👤 Xilin Zhao

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Also published as: A N Zhao, Ahui Zhao, Ai Zhao, Aihua Zhao, Aimin Zhao, Andrea Zhao, Andrew J Zhao, Anna Zhao, Aonan Zhao, B Zhao, Bangzhe Zhao, Baolin Zhao, Baosheng Zhao, Baoyu Zhao, Bei Zhao, Bei-Bei Zhao, Beibei Zhao, Beichuan Zhao, Bi Zhao, Bin Zhao, Bing-Qian Zhao, Bingcong Zhao, Binggong Zhao, Binghai Zhao, Bingli Zhao, Bingru Zhao, Bishi Zhao, Bo Zhao, Bo-Wen Zhao, Caifeng Zhao, Caiping Zhao, Caiqi Zhao, Chang Zhao, Changle Zhao, Changqing Zhao, Changsheng Zhao, Changzhi Zhao, Chao Zhao, Chaofen Zhao, Chaoyue Zhao, Chen Zhao, Chen-Guang Zhao, Chen-Liang Zhao, Chen-Xi Zhao, Chenchen Zhao, Cheng Zhao, Cheng-Long Zhao, Chengcheng Zhao, Chengjian Zhao, Chengjun Zhao, Chengrui Zhao, Chengshui Zhao, Chenming Zhao, Chenxu Zhao, Chenye Zhao, Chuan Zhao, Chuan-Zhi Zhao, Chuanqi Zhao, Chun Yu Zhao, Chun-Hui Zhao, Chunjie Zhao, Chunli Zhao, Chunqing Zhao, Chunrong Zhao, Chuntao Zhao, Chunyan Zhao, Chuo Zhao, Cong Zhao, Cuifen Zhao, Cuimei Zhao, Cuiqing Zhao, Cun Zhao, D C Zhao, Dan Zhao, Dandan Zhao, Danping Zhao, Danrui Zhao, Danyang Zhao, Daqing Zhao, Dawang Zhao, Dawen Zhao, Dechang Zhao, Defeng Zhao, Dekuang Zhao, Dengyun Zhao, Deping Zhao, Di Zhao, Dingmeng Zhao, Dingwei Zhao, Dingying Zhao, Dong Zhao, Dong-Dong Zhao, Dongbao Zhao, Dongfeng Zhao, Dongmei Zhao, Dongping Zhao, En-chun Zhao, Ende Zhao, F Zhao, Fan Zhao, Fang Zhao, Fangfang Zhao, Fangjue Zhao, Fangli Zhao, Fangping Zhao, Fangyi Zhao, Fangyu Zhao, Faye Zhao, Fei Zhao, Feibo Zhao, Feipeng Zhao, Feitao Zhao, Feng Zhao, Fengbo Zhao, Fengdi Zhao, Fenghui Zhao, Fengshu Zhao, Fu-Ying Zhao, Fuping Zhao, Fuyu Zhao, Gaichao Zhao, Gang Zhao, Gaofeng Zhao, Ge-Xin Zhao, Gengxiang Zhao, Guang-Hui Zhao, Guangfeng Zhao, Guanghao Zhao, Guanghui Zhao, Guangqiang Zhao, Guangshan Zhao, Guangyuan Zhao, Gui Zhao, Guifang Zhao, Guihu Zhao, Guile Zhao, Guiping Zhao, Guizhen Zhao, Guo-Jun Zhao, Guoqing Zhao, Guorui Zhao, Guozhi Zhao, Haifeng Zhao, Hailing Zhao, Haiquan Zhao, Hairong Zhao, Haixin Zhao, Haiyan Zhao, Haizhou Zhao, Han Zhao, Hanhan Zhao, Hanjun Zhao, Hanqing Zhao, Hao Zhao, Haonan Zhao, Haoyan Zhao, He Zhao, Heng Zhao, Hengxia Zhao, Hong Zhao, Hong-Bo Zhao, Hong-Yang Zhao, Hong-Ye Zhao, Hongbin Zhao, Hongbo Zhao, Hongda Zhao, Hongfeng Zhao, Honghui Zhao, Hongli Zhao, Hongling Zhao, Hongmei Zhao, Hongmeng Zhao, Hongqi Zhao, Hongqing Zhao, Hongwei Zhao, Hongxia Zhao, Hongyan Zhao, Hongyi Zhao, Hongying Zhao, Hongyu Zhao, Houyu Zhao, Hu Zhao, Hua Zhao, Huadong Zhao, Huakan Zhao, Huan Zhao, Huan-Yu Zhao, Huanxin Zhao, Huanyu Zhao, Huaqing Zhao, Huashan Zhao, Huaying Zhao, Hui Zhao, Hui-Hui Zhao, Huihan Zhao, Huiijin Zhao, Huili Zhao, Huilin Zhao, Huiling Zhao, Huishou Zhao, Huiying Zhao, Huiyong Zhao, J H Zhao, J V Zhao, J Zhao, J-F Zhao, Jean J Zhao, Ji Zhao, Ji-Meng Zhao, Ji-jun Zhao, Jia Zhao, Jia-Li Zhao, Jia-Mu Zhao, Jia-Xuan Zhao, Jia-Yi Zhao, Jia-jun Zhao, Jiabin Zhao, Jiajing Zhao, Jiale Zhao, Jialin Zhao, Jian Zhao, Jian-Yuan Zhao, Jian-hua Zhao, Jianan Zhao, Jiang Zhao, Jiangchao Zhao, Jiangpei Zhao, Jianguo Zhao, Jianhong Zhao, Jianhua Zhao, Jianjun Zhao, Jianrong Zhao, Jianwen Zhao, Jianxin Zhao, Jianzhi Zhao, Jiao Zhao, Jiaxuan Zhao, Jichen Zhao, Jie V Zhao, Jie Zhao, Jie-Dong Zhao, Jie-Jun Zhao, Jiexiang Zhao, Jiexiu Zhao, Jieyu Zhao, Jieyun Zhao, Jikai Zhao, Jin Zhao, Jin-Feng Zhao, Jin-Ming Zhao, Jinbo Zhao, Jincun Zhao, Jinfang Zhao, Jing Hau Zhao, Jing Hua Zhao, Jing Zhao, Jing-Cheng Zhao, Jing-Feng Zhao, Jing-Jing Zhao, Jing-Yi Zhao, Jing-Yu Zhao, JingLi Zhao, JingTing Zhao, Jingbo Zhao, Jingjie Zhao, Jingjing Zhao, Jingkun Zhao, Jinglin Zhao, Jingru Zhao, Jingtai Zhao, Jingtong Zhao, Jingya Zhao, Jingyi Zhao, Jingying Zhao, Jingyuan Zhao, Jinjing Zhao, Jinlan Zhao, Jinmin Zhao, Jinpeng Zhao, Jinping Zhao, Jinshan Zhao, Jinsheng Zhao, Jinwen Zhao, Jinyao Zhao, Jiong-Yao Zhao, Jiwei Zhao, Jizong Zhao, Juan Zhao, Juanjuan Zhao, Jue Zhao, Jun Zhao, Jun-Hui Zhao, Junfeng Zhao, Junhong Zhao, Junjie Zhao, Junkang Zhao, Junli Zhao, Junqin Zhao, Junzhang Zhao, Kai Zhao, Kaidong Zhao, Kaihui Zhao, Kaikai Zhao, Kaiyue Zhao, Kake Zhao, Kangqi Zhao, Ke Zhao, Ke-Xin Zhao, Keji Zhao, Keni Zhao, Keqin Zhao, Kewen Zhao, Kun Zhao, L Zhao, Lan Zhao, Lanhua Zhao, Le Zhao, Lei Zhao, Leyang Zhao, Leying Zhao, Li Feng Zhao, Li Zhao, Li-Bo Zhao, Li-Feng Zhao, Li-Hua Zhao, Li-Li Zhao, Li-Mei Zhao, Li-ke Zhao, Lianfang Zhao, Liang Zhao, Liang-gong Zhao, Liangyu Zhao, Lianhua Zhao, Lianmei Zhao, Liansheng Zhao, Lichun Zhao, Lihua Zhao, Lijia Zhao, Lijian Zhao, Lijuan Zhao, Lijun Zhao, Lili Zhao, Limei Zhao, Liming Zhao, Lin Yi Zhao, Lin Zhao, Lina Zhao, Ling Zhao, Ling-Ling Zhao, Lingling Zhao, Lingqiang Zhao, Lingrui Zhao, Linhai Zhao, Linhua Zhao, Linlin Zhao, Liping Zhao, Liqin Zhao, Liwei Zhao, Long Zhao, Longhe Zhao, Lu Zhao, Lujun Zhao, Lun Zhao, Luo-Sha Zhao, Luqi Zhao, Luyao Zhao, M Zhao, Mai Zhao, Mei Zhao, Meifang Zhao, Meiqi Zhao, Meng Zhao, Mengjia Zhao, Mengjie Zhao, Mengmeng Zhao, Mengshu Zhao, Mengxi Zhao, Mengya Zhao, Michelle Zhao, Min Zhao, Mindi Zhao, Ming Zhao, Ming-Gao Zhao, Ming-Tao Zhao, Mingjing Zhao, Mingjun Zhao, Mingming Zhao, Mingwei Zhao, Mingyue Zhao, Mo Zhao, Moze Zhao, N Zhao, Na Zhao, Na-Na Zhao, Nan Zhao, Ning Zhao, Ningkang Zhao, Pandeng Zhao, Peijun Zhao, Peinan Zhao, Peipei Zhao, Peishen Zhao, Peng Zhao, Pengjun Zhao, Ping Zhao, Pingfan Zhao, Pu Zhao, Qi Zhao, Qian Zhao, Qiancheng Zhao, Qianhua Zhao, Qianjun Zhao, Qianyi Zhao, Qihan Zhao, Qilin Zhao, Qin Zhao, Qin-Shi Zhao, Qinfei Zhao, Qing Zhao, Qing-Chun Zhao, Qing-Li Zhao, Qingbo Zhao, Qingchun Zhao, Qinghe Zhao, Qingqing Zhao, Qingshi Zhao, Qingwen Zhao, Qingzuo Zhao, Qiong Zhao, Qiongxian Zhao, Qiongyi Zhao, Qiqi Zhao, Qitao Zhao, Qiuyue Zhao, Quan Zhao, Quanzhen Zhao, Ran Zhao, Ranran Zhao, Ranzun Zhao, Ren Zhao, Renfeng Zhao, Renjia Zhao, Richard L Zhao, Rong Jie Zhao, Rong Zhao, Rui Zhao, Ruidan Zhao, Ruiqi Zhao, Ruixuan Zhao, Ruizhen Zhao, Runming Zhao, Ruohan Zhao, Ruojin Zhao, Ruxun Zhao, Ruyi Zhao, S H Zhao, S S Zhao, S-P Zhao, Sha Zhao, Shan-Shan Zhao, Shane R Zhao, Shanshan Zhao, Shanzhi Zhao, Shao-Zhen Zhao, Shaorong Zhao, Shaoyang Zhao, Sheng Zhao, Shengguo Zhao, Shengjun Zhao, Shenjun Zhao, Shi Zhao, Shi-Min Zhao, Shigang Zhao, Shihua Zhao, Shiji Zhao, Shimiao Zhao, Shitian Zhao, Shiwei Zhao, Shu-Ning Zhao, Shuai Zhao, Shuang Zhao, Shuang-Qiao Zhao, Shuangshuang Zhao, Shuangxia Zhao, Shuanping Zhao, Shufen Zhao, Shui-ping ZHAO, Shuiping Zhao, Shujuan Zhao, Shuliang Zhao, Shunying Zhao, Shuqiang Zhao, Shuxuan Zhao, Shuyue Zhao, Shuzhen Zhao, Shuzhi Zhao, Si-Jia Zhao, Sihai Zhao, Siqi Zhao, Sitong Zhao, Siyuan Zhao, Song Zhao, Song-Song Zhao, Songchen Zhao, Songping Zhao, Steven Zhao, Suonan Zhao, Suwen Zhao, T C Zhao, Tanjun Zhao, Tian Zhao, Tian-Yu Zhao, Tiancheng Zhao, Tianjing Zhao, Tianna Zhao, Tianyang Zhao, Tianyong Zhao, Tianyu Zhao, Tieqiang Zhao, Tiesuo Zhao, Ting C Zhao, Ting Zhao, Tingrui Zhao, Tingting Zhao, Tong Zhao, Tongfeng Zhao, W S Zhao, W Zhao, W-C Zhao, Wang ZHAO, Wang-Sheng Zhao, Wanglin Zhao, Wangsheng Zhao, Wanni Zhao, Wanqiu Zhao, Wanting Zhao, Wanxin Zhao, Wei