SingleCellSignalR: inference of intercellular networks from single-cell transcriptomics

Author:

Cabello-Aguilar Simon123ORCID,Alame Mélissa1234,Kon-Sun-Tack Fabien123,Fau Caroline123,Lacroix Matthieu123ORCID,Colinge Jacques123

Affiliation:

1. Institut de Recherche en Cancérologie de Montpellier, Inserm, F-34298 Montpellier, France

2. Institut régional du Cancer Montpellier, F-34298 Montpellier, France

3. Université de Montpellier, F-34090 Montpellier, France

4. Département d’Hématologie Biologique, CHU Montpellier, Hôpital Saint Eloi, F-34090 Montpellier, France

Abstract

Abstract Single-cell transcriptomics offers unprecedented opportunities to infer the ligand–receptor (LR) interactions underlying cellular networks. We introduce a new, curated LR database and a novel regularized score to perform such inferences. For the first time, we try to assess the confidence in predicted LR interactions and show that our regularized score outperforms other scoring schemes while controlling false positives. SingleCellSignalR is implemented as an open-access R package accessible to entry-level users and available from https://github.com/SCA-IRCM. Analysis results come in a variety of tabular and graphical formats. For instance, we provide a unique network view integrating all the intercellular interactions, and a function relating receptors to expressed intracellular pathways. A detailed comparison of related tools is conducted. Among various examples, we demonstrate SingleCellSignalR on mouse epidermis data and discover an oriented communication structure from external to basal layers.

Funder

Labex EpiGenMed Postdoctoral Fellowship

Fondation ARC pour la Recherche sur le Cancer

Publisher

Oxford University Press (OUP)

Subject

Genetics

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