Essential role of NONO-HOXA1-Wnt axis in cardiomyocyte differentiation
Abstract
Abstract NONO is recognized as a critical molecular scaffold involved in both transcriptional and posttranscriptional regulation. Mutations in NONO are frequently linked to congenital heart diseases (CHDs) in humans. However, the mechanisms by which NONO regulates cardiac development remain elusive. Here, we identified NONO as a pivotal dual-function regulator of cardiomyocyte differentiation in human induced pluripotent stem cells (hiPSCs). NONO deficiency in hiPSCs results in a distinct defect in early cardiomyocyte differentiation. Mechanistically, NONO interacts with HOXA1 and regulates the dynamic expression of key genes during early cardiomyocyte differentiation. ChIP-seq analysis reveals that NONO loss reduces HOXA1 occupancy at target genes, compromising its transcriptional regulation. Additionally, NONO and HOXA1 cooperatively activate the Wnt signaling. Taken together, these findings establish the NONO-HOXA1-Wnt axis as a key molecular mechanism in cardiomyocyte differentiation and provide insights into the etiology of CHDs associated with NONO mutations.
Article Details
Authors (21)
Zhiyu Feng
Yuan Gao
Han Gao
Siyu Sun
Xi’an Jiaotong University , , , ,
Weilan Na
Xianghui Huang
Shuolin Li
Chaozhong Tan
Shaojie Min
YuQuan Lu
Quannan Zhuang
Siyi Lin
Xiaojing Ma
Laboratory for Biomaterials and Drug Delivery, Department of Anesthesiology, Division of Critical Care Medicine, Boston Children’s Hospital, Harvard Medical School
Ying Liu
Weinian Shou
Mei Wang
School of Materials Science and Engineering, Institute for New Energy Materials & Low Carbon Technologies
Jing Wang
Hunan Cancer Hospital Changsha China
Zhongkai Gu
Wei Sheng
Feizhen Wu
Guoying Huang
Pediatric Heart Center, Children’s Hospital of Fudan University, National Children’s Medical Center, Shanghai