Zhao, Wei-Li Zhao, Wei-Qian Zhao, Weichao Zhao, Weifeng Zhao, Weikun Zhao, Weimin Zhao, Weina Zhao, Weipeng Zhao, Weiqi Zhao, Weisong Zhao, Weiwei Zhao, Weixin Zhao, Weiyu Zhao, Weiyue Zhao, Wen Zhao, Wen-Ning Zhao, Wen-qiu Zhao, Wencai Zhao, Wenchen Zhao, Wenhong Zhao, Wenhua Zhao, Wenjing Zhao, Wenjuan Zhao, Wenjun Zhao, Wenming Zhao, Wenpeng Zhao, Wenshan Zhao, Wenshu Zhao, Wensi Zhao, Wenting Zhao, Wenxin Zhao, Wenxu Zhao, Wenye Zhao, Wenyu Zhao, Wenyuan Zhao, Wukui Zhao, X S Zhao, X Zhao, Xi Zhao, Xi-Yu Zhao, Xia Zhao, Xian Zhao, Xiang Zhao, Xiang-Hui Zhao, Xiangdong Zhao, Xiangge Zhao, Xianghu Zhao, Xianglong Zhao, Xiangqin Zhao, Xiao Zhao, Xiao-Fan Zhao, Xiao-Fang Zhao, Xiao-Jie Zhao, Xiao-Jing Zhao, Xiao-Ning Zhao, Xiao-Yu Zhao, XiaoQing Zhao, Xiaodong Zhao, Xiaoduo Zhao, Xiaofang Zhao, Xiaofei Zhao, Xiaoguang Zhao, Xiaohan Zhao, Xiaohang Zhao, Xiaohong Zhao, Xiaohui Zhao, Xiaojun Zhao, Xiaoli Zhao, Xiaoling Zhao, Xiaoming Zhao, Xiaopei Zhao, Xiaopeng Zhao, Xiaoqiang Zhao, Xiaoqin Zhao, Xiaowen Zhao, Xiaoxi Zhao, Xiaoyan Zhao, Xiaoyang Zhao, Xiaoyao Zhao, Xiaoyu Zhao, Xiaoyuan Zhao, Xiaoyun Zhao, Xiaozhi Zhao, Xibao Zhao, Xin Zhao, Xin-Yuan Zhao, Xincheng Zhao, Xing Zhao, Xing-Bo Zhao, Xingang Zhao, Xingbo Zhao, Xingsen Zhao, Xinguo Zhao, Xingwang Zhao, Xingyi Zhao, Xingyu Zhao, Xinhan Zhao, Xinhui Zhao, Xinjie Zhao, Xinlei Zhao, Xinming Zhao, Xinrui Zhao, Xinyang Zhao, Xinying Zhao, Xinyu Zhao, Xinyue Zhao, Xinzhi Zhao, Xipeng Zhao, Xitong Zhao, Xiu-Ju Zhao, Xiujuan Zhao, Xiuli Zhao, Xiumei Zhao, Xiumin Zhao, Xiurong Zhao, Xiutao Zhao, Xiuxin Zhao, Xiuyun Zhao, Xu Zhao, Xu-Zi Zhao, Xuan Zhao, Xudong Zhao, Xue-Li Zhao, Xue-Qiao Zhao, Xueli Zhao, Xueqing Zhao, Xuerong Zhao, Xuesong Zhao, Xueying Zhao, Xuli Zhao, Xunying Zhao, Y U Zhao, Y Z Zhao, Y Zhao, Ya Zhao, Yafei Zhao, Yahui Zhao, Yajie Zhao, Yali Zhao, Yan G Zhao, Yan Ting Zhao, Yan Zhao, Yan-Hong Zhao, Yan-Lin Zhao, Yan-Ni Zhao, Yanan Zhao, Yanbin Zhao, Yandong Zhao, Yanfei Zhao, Yang Zhao, Yangang Zhao, Yangqi Zhao, Yanhong Zhao, Yanhua Zhao, Yanhui Zhao, Yanli Zhao, Yanna Zhao, Yanni Zhao, Yanrong Zhao, Yanxiang Zhao, Yanyan Zhao, Yanyu Zhao, Yao Zhao, Yating Zhao, Yawei Zhao, Ye Zhao, Yeli Zhao, Yi Zhao, Yi-Fan Zhao, Yichao Zhao, Yifan Zhao, Yifang Zhao, Yiheng Zhao, Yijing Zhao, Yijun Zhao, Yikun Zhao, Yilin Zhao, Yiming Zhao, Yimu Zhao, Yin Zhao, Ying Ming Zhao, Ying Xin Zhao, Ying Zhao, Ying-Peng Zhao, Ying-Zheng Zhao, Yingchao Zhao, Yingdong Zhao, Yingmin Zhao, Yingming Zhao, Yingpeng Zhao, Yingqi Zhao, Yingxin Zhao, Yingying Zhao, Yingzheng Zhao, Yinlong Zhao, Yiqiang Zhao, Yisha Zhao, Yiwei Zhao, Yixia Zhao, Yixiu Zhao, Yixuan Zhao, Yixue Zhao, Yiyang Zhao, Yiyi Zhao, Yizhen Zhao, Yong Zhao, Yong-Liang Zhao, Yong-fang Zhao, Yongchao Zhao, Yongfei Zhao, Yongjian Zhao, Yongju Zhao, Yonglin Zhao, Yonglong Zhao, Yongqi Zhao, Yongqin Zhao, Yongting Zhao, Yongxia Zhao, Yongxiang Zhao, Yu Zhao, Yu-Cong Zhao, Yu-Lin Zhao, Yu-Xia Zhao, Yu-pei Zhao, Yuan Zhao, Yuan-Yuan Zhao, Yuanhui Zhao, Yuanji Zhao, Yuanjin Zhao, Yuanyin Zhao, Yuanyuan Zhao, Yuanzhi Zhao, Yubai Zhao, Yubo Zhao, Yuchen Zhao, Yudan Zhao, Yudi Zhao, Yue Zhao, Yue-Chao Zhao, Yuee Zhao, Yuehan Zhao, Yueyang Zhao, Yueying Zhao, Yufan Zhao, Yufei Zhao, Yuhang Zhao, Yuhong Zhao, Yuhui Zhao, Yujiao Zhao, Yujie Zhao, Yukui Zhao, Yulong Zhao, Yun Zhao, Yun-Li Zhao, Yun-Tao Zhao, Yunbo Zhao, Yunchao Zhao, Yunli Zhao, Yunwang Zhao, Yuqi Zhao, Yurong Zhao, Yuru Zhao, Yusen Zhao, Yuting Zhao, Yutong Zhao, Yuwen Zhao, Yuxi Zhao, Yuxia Zhao, Yuxiao Zhao, Yuxin Zhao, Yuyang Zhao, Yuzhen Zhao, Yuzheng Zhao, Z Zhao, Zaixu Zhao, Zanmei Zhao, Ze Hua Zhao, Ze-Hua Zhao, Ze-Run Zhao, Ze-Yu Zhao, Zeng-Ren Zhao, Zengqi Zhao, Zexi Zhao, Zhan Zhao, Zhanzheng Zhao, Zhao Zhao, Zhe Yu Zhao, Zhe Zhao, Zhen Zhao, Zhen-Long Zhao, Zhen-Wang Zhao, Zheng Zhao, Zhengjiang Zhao, Zhengyan Zhao, Zhenhua Zhao, Zhenlin Zhao, Zhensheng Zhao, Zhenyu Zhao, Zhi-Kun Zhao, Zhibo Zhao, Zhichao Zhao, Zhicong Zhao, Zhigang Zhao, Zhihao Zhao, Zhihe Zhao, Zhihui Zhao, Zhijian Zhao, Zhikang Zhao, Zhikun Zhao, Zhiming Zhao, Zhipeng Zhao, Zhiqiang Zhao, Zhiwei Zhao, Zhiying Zhao, Zhiyun Zhao, Zhongming Zhao, Zhongquan Zhao, Zhongxin Zhao, Zhuoyan Zhao, Zifeng Zhao, Zihan Zhao, Zihe Zhao, Zijia Zhao, Zijie Zhao, Zijin Zhao, Ziqi Zhao, Ziqin Zhao, Zirui Zhao, Zitong Zhao, Ziyi Zhao, Ziyu Zhao, Zongjiang Zhao, Zongren Zhao, Zongsheng Zhao, Zuhang Zhao
articles
Fan Zhao, Xiaoli Ma, Wuxia Qiu +16 more · 2020 · Cells · MDPI · added 2026-04-24
Microtubule actin crosslinking factor 1 (MACF1) is a large crosslinker that contributes to cell integrity and cell differentiation. Recent studies show that MACF1 is involved in multiple cellular func Show more
Microtubule actin crosslinking factor 1 (MACF1) is a large crosslinker that contributes to cell integrity and cell differentiation. Recent studies show that MACF1 is involved in multiple cellular functions such as neuron development and epidermal migration, and is the molecular basis for many degenerative diseases. MACF1 is highly abundant in bones, especially in mesenchymal stem cells; however, its regulatory role is still less understood in bone formation and degenerative bone diseases. In this study, we found Show less
📄 PDF DOI: 10.3390/cells9030616
MACF1
Xiaoying Wang, Xiao Jian, Jun Dou +2 more · 2020 · Cancer management and research · added 2026-04-24
The microtubule actin cross-linking factor 1 (MACF1) is involved in cellular migration, adhesion, and invasion processes. Its abnormal expression initiates tumor cell proliferation and metastasis in n Show more
The microtubule actin cross-linking factor 1 (MACF1) is involved in cellular migration, adhesion, and invasion processes. Its abnormal expression initiates tumor cell proliferation and metastasis in numerous cancer types. In this study, we utilized short hair-pin RNA interference of MACF1 to assess the inhibitory effects on the metastatic potential of B16F10 melanoma cells both in vitro and in vivo a mouse model. The MACF1 expression was increased in B16F10 cells-induced tumor tissues; while the down-regulation of MACF1 impacted the B16F10 melanoma cell metastatic behavior by decreasing the ability of colony formation and invasion in vitro as well as inhibiting B16F10 cells-induced tumor growth and lung metastasis in vivo. The results of Western blot and immunohistochemistry indicated that the expression of E-cadherin and Smad-7 was significantly increased whereas the expression of N-cadherin and TGF-β1 was significantly decreased in tumor tissue of mice challenged with the B16F10/MACF1-RNAi cells when compared with the B16F10 cells challenged mice. The data presented in this study demonstrated that down-regulated MACF1 expression decreased B16F10 melanoma metastasis in mice by inhibiting the epithelial to mesenchymal transition program. Thus, MACF1 may be a novel target for melanoma therapy. Show less
📄 PDF DOI: 10.2147/CMAR.S229156
MACF1
Wu-Xia Qiu, Xiao-Li Ma, Xiao Lin +11 more · 2020 · Journal of cellular and molecular medicine · Blackwell Publishing · added 2026-04-24
