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Shashidhar, H. E.

Publications and source records attributed to Shashidhar, H. E..

2 recordsLinked to original sources

Fluid Uptake Pathways Are Differentially Modified in Rice (Oryza sativa L.) in Response to Drought and Salinity

Salinity and drought adversely affect rice production globally. Here we have examined physiological responses to drought and salinity across four rice cultivars with varying sensitivity to these stresses. The salt tolerant Pokkali restricts fluid entry to limit Na+ uptake under saline stress, while the drought-tolerant ARB6 needs to enhance fluid uptake under drought. Surprisingly, Pokkali does reasonably well when subjected to drought as does ARB6 under saline stress - in contrast to the stress-sensitive but high yielding varieties IR-20 and Jaya. Both tolerant varieties use long roots to mine water under deficit conditions, increasing aerenchyma and suberization of the exodermis to provide oxygen to deep-reaching roots. Major alterations in patterns of suberization in both exodermis and endodermis are undertaken, the patterns being dramatically different under the two stresses. Genes implicated in suberin biosynthesis also showed variation in transcript levels under stress, corresponding with the observed suberization patterns. Osmolyte accumulation drives uptake of water under deficit conditions, while restricting fluid flow to symplastic routes minimizes Na+ entry. Overall, the morphological and physiological responses of the tolerant varieties ensure adequate fluid flow through the transpiration stream without excessive salt uptake, thereby promoting growth under both drought and salinity.

plant biology↗

Highly Localized Responses to Salinity and Drought in Rice Roots

Drought and salt stress are first sensed by the root system of plants. Many physiological responses, including variation in stomatal conductance, are regulated by the stress hormone ABA which is generated in the root and sent up to the shoot which then synthesizes additional ABA to sustain the response. To address whether responses are systemic we have used a split root system, wherein roots are divided into two and each half treated independently to water, salt or drought. Four varieties were examined - the salt tolerant Pokkali, the drought tolerant ARB6 and two sensitive varieties Jaya and IR-20. ABA concentrations in the xylem sap increased dramatically after Day 1 in all four cultivars in response to stress on at least one side the of the split root system. The sensitive varieties appeared to derive much of their nutrition and fluid from the watered side when subjected to asymmetric conditions, whereas roots on the stressed side of tolerant varieties underwent anatomical and physiological modifications facilitating fluid uptake and maintenance of xylem sap flow under these conditions.

plant biology↗