Methanol fixation and tagmentation of RNA/DNA hybrids directly enable single-cell transcriptome sequencing

ObjectiveSingle-cell transcriptome sequencing is a powerful tool for investigating cellular diversity in normal development and disease. However, prevalent methods predominantly employ 3′-end sequencing of transcripts, limiting the analysis of alternative splicing and other post-transcriptional proc...

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Main Authors: Tao Xu, Yicong Xu, Ziyang An, Yiheng Li, Jiawen Yang, Weixing Zhang, Jin Xu
Format: Article
Language:English
Published: Frontiers Media S.A. 2025-07-01
Series:Frontiers in Genetics
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Online Access:https://www.frontiersin.org/articles/10.3389/fgene.2025.1629655/full
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author Tao Xu
Yicong Xu
Ziyang An
Yiheng Li
Jiawen Yang
Weixing Zhang
Jin Xu
author_facet Tao Xu
Yicong Xu
Ziyang An
Yiheng Li
Jiawen Yang
Weixing Zhang
Jin Xu
author_sort Tao Xu
collection DOAJ
description ObjectiveSingle-cell transcriptome sequencing is a powerful tool for investigating cellular diversity in normal development and disease. However, prevalent methods predominantly employ 3′-end sequencing of transcripts, limiting the analysis of alternative splicing and other post-transcriptional processes. While full-length single-cell transcriptome sequencing methods, such as Smart-seq, offer more comprehensive information, but are restricted by low-throughput. To overcome these limitations, we propose a strategy that combines in situ reverse transcription and transposition with a high-throughput micro-fluid platform to enable scalable full-length transcriptome profiling at single-cell resolution.MethodsIn this study, we utilized methanol fixation on cultured cells to evaluate RNA integrity and cellular preservation post-fixation. In situ reverse transcription followed by RNA/DNA hybrids transposition was performed to test the efficiency of these reactions. The transposed fragments were sequenced and investigated to determine transcriptome capture efficiency. Finally, we combined in situ reactions with the 10X Genomics scATAC-seq platform to prepare a single-cell transcriptome library, aiming to assess the feasibility of full-length transcriptome sequencing at the single-cell level using this combined approach.ResultsMethanol fixation enables preservation of RNA and facilitates in situ reverse transcription of full-length cDNA. Importantly, cells maintain their integrality after reverse transcription and transposition even under low concentration of methanol. Reducing the methanol concentration to 40% further enhances transcript capture efficiency. At the single-cell level, this strategy enables the capture of full-length transcriptomes, demonstrating a great potential for application in single-cell sequencing.
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institution Kabale University
issn 1664-8021
language English
publishDate 2025-07-01
publisher Frontiers Media S.A.
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series Frontiers in Genetics
spelling doaj-art-4d740dfdb05542bd9be779e5e7b71b382025-08-20T03:34:33ZengFrontiers Media S.A.Frontiers in Genetics1664-80212025-07-011610.3389/fgene.2025.16296551629655Methanol fixation and tagmentation of RNA/DNA hybrids directly enable single-cell transcriptome sequencingTao XuYicong XuZiyang AnYiheng LiJiawen YangWeixing ZhangJin XuObjectiveSingle-cell transcriptome sequencing is a powerful tool for investigating cellular diversity in normal development and disease. However, prevalent methods predominantly employ 3′-end sequencing of transcripts, limiting the analysis of alternative splicing and other post-transcriptional processes. While full-length single-cell transcriptome sequencing methods, such as Smart-seq, offer more comprehensive information, but are restricted by low-throughput. To overcome these limitations, we propose a strategy that combines in situ reverse transcription and transposition with a high-throughput micro-fluid platform to enable scalable full-length transcriptome profiling at single-cell resolution.MethodsIn this study, we utilized methanol fixation on cultured cells to evaluate RNA integrity and cellular preservation post-fixation. In situ reverse transcription followed by RNA/DNA hybrids transposition was performed to test the efficiency of these reactions. The transposed fragments were sequenced and investigated to determine transcriptome capture efficiency. Finally, we combined in situ reactions with the 10X Genomics scATAC-seq platform to prepare a single-cell transcriptome library, aiming to assess the feasibility of full-length transcriptome sequencing at the single-cell level using this combined approach.ResultsMethanol fixation enables preservation of RNA and facilitates in situ reverse transcription of full-length cDNA. Importantly, cells maintain their integrality after reverse transcription and transposition even under low concentration of methanol. Reducing the methanol concentration to 40% further enhances transcript capture efficiency. At the single-cell level, this strategy enables the capture of full-length transcriptomes, demonstrating a great potential for application in single-cell sequencing.https://www.frontiersin.org/articles/10.3389/fgene.2025.1629655/fullmethanol fixationRNA/DNA hybridsfull-length transcriptomescRNA-seqRNA junctions
spellingShingle Tao Xu
Yicong Xu
Ziyang An
Yiheng Li
Jiawen Yang
Weixing Zhang
Jin Xu
Methanol fixation and tagmentation of RNA/DNA hybrids directly enable single-cell transcriptome sequencing
Frontiers in Genetics
methanol fixation
RNA/DNA hybrids
full-length transcriptome
scRNA-seq
RNA junctions
title Methanol fixation and tagmentation of RNA/DNA hybrids directly enable single-cell transcriptome sequencing
title_full Methanol fixation and tagmentation of RNA/DNA hybrids directly enable single-cell transcriptome sequencing
title_fullStr Methanol fixation and tagmentation of RNA/DNA hybrids directly enable single-cell transcriptome sequencing
title_full_unstemmed Methanol fixation and tagmentation of RNA/DNA hybrids directly enable single-cell transcriptome sequencing
title_short Methanol fixation and tagmentation of RNA/DNA hybrids directly enable single-cell transcriptome sequencing
title_sort methanol fixation and tagmentation of rna dna hybrids directly enable single cell transcriptome sequencing
topic methanol fixation
RNA/DNA hybrids
full-length transcriptome
scRNA-seq
RNA junctions
url https://www.frontiersin.org/articles/10.3389/fgene.2025.1629655/full
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AT yihengli methanolfixationandtagmentationofrnadnahybridsdirectlyenablesinglecelltranscriptomesequencing
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