Microtubule actin cross-linking factor 1 (Macf1) is a spectraplakin family member known to regulate cytoskeletal dynamics, cell migration, neuronal growth and cell signal transduction. We previously d Show more
Microtubule actin cross-linking factor 1 (Macf1) is a spectraplakin family member known to regulate cytoskeletal dynamics, cell migration, neuronal growth and cell signal transduction. We previously demonstrated that knockdown of Macf1 inhibited the differentiation of MC3T3-E1 cell line. However, whether Macf1 could regulate bone formation in vivo is unclear. To study the function and mechanism of Macf1 in bone formation and osteogenic differentiation, we established osteoblast-specific Osterix (Osx) promoter-driven Macf1 conditional knockout mice (Macf1 Show less
📄 PDF DOI: 10.1111/jcmm.14729
MACF1
Xiaofang Li, Xincheng Zhao, Jianxiao Xing +7 more · 2020 · The Australasian journal of dermatology · Blackwell Publishing · added 2026-04-24
Psoriasis is an immunodeficient skin disorder, and its exact pathogenesis is unclear. Monozygotic twins are presumed to be genetically identical, and their phenotypic differences may be due to transcr Show more
Psoriasis is an immunodeficient skin disorder, and its exact pathogenesis is unclear. Monozygotic twins are presumed to be genetically identical, and their phenotypic differences may be due to transcriptional regulation or epigenome factors. To explain the inconsistency between twins, we have collected 3 pairs of monozygotic twins who are discordant for psoriasis. Reduced representation of bisulfite sequencing and RNA sequencing was conducted using the peripheral blood of the twins to find the genes playing important roles in psoriasis pathogenesis. As a result, we found methylation diversity in four genes (MAST3, MTOR, PM20D1 and ZNF99), and we also found 9 differentially expressed genes (PPAN-P2RY11, PIGV, RPS18, TMEM121, KIF21A, KCNH2, WNT10B, PRX and CDH24) by RNA sequencing. According to the conjoint analysis of methylation and the mRNA results, PTPN6, CCL5, NFATC1 and PRF1 were found to be closely related to psoriasis. We then annotated the genes to explore the associations between these genes and psoriasis. These findings provide a better understanding of psoriasis that can improve the diagnosis and treatment of the disease. Show less
no PDF DOI: 10.1111/ajd.13325
MAST3
Shuang Zhang, Fangling Guo, Miao Yu +14 more · 2020 · Journal of hepatology · Elsevier · added 2026-04-24
Chronic overconsumption of a high-carbohydrate diet leads to steatosis and its associated metabolic disorder and, eventually, to non-alcoholic fatty liver disease. Carbohydrate-responsive element bind Show more
Chronic overconsumption of a high-carbohydrate diet leads to steatosis and its associated metabolic disorder and, eventually, to non-alcoholic fatty liver disease. Carbohydrate-responsive element binding protein (ChREBP) and insulin regulate de novo lipogenesis from glucose. Herein, we studied the effect of reticulon-4 (Nogo) expression on diet-induced metabolic disorders in mice. Nogo-deficient (Nogo HGD/HFrD induced steatosis and its associated metabolic disorders in WT mice by activating ChREBP and impairing insulin sensitivity. They also activated Nogo-B expression, which in turn inhibited insulin activity. In response to HGD/HFrD feeding, Nogo deficiency enhanced insulin sensitivity and energy metabolism to reduce the expression of ChREBP and lipogenic molecules, activated AMP-activated catalytic subunit α, peroxisome proliferator activated receptor α and fibroblast growth factor 21, and reduced endoplasmic reticulum (ER) stress and inflammation, thereby blocking HGD/HFrD-induced hepatic lipid accumulation, insulin resistance and other metabolic disorders. Injection of Nogo siRNA protected C57BL/6J mice against HFrD-induced metabolic disorders by ameliorating insulin sensitivity, ChREBP activity, ER stress and inflammation. Our study identified Nogo as an important mediator of insulin sensitivity and ChREBP activity. Reduction of Nogo expression is a potential strategy for the treatment of high-carbohydrate diet-induced metabolic complications. Nogo deficiency blocks high-carbohydrate diet-induced glucose intolerance and insulin resistance, while increasing glucose/lipid utilisation and energy expenditure. Thus, reduction of Nogo expression protects against high-carbohydrate diet-induced body-weight gain, hepatic lipid accumulation and the associated metabolic disorders, indicating that approaches inhibiting Nogo expression can be applied for the treatment of diseases associated with metabolic disorders. Show less
no PDF DOI: 10.1016/j.jhep.2020.07.034
MLXIPL
Xin Tong, Deqiang Zhang, Omar Shabandri +6 more · 2020 · Metabolism: clinical and experimental · Elsevier · added 2026-04-24
Fructose over-consumption contributes to the development of liver steatosis in part by stimulating ChREBPα-driven de novo lipogenesis. However, the mechanisms by which fructose activates ChREBP pathwa Show more
Fructose over-consumption contributes to the development of liver steatosis in part by stimulating ChREBPα-driven de novo lipogenesis. However, the mechanisms by which fructose activates ChREBP pathway remain largely undefined. Here we performed affinity purification of ChREBPα followed by mass spectrometry and identified DDB1 as a novel interaction protein of ChREBPα in the presence of fructose. Depletion and overexpression of Ddb1 showed opposite effects on the ChREBPα stability in hepatocytes. We next tested the impact of hepatic Ddb1 deficiency on the fructose-induced ChREBP pathway. After 3-week high-fructose diet feeding, both Ddb1 liver-specific knockout and AAV-TBG-Cre-injected Ddb1 Show less
📄 PDF DOI: 10.1016/j.metabol.2020.154222
MLXIPL
Hairui Sun, Xiaoyan Hao, Xin Wang +10 more · 2020 · Frontiers in cardiovascular medicine · Frontiers · added 2026-04-24
no PDF DOI: 10.3389/fcvm.2020.617561
MYBPC3
Xiaopei Zhao, Cuilan Hou, Tingting Xiao +6 more · 2020 · Translational pediatrics · added 2026-04-24
Bicuspid aortic valve (BAV) is a common congenital heart defect (0.5-2.0% in the adult), potentially an onset factor of aortic stenosis (AS). Increasing evidence demonstrates that genetic risk factors Show more
Bicuspid aortic valve (BAV) is a common congenital heart defect (0.5-2.0% in the adult), potentially an onset factor of aortic stenosis (AS). Increasing evidence demonstrates that genetic risk factors play a key role in the pathogenesis of BAV, but the genetic basis underlying this cardiac malformation remains poorly understood. Whole exome sequencing (WES) was utilized to uncover genetic variants associated with BAV. Pathogenicity score and mode of inheritance through bioinformatics tools were undertook to identify the possible disease-causing mutation. A heterozygous Ala58Val mutation in Myosin binding protein C (Mybpc3) was identified out of 2,840 variants in an 11-year-old female patient. The proband and her father were confirmed to be heterozygous carriers of 173 C>T hybridization, and her mother was homozygous negative of the mutation as confirmed through Sanger sequencing. Expression of mRNA in the proband and her father, who also carries the mutation, were almost half of proband's mother. Indicating Mybpc3 (p.Ala58Val) mutation affected its expression, and may play crucial roles for heritable BAV. To our knowledge, this is the first time to report Mybpc3 heterozygous variant associated with heritable BAV. The relationship between the location of Mybpc3 mutation and BAV may provide a novel perspective of understanding this disorder. Show less
