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Ilina, T.

Publications and source records attributed to Ilina, T..

2 recordsLinked to original sources

Spatiotemporal pectin remodelling, glycoproteins, and LEA proteins maintain cell wall integrity during desiccation and rehydration in Ramonda serbica

Vegetative desiccation tolerance requires specialised cell wall (CW) adaptations to withstand severe mechanical stress during dehydration and rehydration. While intracellular protective strategies in resurrection plants, including Ramonda serbica, are well documented, the CW response remains poorly understood. Here, we integrated immunocytochemical profiling, FTIR spectroscopy, quantification of CW-bound phenolics, transcriptomics, and ionically bound CW proteomics across hydrated (HL), desiccated (DL), and rehydrated states (R1-1h, R2-24h, R3-48h). Reversible CW folding was facilitated by condensed arabinogalactan-proteins (AGPs) and extensins, alongside a site-specific balance between pectin methylesterification and demethylesterification. Structural compaction was further reinforced by the accumulation of CW-bound hydroxycinnamates, which persisted through R1 phase. Moreover, basic 7S globulin, miraculin, -galactosidase, and two LEA4 protein family members were strongly accumulated during DL and R1, providing the first evidence of ionically CW-bound LEA proteins. Initial rewatering (R1) triggered a rapid transcriptomic reactivation of pectin-degrading/modifying enzymes, carbohydrate-active enzymes, and subtilases, accompanied by unesterified pectin enrichment. By 24-48 h (R2-R3), CW-bound hydroxycinnamic acids declined, and CW architecture, gene expression, and proteome profiles returned to baseline levels. Overall, our findings reveal a coordinated spatiotemporal apoplastic network - driven by glycoproteins, pectin modulation, CW-bound hydroxycinnamates, and LEA4 proteins - essential for rapid desiccation recovery.

plant biology↗

Optimisation of Ramonda serbica LEA protein production in Escherichia coli and its secondary structure analysis

Desiccation, an extreme form of dehydration, reduces the cellular water content to below 5 % and poses a major challenge for most plants. Ramonda serbica, a tertiary relict and homoiochlorophyllous resurrection plant, is an exceptional model for investigating vegetative desiccation tolerance. Late Embryogenesis Abundant (LEA) proteins are strongly involved in this adaptive trait, but their exact molecular function is still unclear. In this study, we report the first successful recombinant production of the desiccation-induced LEA protein, RsLEAP30, from a dicotyledonous resurrection plant species using an Escherichia coli expression system. By employing immobilised metal affinity and size-exclusion chromatography, we achieved to purify RsLEAP30 to purity over 95 %, providing a robust and scalable method for producing other LEA proteins. Structural characterisation by circular dichroism spectroscopy, combined with in silico modelling, revealed that RsLEAP30 is predominantly disordered but contains -helical regions. We suggest that this structural duality underpins the protective role of RsLEAP30 in chloroplasts, likely via interactions with thylakoids and desiccation-sensitive proteins within photosynthesis-associated proteins. This function may be crucial for the rapid recovery of photosynthetic components upon rehydration. Our study provides new insights into the structure-function relationship of LEA proteins in resurrection plants and establishes a foundation for future investigations. Understanding the protective mechanisms of RsLEAP30 will pave the way for bioengineering strategies aimed at improving the drought tolerance of crops.

biochemistry↗