Integrative analysis of transcriptome, DNA methylome, and chromatin accessibility reveals candidate therapeutic targets in hypertrophic cardiomyopathy

Author:

Gao Junpeng123ORCID,Liu Mengya13ORCID,Lu Minjie4ORCID,Zheng Yuxuan135ORCID,Wang Yan13ORCID,Yang Jingwei13ORCID,Xue Xiaohui13ORCID,Liu Yun13ORCID,Tang Fuchou135ORCID,Wang Shuiyun6ORCID,Song Lei478ORCID,Wen Lu13ORCID,Wang Jizheng4ORCID

Affiliation:

1. Peking University Biomedical Pioneering Innovation Center, School of Life Sciences, , Beijing 100871 , China

2. Zhongnan Hospital of Wuhan University Emergency Center, , Wuhan 430071, China

3. Beijing Advanced Innovation Center for Genomics (ICG), Ministry of Education Key Laboratory of Cell Proliferation and Differentiation , Beijing 100871 , China

4. Chinese Academy of Medical Science and Peking Union Medical College State Key Laboratory of Cardiovascular Disease, Fuwai Hospital, National Center for Cardiovascular Disease, , Beijing 100037, China

5. Peking University Peking-Tsinghua Center for Life Sciences, Academy for Advanced Interdisciplinary Studies, , Beijing 100871 , China

6. Chinese Academy of Medical Sciences and Peking Union Medical College Department of Cardiovascular Surgery, Fuwai Hospital, National Center for Cardiovascular Diseases, , Beijing 100037, China

7. Chinese Academy of Medical Sciences and Peking Union Medical College Cardiomyopathy Ward, Fuwai Hospital, National Center for Cardiovascular Diseases, , Beijing 100037, China

8. Chinese Academy of Medical Sciences and Peking Union Medical College National Clinical Research Center for Cardiovascular Diseases, Fuwai Hospital, National Center for Cardiovascular Diseases, , Beijing 100037, China

Abstract

Abstract Hypertrophic cardiomyopathy (HCM) is the most common inherited heart disease and is characterized by primary left ventricular hypertrophy usually caused by mutations in sarcomere genes. The mechanism underlying cardiac remodeling in HCM remains incompletely understood. An investigation of HCM through integrative analysis at multi-omics levels will be helpful for treating HCM. DNA methylation and chromatin accessibility, as well as gene expression, were assessed by nucleosome occupancy and methylome sequencing (NOMe-seq) and RNA-seq, respectively, using the cardiac tissues of HCM patients. Compared with those of the controls, the transcriptome, DNA methylome, and chromatin accessibility of the HCM myocardium showed multifaceted differences. At the transcriptome level, HCM hearts returned to the fetal gene program through decreased sarcomeric and metabolic gene expression and increased extracellular matrix gene expression. In the DNA methylome, hypermethylated and hypomethylated differentially methylated regions were identified in HCM. At the chromatin accessibility level, HCM hearts showed changes in different genome elements. Several transcription factors, including SP1 and EGR1, exhibited a fetal-like pattern of binding motifs in nucleosome-depleted regions in HCM. In particular, the inhibition of SP1 or EGR1 in an HCM mouse model harboring sarcomere mutations markedly alleviated the HCM phenotype of the mutant mice and reversed fetal gene reprogramming. Overall, this study not only provides a high-precision multi-omics map of HCM heart tissue but also sheds light on the therapeutic strategy by intervening in the fetal gene reprogramming in HCM.

Funder

National Natural Science Foundation of China

CAMS Innovation Fund for Medical Sciences

China Postdoctoral Science Foundation

Publisher

Oxford University Press (OUP)

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