no PDF DOI: 10.21037/tp-20-81
MYBPC3
Ban Liu, Xiang Li, Cuimei Zhao +8 more · 2020 · Frontiers in physiology · Frontiers · added 2026-04-24
Atrial fibrillation (AF), known as the most common arrhythmia in the developed world, affects 1.5-2.0% of the population. Numerous basic studies have been carried out to identify the roles of electric Show more
Atrial fibrillation (AF), known as the most common arrhythmia in the developed world, affects 1.5-2.0% of the population. Numerous basic studies have been carried out to identify the roles of electric and structural remodeling in the pathophysiological changes of AF, but more explorations are required to further understand the mechanisms of AF development. Proteomics enables researchers to identify protein alterations responsible for the pathological developing progresses of diseases. Compared to the genome, the proteome is closely related to the disease phenotype and can better manifest the progression of diseases. In this study, AF patients proteomically analyzed to identify possible mechanisms. Totally 20 patients undergoing cardiac surgery (10 with paroxysmal AF and 10 with persistent AF) and 10 healthy subjects were recruited. The differentially expressed proteins identified here included AKR1A1, LYZ, H2AFY, DDAH1, FGA, FGB, LAMB1, LAMC1, MYL2, MYBPC3, MYL5, MYH10, HNRNPU, DKK3, COPS7A, YWHAQ, and PAICS. These proteins were mainly involved in the development of structural remodeling. The differently expressed proteins may provide a new perspective for the pathological process of AF, and may enable useful targets for drug interference. Nevertheless, more research in terms of multi-omics is required to investigate possible implicated molecular pathways of AF development. Show less
no PDF DOI: 10.3389/fphys.2020.573433
MYBPC3

A novel

Wuyang Tong, Wei Liu, Hong Guo +6 more · 2020 · Cardiology in the young · added 2026-04-24
Hypertrophic cardiomyopathy is an autosomal dominant hereditary disease characterised by left ventricular asymmetry hypertrophy. However, our knowledge of the genetic background in hypertrophic cardio Show more
Hypertrophic cardiomyopathy is an autosomal dominant hereditary disease characterised by left ventricular asymmetry hypertrophy. However, our knowledge of the genetic background in hypertrophic cardiomyopathy cases is limited. Here, we aimed to evaluate pathogenic gene mutations in a family with high-risk hypertrophic cardiomyopathy and analyse the genotype/phenotype relationships in this family. The proband, her parents, and her niece underwent whole-exome sequencing, and the genotypes of family members were identified using Sanger sequencing. mRNA expression was detected using reverse transcription sequencing. Structural impairments were predicted by homologous modelling. A family survey was conducted for patients with positive results to obtain information on general clinical symptoms, electrocardiography, ambulatory electrocardiography, echocardiography, and 3.0T cardiac magnetic resonance findings. Regular follow-up was performed for up to 6 months. Five family members, including the proband, carried a cleavage site mutation in the MYBPC3 gene (c.2737+1 (IVS26) G>T), causing exon 26 of the MYBPC3 gene transcript to be skipped and leading to truncation of cardiac myosin-binding protein C. Family survey showed that the earliest onset age was 13 years old, and three people had died suddenly at less than 40 years old. Three pathogenic gene carriers were diagnosed with hypertrophic cardiomyopathy, and all showed severe ventricular septal hypertrophy. The c.2737+1 (IVS26) G>T mutation in the MYBPC3 gene led to exon 26 skipping, thereby affecting the structure and function of cardiac myosin-binding protein C and leading to severe ventricular hypertrophy and sudden death. Show less
no PDF DOI: 10.1017/S1047951119002701
MYBPC3
Peng Liu, Liang Ma, Hailing Zhao +7 more · 2020 · Journal of diabetes research · added 2026-04-24
We designed a case-control study and selected
no PDF DOI: 10.1155/2020/8721536
NR1H3
Zepeng Zhang, Lu Zhai, Jing Lu +7 more · 2020 · Oxidative medicine and cellular longevity · added 2026-04-24
Atherosclerosis (AS) is the killer of human health and longevity, which is majorly caused by oxidized lipoproteins that attack macrophages in the endarterium. The Shen-Hong-Tong-Luo (SHTL) formula has Show more
Atherosclerosis (AS) is the killer of human health and longevity, which is majorly caused by oxidized lipoproteins that attack macrophages in the endarterium. The Shen-Hong-Tong-Luo (SHTL) formula has shown great clinical efficacy and vascular protective effect for over 30 years in China, to attenuate AS progression. However, its pharmacological mechanism needs more investigation. In this study, we first investigated the chemical composition of SHTL by fingerprint analysis using high-performance liquid chromatography. In primary mouse peritoneal macrophages induced by lipopolysaccharide (LPS), we found that SHTL pretreatment suppressed reactive oxygen species accumulation and reversed the increases of the inflammatory factors, TNF- Show less
no PDF DOI: 10.1155/2020/3426925
NR1H3
Tian Wang, Yiyang Zhao, Zhongsheng You +4 more · 2020 · Nutrients · MDPI · added 2026-04-24
Atherosclerosis (AS) is the most common cardiovascular disease, and reverse cholesterol transport (RCT) plays an important role in maintaining cholesterol homeostasis. Both endoplasmic reticulum (ER) Show more
Atherosclerosis (AS) is the most common cardiovascular disease, and reverse cholesterol transport (RCT) plays an important role in maintaining cholesterol homeostasis. Both endoplasmic reticulum (ER) stress and LXRα can affect the metabolism of cholesterol. However, whether ER stress can modulate cholesterol metabolism by LXRα in hepatocytes and macrophages remains unclear. Therefore, in this study, we aimed to explore the relationship between ER stress induced by tunicamycin and LXRα in hepatocytes and macrophages and clarify their possible mechanisms and roles in AS. C57BL/6 mice and Huh-7 and THP-1 cells were treated with tunicamycin and LXR-623 (an agonist of LXRα) alone or in combination. Tunicamycin-induced ER stress caused liver injury; promoted the accumulation of cholesterol and triglycerides; inhibited the expression of LXRα, ABCA1 and ABCG1 in the livers of mice, thus reducing serum high-density lipoprotein (HDL)-C, low-density lipoprotein (LDL)-C, total cholesterol and triglyceride levels; however, LXR-623 could attenuate ER stress and reverse these changes. We also obtained the same results in Huh-7 and THP-1 cells. ER stress induced by tunicamycin could clearly be reversed by activating LXRα because it promoted cholesterol efflux by enhancing the expression of ABCA1 and ABCG1 in hepatocytes and macrophages, contributing to attenuation of the development of AS. Show less
