Literature DB >> 26219862

Biomimetic scaffolds for regeneration of volumetric muscle loss in skeletal muscle injuries.

Jonathan M Grasman1, Michelle J Zayas2, Raymond L Page1, George D Pins3.   

Abstract

Skeletal muscle injuries typically result from traumatic incidents such as combat injuries where soft-tissue extremity injuries are present in one of four cases. Further, about 4.5 million reconstructive surgical procedures are performed annually as a result of car accidents, cancer ablation, or cosmetic procedures. These combat- and trauma-induced skeletal muscle injuries are characterized by volumetric muscle loss (VML), which significantly reduces the functionality of the injured muscle. While skeletal muscle has an innate repair mechanism, it is unable to compensate for VML injuries because large amounts of tissue including connective tissue and basement membrane are removed or destroyed. This results in a significant need to develop off-the-shelf biomimetic scaffolds to direct skeletal muscle regeneration. Here, the structure and organization of native skeletal muscle tissue is described in order to reveal clear design parameters that are necessary for scaffolds to mimic in order to successfully regenerate muscular tissue. We review the literature with respect to the materials and methodologies used to develop scaffolds for skeletal muscle tissue regeneration as well as the limitations of these materials. We further discuss the variety of cell sources and different injury models to provide some context for the multiple approaches used to evaluate these scaffold materials. Recent findings are highlighted to address the state of the field and directions are outlined for future strategies, both in scaffold design and in the use of different injury models to evaluate these materials, for regenerating functional skeletal muscle. STATEMENT OF SIGNIFICANCE: Volumetric muscle loss (VML) injuries result from traumatic incidents such as those presented from combat missions, where soft-tissue extremity injuries are represented in one of four cases. These injuries remove or destroy large amounts of skeletal muscle including the basement membrane and connective tissue, removing the structural, mechanical, and biochemical cues that usually direct its repair. This results in a significant need to develop off-the-shelf biomimetic scaffolds to direct skeletal muscle regeneration. In this review, we examine current strategies for the development of scaffold materials designed for skeletal muscle regeneration, highlighting advances and limitations associated with these methodologies. Finally, we identify future approaches to enhance skeletal muscle regeneration.
Copyright © 2015 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Biomaterials; Fibrin; Microthreads; Skeletal muscle regeneration; Tissue engineering

Mesh:

Year:  2015        PMID: 26219862      PMCID: PMC4562809          DOI: 10.1016/j.actbio.2015.07.038

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  220 in total

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2.  Development of a biological scaffold engineered using the extracellular matrix secreted by skeletal muscle cells.

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Journal:  Biomaterials       Date:  2015-02-11       Impact factor: 12.479

Review 3.  Fiber types in mammalian skeletal muscles.

Authors:  Stefano Schiaffino; Carlo Reggiani
Journal:  Physiol Rev       Date:  2011-10       Impact factor: 37.312

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Journal:  Biomed Mater Eng       Date:  2001       Impact factor: 1.300

5.  Effect of implantation on engineered skeletal muscle constructs.

Authors:  Michael L Williams; Tatiana Y Kostrominova; Ellen M Arruda; Lisa M Larkin
Journal:  J Tissue Eng Regen Med       Date:  2012-02-10       Impact factor: 3.963

Review 6.  A home away from home: challenges and opportunities in engineering in vitro muscle satellite cell niches.

Authors:  Benjamin D Cosgrove; Alessandra Sacco; Penney M Gilbert; Helen M Blau
Journal:  Differentiation       Date:  2009 Sep-Oct       Impact factor: 3.880

7.  Implantation of in vitro tissue engineered muscle repair constructs and bladder acellular matrices partially restore in vivo skeletal muscle function in a rat model of volumetric muscle loss injury.

Authors:  Benjamin T Corona; Catherine L Ward; Hannah B Baker; Thomas J Walters; George J Christ
Journal:  Tissue Eng Part A       Date:  2013-12-19       Impact factor: 3.845

8.  Characterization of extremity wounds in Operation Iraqi Freedom and Operation Enduring Freedom.

Authors:  Brett D Owens; John F Kragh; Joseph Macaitis; Steven J Svoboda; Joseph C Wenke
Journal:  J Orthop Trauma       Date:  2007-04       Impact factor: 2.512

9.  Myoblast-acellular skeletal muscle matrix constructs guarantee a long-term repair of experimental full-thickness abdominal wall defects.

