Study / S3OJ1VZBZ2023-01-27

In Vivo Dissection of Chamber-Selective Enhancers Reveals Estrogen-Related Receptor as a Regulator of Ventricular Cardiomyocyte Identity

Yangpo Cao, Xiaoran Zhang, Brynn N. Akerberg, Haiyun Yuan, Tomoya Sakamoto et al.

About this study

BACKGROUND: Cardiac chamber-selective transcriptional programs underpin the structural and functional differences between atrial and ventricular cardiomyocytes (aCMs and vCMs). The mechanisms responsible for these chamber-selective transcriptional programs remain largely undefined. METHODS: We nominated candidate chamber-selective enhancers (CSEs) by determining the genome-wide occupancy of 7 key cardiac transcription factors (GATA4, MEF2A, MEF2C, NKX2-5, SRF, TBX5, TEAD1) and transcriptional coactivator P300 in atria and ventricles. Candidate enhancers were tested using an adeno-associated virus-mediated massively parallel reporter assay. Chromatin features of CSEs were evaluated by performing assay of transposase accessible chromatin sequencing and acetylation of histone H3 at lysine 27-HiChIP on aCMs and vCMs. CSE sequence requirements were determined by systematic tiling mutagenesis of 29 CSEs at 5 bp resolution. Estrogen-related receptor (ERR) function in cardiomyocytes was evaluated by Cre-loxP-mediated inactivation of ERRα and ERRγ in cardiomyocytes. RESULTS: We identified 134 066 and 97 506 regions reproducibly occupied by at least 1 transcription factor or P300, in atria or ventricles, respectively. Enhancer activities of 2639 regions bound by transcription factors or P300 were tested in aCMs and vCMs by adeno-associated virus-mediated massively parallel reporter assay. This identified 1092 active enhancers in aCMs or vCMs. Several overlapped loci associated with cardiovascular disease through genome-wide association studies, and 229 exhibited chamber-selective activity in aCMs or vCMs. Many CSEs exhibited differential chromatin accessibility between aCMs and vCMs, and CSEs were enriched for aCM- or vCM-selective acetylation of histone H3 at lysine 27-anchored loops. Tiling mutagenesis of 29 CSEs identified the binding motif of ERRα/γ as important for ventricular enhancer activity. The requirement of ERRα/γ to activate ventricular CSEs and promote vCM identity was confirmed by loss of the vCM gene profile in ERRα/γ knockout vCMs. CONCLUSIONS: We identified 229 CSEs that could be useful research tools or direct therapeutic gene expression. We showed that chamber-selective multi-transcription factor, P300 occupancy, open chromatin, and chromatin looping are predictive features of CSEs. We found that ERRα/γ are essential for maintenance of ventricular identity. Finally, our gene expression, epigenetic, 3-dimensional genome, and enhancer activity atlas provide key resources for future studies of chamber-selective gene regulation.

Full author list & citation

Yangpo Cao, Xiaoran Zhang, Brynn N. Akerberg, Haiyun Yuan, Tomoya Sakamoto, Feng Xiao, Nathan J. VanDusen, Pingzhu Zhou, Mason E. Sweat, Yi Wang, Maksymilian Prondzynski, Jian Chen, Yan Zhang, Peizhe Wang, Daniel P. Kelly, William T. Pu. In Vivo Dissection of Chamber-Selective Enhancers Reveals Estrogen-Related Receptor as a Regulator of Ventricular Cardiomyocyte Identity. 2023-01-27. https://doi.org/10.1161/CIRCULATIONAHA.122.061955

Experiments 2

E1ZSECMFI

AAV-MPRA 5-bp tiling mutagenesis of chamber-selective enhancers

A pooled AAV9 library tiled 29 natural 400-bp chamber-selective enhancers with 190-bp WT oligos and matched central 5-bp deletion mutants. The library was assayed in five atrial and four ventricular RNA replicates with five DNA input replicates to identify sequence elements required for chamber activity and selectivity.

AAV-MPRA / in vivo MPRAMousemm10
Explore data
E8N7WJEGT

AAV-MPRA screen of chamber-selective enhancer candidates

A pooled AAV9 MPRA library of 400-bp mouse candidate regulatory regions was delivered to P0 pups and assayed in purified neonatal atrial and ventricular cardiomyocytes at P7. Five DNA, five atrial RNA, and five ventricular RNA replicates quantify enhancer activity and chamber selectivity.

AAV-MPRA / in vivo MPRAMousemm10
Explore data

Raw source data 33 files

Original supplemental and deposited inputs retained for this study. Download files individually or together as a ZIP; nested folders are preserved. Source reuse terms apply, and sequencing reads may be omitted.

Download all 33 files (ZIP)GSE215033/GSE215033_AV_enhancers_400bp_MPRA_readscount.txt.gzGSE215033/GSE215033_family.soft.gzGSE215033/GSM6620219_AV_MPRA_A1_readscount.txt.gzGSE215033/GSM6620220_AV_MPRA_A2_readscount.txt.gzGSE215033/GSM6620221_AV_MPRA_A3_readscount.txt.gzGSE215033/GSM6620222_AV_MPRA_A4_readscount.txt.gzGSE215033/GSM6620223_AV_MPRA_A5_readscount.txt.gzGSE215033/GSM6620224_AV_MPRA_DNA1_readscount.txt.gzGSE215033/GSM6620225_AV_MPRA_DNA2_readscount.txt.gzGSE215033/GSM6620226_AV_MPRA_DNA3_readscount.txt.gzGSE215033/GSM6620227_AV_MPRA_DNA4_readscount.txt.gzGSE215033/GSM6620228_AV_MPRA_DNA5_readscount.txt.gzGSE215033/GSM6620229_AV_MPRA_V1_readscount.txt.gzGSE215033/GSM6620230_AV_MPRA_V2_readscount.txt.gzGSE215033/GSM6620231_AV_MPRA_V3_readscount.txt.gzGSE215033/GSM6620232_AV_MPRA_V4_readscount.txt.gzGSE215033/GSM6620233_AV_MPRA_V5_readscount.txt.gzGSE215065/GSE215065_family.soft.gzGSE215065/GSM6620205_Mutagenesis_MPRA_A1_readscount.txt.gzGSE215065/GSM6620206_Mutagenesis_MPRA_A2_readscount.txt.gzGSE215065/GSM6620207_Mutagenesis_MPRA_A3_readscount.txt.gzGSE215065/GSM6620208_Mutagenesis_MPRA_A4_readscount.txt.gzGSE215065/GSM6620209_Mutagenesis_MPRA_A5_readscount.txt.gzGSE215065/GSM6620210_Mutagenesis_MPRA_DNA1_readscount.txt.gzGSE215065/GSM6620211_Mutagenesis_MPRA_DNA2_readscount.txt.gzGSE215065/GSM6620212_Mutagenesis_MPRA_DNA3_readscount.txt.gzGSE215065/GSM6620213_Mutagenesis_MPRA_DNA4_readscount.txt.gzGSE215065/GSM6620214_Mutagenesis_MPRA_DNA5_readscount.txt.gzGSE215065/GSM6620215_Mutagenesis_MPRA_V1_readscount.txt.gzGSE215065/GSM6620216_Mutagenesis_MPRA_V2_readscount.txt.gzGSE215065/GSM6620217_Mutagenesis_MPRA_V3_readscount.txt.gzGSE215065/GSM6620218_Mutagenesis_MPRA_V4_readscount.txt.gzREADME.txt

Cite OpenMPRA

Cite the OpenMPRA database. Include your access date because the collection changes over time.

Please also cite the source studies when using their data.