no PDF DOI: 10.3390/nu12103088
NR1H3
Yaning Shi, Shuang Jiang, Tanjun Zhao +3 more · 2020 · Biochemical and biophysical research communications · Elsevier · added 2026-04-24
The uptake of modified low-density lipoprotein (LDL) and the accumulation of lipid droplets induce the formation of vascular smooth muscle cells (VSMCs)-derived foam cells, thereby promoting the devel Show more
The uptake of modified low-density lipoprotein (LDL) and the accumulation of lipid droplets induce the formation of vascular smooth muscle cells (VSMCs)-derived foam cells, thereby promoting the development and maturation of plaques and accelerating the progression of atherosclerosis. Celastrol is a quinine methide triterpenoid isolated from the root bark of traditional Chinese herb Tripterygium wilfordii. It possesses various biological properties, including anti-obesity, cardiovascular protection, anti-inflammation, etc. In the present study, we found that celastrol significantly reduced lipid accumulation induced by oxidized LDL (ox-LDL) in VSMCs. Mechanistically, celastrol up-regulated adenosine triphosphate-binding cassette transporter A1 (ABCA1) expression through activating liver X receptor α (LXRα) expression, which contributed to inhibit lipid accumulation in VSMCs. Meanwhile, celastrol decreased lipid accumulation by triggering autophagy in VSMCs. Therefore, these findings supported celastrol as a potentially effective agent for the prevention and therapy of atherosclerosis. Show less
no PDF DOI: 10.1016/j.bbrc.2020.08.076
NR1H3
Wu Yao, Peiyan Yang, Yuanmeng Qi +6 more · 2020 · The Science of the total environment · Elsevier · added 2026-04-24
Silicosis, a severe and irreversible form of pulmonary fibrosis (PF) caused by long-term exposure to dust particles in production environments, is the biggest occupational health concern in China and Show more
Silicosis, a severe and irreversible form of pulmonary fibrosis (PF) caused by long-term exposure to dust particles in production environments, is the biggest occupational health concern in China and most low-income countries. The transdifferentiation of pulmonary fibroblasts is the terminal event in silicosis, and specific transcription factors (TFs) play a crucial role in this condition. However, the relationship between TF-mediated regulation and silicosis remains unknown. We performed a transcriptomic analysis to elucidate this relationship, and our results revealed that two TFs, EGR2 and BHLHE40, were upregulated and five, i.e., TBX2, NR1H3 (LXRα), NR2F1, PPARG (PPARγ), and EPAS1, were downregulated in activated fibroblasts. Notably, PPARγ and LXRα expression was also decreased in an experimental mouse model of silicosis. The mechanism underlying these changes may involve TGF-β1 secretion from silica-exposed alveolar macrophages, causing PPARγ and LXRα downregulation, which in turn would result in aberrant α-SMA transcription. Our results suggest that LXRα is a potential target for the prevention of silicosis and PF. Show less
no PDF DOI: 10.1016/j.scitotenv.2020.141531
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Yu Chen, Yi-Fan Zhao, Jing Yang +6 more · 2020 · Food & function · Royal Society of Chemistry · added 2026-04-24
Selenium (Se) is an essential trace element for living organisms and plays diverse biological roles. Endometritis is a common reproductive disorder in dairy cows, causing huge economic losses. In this Show more
Selenium (Se) is an essential trace element for living organisms and plays diverse biological roles. Endometritis is a common reproductive disorder in dairy cows, causing huge economic losses. In this study, we explored the effects of Se on lipopolysaccharide (LPS)-induced endometritis in mice and expounded its underlying mechanism of action. We validated the anti-inflammatory effects of Se in vivo by establishing a mouse model of endometriosis induced by LPS. Se significantly reversed the LPS-induced uterine histopathological changes, MPO activity and inflammatory cytokine levels in vivo. Simultaneously, TLR4 and its downstream signaling pathways, lipid rafts and cholesterol levels in the tissues were also attenuated by Se under LPS stimulation. In addition, the molecular mechanism of the Se anti-inflammatory effect was clarified in mouse endometrial epithelial cells. Se inhibited TLR4-mediated NF-κB and IRF3 signal transduction pathways to reduce the production of inflammatory factors. We found that Se promoted the consumption of cholesterol to suppress the lipid rafts coming into being and inhibited the TLR4 positioning to the lipid raft to prevent the inflammatory response caused by LPS. Meanwhile, Se activated the LxRα-ABCA1 pathway to cause the outflow of cholesterol in cells. The anti-inflammatory effect of Se was disrupted by silencing LxRα. In conclusion, Se exerted anti-inflammatory effects most likely by the LxRα-ABCA1 pathway activation, which inhibited lipid rafts by depleting cholesterol and ultimately impeded the migration of TLR4 to lipid rafts. Show less
no PDF DOI: 10.1039/c9fo02415h
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Pingshi Gao, Lei Wang, Nanfei Yang +5 more · 2020 · Environment international · Elsevier · added 2026-04-24
Bisphenol A (BPA) and its replacement analog, bisphenol S (BPS), have been proposed as environmental obesogen to disrupt the lipid metabolism through regulating peroxisome proliferator-activated recep Show more
Bisphenol A (BPA) and its replacement analog, bisphenol S (BPS), have been proposed as environmental obesogen to disrupt the lipid metabolism through regulating peroxisome proliferator-activated receptor gamma (PPARγ) receptor. However, there is a dearth of information on whether this biological effect can occur in human macrophage, a cell type which closely interacts with adipocytes and hepatocytes to control lipid metabolism. Here, we for the first time investigate the activity of BPA and BPS on PPARγ pathway in human macrophages. The results demonstrated that BPA and BPS served as activators of PPARγ in human macrophage cell line, and significantly induced the expression of lipid metabolism-related genes, including fatty acid binding protein 4 (FABP4), cluster of differentiation 36 (CD36) and nuclear receptor subfamily 1 group H member 3 (NR Show less
no PDF DOI: 10.1016/j.envint.2019.105328
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Xiang Ou, Jia-Hui Gao, Lin-Hao He +7 more · 2020 · Biochimica et biophysica acta. Molecular and cell biology of lipids · Elsevier · added 2026-04-24
Angiopoietin-1 (Ang-1), a secreted protein, mainly regulates angiogenesis. Ang-1 has been shown to promote the development of atherosclerosis, whereas little is known about its effects on lipid metabo Show more
