Decellularized skeletal muscles display neurotrophic effects in three-dimensional organotypic cultures

Author:

Raffa Paolo12,Scattolini Valentina12,Gerli Mattia Francesco Maria3,Perin Silvia3,Cui Meihua4,De Coppi Paolo3,Elvassore Nicola1345,Caccin Paola6,Luni Camilla4,Urciuolo Anna37

Affiliation:

1. Veneto Institute of Molecular Medicine, Padova, Italy

2. Women’s and Children’s Health Department University of Padova, Padova, Italy

3. University College London Great Ormond Street Institute of Child Health, London, UK

4. Shanghai Institute for Advanced Immunochemical Studies (SIAIS) ShanghaiTech University, Shanghai, People’s Republic of China

5. Industrial Engineering Department University of Padova, Padova, Italy

6. Biomedical Science Department University of Padova, Padova, Italy

7. Institute of Pediatric Research (IRP), Fondazione Città della Speranza, Padova, Italy

Abstract

Abstract Skeletal muscle decellularization allows the generation of natural scaffolds that retain the extracellular matrix (ECM) mechanical integrity, biological activity, and three-dimensional (3D) architecture of the native tissue. Recent reports showed that in vivo implantation of decellularized muscles supports muscle regeneration in volumetric muscle loss models, including nervous system and neuromuscular junctional homing. Since the nervous system plays pivotal roles during skeletal muscle regeneration and in tissue homeostasis, support of reinnervation is a crucial aspect to be considered. However, the effect of decellularized muscles on reinnervation and on neuronal axon growth has been poorly investigated. Here, we characterized residual protein composition of decellularized muscles by mass spectrometry and we show that scaffolds preserve structural proteins of the ECM of both skeletal muscle and peripheral nervous system. To investigate whether decellularized scaffolds could per se attract neural axons, organotypic sections of spinal cord were cultured three dimensionally in vitro, in presence or in absence of decellularized muscles. We found that neural axons extended from the spinal cord are attracted by the decellularized muscles and penetrate inside the scaffolds upon 3D coculture. These results demonstrate that decellularized scaffolds possess intrinsic neurotrophic properties, supporting their potential use for the treatment of clinical cases where extensive functional regeneration of the muscle is required.

Funder

STARS Starting Grant 2017 of University of Padova

Shanghai Tech University

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,General Medicine

Reference55 articles.

1. Challenges With the Development of Biomaterials for Sustainable Tissue Engineering;Williams;Frontiers in Bioengineering and Biotechnology,2019

2. The extracellular matrix at a glance;Frantz;J Cell Sci,2010

3. Mechanotransduction and extracellular matrix homeostasis;Humphrey;Nat Rev Mol Cell Biol,2014

4. Strategies based on organ decellularization and recellularization;Hillebrandt;Transpl Int,2019

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