Agent-based model provides insight into the mechanisms behind failed regeneration following volumetric muscle loss injury

被引:11
作者
Westman, Amanda M. [1 ,2 ]
Peirce, Shayn M. [1 ,2 ]
Christ, George J. [1 ,3 ]
Blemker, Silvia S. [1 ,2 ,3 ,4 ]
机构
[1] Univ Virginia, Biomed Engn, Charlottesville, VA USA
[2] Univ Virginia, Ophthalmol, Charlottesville, VA USA
[3] Univ Virginia, Orthopaed Surg, Charlottesville, VA USA
[4] Univ Virginia, Mech & Aerosp Engn, Charlottesville, VA USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
GROWTH-FACTOR-BETA; CONNECTIVE-TISSUE FIBROBLASTS; ACELLULAR BIOLOGIC SCAFFOLD; ADULT SKELETAL-MUSCLE; SATELLITE CELLS; FACTOR-I; FIBRO/ADIPOGENIC PROGENITORS; FUNCTIONAL RECOVERY; MUSCULAR-DYSTROPHY; SELF-RENEWAL;
D O I
10.1371/journal.pcbi.1008937
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Skeletal muscle possesses a remarkable capacity for repair and regeneration following a variety of injuries. When successful, this highly orchestrated regenerative process requires the contribution of several muscle resident cell populations including satellite stem cells (SSCs), fibroblasts, macrophages and vascular cells. However, volumetric muscle loss injuries (VML) involve simultaneous destruction of multiple tissue components (e.g., as a result of battlefield injuries or vehicular accidents) and are so extensive that they exceed the intrinsic capability for scarless wound healing and result in permanent cosmetic and functional deficits. In this scenario, the regenerative process fails and is dominated by an unproductive inflammatory response and accompanying fibrosis. The failure of current regenerative therapeutics to completely restore functional muscle tissue is not surprising considering the incomplete understanding of the cellular mechanisms that drive the regeneration response in the setting of VML injury. To begin to address this profound knowledge gap, we developed an agent-based model to predict the tissue remodeling response following surgical creation of a VML injury. Once the model was able to recapitulate key aspects of the tissue remodeling response in the absence of repair, we validated the model by simulating the tissue remodeling response to VML injury following implantation of either a decellularized extracellular matrix scaffold or a minced muscle graft. The model suggested that the SSC microenvironment and absence of pro-differentiation SSC signals were the most important aspects of failed muscle regeneration in VML injuries. The major implication of this work is that agent-based models may provide a much-needed predictive tool to optimize the design of new therapies, and thereby, accelerate the clinical translation of regenerative therapeutics for VML injuries. Author summary For common muscle injuries, such as lacerations or strains, skeletal muscle has the ability to repair itself through a series of highly orchestrated cellular processes. However, in the case of volumetric muscle loss (VML) injuries, a large amount of muscle is removed and the muscle's intrinsic regenerative process fails resulting in the injury filling with fibrotic tissue. Currently there are no therapies that adequately repair muscle tissue for VML injuries, and a contributing factor is that the cellular mechanisms driving the response to these injuries are poorly understood. To aid in addressing this knowledge gap, we have developed an agent-based model to capture the cellular remodeling processes following the creation of a VML injury. We have demonstrated that our model is capable of predicting the key aspects of tissue remodeling following VML injury. Moving forward, our model can be used as a predictive tool to assess the ability of new therapies to repair VML injuries and thereby accelerate the development of improved treatments to the clinic.
引用
收藏
页数:29
相关论文
共 112 条
[1]   Human skeletal muscle fibroblasts, but not myogenic cells, readily undergo adipogenic differentiation [J].
Agley, Chibeza C. ;
Rowlerson, Anthea M. ;
Velloso, Cristiana P. ;
Lazarus, Norman R. ;
Harridge, Stephen D. R. .
JOURNAL OF CELL SCIENCE, 2013, 126 (24) :5610-5625
[2]  
AGUILAR CA, 2018, CELL DEATH DISCOV, V4
[3]   REGULATION OF SKELETAL-MUSCLE SATELLITE CELL-PROLIFERATION AND DIFFERENTIATION BY TRANSFORMING GROWTH FACTOR-BETA, INSULIN-LIKE GROWTH FACTOR-I, AND FIBROBLAST GROWTH-FACTOR [J].
ALLEN, RE ;
BOXHORN, LK .
JOURNAL OF CELLULAR PHYSIOLOGY, 1989, 138 (02) :311-315
[4]   Inflammatory monocytes recruited after skeletal muscle injury switch into antiinflammatory macrophages to support myogenesis [J].
Arnold, Ludovic ;
Henry, Adeline ;
Poron, Francoise ;
Baba-Amer, Yasmine ;
van Rooijen, Nico ;
Plonquet, Anne ;
Gherardi, Romain K. ;
Chazaud, Benedicte .
JOURNAL OF EXPERIMENTAL MEDICINE, 2007, 204 (05) :1057-1069
[5]   A Porcine Urinary Bladder Matrix Does Not Recapitulate the Spatiotemporal Macrophage Response of Muscle Regeneration after Volumetric Muscle Loss Injury [J].
Aurora, Amit ;
Corona, Benjamin T. ;
Walters, Thomas J. .
CELLS TISSUES ORGANS, 2015, 202 (3-4) :189-201
[6]   An acellular biologic scaffold does not regenerate appreciable de novo muscle tissue in rat models of volumetric muscle loss injury [J].
Aurora, Amit ;
Roe, Janet L. ;
Corona, Benjamin T. ;
Walters, Thomas J. .
BIOMATERIALS, 2015, 67 :393-407
[7]  
Baker HB, 2017, TISSUE ENG PT A, V23, P572, DOI [10.1089/ten.tea.2016.0457, 10.1089/ten.TEA.2016.0457]
[8]   Building Muscle: Molecular Regulation of Myogenesis [J].
Bentzinger, C. Florian ;
Wang, Yu Xin ;
Rudnicki, Michael A. .
COLD SPRING HARBOR PERSPECTIVES IN BIOLOGY, 2012, 4 (02)
[9]   Essential environmental cues from the satellite cell niche: optimizing proliferation and differentiation [J].
Boonen, K. J. M. ;
Rosaria-Chak, K. Y. ;
Baaijens, F. P. T. ;
van der Schaft, D. W. J. ;
Post, M. J. .
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2009, 296 (06) :C1338-C1345
[10]  
CARLSON BM, 1983, MED SCI SPORT EXER, V15, P187