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Llugany, M.

Publications and source records attributed to Llugany, M..

2 recordsLinked to original sources

Early salt shock uncouples shoot - root acclimation in Lobularia maritima

1.O_LISalt stress triggers overlapping osmotic and ionic effects. In halophytes, rapid acclimation can obscure how early responses are coordinated across organs. The use of facultative halophytes and salt shocks provides a useful framework to resolve this transition. C_LIO_LIWe investigated the first 24 h of salt shock responses in the facultative halophyte Lobularia maritima by integrating physiological, ionomic, transcriptional and phytohormonal analyses to resolve organ- and time-dependent acclimation dynamics. C_LIO_LISalt shock induced a rapid but transient osmotic effect, with shoot turgor recovery after 8 h. This recovery was associated with sustained osmotic adjustment, proline accumulation and increased Na+ levels in shoots. Conversely, photosynthetic impairment persisted beyond osmotic recovery. Salt exposure rapidly reshaped shoot and root ionomes and was associated with dynamic expression of LmSOS1, LmNHX1, and LmHKT1, consistent with coordinated Na+ partitioning. Oxidative responses diverged between organs; shoots maintained a stable oxidative state, while roots exhibited progressive loss of meristem viability. Abscisic acid (ABA) was strongly accumulated at all time points and emerged as the dominant regulator of early responses. C_LIO_LIThese results show that early salt acclimation in L. maritima is rapid but spatially and functionally uncoupled, combining fast shoot osmotic adjustment with persistent photosynthetic constraints and increased root vulnerability. C_LI

plant biology↗

At the core of salinity: convergent and divergent transcriptome response pathways to neutral and alkaline salinity in natural populations of Arabidopsis thaliana

More than 70% of lands cultivated area is affected by alkaline salinity stress. As 98% of plants are glycophytes - unable to successfully reproduce under salinity - our previous research focused on comparative studies of Arabidopsis thaliana demes with differential performance under neutral and alkaline salinity (neuSAL and alkSAL) due to local adaptation processes. Here, an integrated analysis on leaf tissue was performed, including physiological indicators, nutritional status, endogenous phytohormonal concentration and transcriptome profiling, to further understand differences in molecular mechanisms underlying neuSAL and alkSAL responses. The results support that alkSAL is more detrimental to plant performance than neuSAL and indicate higher sensitivity to alkSAL in demes locally adapted to coastal siliceous soils. A decreased internal Fe use efficiency in coastal demes under alkSAL is proposed to be the driver of their enhanced sensitivity, and sequence variation at {beta}-CA1 and -CA1 locus is hypothesized to contribute to the imbalance of Fe homeostasis. Dissection on the down-regulated transcripts shared by neuSAL and alkSAL confirmed enhanced inhibition of central features on primary and secondary metabolism in coastal individuals under alkSAL. The cell wall and vacuolar {beta}-galactosidase BGAL4 was revealed as a candidate for conferring tolerance to neuSAL by favoring stress-regulated cell wall rearrangement, but not to alkSAL, probably due to pH-restricted enzymatic activity. In addition, differential modulation of endogenous phytohormonal cues was reported among salinity types and demes, by which higher alteration of the auxinic, ethylene and jasmonic acid signaling pathways was exerted by alkSAL but sustained ABA biosynthesis was detected only in coastal plants under neuSAL. Weighted correlation network analysis (WGCNA) confirmed the involvement of the identified candidate genes in co-expression modules significantly correlating with favorable responses to neuSAL and alkSAL. Overall, the present study provides useful insights into key targets for breeding improvement in alkaline saline soils.

molecular biology↗