De Saram Prabuddha, Nguyen Nam-Trung, Jamali Sina, Kashaninejad Navid
Queensland Micro- and Nanotechnology Centre Nathan Campus Griffith University 170 Kessels Road Brisbane QLD 4111 Australia.
Small Sci. 2024 Dec 9;5(4):2400410. doi: 10.1002/smsc.202400410. eCollection 2025 Apr.
Eukaryotic cells possess the remarkable ability to sense and respond to mechanical cues from their extracellular environment, a phenomenon known as mechanobiology, which is crucial for the proper functioning of biological systems. Micropillars have emerged as a prominent tool for quantifying cellular forces and have demonstrated versatility beyond force measurement, including the modulation of the extracellular environment and the facilitation of mechano-stimulation. In this comprehensive review, innovative strategies in micropillars' design, fabrication, characterization, and biosensing applications are explored. The review begins with a foundational overview of micropillar-based cell mechanobiology studies to provide a complete understanding, and then it delves into novel methodologies within each domain. The latter part of the review unveils innovative micropillars' applications beyond mechanobiology, such as their use in enhancing biosensing surfaces and as upstream fluid manipulators for biosensors. Finally, in this review, future research directions are discussed and the current limitations of these techniques are outlined. Despite the extensive exploration of micropillar applications, a significant gap remains between research advancements and the practical implementation of micropillars in point-of-care diagnostics. Bridging this gap is crucial for translating laboratory innovations into real-world medical and diagnostic tools.
真核细胞具有非凡的能力来感知并响应来自细胞外环境的机械信号,这一现象被称为机械生物学,对生物系统的正常运作至关重要。微柱已成为量化细胞力的一种重要工具,并且已证明其用途广泛,不仅限于力的测量,还包括对细胞外环境的调节以及机械刺激的促进。在这篇全面的综述中,探讨了微柱在设计、制造、表征和生物传感应用方面的创新策略。综述首先对基于微柱的细胞机械生物学研究进行了基础概述,以提供全面的理解,然后深入研究每个领域内的新方法。综述的后半部分揭示了微柱在机械生物学之外的创新应用,例如它们在增强生物传感表面以及作为生物传感器的上游流体操纵器方面的应用。最后,在本综述中讨论了未来的研究方向,并概述了这些技术当前的局限性。尽管对微柱应用进行了广泛探索,但在研究进展与微柱在即时诊断中的实际应用之间仍存在显著差距。弥合这一差距对于将实验室创新转化为实际的医疗和诊断工具至关重要。