Co-expression network of heat-response transcripts: A glimpse into how splicing factors impact rice basal thermotolerance

Front Mol Biosci. 2023 Feb 2:10:1122201. doi: 10.3389/fmolb.2023.1122201. eCollection 2023.

Abstract

To identify novel solutions to improve rice yield under rising temperatures, molecular components of thermotolerance must be better understood. Alternative splicing (AS) is a major post-transcriptional mechanism impacting plant tolerance against stresses, including heat stress (HS). AS is largely regulated by splicing factors (SFs) and recent studies have shown their involvement in temperature response. However, little is known about the splicing networks between SFs and AS transcripts in the HS response. To expand this knowledge, we constructed a co-expression network based on a publicly available RNA-seq dataset that explored rice basal thermotolerance over a time-course. Our analyses suggest that the HS-dependent control of the abundance of specific transcripts coding for SFs might explain the widespread, coordinated, complex, and delicate AS regulation of critical genes during a plant's inherent response to extreme temperatures. AS changes in these critical genes might affect many aspects of plant biology, from organellar functions to cell death, providing relevant regulatory candidates for future functional studies of basal thermotolerance.

Keywords: Oryza sativa L.; alternative splicing; co-expression network analysis (WGCNA); eigengene; heat stress; hierarchical clustering; systems biology.

Grants and funding

This research was funded by São Paulo Research Foundation (FAPESP), grants number 2019/13158-8 and 2021/000394-5, and Institute Serrapilheira, grant number R-2011-37880. HB received the IDEX scholarship from Université Paris-Saclay. LM received a scholarship from FAPESP, grant number 2022/02633-0.