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Gene panel selection for targeted spatial transcriptomics

Authors :
Yida Zhang
Viktor Petukhov
Evan Biederstedt
Richard Que
Kun Zhang
Peter V. Kharchenko
Source :
bioRxiv
Publication Year :
2023
Publisher :
Cold Spring Harbor Laboratory, 2023.

Abstract

Targeted spatial transcriptomics hold particular promise in analysis of complex tissues. Most such methods, however, measure only a limited panel of transcripts, which need to be selected in advance to inform on the cell types or processes being studied. A limitation of existing gene selection methods is that they rely on scRNA-seq data, ignoring platform effects between technologies. Here we describe gpsFISH, a computational method to perform gene selection through optimizing detection of known cell types. By modeling and adjusting for platform effects, gpsFISH outperforms other methods. Furthermore, gpsFISH can incorporate cell type hierarchies and custom gene preferences to accommodate diverse design requirements.

Subjects

Subjects :
Article

Details

Language :
English
Database :
OpenAIRE
Journal :
bioRxiv
Accession number :
edsair.doi.dedup.....c0b8b2b3f08b3a1f9c300b7a79d5d7de