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Staal, M.

Publications and source records attributed to Staal, M..

2 recordsLinked to original sources

Potato cultivars use different root physiological and molecular mechanisms to acclimate to salt stress

O_LISoil salinity induces osmotic stress and ion toxicity in plants, detrimentally affecting their growth and development. Potato (Solanum tuberosum) faces yield reductions due to salt stress. The mechanisms of salt stress resilience, especially in adventitious roots, remain unknown. C_LIO_LIWe investigated the resilience of three potato cultivars - Desiree, Innovator, and Mozart - by studying their physiological and transcriptomic responses to salt stress. C_LIO_LIOur findings reveal that under salt stress, the growth of stolons and stolon node roots is similarly reduced unlike tubers, even though they are physically connected. Surprisingly, tubers accumulate Cl- but not Na+ under salt stress, suggesting an active Na+ exclusion mechanism. Innovator showed the lowest suberin and lignin deposition before salt stress and higher K+ leakage, leading to a stronger initial stress response with high ABA content and a distinct transcriptomic pattern. Nevertheless, Innovator was the most resilient, displaying lower growth, salt-tolerance index and tuber yield reduction. Transcriptomic analysis revealed several K+/Na+ channel genes which might regulate ions homeostasis during salt stress, in particular in Innovator. C_LIO_LIAltogether, we conclude that acclimation ability, rather than initial protection of roots against salt, prevails in long term salt-stress resilience of potato. C_LI

plant biology↗

Root Ions Fluxes and Osmolarity Changes in Grass Species Differing in Salinity Tolerance

Agricultural areas are increasingly being affected by salt due to irrigation practices and rising levels of salty groundwater. Different plant species have varying degrees of sensitivity to salinity and employ distinct mechanisms to avoid severe damage caused by salt stress. We compared three grass species with different ecological backgrounds, namely Lolium perenne, Festuca rubra, and Puccinellia maritima, in terms of their ability to maintain growth when exposed to salt stress, the extent of Na+-induced K+efflux, and the accumulation of salts in their shoots. Our results demonstrate that the changes in K+and H+fluxes at the root tip induced by NaCl exposure are correlated with the salt tolerance characteristics of these grass species. Specifically, L. perenne exhibited the highest leakage of K+from its roots, the highest accumulation of Na+in its shoots, and the lowest shoot growth under salt stress. On the other hand, P. maritima showed minimal changes in ion fluxes in response to salinity stress. P. maritima maintained the lowest contribution of Na+to the total osmolarity in its shoots and exhibited the least detrimental effect of salt on shoot dry matter. The root cortex including the exodermis and endodermis could be one of the benefit barriers that help defense against salts. In conclusion, root ions fluxes and osmolarity changes in grass species have different salinity tolerance of plants from various habitats. The salt resistance plants restrict leakage of K and exclude Na more effectively. Overall, these results broadened our knowledge of salt resistance in grass species.

physiology↗