Literature DB >> 15601570

Skeletal muscle tissue engineering.

A D Bach1, J P Beier, J Stern-Staeter, R E Horch.   

Abstract

The reconstruction of skeletal muscle tissue either lost by traumatic injury or tumor ablation or functional damage due to myopathies is hampered by the lack of availability of functional substitution of this native tissue. Until now, only few alternatives exist to provide functional restoration of damaged muscle tissues. Loss of muscle mass and their function can surgically managed in part using a variety of muscle transplantation or transposition techniques. These techniques represent a limited degree of success in attempts to restore the normal functioning, however they are not perfect solutions. A new alternative approach to addressing difficult tissue reconstruction is to engineer new tissues. Although those tissue engineering techniques attempting regeneration of human tissues and organs have recently entered into clinical practice, the engineering of skeletal muscle tissue ist still a scientific challenge. This article reviews some of the recent findings resulting from tissue engineering science related to the attempt of creation and regeneration of functional skeletal muscle tissue.

Entities:  

Mesh:

Year:  2004        PMID: 15601570      PMCID: PMC6740234          DOI: 10.1111/j.1582-4934.2004.tb00466.x

Source DB:  PubMed          Journal:  J Cell Mol Med        ISSN: 1582-1838            Impact factor:   5.310


  65 in total

1.  Local tissue geometry determines contractile force generation of engineered muscle networks.

Authors:  Weining Bian; Mark Juhas; Terry W Pfeiler; Nenad Bursac
Journal:  Tissue Eng Part A       Date:  2012-01-04       Impact factor: 3.845

Review 2.  Advances in musculoskeletal tissue engineering: moving towards therapy.

Authors:  Carlo Alberto Rossi; Michela Pozzobon; Paolo De Coppi
Journal:  Organogenesis       Date:  2010 Jul-Sep       Impact factor: 2.500

3.  Photolithographic patterning of C2C12 myotubes using vitronectin as growth substrate in serum-free medium.

Authors:  Peter Molnar; Weishi Wang; Anupama Natarajan; John W Rumsey; James J Hickman
Journal:  Biotechnol Prog       Date:  2007 Jan-Feb

4.  Implanted scaffold-free prevascularized constructs promote tissue repair.

Authors:  Caitlin A Czajka; Bennet W Calder; Michael J Yost; Christopher J Drake
Journal:  Ann Plast Surg       Date:  2015-03       Impact factor: 1.539

Review 5.  [Regenerative medicine in head and neck reconstructive surgery].

Authors:  F Riedel; U R Goessler; J Stern-Straeter; K Riedel; K Hörmann
Journal:  HNO       Date:  2008-03       Impact factor: 1.284

6.  Porous ceramic bone scaffolds for vascularized bone tissue regeneration.

Authors:  Julia Will; Reinhold Melcher; Cornelia Treul; Nahum Travitzky; Ulrich Kneser; Elias Polykandriotis; Raymund Horch; Peter Greil
Journal:  J Mater Sci Mater Med       Date:  2008-02-29       Impact factor: 3.896

7.  Regulation of skeletal muscle differentiation in fibroblasts by exogenous MyoD gene in vitro and in vivo.

Authors:  Rui-Feng Qin; Tian-Qiu Mao; Xiao-Ming Gu; Kai-Jing Hu; Yan-Pu Liu; Jin-Wu Chen; Xin Nie
Journal:  Mol Cell Biochem       Date:  2007-04-06       Impact factor: 3.396

Review 8.  Electrical stimulation as a biomimicry tool for regulating muscle cell behavior.

Authors:  Samad Ahadian; Serge Ostrovidov; Vahid Hosseini; Hirokazu Kaji; Murugan Ramalingam; Hojae Bae; Ali Khademhosseini
Journal:  Organogenesis       Date:  2013-04-01       Impact factor: 2.500

9.  Engineered skeletal muscle tissue networks with controllable architecture.

Authors:  Weining Bian; Nenad Bursac
Journal:  Biomaterials       Date:  2008-12-12       Impact factor: 12.479

10.  Fabrication of skeletal muscle constructs by topographic activation of cell alignment.

Authors:  Yi Zhao; Hansong Zeng; Jin Nam; Sudha Agarwal
Journal:  Biotechnol Bioeng       Date:  2009-02-01       Impact factor: 4.530

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