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Biology subjects

Bocobza, S.

Publications and source records attributed to Bocobza, S..

2 recordsLinked to original sources

Vacuolar invertase knockout enhances drought tolerance in potato plants

Drought stress is one of the most critical abiotic constraints limiting crop productivity worldwide, exacerbated by ongoing climate change and increasingly frequent extreme weather events. Stomatal regulation and osmoprotective sugar accumulation are critical adaptive mechanisms for plant survival under drought stress. Here, we characterize the enhanced drought resilience observed in CRISPR/Cas9-mediated potato, mutants in their vacuolar invertase gene (StVInv). Knockout plants exhibited improved performance under progressive drought stress and during rewatering drought, maintaining higher stomatal conductance, elevated transpiration rates, and superior photosynthetic efficiency compared to wild-type (WT) plants. These improved performance under similar transpiration rate led to higher agronomic water-use efficiency (AWUE) in stvinv plants resulting in greater biomass production despite reduced water availability. Metabolomic profiling revealed distinct adaptive strategies; stvinv plants preferentially accumulated galactinol and raffinose, indicating enhanced raffinose family oligosaccharide (RFO) metabolism. Furthermore, stvinv plants displayed lower levels of abscisic acid (ABA) and its catabolites under drought, suggesting a moderated ABA response facilitating a more risk-taking growth strategy that supports sustained growth and physiological stability. Our findings identify targeted metabolic and hormonal adjustments underlying drought resilience in potato plant, offering promising strategies for enhancing crop performance under water-limited conditions.

plant biology↗

A dynamic WUSCHEL / Layer 1 interplay directs shoot apical meristem formation during regeneration

De novo shoot apical meristem (SAM) organogenesis during regeneration in tissue culture has been investigated for several decades, but the precise mechanisms governing early-stage cell fate specification remain elusive. In contrast to SAM establishment during embryogenesis, in vitro SAM formation occurs without positional cues, and is characterized by spontaneous cellular patterning. Here, we have elucidated the initial stages of SAM organogenesis and the molecular mechanisms that orchestrate gene patterning to establish SAM homeostasis. We found that SAM organogenesis in tobacco calli initiates with protuberance formation followed by the formation of an intact L1 layer covering the nascent protuberance. Acquisition of L1 cellular identity is indispensable for de novo SAM formation, which also requires WUSCHEL (WUS) and the cellular capacity to direct anticlinal cell divisions. An intriguing finding is that TONNEAU1 silencing prevents the exclusive occurrence of anticlinal divisions in the outermost layer of the protuberances and suppresses the acquisition of L1 cellular identity, ultimately impeding regeneration. This study exposes an intricate interplay between L1 and WUS expression and that any disruption in this interplay compromises shoot formation. It further provides a novel molecular framework for the characterization of WUS/L1 interplay-mediated shoot apical meristem formation during regeneration.

plant biology↗