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用于形态组学和空间组学应用的微流控技术。

Microfluidics for morpholomics and spatial omics applications.

作者信息

Venugopal Menon Nishanth, Lee Jeeyeon, Tang Tao, Lim Chwee Teck

机构信息

Mechanobiology Institute, National University of Singapore, Singapore, 117411 Singapore.

Institute for Digital Molecular Analytics and Science, Nanyang Technological University, 636921, Singapore.

出版信息

Lab Chip. 2025 Feb 25;25(5):752-763. doi: 10.1039/d4lc00869c.

Abstract

Creative designs, precise fluidic manipulation, and automation have supported the development of microfluidics for single-cell applications. Together with the advancements in detection technologies and artificial intelligence (AI), microfluidic-assisted platforms have been increasingly used for new modalities of single-cell investigations and in spatial omics applications. This review explores the use of microfluidic technologies for morpholomics and spatial omics with a focus on single-cell and tissue characterization. We emphasize how various fluid dynamic principles and unique design integrations enable highly precise fluid manipulation, enhancing sample handling in morpholomics. Additionally, we examine the use of microfluidics-assisted spatial barcoding with micrometer resolutions for the spatial profiling of tissue specimens. Finally, we discuss how microfluidics can serve as a bridge for integrating multiple unique fields in omics research and outline key challenges that these technologies may face in practical translation.

摘要

创新设计、精确的流体操控和自动化推动了用于单细胞应用的微流控技术的发展。随着检测技术和人工智能(AI)的进步,微流控辅助平台越来越多地用于单细胞研究的新方法以及空间组学应用。本综述探讨了微流控技术在形态组学和空间组学中的应用,重点是单细胞和组织表征。我们强调各种流体动力学原理和独特的设计整合如何实现高度精确的流体操控,从而在形态组学中增强样本处理能力。此外,我们研究了具有微米分辨率的微流控辅助空间条形码技术在组织标本空间分析中的应用。最后,我们讨论了微流控技术如何作为整合组学研究中多个独特领域的桥梁,并概述了这些技术在实际转化中可能面临的关键挑战。

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