Angiopoietin-1 (Ang-1), a secreted protein, mainly regulates angiogenesis. Ang-1 has been shown to promote the development of atherosclerosis, whereas little is known about its effects on lipid metabolism and inflammation in this process. Ang-1 was transfected into ApoE Our data showed that Ang-1 augmented atherosclerotic plaques formation and inhibited cholesterol efflux. The binding of Ang-1 to Tie2 resulted in downregulation of LXRα, ABCA1 and ABCG1 expression via inhibiting the translocation of TFE3 into nucleus. In addition, Ang-1 decreased serum HDL-C levels and reduced reverse cholesterol transport (RCT) in ApoE-/- mice. Furthermore, Ang-1 induced lipid accumulation followed by increasing TNF-α, IL-6, IL-1β,and MCP-1 produced by MPMs, as well as inducing M1 phenotype macrophage marker iNOS and CD86 expression in aorta of ApoE Ang-1 has an adverse effect on cholesterol efflux by decreasing the expression of ABCA1 and ABCG1 via Tie2/TFE3/LXRα pathway, thereby promoting inflammation and accelerating atherosclerosis progression. Show less
no PDF DOI: 10.1016/j.bbalip.2019.158535
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Yin Zhao, Xiao-Hong Hong, Kang Li +11 more · 2020 · Cancer communications (London, England) · Wiley · added 2026-04-24
Epigenetic regulation plays an important role in the development and progression of nasopharyngeal carcinoma (NPC). However, the epigenetic mechanisms underlying NPC metastasis remains poorly understo Show more
Epigenetic regulation plays an important role in the development and progression of nasopharyngeal carcinoma (NPC). However, the epigenetic mechanisms underlying NPC metastasis remains poorly understood. We aimed to find functional genes which regulate the metastasis of NPC and identify therapeutic targets for NPC treatment. Bisulfite pyrosequencing was used to analyze zinc finger protein 582 (ZNF582) methylation in NPC tissues and cell lines. Quantitative reverse transcription-polymerase chain reaction (qRT-PCR) and Western blotting were used to determine the expression of ZNF582. In vitro and in vivo experiments were performed to evaluate the biological function of ZNF582 in NPC. ZNF582-targeting genes were identified by chromatin immunoprecipitation sequencing (ChIP-seq) and were confirmed by ChIP-qPCR and luciferase assay. ZNF582 promoter was hypermethylated in NPC, and both the mRNA and protein levels of ZNF582 were down-regulated in NPC tissues and cell lines. The restoration of ZNF582 inhibited NPC migration, invasion, and metastasis, while the knockdown of ZNF582 promoted NPC migration, invasion, and metastasis in vitro and in vivo. ZNF582 directly regulated the transcription and expression of adhesion molecules Nectin-3 and NRXN3. Both Nectin-3 and NRXN3 were identified as functional targets of ZNF582, and the restoration or abrogation of these genes reversed the tumor suppressor effect of ZNF582 in NPC metastasis. ZNF582 acts as a tumor suppressor gene in NPC by regulating the transcription and expression of adhesion molecules Nectin-3 and NRXN3, which may provide novel therapeutic targets for NPC treatment. Show less
no PDF DOI: 10.1002/cac2.12104
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Ling-Ling Zhao, Hong-Liang Liu, Sheng Luo +3 more · 2020 · American journal of cancer research · added 2026-04-24
The ATM serine/threonine kinase (ATM) pathway plays important roles in pancreatic cancer (PanC) development and progression, but the roles of genetic variants of the genes in this pathway in the etiol Show more
The ATM serine/threonine kinase (ATM) pathway plays important roles in pancreatic cancer (PanC) development and progression, but the roles of genetic variants of the genes in this pathway in the etiology of PanC are unknown. In the present study, we assessed associations between 31,499 single nucleotide polymorphisms (SNPs) in 198 ATM pathway-related genes and PanC risk using genotyping data from two previously published PanC genome-wide association studies (GWASs) of 15,423 subjects of European ancestry. In multivariable logistic regression analysis, we identified three novel independent SNPs to be significantly associated with PanC risk [ Show less
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Xinwei Li, Guojin Li, Xiliang Du +8 more · 2020 · Journal of dairy science · added 2026-04-24
Hyperketonemia is a metabolic disease in dairy cows, associated with negative nutrition balance (NNB) induced by low dry matter intake (DMI) and increased nutrient requirements. Hyperketonemia could i Show more
Hyperketonemia is a metabolic disease in dairy cows, associated with negative nutrition balance (NNB) induced by low dry matter intake (DMI) and increased nutrient requirements. Hyperketonemia could induce metabolic stress, which might indirectly affect mammary tissue. Autophagy is a highly conserved physiological process that results in the turnover of intracellular material, and is involved in maintaining cellular homeostasis under the challenge of metabolic stress induced by NNB. The aim of this study was to investigate the autophagy status and autophagy-related pathways AMP-activated kinase α (AMPKα) and mechanistic target of rapamycin (mTOR) in the mammary glands of dairy cows with hyperketonemia. Cows with hyperketonemia [CWH, n = 10, blood β-hydroxybutyrate (BHB) concentration 1.2 to 3.0 mmol/L] and cows without hyperketonemia (CWOH, n = 10, BHB < 1.2 mmol/L) from 3 to 12 DIM were randomly selected from the herd. The mammary tissue and blood samples were collected from these cows between 0630 and 0800 h, before feeding, at 3 to 12 d in milk. Serum concentrations of glucose, BHB, and fatty acids were determined using an autoanalyzer with commercial kits between 0630 and 0800 h, before feeding. Concentrations of fatty acids, BHB (median and interquartile range: CWH, 2.44 and 1.3, 2.82 mM; CWOH, 0.49 and 0.41, 0.57 mM), and milk fat were greater in CWH. The DMI, glucose concentration, milk production, and milk protein levels were lower in CWH. The mRNA abundance of autophagosome formation-related gene, beclin 1 (BECN1), phosphatidylinositol 3-kinase catalytic subunit type 3 (PIK3C3), autophagy-related gene (ATG) 5, ATG7, ATG12, microtubule-associated protein 1 light chain 3 (MAP1LC3, also called LC3) and sequestosome-1 (SQSTM1, also called p62) were greater in the mammary glands of CWH. The protein abundance of LC3-II and phosphorylation level of Unc-51-like kinase 1 (ULK1) were greater in CWH, but the total ubiquitinated proteins and protein abundance of p62 were lower. Transmission electron microscopy showed an increased number of autophagosomes in the mammary glands of CWH. Furthermore, the phosphorylation of AMPKα was greater, but the phosphorylation of mTOR was lower in the mammary glands of CWH. These results indicate that activity of mTOR pathways and autophagy activity, and upregulation of AMPKα, may be response mechanisms to mitigate metabolic stress induced by hyperketonemia in the mammary glands of dairy cows. Show less
no PDF DOI: 10.3168/jds.2019-16910
PIK3C3
Xiangli Bai, XiaoYan Yang, Xiong Jia +15 more · 2020 · Autophagy · Taylor & Francis · added 2026-04-24
Diabetes is a recognized high-risk factor for the development of atherosclerosis, in which macroautophagy/autophagy is emerging to play essential roles. The retention of low-density lipoprotein (LDL) Show more
