Search bioRxiv⌕ Search

Biology subjects

Cheon, A.

Publications and source records attributed to Cheon, A..

2 recordsLinked to original sources

Shoot loss reveals the latent capacity of Arabidopsis roots to reconstruct the plant body

Plant body organization depends on the coordinated development and function of shoots and roots, yet their functional specialization and interdependence remain incompletely understood. Whereas shoot senescence and death, as well as root regeneration from shoot tissues, are well studied, what capacities roots retain in the absence of the shoot remain unclear. To address this question, we tracked Arabidopsis roots after complete shoot excision. Initially, the remaining roots entered a growth-arrested but viable state. Despite broad repression of growth-associated programs, auxin and cytokinin signaling persisted, and the roots retained developmental responsiveness. This arrested state, however, was not developmentally terminal. By approximately 20 days after excision, green structures emerged from lateral root-associated domains. They accumulated chlorophyll and starch, assimilated carbon in response to light, and developed persistent cuticle-covered surfaces. Based on their origin and shoot-like characteristics, we termed them lateral root-derived shoots (LRSs). LRSs arose preferentially in the most shoot-proximal region, where cytokinin signaling progressively accumulated. Excision of this region repositioned LRS formation to the newly established proximal boundary, indicating spatial redefinition of shoot-forming competence. Auxin and cytokinin antagonistically governed the choice between continued lateral root growth and LRS identity, with cytokinin further promoting leaf-like differentiation. LRSs subsequently formed roots and developed into fertile plants under appropriate conditions. These findings reveal that roots retain developmental competence after shoot loss and can reorganize positional and hormonal programs to acquire shoot identity and reconstruct a complete plant body.

plant biology↗

A hierarchical abscission program regulates reproductive allocation in Prunus yedoensis and Prunus sargentii

O_LIorgan abscission is essential for optimal reproduction, yet its regulation in perennial woody plant species is poorly understood. To investigate how abscission is spatially and temporally regulated during reproduction, we analyzed five sequential abscission events in the cherry species Prunus yedoensis and Prunus sargentii: abscission of the petals, calyces, flower pedicels, fruit pedicels, and peduncles. C_LIO_LIThe abscission zone (AZ) of the calyx formed de novo upon activation, whereas other AZs were pre-formed but developmentally arrested. Localized ethylene responsiveness reactivated these zones, promoting cell division, differentiation of residuum and secession cells on either side of the AZ, and lignin deposition in some cases. This progression was accompanied by reactive oxygen species accumulation and pH shifts. C_LIO_LIWe observed species-specific differences during early floral abscission: P. yedoensis shed petals rapidly in a pollination-independent manner, whereas P. sargentii retained petals on unpollinated flowers, which later abscised with the pedicel, potentially extending the fertilization window. C_LIO_LIBoth species employed a post-fertilization checkpoint via fruit pedicel abscission to selectively eliminate small, slow-growing fruits. These findings reveal that Prunus species coordinate a hierarchical abscission program functioning as a multilayered reproductive filter, progressively refining investment decisions to determine the final fruit set. C_LI

plant biology↗