AFC kinases function as thermosensors that regulate warm temperature-responsive growth in Arabidopsis
Plants respond to elevated temperatures with enhanced elongation growth that depends on rapid transcriptional, post-transcriptional, and post-translational reprogramming. However, it is unclear how temperature information integrates with the splicing machinery to establish warm temperature-dependent splicing patterns. In animals, CDC2-LIKE KINASES (CLKs) function as body temperature sensors that control temperature-dependent splicing via phosphorylation of serine/arginine-rich (SR) proteins. Here we demonstrate that the CLK-homologous ARABIDOPSIS FUS3-COMPLEMENTING (AFC) kinases likewise regulate post-transcriptional RNA processing to control warm temperature-dependent growth in Arabidopsis. The contrasting temperature-activity profiles of the three AFCs depend on specific structural elements, including a conserved activation segment within the kinase domain. Combining protein structure prediction with site-directed mutagenesis, we provide insights into structural features that determine the different temperature-activity profiles of the three AFC paralogs. Analyses of afc mutant plants demonstrate their role in establishing temperature-dependent splicing patterns and thermomorphogenic hypocotyl elongation. Finally, our data indicate SR34 and SR34a as phosphorylation targets mediating temperature-dependent hypocotyl elongation downstream of AFCs. In conclusion, our study provides evidence that temperature-controlled AFC activity is evolutionarily conserved between plants and animals and implicates AFCs in the control of thermomorphogenesis.