argininosuccinate lyase (ASL) downregulation. UA upregulated hypoxia inducible factor-1alpha (HIF-1α) invivo and invitro, and HIF-1α inhibition alleviated the UA-induced ASS downregulation and hepatocyte injury. In conclusion, UA upregulates HIF-1α and inhibits urea cycle enzymes (UCEs). This leads to liver injury, with evidence of hepatocyte inflammation, apoptosis and oxidative stress. Show less
no PDF DOI: 10.1016/j.bbrc.2022.05.096
CPS1
Shu-Meng Ren, Qing-Zhu Zhang, Man Jiang +5 more · 2022 · Journal of ethnopharmacology · Elsevier · added 2026-04-24
Walnut kernel, a well-known TCM, is often used after being defatted in tradition. And defatted walnut powder extract (DWPE) has the actions of tonifying the liver and kidney, dissipating stagnation an Show more
Walnut kernel, a well-known TCM, is often used after being defatted in tradition. And defatted walnut powder extract (DWPE) has the actions of tonifying the liver and kidney, dissipating stagnation and removing blood stasis, which has the effect on non-alcoholic fatty liver disease (NAFLD). However, the effective components of DWPE in vivo were unclear and the multiple mechanisms of DWPE against NAFLD have not been explored. The studies were performed to screen the effective substances in vivo by identification of the metabolites of DWPE in rats and to seek the potential mechanisms of DWPE on NAFLD by construction of the network pharmacology based on metabolites and verification of the highly correlated pathway. To explore the effective substances in vivo, the metabolites of DWPE were identified in SD rats' bio-samples through UPLC-Q-Exactive Orbitrap MS. To analyze the mechanisms of DWPE on NAFLD, a Metabolite-Target-Disease network was established and the potential mechanisms were predicted. Then, highly correlated pathway was verified in animal and cells studies. A total of 52 metabolites of DWPE were identified in vivo, which were derived from gallic acid, ellagic acid (EA) and glansreginin A (Gla A). The possible metabolic pathways were phase Ⅰ (hydroxylation, hydrolyzation, etc) and phase Ⅱ metabolic reactions (methylation, sulfation and glucuronidation). Furthermore, in the network pharmacology, 54 core targets were enriched into pathways in cancer, nitrogen metabolism and other 9 pathways, which were essential pathways of DWPE against NAFLD. And the mechanism of nitrogen metabolism was verified in both of animal and cells studies. The results showed that DWPE could decline the concentration of ammonia and increase the expressions of carbonic anhydrase 2 (CA2) and carbamoylphosphate synthetase (CPS1) in nitrogen metabolism. Taken together, the study revealed the absorption components and their metabolic pathways and demonstrated the mechanism of nitrogen metabolism of DWPE on anti-NAFLD. Show less
no PDF DOI: 10.1016/j.jep.2021.114870
CPS1
Liu Wang, Ya-Peng Xu, Di Bai +4 more · 2022 · The Journal of biological chemistry · Elsevier · added 2026-04-24
RNA G-quadruplexes (rG4s) are noncanonical RNA secondary structures formed by guanine (G)-rich sequences. These complexes play important regulatory roles in both animals and plants through their struc Show more
RNA G-quadruplexes (rG4s) are noncanonical RNA secondary structures formed by guanine (G)-rich sequences. These complexes play important regulatory roles in both animals and plants through their structural dynamics and are closely related to human diseases and plant growth, development, and adaption. Thus, studying the structural dynamics of rG4s is fundamentally important; however, their folding pathways and their unfolding by specialized helicases are not well understood. In addition, no plant rG4-specialized helicases have been identified. Here, using single-molecule FRET, we experimentally elucidated for the first time the folding pathway and intermediates, including a G-hairpin and G-triplex. In addition, using proteomics screening and microscale thermophoresis, we identified and validated five rG4-specialized helicases in Arabidopsis thaliana. Furthermore, DExH1, the ortholog of the famous human rG4 helicase RHAU/DHX36, stood out for its robust rG4 unwinding ability. Taken together, these results shed light on the structural dynamics of plant rG4s. Show less
📄 PDF DOI: 10.1016/j.jbc.2022.102165
DHX36
Hui Yang, Zhenqian Liu, Xiaomei Liu +6 more · 2022 · Brain research bulletin · Elsevier · added 2026-04-24
Small G protein Ras induces the activation of apoptosis-related molecule mammalian Ste20-like kinase1 (MST1)/JNK signal pathway, which is involved in the regulation of tissue damage under pathological Show more
Small G protein Ras induces the activation of apoptosis-related molecule mammalian Ste20-like kinase1 (MST1)/JNK signal pathway, which is involved in the regulation of tissue damage under pathological conditions such as ischemic stroke. Our previous study indicated that GTPase-activating protein for Ras (SynGAP), a negative regulator of Ras, could bind with postsynaptic density protein-93 (PSD-93) and Tat-SynGAP (670-685aa) small peptide to exhibit neuroprotective role. Here, we report that Tat-SynGAP (670-685aa) reduced cerebral edema at acute cerebral ischemia/reperfusion (I/R), improved integrity of blood-brain barrier, and decreased cortical and striatum neuronal injury. Mechanistically, Tat-SynGAP (670-685aa) not only inhibited the phosphorylation of MST1 and JNK and the cleavage of caspase-3, but also facilitated the expression of angiogenesis related molecules VEGF and Ang-1. In conclusion, Tat-SynGAP (670-685aa) reduces neuronal apoptosis and cerebral infarction volume and maintains vascular stability and blood-brain barrier integrity by inhibiting MST1/JNK signaling pathway. Show less
no PDF DOI: 10.1016/j.brainresbull.2021.12.013
DLG2