Diabetes is a recognized high-risk factor for the development of atherosclerosis, in which macroautophagy/autophagy is emerging to play essential roles. The retention of low-density lipoprotein (LDL) particles in subendothelial space following transcytosis across the endothelium is the initial step of atherosclerosis. Here, we identified that high glucose could promote atherosclerosis by stimulating transcytosis of LDL. By inhibiting AMPK-MTOR-PIK3C3 pathway, high glucose suppresses the CAV-CAVIN-LC3B-mediated autophagic degradation of CAV1; therefore, more CAV1 is accumulated in the cytosol and utilized to form more caveolae in the cell membrane and facilitates the LDL transcytosis across endothelial cells. For a proof of concept, higher levels of lipids were accumulated in the subendothelial space of umbilical venous walls from pregnant women with gestational diabetes mellitus (GDM), compared to those of pregnant women without GDM. Our results reveal that high glucose stimulates LDL transcytosis by a novel CAV1-CAVIN1-LC3B signaling-mediated autophagic degradation pathway. 3-MA: 3-methyladenine; ACTB: actin beta; AMPK: AMP-activated protein kinase; Bafi: bafilomycin A Show less
no PDF DOI: 10.1080/15548627.2019.1659613
PIK3C3
Kejia Liu, Chu Guo, Yimin Lao +5 more · 2020 · Autophagy · Taylor & Francis · added 2026-04-24
The roles of SUMOylation and the related enzymes in autophagic regulation are unclear. Based on our previous studies that identified the SUMO2/3-specific peptidase SENP3 as an oxidative stress-respons Show more
The roles of SUMOylation and the related enzymes in autophagic regulation are unclear. Based on our previous studies that identified the SUMO2/3-specific peptidase SENP3 as an oxidative stress-responsive molecule, we investigated the correlation between SUMOylation and macroautophagy/autophagy. We found that AL: autolysosome; AP: autophagosome; ATG: autophagy related; ATG14: autophagy related 14; BECN1: beclin 1, autophagy related; cKO: conditional knockout; co-IP: co-immunoprecipitation; CQ: chloroquine; EBSS: Earle's balanced salt solution; GFP: green fluorescent protein; MAP1LC3/LC3: microtubule-associated protein 1 light chain 3; MTOR: mechanistic target of rapamycin kinase; NAC: N-acetyl-L-cysteine; PIK3C3: phosphatidylinositol 3-kinase catalytic subunit type 3; PTM: post-translational modification; RFP: red fluorescent protein; ROS: reactive oxygen species; RUBCN/rubicon: RUN domain and cysteine-rich domain containing, BECN1-interacting protein; SENP3: SUMO specific peptidase 3; shRNA: small hairpin RNA; siRNA: small interfering RNA; SQSTM1: sequestosome 1; SUMO: small ubiquitin-like modifier; UVRAG: UV radiation resistance associated gene. Show less
no PDF DOI: 10.1080/15548627.2019.1647944
PIK3C3
Xiao-Wei Zhang, Ji-Chao Zhou, Dian Peng +14 more · 2020 · Autophagy · Taylor & Francis · added 2026-04-24
Impaired macroautophagy/autophagy is involved in the pathogenesis of hepatic fibrosis. However, how aberrant autophagy promotes fibrosis is far from understood. Here, we aimed to define a previously u Show more
Impaired macroautophagy/autophagy is involved in the pathogenesis of hepatic fibrosis. However, how aberrant autophagy promotes fibrosis is far from understood. Here, we aimed to define a previously unrevealed pro-fibrotic mechanism for the stress protein TRIB3 (tribbles pseudokinase 3)-mediated autophagy dysfunction. Human fibrotic liver tissues were obtained from patients with cirrhosis who underwent an open surgical repair process. The functional implications of TRIB3 were evaluated in mouse models of hepatic fibrosis induced by bile duct ligation (BDL) or thioacetamide (TAA) injection. Human fibrotic liver tissues expressed higher levels of TRIB3 and selective autophagic receptor SQSTM1/p62 (sequestosome 1) than nonfibrotic tissues and the elevated expression of TRIB3 and SQSTM1 was positively correlated in the fibrotic tissues. Silencing Show less
no PDF DOI: 10.1080/15548627.2019.1635383
PIK3C3
Qingfu Lang, Peng Xiao, Ming Zhao +3 more · 2020 · Acta biochimica et biophysica Sinica · Oxford University Press · added 2026-04-24
Intrahepatic cholangiocarcinoma (ICC) arises from cholangiocytes in the intrahepatic bile duct and is the second most common type of liver cancer. The overexpression of COUP-TFII has been observed in Show more
Intrahepatic cholangiocarcinoma (ICC) arises from cholangiocytes in the intrahepatic bile duct and is the second most common type of liver cancer. The overexpression of COUP-TFII has been observed in several types of malignancies. However, its role in ICC progression remains unclear. In this study, we found that the protein level of COUP-TFII was increased, but the mRNA level was unchanged in ICC tissues. High protein expression was positively associated with tumor size, lymph node metastasis, and poor prognosis in ICC patients. Furthermore, the overexpression of COUP-TFII promoted the proliferation, migration, and invasion of ICC cells in vitro and enhanced tumor growth and metastasis in nude mouse models. Mechanistic studies revealed that COUP-TFII induced epithelial-to-mesenchymal transition in ICC cells by upregulating Snail expression. Moreover, the activation of PI3K/AKT signaling led to the upregulation of COUP-TFII protein expression in ICC. Together, these findings indicate that COUP-TFII promotes epithelial-to-mesenchymal transition and metastasis in ICC and suggest that this protein is a potential target for adjuvant therapy for these patients. Show less
no PDF DOI: 10.1093/abbs/gmaa117
SNAI1
Wenli Qian, Qi Li, Xinglong Wu +11 more · 2020 · Oncogene · Nature · added 2026-04-24
Snail is a master inducer of epithelial-mesenchymal transition (EMT) and metastasis, however, Snail protein is labile and is quickly degraded through the predominate ubiquitination-mediated proteasome Show more
Snail is a master inducer of epithelial-mesenchymal transition (EMT) and metastasis, however, Snail protein is labile and is quickly degraded through the predominate ubiquitination-mediated proteasome pathway. Deubiquitinases (DUBs) can counteract the Snail degradation process to maintain high level of Snail protein in cancer cells. In this study, we screened a cDNA library containing 79 DUBs, and discovered that a panel of DUBs consisting of USP13, USP28, USP29, USP37, OTUD6A, and DUB3 can markedly stabilize Snail protein, with USP29 displaying the strongest activity to prevent Snail degradation. Mechanistically, USP29 enhances the interaction of Snail and SCP1, resulting in simultaneous dephosphorylation and deubiquitination of Snail and thereafter cooperative prevention of Snail degradation. Biologically, ectopic expression of USP29 promotes gastric cancer cell migration, and depletion of Snail abolishes USP29-mediated cell migration; and USP29 can be induced by major EMT and metastatic inducing factors such as TGFβ, TNFα, and hypoxia. More importantly, high expression levels of Snail, USP29, and SCP1 are associated with poor survival and prognosis. Collectively, these data indicate that Snail is a crucial substrate for USP29 to promote cell migration and USP29/SCP1 complex may be new therapeutic targets to treat metastatic cancer. Show less
