A Statistical Framework for Co-Mediators of Zero-Inflated Single-Cell RNA-Seq Data
A Statistical Framework for Co-Mediators of Zero-Inflated Single-Cell RNA-Seq Data
Single-cell RNA sequencing (scRNA-seq) has revolutionized the study of cellular heterogeneity, enabling detailed molecular profiling at the individual cell level. However, integrating high-dimensional single-cell data into causal mediation analysis remains challenging due to zero inflation and complex mediator structures. We propose a novel mediation framework leveraging zero-inflated negative binomial models to characterize cell-level mediator distributions and beta regression for zero-inflation proportions. Subject-level mediators are aggregated from cell-level data to perform mediation analysis assessing causal pathways linking gene expression to clinical outcomes. Extensive simulation studies demonstrate improved power and controlled false discovery rates. We further illustrate the utility of this approach through application to ROSMAP single-cell transcriptomic data, uncovering biologically meaningful mediation effects that enhance understanding of disease mechanisms.
Seungjun Ahn、Zhigang Li
细胞生物学生物科学研究方法、生物科学研究技术
Seungjun Ahn,Zhigang Li.A Statistical Framework for Co-Mediators of Zero-Inflated Single-Cell RNA-Seq Data[EB/OL].(2025-07-08)[2025-07-18].https://arxiv.org/abs/2507.06113.点此复制
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