Glucose-G protein signaling plays a crucial role in tomato resilience to high temperature and elevated CO2.
Jiao WangQian LuoXiao LiangHua LiuChangqi WuHanmo FangXuanbo ZhangShuting DingJingquan YuJunying ShiPublished in: Plant physiology (2024)
Global climate change is accompanied by carbon dioxide (CO2) enrichment and high temperature (HT) stress; however, how plants adapt to the combined environments and the underlying mechanisms remain largely unclear. In this study, we show that elevated CO2 alleviated plant sensitivity to HT stress, with significantly increased apoplastic glucose (Glc) levels in tomato (Solanum lycopersicum) leaves. Exogenous Glc treatment enhanced tomato resilience to HT stress under ambient CO2 conditions. Cell-based biolayer interferometry, subcellular localization, and Split-luciferase assays revealed that Glc bound to the tomato regulator of G protein signaling 1 (RGS1) and induced RGS1 endocytosis and thereby RGS1-G protein α subunit (GPA1) dissociation in a concentration-dependent manner. Using rgs1 and gpa1 mutants, we found that RGS1 negatively regulated thermotolerance and was required for elevated CO2-Glc-induced thermotolerance. GPA1 positively regulated the elevated CO2-Glc-induced thermotolerance. A combined transcriptome and chlorophyll fluorescence parameter analysis further revealed that GPA1 integrated photosynthesis- and photoprotection-related mechanisms to regulate thermotolerance. These results demonstrate that Glc-RGS1-GPA1 signaling plays a crucial role in the elevated CO2-induced thermotolerance in tomato. This information enhances our understanding of the Glc-G protein signaling function in stress resilience in response to global climate change and will be helpful for genetic engineering approaches to improve plant resilience.
Keyphrases
- climate change
- high temperature
- high glucose
- diabetic rats
- single cell
- heat shock
- carbon dioxide
- drug induced
- transcription factor
- blood pressure
- healthcare
- gene expression
- oxidative stress
- human health
- rna seq
- type diabetes
- adipose tissue
- heat stress
- insulin resistance
- blood glucose
- high speed
- combination therapy
- data analysis
- heat shock protein