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Mangiavacchi, A.

Publications and source records attributed to Mangiavacchi, A..

2 recordsLinked to original sources

Endogenous retrotransposon reverse transcriptase supports osteocyte function: implications for antiretroviral therapy-associated bone loss

Retrotansposable elements such as LINE-1 and HERV-K encode endogenous reverse transcriptases (RTs) with emerging roles in human biology. People living with HIV, particularly those receiving nucleoside reverse transcriptase inhibitor (NRTI)-based therapy, have increased risk of low bone mineral density (BMD), but the underlying mechanisms remain unclear. Here we show that endogenous RT activity, estimated by L1-Ta and HERV-K DNA content, is enriched in human bone and markedly reduced in osteoporosis, where it correlates with BMD and osteocyte gene expression. In vitro, nucleoside reverse transcriptase inhibitors (NRTIs), widely used as antiretroviral drugs, impair osteocyte endocrine function, disrupting vitamin D3-induced FGF23 production and parathyroid hormone- mediated regulation of SOST. These findings identify endogenous RT activity as a regulator of osteocyte function and bone homeostasis, and suggest that its pharmacological inhibition may contribute to antiretroviral therapy-associated bone loss.

molecular biology↗

Histone Succinylation-Driven LINE-1 Reactivation Links High-Fat Diet Stress to Hepatic Inflammation and Liver Disease

Endogenous retroelements such as LINE-1 (L1) are stress-responsive genomic elements increasingly implicated in stress induced inflammation and associated pathogenic states. Here, we uncover a novel mechanism whereby high-fat diet-associated palmitic acid stress triggers chromatin remodeling that derepresses L1 elements and an IRF3-dependent interferon response, leading to innate immune activation in hepatocytes. Mechanistically, we show that that palmitic acid exposure promoted p300/CBP-mediated H3K122 succinylation at L1 promoters, coupled with reduced sirtuin desuccinylase cofactor availability, thereby enhancing chromatin accessibility and transcription. Antisense oligonucleotide-mediated L1 silencing abrogated this response by resetting chromatin homeostasis, demonstrating a causal role for L1 in palmitate-induced inflammation. In vivo, L1 knockdown in a fructose-palmitate-cholesterol (FPC) diet-induced mouse model of MASLD/MASH improved insulin sensitivity, reduced hepatic inflammation, and ameliorated fibrosis. These findings identify L1 derepression as a key epigenetic and inflammatory effector of dietary lipid stress and establish L1 inhibition as a potential therapeutic strategy for metabolic liver disease.

molecular biology↗