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Paredes, C.

Publications and source records attributed to Paredes, C..

3 recordsLinked to original sources

Midday shading alleviates thermal stress but has contrasting agronomic effects across medicinal and aromatic plants

Climate change is increasing the frequency and intensity of heatwaves and droughts, threatening medicinal and aromatic plants (MAP) production. Temporary shading during the hottest part of the day may reduce heat and radiative stress while limiting the reduction in light availability. We evaluated this strategy in a field experiment using three MAP species with contrasting ecological requirements and harvested organs: lavandin (Lavandula x intermedia), curly parsley (Petroselinum crispum) and valerian (Valeriana officinalis). Vertical shade nets provided midday shading and effects on crop microclimate, leaf temperature, water status, PSII photochemical efficiency, plant growth and biomass and essential oil production were assessed over two growing seasons. Midday shading reduced daily photosynthetically active radiation by 19.9-55.9 %, with weak effects on air temperature and vapor pressure deficit. In contrast, leaf temperature at solar noon decreased by 6.9 degrees C, 5.6 degrees C and 3.0 degrees C in lavandin, valerian and parsley, respectively. Midday shading improved light-adapted and maximum PSII photochemical efficiencies in all three species and reduced branch dehydration in lavandin during heatwave periods. However, agronomic responses were species-dependent. Floral biomass decreased in lavandin, whereas parsley leaf biomass and valerian root biomass increased. Essential oil concentration was unaffected in lavandin and valerian. Overall, our results show that midday shading primarily reduced leaf-level thermal and radiative stress rather than modifying the surrounding air microclimate, and suggest that its agronomic effects may reflect a balance between stress alleviation and reduced carbon acquisition, that varies with species ecology and production objectives.

plant biology↗

Rsm-mediated post-translational control of the Pseudomonas putida Type VI Secretion System

The Type VI secretion system (T6SS) is a bacterial nanoweapon that injects toxic effectors into prokaryotic and eukaryotic cells. It is widely found among gram-negative bacteria and provides a significant fitness advantage in interbacterial competition. Pseudomonas putida KT2440 possesses three T6SS clusters (K1-, K2- and K3-T6SS) that combat phytopathogens. This makes this strain a potent biocontrol agent that protects plants from pathogens and can be further enhanced by a better understanding of its T6SS regulation. Although the core components of T6SS are conserved, the elements controlling its regulation differ among bacterial species. T6SS activity is regulated by various factors acting at different levels, from transcription to post-translational modification, to ensure precise control of its activity. Here, we demonstrate the critical importance that the three Rsm proteins, RsmIEA, have in controlling the K1-T6SS structural components and related orphan elements at the post-transcriptional level in Pseudomonas putida. We identified multiple Rsm-binding sites responsible for directly repressing the translation of T6SS proteins (Hcp1 and Hcp5) and their associated effectors (Tke2 and Tke7). Derepression of K1-T6SS mRNA in the rsmIEA mutant led to enhanced translation and expression of the K1-T6SS components and effectors, and critically increased the number of cells in the population with assembled T6SS. This results in a greater capacity to secrete toxins and kill prey cells via the T6SS-dependent mechanism. Finally, we demonstrate the K1-T6SS ability to kill environmental pathogens, including Salmonella enterica and Erwinia amylovora.

microbiology↗

The cryo-EM structure of an adaptor-effector complex reveals the mechanism of a widespread pore-forming toxin family

Pseudomonas putida KT2440 is a plant-beneficial rhizobacterium that encodes multiple Type VI secretion systems (T6SS) to outcompete phytopathogens in the rhizosphere. Among its antibacterial effectors, Tke5 has been identified as a potent pore-forming toxin that disrupts ion homeostasis without causing considerable membrane damage. Tke5 belongs to the BTH_I2691 protein family and harbours an N-terminal marker for the type six secretion system effectors (MIX) motif, previously shown to be required for T6SS-dependent secretion in other systems. Many MIX-containing effectors require T6SS adaptor proteins (Tap) for secretion, but until now, the molecular mechanism for adaptor-effector binding has remained elusive. Here, we report the 2.8 [A] cryo-EM structure of the Tap3-Tke5 complex, providing structural and functional insight into how this effector is recruited by its cognate adaptor protein Tap3. Functional dissection shows that the -helical region of Tke5 is sufficient to kill intoxicated bacteria, while its {beta}-rich region likely contributes to target membrane specificity. These findings suggest a general mechanism of MIX-containing BTH_I2691 proteins for Tap recruitment and toxin activity, contributing to our fundamental understanding of a widespread yet understudied toxin family.

microbiology↗