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Filippi, C.

Publications and source records attributed to Filippi, C..

2 recordsLinked to original sources

Acetyl-CoA metabolism drives epigenome change and contributes to carcinogenesis risk in fatty liver disease

The rate of nonalcoholic fatty liver disease (NAFLD)-associated hepatocellular carcinoma (HCC) is increasing worldwide, but the steps in precancerous hepatocytes which lead to HCC driver mutations are not well understood. Here we provide evidence that metabolically-driven histone hyperacetylation in steatotic hepatocytes can increase DNA damage to initiate carcinogenesis. Genome-wide histone acetylation is increased in steatotic livers of rodents fed high fructose or high fat diet. In vitro, steatosis relaxes chromatin and increases DNA damage marker {gamma}H2AX, which is reversed by inhibiting acetyl-CoA production. Steatosis-associated acetylation and {gamma}H2AX are enriched at gene clusters in telomere-proximal regions which contain HCC tumor suppressors in hepatocytes and human fatty livers. Regions of metabolically-driven epigenetic change also have increased levels of DNA mutation in non-cancerous tissue from NAFLD patients. Finally, genome-scale network modelling indicates that redox balance is a key contributor to this mechanism. Thus abnormal histone hyperacetylation is a potential initiating event in HCC carcinogenesis.

cancer biology↗

Functional spreading of hyperexcitability induced by human and synthetic intracellular Aβ oligomers

BackgroundIntracellular amyloid-beta oligomers (iA{beta}o) accumulation and neuronal hyperexcitability are two crucial events at early stages of Alzheimers disease (AD). However, to date, no mechanism linking them has been reported. MethodsHere, the effects of human AD brain-derived (h-iA{beta}o) and synthetic (iA{beta}o) peptides on synaptic currents and action potential (AP) firing were investigated in hippocampal neurons in vitro, ex vivo and in vivo. ResultsStarting from 500 pM, iA{beta}o rapidly increased the frequency of synaptic currents and higher concentrations potentiated the AMPA receptor-mediated current. Both effects were PKC-dependent. Parallel recordings of synaptic currents and nitric oxide (NO)-related fluorescence changes indicated that the increased frequency, related to pre-synaptic release, was dependent on a NO-mediated retrograde signaling. Moreover, increased synchronization in NO production was also observed in neurons neighboring those dialyzed with iA{beta}o, indicating that iA{beta}o can increase network excitability at a distance. Current-clamp recordings suggested that iA{beta}o increased neuronal excitability via AMPA-driven synaptic activity without altering membrane intrinsic properties. ConclusionThese results strongly indicate that iA{beta}o causes functional spreading of hyperexcitability through a synaptic-driven mechanism and offer an important neuropathological significance to intracellular species in the initial stages of AD, which include brain hyperexcitability and seizures.

neuroscience↗