Search bioRxiv⌕ Search

Biology subjects

Gillotin, S.

Publications and source records attributed to Gillotin, S..

4 recordsLinked to original sources

Modelling ferroptosis in a human microglial line by sequential exposure to iron and GPX4 inhibition

Excessive iron accumulation is a pathological feature of several neurodegenerative diseases (NDDs) and a growing body of evidence suggests that ferroptosis, an iron-dependent form of regulated cell death (RCD) driven by lipid peroxidation, is implicated in their pathogenesis. Microglia, the brains resident immune cells, buffer iron overload but become susceptible to ferroptotic death, exacerbating neuroinflammation and neuronal loss. To uncover the molecular events leading to microglial ferroptosis, we established a human microglial ferroptosis model using the HMC3 cell line. This model recapitulates core features of ferroptosis, including increased reactive oxygen species (ROS) and peroxidation of lipids at the membrane, both rescued by Ferrostatin-1 (Fer-1). We used this model to perform integrated multi-omics profiling and identified significant dysregulation in lipid species, notably an accumulation of sterols, including oxysterols such as the 7-oxo-cholesterol, alongside the oxidation of polyunsaturated fatty acid (PUFA) characteristic of ferroptosis. Transcriptomic and proteomic analyses corroborated these findings, revealing the upregulation of genes and proteins involved in the mevalonate pathway and cholesterol metabolism. Importantly, the increased expression of some of these key metabolic genes was also reversed by Fer-1 treatment, indicating their role in a pre-ferroptotic signature. Our model provides a novel platform for investigating early molecular events in microglia ferroptosis. Integrating these findings into future investigations could uncover new protective mechanisms against microglia ferroptosis at the crossroad between ROS level mitigation and sterol metabolism.

neuroscience↗

Inhibition of histone lysine demethylase restores learning and memory in aged mice

Chromatin undergoes dramatic changes during the ageing process. In the brain, these chromatin changes are thought to underlie age-associated deficits in the activity-dependent gene transcription necessary for memory consolidation. Here, we show that the levels of a specific histone post-translational modification (PTM), trimethylation of lysine 4 on histone 3 (H3K4me3) is markedly increased in the hippocampus of aged mice and that the activity-induced increase in H3K4me3 that is observed in response to a learning stimulus in young mice, is severely blunted in the aged hippocampus. H3K4me3 typically marks open, accessible chromatin at the transcriptional start sites (TSSs) of actively transcribed genes. We identify altered H3K4me3 peaks at TSSs and show that ca. 90% of the activity-induced H3K4me3 changes at TSSs are either absent or reduced in the aged hippocampus. To understand the biological significance of these age-associated changes, we screened a library of pharmacological compounds for compounds that can alter H3K4me3 levels in hippocampal neurons. We show that treatment of aged mice with one of these, the LSD1 inhibitor ORY-1001, restored normal learning and memory in object location and recognition tasks. Furthermore, we show that ORY-1001 treatment increased long-term potentiation (LTP), a form of synaptic plasticity deficient in the aged hippocampus. These findings suggest that targeting the epigenetic machinery that regulates activity-dependent gene transcription may represent an avenue for treating age-associated cognitive impairment. HighlightsO_LIH3K4me3 levels are elevated in the naive aged mouse hippocampus C_LIO_LIActivity-dependent H3K4me3 induction is impaired in the aged mouse hippocampus C_LIO_LILSD1 inhibition restores learning and memory in aged mice C_LIO_LILSD1 inhibition restores activity-dependent Arc induction and increases LTP in the aged hippocampus C_LI O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=142 SRC="FIGDIR/small/695858v1_ufig1.gif" ALT="Figure 1"> View larger version (39K): org.highwire.dtl.DTLVardef@fccd92org.highwire.dtl.DTLVardef@11c4d93org.highwire.dtl.DTLVardef@128f8b8org.highwire.dtl.DTLVardef@e1341f_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Leveraging unbiased LC-MS analysis to identify histone post-translational modifications associated with age-related decline of learning and memory

Age-associated cognitive decline is a significant societal challenge, with several neurodegenerative diseases like Alzheimers disease becoming prevalent. Normal ageing is associated with several molecular, cellular, and metabolic hallmarks, including epigenetic mechanisms. In particular, dysregulation of post-translational modifications on histone tails is emerging as a mechanism associated with functional decline. The hippocampus is a region of the brain that is essential for the formation of episodic and spatial memories, which are particularly susceptible to age-related decline. In this perspective manuscript, we have used mass spectrometry as an unbiased method to profile histone tail post-translational modifications both at baseline and after contextual fear conditioning (CFC) from young and aged mouse hippocampi to identify age- and activity-dependent changes. Using this approach, we identify epigenetic marks not widely studied in ageing and in activity-induced learning. We propose a framework on how to integrate these epigenetic marks into current knowledge and discuss how to use this new analysis to formulate novel hypotheses that will broaden this field of ageing research. We believe that this work will be of interest to scientists, clinicians and the wider public by making a significant contribution to our understanding of the molecular mechanisms responsible for age-associated cognitive decline and by reporting the identification of new mechanisms to focus on.

neuroscience↗

Disrupting the interaction between AMBRA1 and DLC1 is a promising therapeutic strategy for neurodegeneration that prevents apoptosis while enhancing autophagy and mitophagy

Activating molecule in Beclin1-regulated autophagy (AMBRA1) has critical roles in autophagy, mitophagy, cell cycle regulation, neurogenesis and apoptosis. Dysregulation of these processes are hallmarks of various neurodegenerative diseases and therefore AMBRA1 represents a potential therapeutic target. The flexibility of its intrinsically disordered regions allows AMBRA1 to undergo conformational changes and thus perform its function as an adaptor protein for various different complexes. Understanding the relevance of these multiple protein-protein interactions will allow us to gain information about which to target pharmacologically. To compare potential AMBRA1 activation strategies we have designed and validated several mutant constructs (ACTA, TAT, WD40 and S1014) in addition to characterising their effects on proliferation, apoptosis, autophagy and mitophagy in SHSY5Y cells. AMBRA1TAT, which is a mutant form of AMBRA1 that cant interact with dynein light chain (DLC)1 at the microtubules, produced the most promising results. Indeed, overexpression of this mutant protected cells against apoptosis and induced autophagy and mitophagy in SHSY5Y cells in addition to enhancing the switch from quiescence to proliferation in mouse neural stem cells. Future studies should focus on designing compounds that inhibit the protein-protein interaction between AMBRA1 and DLC1 and thus have potential to be used as a drug strategy to treat neurodegeneration.

cell biology↗