In the thick of it: radish thermotolerance and root development under heat shock. [PDF]
Torres-Martínez HH.
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Integrated transcriptomic and metabolomic analyses reveal biphasic thermal adaptation strategies in <i>Lavandula angustifolia</i> under high-temperature stress. [PDF]
Tusong K, Liu Z.
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Integrated Proteomic and Functional Analyses Reveal the Roles of Organelle-Specific Small Heat Shock Proteins (sHSPs) in Tomato Thermotolerance. [PDF]
Xie B +7 more
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Molecular insights into diverse heat hormesis regimens in Caenorhabditis elegans. [PDF]
Chang HY, Heinke CL, Lee SS.
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Heat Stress Effects on Milk Production and the Genomic Architecture of Thermotolerance in Dairy Cattle. [PDF]
Ma Q, Tharwat M, Alshanbari FA, Khan MZ.
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Ubiquitination-Mediated Degradation of SlVPS29 by the SlHSFA7-SlRNF185 Module Enhances Tomato Pollen Thermotolerance. [PDF]
Geng X +9 more
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PSKR1-mediated phosphorylation of βCA2 activates its carbonic anhydrase activity to integrate CO<sub>2</sub> and heat signals for enhanced thermotolerance in tomato. [PDF]
Lv J +14 more
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<i>JAC1</i> Promotes Thermotolerance in <i>Arabidopsis</i> by Limiting Heat-Induced H<sub>2</sub>O<sub>2</sub> Accumulation and Protecting PGLP1 from Sulfenylation-Mediated Inhibition. [PDF]
Zhang B, Li R, Li K, Wang L.
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Ricin B lectin-like proteins mediate thermotolerance, cell wall integrity, and fungal virulence in <i>Cryptococcus neoformans</i>. [PDF]
Shu X +5 more
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SIZ1-mediated SUMOylation of HAT1 enhances plant thermotolerance in Arabidopsis. [PDF]
Lao J +11 more
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