Literature DB >> 30063260

3D Spatiotemporal Mechanical Microenvironment: A Hydrogel-Based Platform for Guiding Stem Cell Fate.

Yufei Ma1,2, Min Lin1,2, Guoyou Huang1,2, Yuhui Li1,2, Shuqi Wang3,4,5, Guiqin Bai6, Tian Jian Lu2,7, Feng Xu1,2.   

Abstract

Stem cells hold great promise for widespread biomedical applications, for which stem cell fate needs to be well tailored. Besides biochemical cues, accumulating evidence has demonstrated that spatiotemporal biophysical cues (especially mechanical cues) imposed by cell microenvironments also critically impact on the stem cell fate. As such, various biomaterials, especially hydrogels due to their tunable physicochemical properties and advanced fabrication approaches, are developed to spatiotemporally manipulate biophysical cues in vitro so as to recapitulate the 3D mechanical microenvironment where stem cells reside in vivo. Here, the main mechanical cues that stem cells experience in their native microenvironment are summarized. Then, recent advances in the design of hydrogel materials with spatiotemporally tunable mechanical properties for engineering 3D the spatiotemporal mechanical microenvironment of stem cells are highlighted. These in vitro engineered spatiotemporal mechanical microenvironments are crucial for guiding stem cell fate and their potential biomedical applications are subsequently discussed. Finally, the challenges and future perspectives are presented.
© 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Keywords:  cell microenvironments; hydrogels; mechanical cues; polymeric design; spatiotemporal control

Mesh:

Substances:

Year:  2018        PMID: 30063260     DOI: 10.1002/adma.201705911

Source DB:  PubMed          Journal:  Adv Mater        ISSN: 0935-9648            Impact factor:   30.849


  27 in total

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5.  Paper-based in vitro tissue chip for delivering programmed mechanical stimuli of local compression and shear flow.

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Review 8.  Nanomaterials for Wound Dressings: An Up-to-Date Overview.

Authors:  Alexandra Elena Stoica; Cristina Chircov; Alexandru Mihai Grumezescu
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9.  Reversible Mechanical Regulation and Splicing Ability of Alginate-Based Gel Based on Photo-Responsiveness of Molecular-Level Conformation.

Authors:  Xiaozhou Ma; Linhai He; Xingjie Wan; Shunyu Xiang; Yu Fan; Xia Xiong; Lin Gan; Jin Huang
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Review 10.  Matrix Mechanics as Regulatory Factors and Therapeutic Targets in Hepatic Fibrosis.

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