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可变剪接会在基因与基因的相关性中引发样本水平的变异。

Alternative splicing induces sample-level variation in gene-gene correlations.

作者信息

Lu Yihao, Pierce Brandon L, Wang Pei, Yang Fan, Chen Lin S

机构信息

Department of Public Health Sciences, University of Chicago, 5841 South Maryland Ave, MC2000, Chicago, IL, 60637, USA.

Department of Human Genetics, University of Chicago, 920 E 58Th St, Chicago, IL, 60637, USA.

出版信息

BMC Genomics. 2024 Dec 11;23(Suppl 4):867. doi: 10.1186/s12864-024-11118-z.

Abstract

BACKGROUND

The vast majority of genes in the genome are multi-exonic, and are alternatively spliced during transcription, resulting in multiple isoforms for each gene. For some genes, different mRNA isoforms may have differential expression levels or be involved in different pathways. Bulk tissue RNA-seq, as a widely used technology for transcriptome quantification, measures the total expression (TE) levels of each gene across multiple isoforms in multiple cell types for each tissue sample. With recent developments in precise quantification of alternative splicing events for each gene, we propose to study the effects of alternative splicing variation on gene-gene correlation effects. We adopted a variance-component model for testing the TE-TE correlations of one gene with a co-expressed gene, accounting for the effects of splicing variation and splicing-by-TE interaction of one gene on the other.

RESULTS

We analyzed data from the Genotype-Tissue Expression (GTEx) project (V8). At the 5% FDR level, 38,146 pairs of genes out of ∼10 M examined pairs from GTEx lung tissue showed significant TE-splicing interaction effects, implying isoform-specific and/or sample-specific TE-TE correlations. Additional analysis across 13 GTEx brain tissues revealed strong tissue-specificity of TE-splicing interaction effects. Moreover, we showed that accounting for splicing variation across samples could improve the reproducibility of results and could reduce potential confounding effects in studying co-expressed gene pairs with bulk tissue data. Many of those gene pairs had correlation effects specific to only certain isoforms and would otherwise be undetected. By analyzing gene-gene co-expression variation within functional pathways accounting for splicing, we characterized the patterns of the "hub" genes with isoform-specific regulatory effects on multiple other genes.

CONCLUSIONS

We showed that splicing variation of a gene may interact with TE of the gene and affect the TE of co-expressed genes, resulting in substantial tissue-specific inter-sample variability in gene-gene correlation effects. Accounting for TE-splicing interaction effects could reduce potential confounding effects and improve the robustness of estimation when estimating gene-gene correlations from bulk tissue expression data.

摘要

背景

基因组中的绝大多数基因是多外显子的,并且在转录过程中会发生可变剪接,从而导致每个基因产生多种异构体。对于某些基因,不同的mRNA异构体可能具有不同的表达水平或参与不同的途径。批量组织RNA测序作为一种广泛用于转录组定量的技术,可测量每个组织样本中多种细胞类型中多个异构体上每个基因的总表达(TE)水平。随着近期对每个基因可变剪接事件精确量化的发展,我们建议研究可变剪接变异对基因-基因相关效应的影响。我们采用了一种方差成分模型来测试一个基因与一个共表达基因的TE-TE相关性,同时考虑了一个基因的剪接变异以及一个基因的剪接与TE相互作用对另一个基因的影响。

结果

我们分析了来自基因型-组织表达(GTEx)项目(V8)的数据。在5%的错误发现率(FDR)水平下,在GTEx肺组织中检测的约1000万对基因中,有38146对基因显示出显著的TE-剪接相互作用效应,这意味着异构体特异性和/或样本特异性的TE-TE相关性。对13个GTEx脑组织的进一步分析揭示了TE-剪接相互作用效应的强烈组织特异性。此外,我们表明考虑样本间的剪接变异可以提高结果的可重复性,并可以减少在使用批量组织数据研究共表达基因对时潜在的混杂效应。许多这样的基因对仅对某些异构体具有特异性相关效应,否则将无法检测到。通过分析考虑剪接的功能途径内的基因-基因共表达变异,我们表征了对多个其他基因具有异构体特异性调控效应的“枢纽”基因模式。

结论

我们表明一个基因的剪接变异可能与该基因的TE相互作用,并影响共表达基因的TE,从而导致基因-基因相关效应在样本间存在显著的组织特异性变异性。在从批量组织表达数据估计基因-基因相关性时,考虑TE-剪接相互作用效应可以减少潜在的混杂效应并提高估计的稳健性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c005/11633002/943cbdf3a8e2/12864_2024_11118_Fig1_HTML.jpg

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