Tension-driven multi-scale self-organisation in human iPSC-derived muscle fibers

Author:

Mao Qiyan1ORCID,Acharya Achyuth1,Rodríguez-delaRosa Alejandra234,Marchiano Fabio1,Dehapiot Benoit1ORCID,Al Tanoury Ziad234,Rao Jyoti234,Díaz-Cuadros Margarete234,Mansur Arian45,Wagner Erica2,Chardes Claire1,Gupta Vandana5ORCID,Lenne Pierre-François1ORCID,Habermann Bianca H1ORCID,Theodoly Olivier6,Pourquié Olivier234ORCID,Schnorrer Frank1ORCID

Affiliation:

1. Aix Marseille University, CNRS, IBDM, Turing Centre for Living Systems

2. Department of Pathology, Brigham and Women’s Hospital

3. Department of Genetics, Harvard Medical School

4. Harvard Stem Cell Institute

5. Division of Genetics, Department of Medicine, Brigham and Women’s Hospital, Harvard Medical School

6. Aix Marseille University, CNRS, LAI, Turing Centre for Living Systems

Abstract

Human muscle is a hierarchically organised tissue with its contractile cells called myofibers packed into large myofiber bundles. Each myofiber contains periodic myofibrils built by hundreds of contractile sarcomeres that generate large mechanical forces. To better understand the mechanisms that coordinate human muscle morphogenesis from tissue to molecular scales, we adopted a simple in vitro system using induced pluripotent stem cell-derived human myogenic precursors. When grown on an unrestricted two-dimensional substrate, developing myofibers spontaneously align and self-organise into higher-order myofiber bundles, which grow and consolidate to stable sizes. Following a transcriptional boost of sarcomeric components, myofibrils assemble into chains of periodic sarcomeres that emerge across the entire myofiber. More efficient myofiber bundling accelerates the speed of sarcomerogenesis suggesting that tension generated by bundling promotes sarcomerogenesis. We tested this hypothesis by directly probing tension and found that tension build-up precedes sarcomere assembly and increases within each assembling myofibril. Furthermore, we found that myofiber ends stably attach to other myofibers using integrin-based attachments and thus myofiber bundling coincides with stable myofiber bundle attachment in vitro. A failure in stable myofiber attachment results in a collapse of the myofibrils. Overall, our results strongly suggest that mechanical tension across sarcomeric components as well as between differentiating myofibers is key to coordinate the multi-scale self-organisation of muscle morphogenesis.

Funder

Human Frontier Science Program

Centre National de la Recherche Scientifique

European Research Council

Aix-Marseille Université

Agence Nationale de la Recherche

Turing Centre for Living Systems

Eunice Kennedy Shriver National Institute of Child Health and Human Development

"la Caixa" Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

Reference83 articles.

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