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Manzoli, M.

Publications and source records attributed to Manzoli, M..

2 recordsLinked to original sources

Dissecting Annexin-A11 into its functional domains revealed calcium as a key regulator for RNA transport and its association with ALS

Recent studies reveal a "hitchhiking" mechanism in neurons, where organelles transported along microtubules carry other cargos via tethering molecules. Annexin A11 (ANXA11), a calcium-dependent phospholipid-binding protein, functions as a tether linking RNA granules to lysosomes, aiding mRNA transport for rapid neuronal responses. Structurally, its N-terminal (Nt) binds RNA, while the C-terminal (Ct) associates with lysosomal membranes. Mutations in ANXA11 linked to Amyotrophic lateral sclerosis (ALS) may disrupt this function. Here, applying a multidisciplinary approach, we revealed that Ca2+ acts as a master regulator of ANXAlls physiological function by modulating its conformational states. Specifically, Ca2+ influences a switch between two conformations: a close state, in which the Nt and Ct interact with each other, and an open state, which occurs in the presence of Ca2+ ions, where this self-interaction is disrupted, allowing the two domains to interact freely with RNA and liposomes. Surprisingly, we observed that both the Ct and Nt are capable of interacting with liposomes and RNA in a Ca2+-dependent manner, and these interactions can occur simultaneously. This dual binding and its calcium-regulated hierarchy finely tunes ANXAlls binding to RNA and lysosomes, promoting a large complex essential for overcoming transport steric hindrance. Moreover, our result showed that the p.D40G mutation, in the Nt domain, associated with ALS, displays destabilized interdomain interactions and bypass Ca2+ regulation, leading to aberrant aggregation. These insights advance our understanding of ANXAlls role in neuronal RNA transport and its disruption in neurodegeneration, highlighting potential targets for therapeutic intervention.

biochemistry↗

Corylus avellana non-specific lipid-transfer protein Cor a 8 is a moonlighting enzyme with a new lipase activity

The high-fat content of hazelnuts, mainly triglycerides, makes them prone to lipid oxidation during storage, which has a big impact on their sensory and nutritional quality. The chemical pathways leading to hazelnut oxidative rancidity have been well characterized and it are faster on free fatty acids. Lipase(s) enzymes are required, in oilseed, to hydrolyze the ester bond to free the single molecule of fatty acids. This step, necessary for germination, is the first event to trigger rancidity. Identifying the lipase(s) enzyme and the biochemical pathways involved in rancidity would lead to an effective strategy to prevent fat deterioration. Different proteins have been characterized in hazelnut seed and great interest has been risen towards the non-specific lipid transfer protein family because they were identified as human allergens. Here we show that Cor a 8 - a member of nsLTP - is a novel non-regiospecific lipase that is able to bind to oil-water interfaces and hydrolyze the triacylglycerol (TAGs) ester bonds by a non-canonical active site (non-serine dependent). Molecular modelling and molecular dynamics suggest that Cor a 8 is a moonlighting enzyme not only able to catalyze the hydrolysis of TAGs but also to stabilize the resulting free fatty acids and transport it. Cor a 8 homologues are present in all land plants, but the specific catalytic amino acids are found only in angiosperms, suggesting an evolutionary adaptation for lipid metabolism unique to flowering plants. This study sets the foundation for understanding this new lipid metabolism in plants and its role in rancidity development.

biochemistry↗