用TrapFISH排列水凝胶鉴定转录物

IF 6.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
David B. Morse, Zenon Toprakcioglu, Akhila Denduluri-Marthi, James D. Brenton, Craig J. Thomas, Tuomas P. J. Knowles
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引用次数: 0

摘要

3 '单细胞转录组学旨在揭示许多细胞的转录丰度,以加深对细胞多样性的理解。然而,测序能力往往是这些实验的瓶颈,限制了可以分析的细胞数量。本研究介绍了trapFISH,这是一种高度可扩展的概念验证方法,通过将细胞嵌入水凝胶珠中,在微流体室中排列这些珠,并使用探针杂交进行靶向转录物定量,扩展了单细胞转录组学的能力。这种方法通过专注于定制基因面板,提高通量和促进稀有细胞状态的发现,减轻了测序的局限性。此外,微流体捕获通过将转录测量直接与单个水凝胶联系起来,消除了细胞条形码的必要性。这些发现表明,trapFISH提高了可扩展性,同时保持了鉴定关键细胞转录本的高精度,为大规模基因组分析开辟了新的途径。通过优先考虑生物学上有意义的基因表达模式,trapFISH为单细胞表征提供了精确有效的工具,扩大了转录组学方法的灵活性和适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Transcript Identification Using Arrayed Hydrogels With TrapFISH

Transcript Identification Using Arrayed Hydrogels With TrapFISH

Transcript Identification Using Arrayed Hydrogels With TrapFISH

Transcript Identification Using Arrayed Hydrogels With TrapFISH

Transcript Identification Using Arrayed Hydrogels With TrapFISH

3′ single-cell transcriptomics aims to uncover transcript abundance across numerous cells to deepen this understanding of cellular diversity. However, sequencing capacity is often a bottleneck in these experiments, limiting the number of cells that can be profiled. This study introduces trapFISH, a highly scalable proof-of-concept method that extends the capabilities of single-cell transcriptomics by embedding cells in hydrogel beads, arraying these beads in microfluidic chambers, and using probe-hybridization for targeted transcript quantification. This approach mitigates sequencing limitations by focusing on custom gene panels, enhancing throughput and facilitating the discovery of rare cell states. Moreover, microfluidic trapping removes the necessity for cell barcoding by linking transcriptional measurements directly with individual hydrogels. These findings demonstrate that trapFISH improves scalability while maintaining high accuracy in identifying key cellular transcripts, opening new avenues in large-scale genomic profiling. By prioritizing biologically meaningful gene expression patterns, trapFISH provides a precise and efficient tool for single-cell characterization, expanding the flexibility and applicability of transcriptomics methods.

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来源期刊
Advanced Materials Technologies
Advanced Materials Technologies Materials Science-General Materials Science
CiteScore
10.20
自引率
4.40%
发文量
566
期刊介绍: Advanced Materials Technologies Advanced Materials Technologies is the new home for all technology-related materials applications research, with particular focus on advanced device design, fabrication and integration, as well as new technologies based on novel materials. It bridges the gap between fundamental laboratory research and industry.
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