A molecular rheostat of ABA signaling coordinates the trade-off between stem growth and drought adaptation
摘要
Plants balance vegetative growth and stress responses through antagonistic phytohormone crosstalk, notably between abscisic acid (ABA) and cytokinin. However, the genetic architecture and molecular mechanisms driving this adaptive trade-off, particularly in perennial trees, remain elusive.
ResultsIntegrating genome-environment and genome-wide association studies across 302 Populus tomentosa accessions, we identify PtoAG1 as a pleiotropic regulator of climate adaptation and stem growth. A naturally occurring frameshift mutation abolishes its repressor function, driving geographical niche differentiation by enhancing growth in humid habitats. Mechanistically, PtoAG1 acts as a molecular rheostat. Under drought, ABA-activated PtoSnRK2.2 phosphorylates PtoMYB84 to transactivate PtoAG1. PtoAG1 then represses the cytokinin-signaling regulator PtoRR12, consequently releasing its inhibition of PtoSnRK2.2. This positive feedback further suppresses vegetative growth under stress while amplifying ABA responses via PtoAREB3. Concurrently, PtoAG1 directly represses PtoAREB3 as a transcriptional brake to maintain signaling homeostasis. Evolutionary analyses reveal that PtoMYB84 and PtoAG1 constitute a tightly linked cis-regulatory module conserved across eudicots. Functional analysis on AG1 orthologs in poplar, Arabidopsis, rice, and tomato demonstrates conserved cross-species utility: loss-of-function increases vegetative biomass but overexpression significantly boosts drought resilience.
ConclusionsOur study identifies a hierarchical crosstalk mechanism bridging ABA and cytokinin signaling to optimize environmental fitness. The evolutionarily conserved MYB84-AG1 cis-regulatory module establishes a versatile, translatable genetic target for precision breeding of climate-resilient and high-yielding crops.