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从(病理)生理学组织硬度中吸取的教训及其对药物筛选、药物输送和再生医学的影响。

Lessons from (patho)physiological tissue stiffness and their implications for drug screening, drug delivery and regenerative medicine.

机构信息

Institute of Biomaterials and Biomedical Engineering, University of Toronto, Ontario, Canada.

出版信息

Adv Drug Deliv Rev. 2011 Apr 30;63(4-5):269-76. doi: 10.1016/j.addr.2011.01.004. Epub 2011 Jan 15.

Abstract

Diseased tissues are noted for their compromised mechanical properties, which contribute to organ failure; regeneration entails restoration of tissue structure and thereby functions. Thus, the physical signature of a tissue is closely associated with its biological function. In this review, we consider a mechanics-centric view of disease and regeneration by drawing parallels between in vivo tissue-level observations and corroborative cellular evidence in vitro to demonstrate the importance of the mechanical stiffness of the extracellular matrix in these processes. This is not intended to devalue the importance of biochemical signaling; in fact, as we discuss, many mechanical stiffness-driven processes not only require cooperation with biochemical cues, but they ultimately converge at common signaling cascades to influence cell and tissue function in an integrative manner. The study of how physical and biochemical signals collectively modulate cell function not only brings forth a more holistic understanding of cell (patho)biology, but it also creates opportunities to control material properties to improve culture platforms for research and drug screening and aid in the rationale design of biomaterials for molecular therapy and tissue engineering applications.

摘要

病变组织的机械性能受损,这导致了器官衰竭;组织的再生需要恢复组织结构,从而恢复其功能。因此,组织的物理特征与其生物功能密切相关。在这篇综述中,我们通过比较体内组织水平的观察结果和体外的细胞证据,从力学角度来看待疾病和再生,证明了细胞外基质的机械硬度在这些过程中的重要性。这并不是为了贬低生化信号的重要性;事实上,正如我们所讨论的,许多由机械硬度驱动的过程不仅需要与生化信号合作,而且最终会在共同的信号级联中收敛,以综合的方式影响细胞和组织的功能。研究物理和生化信号如何共同调节细胞功能不仅可以更全面地了解细胞(病理)生物学,还为控制材料性能提供了机会,从而改善研究和药物筛选的培养平台,并有助于合理设计用于分子治疗和组织工程应用的生物材料。

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