Skip to content
Preprint · OA via OpenAlex

The transcriptomic signature of age and sex is not conserved in human primary myocytes

Séverine Lamon, Megan Soria, Ross D. Williams, Annabel J. Critchlow, Karel Van Belleghem, Andrew Garnham, Akriti Varshney, Traude H. Beilharz, Danielle Hiam, Mark Ziemann

bioRxiv (Cold Spring Harbor Laboratory) · 2024 · ▲ 2 citations

Abstract

Abstract Background Human primary muscle cell (HPMC) lines derived from skeletal muscle biopsies are potentially powerful tools to interrogate the molecular pathways underlying fundamental muscle mechanisms. HPMCs retain their genome in culture, but many endogenous circulating factors are not present in the in vitro environment, or at concentrations that do not mirror physiological levels. To address the assumption that HPMCs are valid models of age and sex-specificity in human muscle research, we examined to what extent HPMC lines retain their source phenotype in culture. Methods Biopsies from the v astus lateralis muscle were collected from ten males aged 18-30, ten females aged 18-30 and ten males aged 60-75 recruited from a general, healthy population. A portion of the muscle was used for the establishment of 30 individual HMPC lines. The remaining sample was immediately snap frozen and stored for further analysis. RNA was extracted from muscle tissue samples and their corresponding, fully differentiated HMPCs and analysed using RNA Sequencing. To compare their transcriptomic signature, principal component analysis (PCA), differential expression analysis, single-cell deconvolution and pathway enrichment analysis were conducted in R . Results A comparison of the transcriptomic signature of 30 human muscle biopsies and their corresponding HPMCs indicated a near-complete lack of retention of the genes and pathways differentially regulated in vivo when compared to their in vitro equivalent, with the exception of several genes encoded on the Y-chromosome. Conclusions The diversity of resident cell populations in muscle tissue and the lack of sex- and age-dependent circulating factors in the cellular milieu likely contribute to these observations, which call for caution when using HPMCs as an experimental model of human muscle sex or age.

◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:

Read at source →

Provenance

Source
OpenAlex
DOI
10.1101/2024.12.17.629041
Canonical
link ↗
Fetched
2026-07-25 MST

Cite this

APA
Lamon, S., Soria, M., Williams, R.D., Critchlow, A.J., Belleghem, K.V., Garnham, A., Varshney, A., Beilharz, T.H., Hiam, D., &amp; Ziemann, M. (2024). The transcriptomic signature of age and sex is not conserved in human primary myocytes. <em>bioRxiv (Cold Spring Harbor Laboratory)</em>. https://doi.org/10.1101/2024.12.17.629041
Vancouver
Lamon S, Soria M, Williams RD, Critchlow AJ, Belleghem KV, Garnham A, et al. The transcriptomic signature of age and sex is not conserved in human primary myocytes. bioRxiv (Cold Spring Harbor Laboratory). 2024. doi:10.1101/2024.12.17.629041.
BibTeX
@unpublished{sverine2024Thetra, title = {The transcriptomic signature of age and sex is not conserved in human primary myocytes}, author = {Séverine Lamon and Megan Soria and Ross D. Williams and Annabel J. Critchlow and Karel Van Belleghem and Andrew Garnham and Akriti Varshney and Traude H. Beilharz and Danielle Hiam and Mark Ziemann}, journal = {bioRxiv (Cold Spring Harbor Laboratory)}, year = {2024}, doi = {10.1101/2024.12.17.629041}, }

Research neighborhood

References, citing works, and semantically nearest findings. Click a node to open it.

Related findings