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用于揭示机械生物学现象的先进材料技术。

Advanced materials technologies to unravel mechanobiological phenomena.

作者信息

Kim Hye Sung, Taghizadeh Ali, Taghizadeh Mohsen, Kim Hae-Won

机构信息

Institute of Tissue Regeneration Engineering (ITREN), Dankook University, Cheonan 31116, Republic of Korea; Mechanobiology Dental Medicine Research Center, Dankook University, Cheonan 31116, Republic of Korea; Department of Nanobiomedical Science and BK21 NBM Global Research Center for Regenerative Medicine, Dankook University, Cheonan 31116, Republic of Korea.

Institute of Tissue Regeneration Engineering (ITREN), Dankook University, Cheonan 31116, Republic of Korea; Mechanobiology Dental Medicine Research Center, Dankook University, Cheonan 31116, Republic of Korea; Department of Nanobiomedical Science and BK21 NBM Global Research Center for Regenerative Medicine, Dankook University, Cheonan 31116, Republic of Korea.

出版信息

Trends Biotechnol. 2024 Feb;42(2):179-196. doi: 10.1016/j.tibtech.2023.08.002. Epub 2023 Sep 3.

Abstract

Advancements in materials-driven mechanobiology have yielded significant progress. Mechanobiology explores how cellular and tissue mechanics impact development, physiology, and disease, where extracellular matrix (ECM) dynamically interacts with cells. Biomaterial-based platforms emulate synthetic ECMs, offering precise control over cellular behaviors by adjusting mechanical properties. Recent technological advances enable in vitro models replicating active mechanical stimuli in vivo. These models manipulate cellular mechanics even at a subcellular level. In this review we discuss recent material-based mechanomodulatory studies in mechanobiology. We highlight the endeavors to mimic the dynamic properties of native ECM during pathophysiological processes like cellular homeostasis, lineage specification, development, aging, and disease progression. These insights may inform the design of accurate in vitro mechanomodulatory platforms that replicate ECM mechanics.

摘要

材料驱动的力学生物学取得了显著进展。力学生物学探索细胞和组织力学如何影响发育、生理学和疾病,其中细胞外基质(ECM)与细胞动态相互作用。基于生物材料的平台模拟合成ECM,通过调节机械性能对细胞行为进行精确控制。最近的技术进步使体外模型能够复制体内的主动机械刺激。这些模型甚至在亚细胞水平上操纵细胞力学。在这篇综述中,我们讨论了力学生物学中最近基于材料的机械调节研究。我们强调了在细胞稳态、谱系特化、发育、衰老和疾病进展等病理生理过程中模拟天然ECM动态特性的努力。这些见解可能为复制ECM力学的精确体外机械调节平台的设计提供参考。

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