Generation of a Functioning and Self-Renewing Diaphragmatic Muscle Construct

Author:

Trevisan Caterina12,Fallas Mario Enrique Alvrez12,Maghin Edoardo12,Franzin Chiara1,Pavan Piero134,Caccin Paola5,Chiavegato Angela56,Carraro Eugenia1,Boso Daniele1,Boldrin Francesco7,Caicci Federico7,Bertin Enrica1,Urbani Luca8910,Milan Anna12,Biz Carlo11,Lazzari Lorenza12,De Coppi Paolo813,Pozzobon Michela12,Piccoli Martina15

Affiliation:

1. Fondazione Istituto di Ricerca Pediatrica Città della Speranza, Padova, Italy

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

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

4. Centre for Mechanics of Biological Materials University of Padova, Padova, Italy

5. Department of Biomedical Sciences University of Padova, Padova, Italy

6. CNR Institute for Neuroscience, Padova, Italy

7. Department of Biology University of Padova, Padova, Italy

8. Stem Cells & Regenerative Medicine Section Developmental Biology & Cancer Programme, UCL Great Ormond Street Institute of Child Health, London, United Kingdom

9. Institute of Hepatology The Foundation for Liver Research, London, United Kingdom

10. Faculty of Life Sciences & Medicine King's College, London, United Kingdom

11. Department of Surgery, Oncology, and Gastroenterology DiSCOG Orthopaedic Clinic, University of Padova, Padua, Italy

12. Laboratory of Regenerative Medicine – Cell Factory Department of Transfusion Medicine and Hematology, Fondazione IRCCS Ca' Granda Ospedale Maggiore Policlinico, Milano, Italy

13. Specialist Neonatal and Paediatric Surgery Great Ormond Street Institute of Child Health, London, United Kingdom

Abstract

Abstract Surgical repair of large muscular defects requires the use of autologous graft transfer or prosthetic material. Naturally derived matrices are biocompatible materials obtained by tissue decellularization and are commonly used in clinical practice. Despite promising applications described in the literature, the use of acellular matrices to repair large defects has been only partially successful, highlighting the need for more efficient constructs. Scaffold recellularization by means of tissue engineering may improve not only the structure of the matrix, but also its ability to functionally interact with the host. The development of such a complex construct is challenging, due to the complexity of the native organ architecture and the difficulties in recreating the cellular niche with both proliferative and differentiating potential during growth or after damage. In this study, we tested a mouse decellularized diaphragmatic extracellular matrix (ECM) previously described by our group, for the generation of a cellular skeletal muscle construct with functional features. The decellularized matrix was stored using different conditions to mimic the off-the-shelf clinical need. Pediatric human muscle precursors were seeded into the decellularized scaffold, demonstrating proliferation and differentiation capability, giving rise to a functioning three-dimensional skeletal muscle structure. Furthermore, we exposed the engineered construct to cardiotoxin injury and demonstrated its ability to activate a regenerative response in vitro promoting cell self-renewal and a positive ECM remodeling. Functional reconstruction of an engineered skeletal muscle with maintenance of a stem cell pool makes this a promising tool toward future clinical applications in diaphragmatic regeneration. Stem Cells Translational Medicine  2019;8:858–869

Funder

Fondazione Istituto di Ricerca Pediatrica Città della Speranza

University of Padova

NIHR

Università degli Studi di Padova

National Institute for Health Research

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,General Medicine

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