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Biology subjects

Noh, Y.-S.

Publications and source records attributed to Noh, Y.-S..

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 hit-and-run strategy for protoplast reprogramming and regeneration into transgene-free plants

The ability of protoplasts to regenerate into whole plants underpins advances in crop engineering and pluripotency research. However, most protoplasts exhibit poor division and limited shoot regeneration, restricting their broader utility. Here, we present EppTec (Efficient regeneration of transgene-free whole Plants from Protoplasts reprogrammed by Transiently Expressed Combinatorial factors), a transient expression platform using defined combinatorial factors (CFs) to unlock protoplast pluripotency and enable transgene-free whole-plant regeneration. Among 24 CFs tested, co-transfection of SEPW (SCR, ESR1, PSK5, and WOX5) markedly enhanced regeneration across diverse plant species in an evolutionarily conserved manner. We demonstrate that SEPW co-transfection induces epigenomic reprogramming, formation of a distinct cell cluster undergoing reprogramming and cell-cycle re-entry, and long-term reprogramming into pluripotent cells. These findings establish EppTec as a robust strategy to restore the regenerative capacity of plant cells from diverse species. EppTec may serve as a platform to revolutionize regeneration-based plant biotechnologies and conserve endangered plant species.

plant biology↗