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Gerenu, G.

Publications and source records attributed to Gerenu, G..

3 recordsLinked to original sources

Computational Analysis of ELOVL6 Structure and Inhibition for Rational Drug Design

ELOVL6 is a key enzyme in long-chain fatty acid elongation, catalyzing the conversion of C16 fatty acids into C18 fatty acids. While its role in lipid metabolism is well established, recent studies have linked ELOVL6 to metabolic and neurodegenerative diseases, making it an attractive therapeutic target. However, the absence of a resolved crystal structure and limited mechanistic understanding of its inhibition pose significant challenges for drug discovery. In this study, we employ a multi-tiered computational approach, including structure prediction, molecular dynamics (MD) simulations, and free energy calculations, to investigate the structural basis of ELOVL6 function and inhibition. We identify the most thermodynamically favorable substrate binding pathway and characterize key conformational changes associated with ligand binding. By analyzing potential inhibitor binding pockets, we determine that known inhibitors preferentially target the active site, and we validate their binding affinities against experimental data. Additionally, by comparing ELOVL6 with homologous elongases, we pinpoint potentially key amino acid residues responsible for selectivity, providing insights that could guide structure-based drug design. Our findings establish a mechanistic framework for rational inhibitor development, offering a foundation for future efforts in optimizing ELOVL6-targeting therapeutics.

bioinformatics↗

Lipid Dysregulation Unveil the Intricate Interplay of Lysosomal and Mitochondrial Changes in Frontotemporal Dementia with GRN Haploinsufficiency

This study investigates the cellular pathology resulting from haploinsufficiency of progranulin (PGRN) in frontotemporal dementia (FTD) associated with granulin (GRN) mutations. Utilizing fibroblasts from FTD patients carrying a distinctive GRN mutation (c.709-1G>A), we observed lysosomal and lipofuscin accumulation, impaired lysosomal function, compromised autophagic flux, and mitochondrial abnormalities. Notably, recombinant human progranulin (rhPGRN) treatment restored lysosomal acidification, mitigated mitochondrial defects, and demonstrated beneficial effects. FTD-GRN fibroblasts exhibited abnormal lipid metabolism with increased lipid droplet formation, influenced by GRN haploinsufficiency and modulated by rhPGRN. Under nutrient-rich conditions, lipid droplet dynamics were shaped by autophagy and mitochondrial processes, potentially due to impaired fatty acid oxidation. These findings highlight a direct association between GRN deficiency and altered lysosomal-mitochondrial interactions, influencing lipid metabolism and contributing to FTD pathogenesis. The documented lysosomal dysfunction, impaired autophagy, mitochondrial anomalies, and altered lipid metabolism collectively suggest a complex interplay of cellular processes in the development of FTD-GRN.

neuroscience↗

Neuron-derived Thioredoxin-80: a novel regulator of type-I interferon response in microglia

Oxidative stress and neuroinflammation play a central role in Alzheimers Disease (AD) pathogenesis. However, the mechanism by which these processes lead to neurodegeneration is still not fully understood. Thioredoxin-1 (Trx1) is an antioxidant protein that can be cleaved into a peptide known as Thioredoxin-80 (Trx80), which modulates monocyte function in the periphery and shows anti-amyloidogenic properties in the brain. In this study we aimed to further clarify the biological function of this peptide and its regulation in the brain. We show that neurons are the main producers of Trx80 in the brain. Trx80 levels increase in vivo both in normal aging and in young APPNL-G-F mouse model of amyloid pathology. Trx80 levels were increased in neurons in primary culture treated with either rotenone or 27-hydroxycholesterol, what suggests that Trx80 production is stimulated upon oxidative stress. RNA-sequencing followed by differential gene expression analysis revealed that Trx80 induces microglia activation into a phenotype compatible with interferon response microglia. Finally, we determine that the induction of this microglia phenotype by Trx80 is Trem2-dependent. This study identifies Trx80 as a novel neuron-derived signaling mechanism that modulates microglia function under stress conditions. Strategies to regulate Trx80 levels could be beneficial against AD pathology.

neuroscience↗