Literature DB >> 15252108

Engineering principles of clinical cell-based tissue engineering.

George F Muschler1, Chizu Nakamoto, Linda G Griffith.   

Abstract

Tissue engineering is a rapidly evolving discipline that seeks to repair, replace, or regenerate specific tissues or organs by translating fundamental knowledge in physics, chemistry, and biology into practical and effective materials, devices, systems, and clinical strategies. Stem cells and progenitors that are capable of forming new tissue with one or more connective tissue phenotypes are available from many adult tissues and are defined as connective tissue progenitors. There are four major cell-based tissue-engineering strategies: (1) targeting local connective tissue progenitors where new tissue is desired, (2) transplanting autogenous connective tissue progenitors, (3) transplanting culture-expanded or modified connective tissue progenitors, and (4) transplanting fully formed tissue generated in vitro or in vivo. Stem cell function is controlled by changes in stem cell activation and self-renewal or by changes in the proliferation, migration, differentiation, or survival of the progeny of stem cell activation, the downstream progenitor cells. Three-dimensional porous scaffolds promote new tissue formation by providing a surface and void volume that promotes the attachment, migration, proliferation, and desired differentiation of connective tissue progenitors throughout the region where new tissue is needed. Critical variables in scaffold design and function include the bulk material or materials from which it is made, the three-dimensional architecture, the surface chemistry, the mechanical properties, the initial environment in the area of the scaffold, and the late scaffold environment, which is often determined by degradation characteristics. Local presentation or delivery of bioactive molecules can change the function of connective tissue progenitors (activation, proliferation, migration, differentiation, or survival) in a manner that results in new or enhanced local tissue formation. All cells require access to substrate molecules (oxygen, glucose, and amino acids). A balance between consumption and local delivery of these substrates is needed if cells are to survive. Transplanted cells are particularly vulnerable. Theoretical calculations can be used to explore the relationships among cell density, diffusion distance, and cell viability within a graft and to design improved strategies for transplantation of connective tissue progenitors. Rational strategies for tissue engineering seek to optimize new tissue formation through the logical selection of conditions that modulate the performance of connective tissue progenitors in a graft site to produce a desired tissue. This increasingly involves strategies that combine cells, matrices, inductive stimuli, and techniques that enhance the survival and performance of local or transplanted connective tissue progenitors.

Entities:  

Mesh:

Year:  2004        PMID: 15252108     DOI: 10.2106/00004623-200407000-00029

Source DB:  PubMed          Journal:  J Bone Joint Surg Am        ISSN: 0021-9355            Impact factor:   5.284


  194 in total

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2.  Maintaining cell depth viability: on the efficacy of a trimodal scaffold pore architecture and dynamic rotational culturing.

Authors:  Conor Timothy Buckley; Kevin Unai O'Kelly
Journal:  J Mater Sci Mater Med       Date:  2010-02-17       Impact factor: 3.896

3.  Efficient in vivo vascularization of tissue-engineering scaffolds.

Authors:  Anja Hegen; Anna Blois; Crina E Tiron; Monica Hellesøy; David R Micklem; Jacques E Nör; Lars A Akslen; James B Lorens
Journal:  J Tissue Eng Regen Med       Date:  2010-09-23       Impact factor: 3.963

4.  Bone transplantation and tissue engineering, part IV. Mesenchymal stem cells: history in orthopedic surgery from Cohnheim and Goujon to the Nobel Prize of Yamanaka.

Authors:  Philippe Hernigou
Journal:  Int Orthop       Date:  2015-03-07       Impact factor: 3.075

5.  Biomimetic gradient scaffold from ice-templating for self-seeding of cells with capillary effect.

Authors:  Hao Bai; Dong Wang; Benjamin Delattre; Weiwei Gao; Joël De Coninck; Song Li; Antoni P Tomsia
Journal:  Acta Biomater       Date:  2015-04-11       Impact factor: 8.947

6.  Optimization strategies for electrospun silk fibroin tissue engineering scaffolds.

Authors:  Anne J Meinel; Kristopher E Kubow; Enrico Klotzsch; Marcos Garcia-Fuentes; Michael L Smith; Viola Vogel; Hans P Merkle; Lorenz Meinel
Journal:  Biomaterials       Date:  2009-02-23       Impact factor: 12.479

7.  Variation in primary and culture-expanded cells derived from connective tissue progenitors in human bone marrow space, bone trabecular surface and adipose tissue.

Authors:  Maha A Qadan; Nicolas S Piuzzi; Cynthia Boehm; Wesley Bova; Malcolm Moos; Ronald J Midura; Vincent C Hascall; Christopher Malcuit; George F Muschler
Journal:  Cytotherapy       Date:  2018-02-01       Impact factor: 5.414

8.  Downregulation of metabolic activity increases cell survival under hypoxic conditions: potential applications for tissue engineering.

Authors:  Jaehyun Kim; Karl-Erik Andersson; John D Jackson; Sang Jin Lee; Anthony Atala; James J Yoo
Journal:  Tissue Eng Part A       Date:  2014-07-02       Impact factor: 3.845

Review 9.  Heart regeneration with engineered myocardial tissue.

Authors:  Kareen L K Coulombe; Vivek K Bajpai; Stelios T Andreadis; Charles E Murry
Journal:  Annu Rev Biomed Eng       Date:  2014-04-24       Impact factor: 9.590

10.  Platelets and plasma proteins are both required to stimulate collagen gene expression by anterior cruciate ligament cells in three-dimensional culture.

Authors:  Mingyu Cheng; Hao Wang; Ryu Yoshida; Martha Meaney Murray
Journal:  Tissue Eng Part A       Date:  2010-05       Impact factor: 3.845

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