bioRxiv Science⌕ Search

Biology subjects

Pissarra, J.

Publications and source records attributed to Pissarra, J..

2 recordsLinked to original sources

Rhamnose biosynthesis is not impaired by the deletion of putative rfbC genes, slr0985 and slr1933, in Synechocystis sp. PCC 6803

Cyanobacterial extracellular polymeric substances (EPS), mainly composed by heteropolysaccharides, can be attached to the cell wall (CPS) or released to the environment (RPS). These polymers have an unusually highly diversified monosaccharidic composition, making them attractive for biotechnological/biomedical applications. However, their production is still poorly understood hindering their optimisation for industrial needs. This work aimed at better understanding the biosynthesis of the 6-deoxysugars fucose and rhamnose in the model cyanobacterium Synechocystis sp. PCC 6803. To that end, genes encoding proteins putatively involved in the biosynthesis of GDP-L-fucose [sll1213 (fucS)] and dTDP-L-rhamnose [slr0985 (rfbC1) and slr1933 (rfbC2)] were deleted. As previously observed, {Delta}fucS had significant growth impairment and its RPS did not contain any fucose or rhamnose. Here, we also showed that both deoxyhexoses pathways are completely impaired in {Delta}fucS. In contrast, both {Delta}rfbC1 and {Delta}rfbC1{Delta}rfbC2 although producing significantly less RPS and more CPS than the wild type, did not show major differences regarding the RPS monosaccharidic composition. These results strongly suggest that their gene products are not essential for rhamnose biosynthesis. Transcriptional analysis revealed that one of the gmd genes (slr1072), putatively encoding a GDP-mannose 4,6-dehydratase, was upregulated in all the knockout strains, and that the three EPS-related genes in the same operon as rfbC1 (slr0982, slr0983 and slr1610) were upregulated in both {Delta}rfbC strains. Altogether, our results reveal that rhamnose biosynthesis in Synechocystis depends on FucS but not on the putative RfbC enzymes, underlining the need to further elucidate the mechanisms involved in the biosynthesis of this deoxyhexose. IMPORTANCEThis study contributes to the overall knowledge of deoxyhexoses biosynthesis in Synechocystis sp. PCC 6803. Here we demonstrated that the {Delta}fucS strain not only produces EPS without fucose and rhamnose but that both pathways are completely impaired. Furthermore, we also showed that the deletion of both putative rfbC genes do not affect rhamnose biosynthesis, despite having an impact on carbohydrates production/export, shifting RPS to CPS production. Altogether, our results suggest that the rfbC genes are not correctly annotated and highlight the intricacies and/or potential crosstalk between the two deoxyhexoses pathways, yet to be completely unravelled in Synechocystis. The understanding of cyanobacterial EPS assembly and export is crucial for the optimisation of their production and tailoring for industrial/commercial applications.

microbiology↗

Shifting Routes: Plant Specific Insert trafficking and function in Arabidopsis seedlings under abiotic stress

Due to plants inability to escape adverse conditions, they must adapt and adjust their endomembrane system through protein sorting and distribution. Cardosins A and B are key models for studying intracellular trafficking. They are aspartic proteinases in thistle flowers that mediate different vacuolar pathways despite sharing high sequence similarity, and both are responsive to stress conditions. The Plant Specific Insert (PSI) is a 100 amino acid domain found in these proteins. It is known that stress can impact protein sorting, shifting it from the conventional pathway (ER-Golgi) to a Golgi-independent route. In this work we assessed changes in the expression and localization of PSI from Cardosin B (PSI B) in Arabidopsis plants overexpressing PSI B-mCherry submitted to different abiotic stress conditions (saline, hydric, oxidative, metals). Aside from potential PSI B localization changes, we focused on characterizing the homozygous line, alongside assessing several biometric parameters and biochemical endpoints. The results revealed that the PSI B line responded differently depending on the stress conditions. Biometric and biochemical analyses emphasized the roles of PSI B in enhancing plant fitness and supporting adaptation to abiotic stress. Besides, confocal microscopy allowed us to find PSI B accumulation in Endoplasmic Reticulum-derived vesicles (ER bodies), indicating a shift from the common PSI B-mediated route. These findings underscore the role of PSI B in enhancing plant fitness and adaptation to abiotic stress through altered protein trafficking. HighlightPSI B has an active role in enhancing plant fitness, revealing its value in adaptation and tolerance to abiotic stress by adjusting its localization and trafficking under challenging environments.

plant biology↗