PubMed HealthSearch

PubMed · 41746282

Differential cell signaling testing for cell-cell communication inference from single-cell data by dominoSignal.

Abstract

MOTIVATION: Algorithms for ligand-receptor network inference have emerged as commonly used tools to estimate cell-cell communication from reference single-cell data. Many studies employ these algorithms to compare signaling between conditions and lack methods to statistically identify signals that are significantly different. We previously developed the cell communication inference algorithm Domino, which considers ligand and receptor gene expression in association with downstream transcription factor activity scoring. We developed the dominoSignal software to innovate upon Domino and extend its functionality to test statistically differential cellular signaling. RESULTS: This new functionality includes the compilation of active signals as linkages from multiple subjects in a single-cell data set and testing condition-dependent signaling linkage. The software is applicable for analysis of single-cell data sets with multiple subjects as biological replicates as well as with bootstrapped replicates from data sets with few or pooled subjects. We use simulation studies to benchmark the number of subjects in compared groups and cells within an annotated cell type sufficient to accurately identify differential linkages. We demonstrate the application of the Differential Cell Signaling Test (DCST) in the dominoSignal software to investigate consequences of cancer cell phenotypes and immunotherapy on cell-cell communication in tumor microenvironments. These applications in cancer studies demonstrate the ability of differential cell signaling analysis to infer changes to cell communication networks from therapeutic or experimental perturbations, which is broadly applicable across biological systems. AVAILABILITY: dominoSignal is available through Bioconductor at https://www.bioconductor.org/packages/release/bioc/html/dominoSignal.html.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Jacob T Mitchell, Orian Stapleton, Kavita Krishnan, Sushma Nagaraj, Dmitrijs Lvovs, Christopher Cherry, Amanda Poissonnier, Wesley Horton, Andrew Adey, Varun Rao, Amanda Huff, Jacquelyn W Zimmerman, Luciane T Kagohara, Neeha Zaidi, Lisa M Coussens, Elizabeth M Jaffee, Jennifer H Elisseeff, Elana J Fertig. 2026-02-28. Differential cell signaling testing for cell-cell communication inference from single-cell data by dominoSignal.. https://doi.org/10.1093/bioinformatics%2Fbtag089

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Regulation of hemopoiesis.

The development of in vitro cloning systems for populations of hemopoietic and lymphoid cells has enabled a family of specific regulatory macromolecules to be detected and characterized. These macromolecules control proliferation and differentiation in hemopoietic cell populations. Studies have demonstrated the complexity of the spectrum of molecules which are involved in the regulation of each group of hemopoietic cells. Heterogeneous subpopulations of molecules exist for each regulatory function and more than one molecular form exists for the various regulator molecules. While the cellular origin of many of these regulators has not been clearly demonstrated, it is apparent that hemopoietic populations themselves can be significant sources of both stimulatory and inhibitory regulators. In particular, there are now clear examples of regulatory interactions which occur in both directions between hemopoietic and lymphoid populations. While in no case a complete analysis of the control systems has been achieved, maintenance of homeostasis in hemopoietic systems is now better understood than for most other cell populations in the body. Further, with existing techniques, and in particular, the exploitation of the full potential of the semi-solid cloning systems, it is realistic to expect that a complete analysis of hemopoietic regulation can now be accomplished.

Cell Communication