Authors:  Paolo De Coppi; Silvia Bellini; Maria Teresa Conconi; Morena Sabatti; Enea Simonato; Pier Giorgio Gamba; Gastone Giovanni Nussdorfer; Pier Paolo Parnigotto
Journal:  Tissue Eng       Date:  2006-07

10.  A standardized rat model of volumetric muscle loss injury for the development of tissue engineering therapies.

Authors:  Xiaowu Wu; Benjamin T Corona; Xiaoyu Chen; Thomas J Walters
Journal:  Biores Open Access       Date:  2012-12
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  52 in total

Review 1.  Recent advances in the application of mesoporous silica-based nanomaterials for bone tissue engineering.

Authors:  Reza Eivazzadeh-Keihan; Karim Khanmohammadi Chenab; Reza Taheri-Ledari; Jafar Mosafer; Seyed Masoud Hashemi; Ahad Mokhtarzadeh; Ali Maleki; Michael R Hamblin
Journal:  Mater Sci Eng C Mater Biol Appl       Date:  2019-10-15       Impact factor: 7.328

2.  Recovery from volumetric muscle loss injury: A comparison between young and aged rats.

Authors:  John T Kim; Benjamin M Kasukonis; Lemuel A Brown; Tyrone A Washington; Jeffrey C Wolchok
Journal:  Exp Gerontol       Date:  2016-07-17       Impact factor: 4.032

3.  The effect of BMP-mimetic peptide tethering bioinks on the differentiation of dental pulp stem cells (DPSCs) in 3D bioprinted dental constructs.

Authors:  Ji Hoon Park; Gregory J Gillispie; Joshua S Copus; Weibo Zhang; Anthony Atala; James J Yoo; Pamela C Yelick; Sang Jin Lee
Journal:  Biofabrication       Date:  2020-07-01       Impact factor: 9.954

4.  The characterization of decellularized human skeletal muscle as a blueprint for mimetic scaffolds.

Authors:  Klaire Wilson; Abby Terlouw; Kevin Roberts; Jeffrey C Wolchok
Journal:  J Mater Sci Mater Med       Date:  2016-06-20       Impact factor: 3.896

Review 5.  Functional and Biomimetic Materials for Engineering of the Three-Dimensional Cell Microenvironment.

Authors:  Guoyou Huang; Fei Li; Xin Zhao; Yufei Ma; Yuhui Li; Min Lin; Guorui Jin; Tian Jian Lu; Guy M Genin; Feng Xu
Journal:  Chem Rev       Date:  2017-10-09       Impact factor: 60.622

6.  Histology of skeletal muscle reconstructed by means of the implantation of autologous adipose tissue: an experimental study.

Authors:  Fernando Leiva-Cepas; Ignacio Jimena; Ignacio Ruz-Caracuel; Evelio Luque; Rafael Villalba; Jose Peña-Amaro
Journal:  Histol Histopathol       Date:  2019-09-12       Impact factor: 2.303

7.  Designing Biopolymer Microthreads for Tissue Engineering and Regenerative Medicine.

Authors:  Megan P O'Brien; Meagan E Carnes; Raymond L Page; Glenn R Gaudette; George D Pins
Journal:  Curr Stem Cell Rep       Date:  2016-04-15

8.  Intravital Imaging Reveals Ghost Fibers as Architectural Units Guiding Myogenic Progenitors during Regeneration.

Authors:  Micah T Webster; Uri Manor; Jennifer Lippincott-Schwartz; Chen-Ming Fan
Journal:  Cell Stem Cell       Date:  2015-12-10       Impact factor: 24.633

Review 9.  Anisotropic Materials for Skeletal-Muscle-Tissue Engineering.

Authors:  Soumen Jana; Sheeny K Lan Levengood; Miqin Zhang
Journal:  Adv Mater       Date:  2016-11-16       Impact factor: 30.849

Review 10.  3D Bioprinting in Skeletal Muscle Tissue Engineering.

Authors:  Serge Ostrovidov; Sahar Salehi; Marco Costantini; Kasinan Suthiwanich; Majid Ebrahimi; Ramin Banan Sadeghian; Toshinori Fujie; Xuetao Shi; Stefano Cannata; Cesare Gargioli; Ali Tamayol; Mehmet Remzi Dokmeci; Gorka Orive; Wojciech Swieszkowski; Ali Khademhosseini
Journal:  Small       Date:  2019-04-23       Impact factor: 13.281

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