no PDF DOI: 10.1038/s41388-020-01471-0
SNAI1
Jianwen Zhao, Wen Zou, Tingxi Hu · 2020 · PloS one · PLOS · added 2026-04-24
Folic acid plays an essential role in the central nervous system and cancer. This study aimed to screen genes related to folic acid metabolism. Datasets (GSE80587, GSE65267 and GSE116299) correlated t Show more
Folic acid plays an essential role in the central nervous system and cancer. This study aimed to screen genes related to folic acid metabolism. Datasets (GSE80587, GSE65267 and GSE116299) correlated to folic acid were screened in the Gene Expression Omnibus. Weighed gene co-expression network analysis was performed to identify modules associated with sample traits of folic acid and organs (brain, prostate and kidney). Functional enrichment analysis was performed for the eigengenes in modules that were significantly correlated with sample traits. Accordingly, the hub genes and key nodes in the modules were identified using the protein interaction network. A total of 17,252 genes in three datasets were identified. One module, which included 97 genes that were highly correlated with sample traits (including folic acid treatment [cor = -0.57, P = 3e-04] and kidney [cor = -0.68, p = 4e-06]), was screened out. Hub genes, including tetratricopeptide repeat protein 38 (Ttc38) and miR-185, as well as those (including Sema3A, Insl3, Dll1, Msh4 and Snai1) associated with "neuropilin binding", "regulation of reproductive process" and "vitamin D metabolic process", were identified. Genes, including Ttc38, Sema3A, Insl3, Dll1, Msh4 and Snai1, were the novel factors that may be associated with the development of the kidneys and related to folic acid treatment. Show less
no PDF DOI: 10.1371/journal.pone.0238940
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Kewei Song, Yinhui Jiang, Yan Zhao +4 more · 2020 · Oncology letters · added 2026-04-24
MicroRNAs (miRs) are associated with cancer metastasis. Aberrant expression levels of members of the miR-30 family have been observed in non-small-cell lung cancer (NSCLC). However, the effects of miR Show more
MicroRNAs (miRs) are associated with cancer metastasis. Aberrant expression levels of members of the miR-30 family have been observed in non-small-cell lung cancer (NSCLC). However, the effects of miR-30 family members on the epithelial-to-mesenchymal transition (EMT) of NSCLC cells and the underlying molecular mechanisms have not yet been fully elucidated. The present study investigated the effects of miR-30 family members on EMT, migration and invasion of NSCLC cells and found that overexpression of these miRs inhibited EMT via decreasing the expression levels of N-cadherin, β-catenin and SNAI1, along with weakened migration and invasion abilities. Then, XB130 was identified as a downstream target of the miR-30 family members. XB130-knockdown also inhibited EMT of NSCLC cells, whereas ectopic overexpression of XB130 partly rescued the suppressive effects of miR-30c and miR-30d on EMT. In conclusion, miR-30 family members inhibited EMT of NSCLC cells, partially via suppressing XB130 expression levels. Show less
no PDF DOI: 10.3892/ol.2020.11929
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Haijiao Wang, Lingling Zhao, Hongliang Liu +4 more · 2020 · American journal of cancer research · added 2026-04-24
Vitamin D has a potential anticarcinogenic role, possibly through regulation of cell proliferation and differentiation, stimulation of apoptosis, immune modulation and regulation of estrogen receptor Show more
Vitamin D has a potential anticarcinogenic role, possibly through regulation of cell proliferation and differentiation, stimulation of apoptosis, immune modulation and regulation of estrogen receptor levels. Because breast cancer (BC) risk varies among individuals exposed to similar risk factors, we hypothesize that genetic variants in the vitamin D pathway genes are associated with BC risk. To test this hypothesis, we performed a larger meta-analysis using 14 published GWAS datasets in the Discovery, Biology, and Risk of Inherited Variants in Breast Cancer (DRIVE) Study. We assessed associations between 2,994 (237 genotyped in the DRIVE study and 2,757 imputed from the 1000 Genomes Project) single nucleotide polymorphisms (SNPs) in 33 vitamin D pathway genes and BC risk. In unconditional logistic regression analysis, we found 11 noteworthy SNPs to be associated with BC risk after multiple comparison correction by the Bayesian false-discovery probability method (<0.80). In stepwise logistic regression analysis, with adjustment for age, principal components and previously published SNPs in the same study populations, we identified three independent SNPs ( Show less
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SNAI1
Jing Zhao, Jing Wu, Yunyun Qin +3 more · 2020 · Cellular oncology (Dordrecht, Netherlands) · Springer · added 2026-04-24
Vasculogenic mimicry (VM), a vessel-like network formed by highly aggressive tumor cells, plays an important role in accelerating cancer progression. This special vascularization pattern is closely as Show more
Vasculogenic mimicry (VM), a vessel-like network formed by highly aggressive tumor cells, plays an important role in accelerating cancer progression. This special vascularization pattern is closely associated with a poor prognosis in various cancers. As yet, however, the regulatory mechanism of VM formation is largely unknown. In this study, we assess whether the long noncoding RNA PVT1 is involved in VM generation in gastric cancer. VM formation was determined by immunohistochemistry using PAS/CD31 double staining in gastric cancers and Matrigel tube formation in vitro. qRT-PCR and Western blotting were used to assess mRNA and protein expression. Interaction between PVT1 and STAT3 was determined using a RNA pull-down assay. Luciferase reporter and chromatin immunoprecipitation assays were performed to evaluate transcriptional activity of STAT3 on the Slug gene promoter. We found that PVT1 can induce VM generation both in vitro and in vivo. Mechanistically, we found that PVT1 interacted with and activated STAT3 through a 850-1770 nt fragment. PVT1 facilitated STAT3 recruitment to the Slug promoter and transcriptionally enhanced Slug expression, thereby triggering epithelial-to-mesenchymal transition (EMT) and VM capillary formation. STAT3 inhibition effectively blocked PVT1-mediated VM. In primary gastric cancer samples, a positive correlation was found between PVT1 and Slug upregulation, and patients with a high PVT1 and Slug expression exhibited markedly shorter survival times. Our results shed light on the role of PVT1 in gastric cancer cell-dependent VM formation. Our findings provide valuable clues for the design of new anti-angiogenic therapeutic strategies. The PVT1/STAT3 axis may serve as a potential target in gastric cancer treatment. Show less
no PDF DOI: 10.1007/s13402-020-00532-6
SNAI1