Search bioRxiv⌕ Search

Biology subjects

Cappelletti, G.

Publications and source records attributed to Cappelletti, G..

2 recordsLinked to original sources

Linking acetylated alpha-Tubulin redistribution to alpha-Synuclein pathology in brain of Parkinson's disease patients

Highly specialized microtubules in neurons are crucial to the health and disease of the nervous system, and their properties are strictly regulated by different post-translational modifications, including -Tubulin acetylation. An imbalance in the levels of acetylated -Tubulin has been reported in experimental models of Parkinsons disease (PD) whereas pharmacological or genetic modulation that leads to increased acetylated -Tubulin successfully rescues axonal transport defects and inhibits -Synuclein aggregation. However, the role of acetylation of -Tubulin in the human nervous system is largely unknown as most studies are based on in vitro evidence. To capture the complexity of the pathological processes in vivo, we analysed post-mortem human brain of PD patients and control subjects. In the brain of PD patients at Braak stage 6, we found a redistribution of acetylated -Tubulin, which accumulates in the neuronal cell bodies in subcortical structures but not in the cerebral cortex, and decreases in the axonal compartment, both in the central and peripheral nervous system. High-resolution and 3D reconstruction analysis linked acetylated -Tubulin redistribution to -Synuclein oligomerization, leading us to propose a model for Lewy body (LB) morphogenesis. Finally, for the first time in post-mortem human brain, we observed threadlike structures, resembling tunnelling nanotubes that contain -Synuclein oligomers and are associated with acetylated -Tubulin enriched neurons. In conclusion, we disclose a novel aspect of LB morphogenesis, indicating the role of acetylated -Tubulin in PD, that may provide clues to design novel therapeutic interventions.

neuroscience↗

SARS-CoV-2 ORF3c impairs mitochondrial respiratory metabolism, oxidative stress and autophagic flow

Coronaviruses encode a variable number of accessory proteins that play a role in host-virus interactions, in the suppression of immune responses, or in immune evasion. Accessory proteins in SARS-CoV-2 consist of at least twelve viral proteins whose roles during infection have been extensively studied. Nevertheless, the role of the ORF3c accessory protein, an alternative open reading frame of ORF3a, has remained elusive. Herein, we characterized ORF3c in terms of cellular localization, hosts antiviral response modulation, and effects on mitochondrial metabolism. We show that ORF3c has a mitochondrial localization and alters mitochondrial metabolism, resulting in increased ROS production, block of the autophagic flux, and accumulation of autophagosomes/autolysosomes. Notably, we also found that ORF3c induces a shift from glucose to fatty acids oxidation and enhanced oxidative phosphorylation. This is similar to the condition observed in the chronic degenerative phase of COVID-19. Altogether these data suggest that ORF3c could be a key protein for SARS-CoV-2 pathogenesis and that it may play a role in disease progression.

microbiology↗