Understanding intraspecific variation in drought tolerance is essential for predicting the adaptive capacity of forest species under climate change. Yet, the molecular basis of this variation remains poorly understood in ecologically and economically important conifers. We integrated high-throughput phenotyping with metabolomics and transcriptomics under standardised soil drying to investigate drought responses across nine climatically distinct provenances of the conifer Pinus nigra. We tested whether drought tolerance-measured as decline in maximum quantum yield of the photosystem II (Fv/Fm)-varies among provenances, follows a climatic cline, and involves trade-off with growth. To identify the underlying molecular basis, we performed metabolomics and transcriptomics in four provenances representing contrasting drought tolerance. Drought tolerance varied significantly among provenances and was decoupled from growth, yet showed no differentiation along the climatic cline. Drought-tolerant provenances differed from sensitive ones in both constitutive abundance and drought-induced accumulation of the flavonoid pinostrobin and the diterpene hydroxydehydroabietic acid. Transcriptomic profiles further highlighted provenance-specific differences in gene expression related to flavonoids. Overall, these findings link phenotypic drought responses to molecular variation among provenances, providing insight into the molecular basis of drought responses in an important conifer species.
Muhammad Ahmad, A. Hammerbacher, Clara Priemer et al.· Plant, Cell and Environment· 0 citations
Pathogenic bacteria in aquaculture and agriculture remain a major challenge to food production and animal health, with substantial economic impacts worldwide. In this study, three previously undescribed naphthalene derivatives (1-3) and one naphthalenone (4), along with 12 known compounds, were isolated from the roots of Diospyros undulata. Naphthoquinones 5 and 7 exhibited potent antibacterial activity against several pathogens, including Staphylococcus aureus and Streptococcus agalactiae. Mechanistic studies indicated that these compounds disrupt bacterial membranes and inhibit biofilm formation. Molecular docking suggested interactions with key bacterial targets, including sortase A and FtsZ enzymes. In vivo studies in Nile tilapia demonstrated improved survival following infection when supplemented with D. undulata root extract. Additionally, compounds 5 and 12 showed cytotoxicity against human cancer cell lines, while compound 1 exhibited intracellular antioxidant activity. These findings highlight naphthoquinone derivatives from D. undulata as promising plant-derived antibacterial candidates and biomedical applications.
Weerasak Songoen, Morakot Thabpho, D. Wenisch et al.· Journal of Agricultural and...· 0 citations
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