Apical dominance is a key determinant of plant architecture and yield formation in crops. Auxin and jasmonic acid are crucial endogenous regulators of this process, yet their functions in the above‐ground shoots and underground modified stems (tubers) of asexually propagated potato plants remain largely unclear. Here, we demonstrate that the jasmonate pathway component
StJAZ1‐like
promotes the release of apical dominance in potato.
StJAZ1‐like
overexpression enhanced axillary bud outgrowth, increased shoot branching and triggered multi‐bud sprouting from individual tuber eyes. Transcriptome profiling of dormant axillary buds revealed pronounced alterations in hormone‐related pathways, including marked upregulation of the auxin efflux carrier
StPIN3
, accompanied by reduced indole‐3‐acetic acid (IAA) and abscisic acid (ABA) levels in axillary buds. Consistently, functional analyses demonstrated that
StPIN3
positively regulates lateral branching and tuber sprouting, indicating that
StPIN3
acts downstream of StJAZ1‐like. Mechanistically, StJAZ1‐like physically interacts with StPIF02, a bHLH transcription factor. StPIF02 directly binds the
StPIN3
promoter and activates its transcription. Collectively, our results suggest a StJAZ1‐like–StPIF02–StPIN3 regulatory module that links jasmonate with auxin to modulate apical dominance in potato, providing candidate pathways for designing an ideal multi‐branched plant architecture in potato.
Enshuang Wang, Shahnewaz Begum, S. Jing et al.· Plant, Cell and Environment· 0 citations
These findings uncover a modularly coordinated control of SGAs accumulation and chlorophyll biosynthesis by bifurcation of StCRY1-StHY5 axis, providing a promising strategy to concurrently curb light-induced tuber greening and glycoalkaloids accumulation.
Jun Qin, S. Jing, Shengxuan Liu et al.· The Plant Cell· 0 citations