Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits

Author:

Orchard PeterORCID,Manickam Nandini,Ventresca ChristaORCID,Vadlamudi SwarooparaniORCID,Varshney ArushiORCID,Rai VivekORCID,Kaplan Jeremy,Lalancette Claudia,Mohlke Karen L.ORCID,Gallagher Katherine,Burant Charles F.,Parker Stephen C.J.ORCID

Abstract

Skeletal muscle accounts for the largest proportion of human body mass, on average, and is a key tissue in complex diseases and mobility. It is composed of several different cell and muscle fiber types. Here, we optimize single-nucleus ATAC-seq (snATAC-seq) to map skeletal muscle cell–specific chromatin accessibility landscapes in frozen human and rat samples, and single-nucleus RNA-seq (snRNA-seq) to map cell-specific transcriptomes in human. We additionally perform multi-omics profiling (gene expression and chromatin accessibility) on human and rat muscle samples. We capture type I and type II muscle fiber signatures, which are generally missed by existing single-cell RNA-seq methods. We perform cross-modality and cross-species integrative analyses on 33,862 nuclei and identify seven cell types ranging in abundance from 59.6% to 1.0% of all nuclei. We introduce a regression-based approach to infer cell types by comparing transcription start site–distal ATAC-seq peaks to reference enhancer maps and show consistency with RNA-based marker gene cell type assignments. We find heterogeneity in enrichment of genetic variants linked to complex phenotypes from the UK Biobank and diabetes genome-wide association studies in cell-specific ATAC-seq peaks, with the most striking enrichment patterns in muscle mesenchymal stem cells (∼3.5% of nuclei). Finally, we overlay these chromatin accessibility maps on GWAS data to nominate causal cell types, SNPs, transcription factor motifs, and target genes for type 2 diabetes signals. These chromatin accessibility profiles for human and rat skeletal muscle cell types are a useful resource for nominating causal GWAS SNPs and cell types.

Funder

National Institute of Diabetes and Digestive and Kidney Diseases

American Diabetes Association

National Institutes of Health

NIDDK

University of Michigan Rackham

National Human Genome Research Institute

Publisher

Cold Spring Harbor Laboratory

Subject

Genetics(clinical),Genetics

Reference124 articles.

1. 10x Genomics. 2020. Can I sort nuclei for Single Cell ATAC sequencing or Single Cell Multiome ATAC + GEX? 10x Genomics. https://kb.10xgenomics.com/hc/en-us/articles/360027640311-Can-I-sort-nuclei-for-Single-Cell-ATAC-sequencing-or-Single-Cell-Multiome-ATAC-GEX- (accessed February 12, 2021).

2. A global reference for human genetic variation

3. Single cell analysis reveals the involvement of the long non-coding RNA Pvt1 in the modulation of muscle atrophy and mitochondrial network

4. Enhancing droplet-based single-nucleus RNA-seq resolution using the semi-supervised machine learning classifier DIEM

5. Follistatin complexes Myostatin and antagonises Myostatin-mediated inhibition of myogenesis

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