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Vatsa, N.

Publications and source records attributed to Vatsa, N..

3 recordsLinked to original sources

Network analysis of α-synuclein pathology progression reveals p21-activated kinases as regulators of vulnerability

-Synuclein misfolding and progressive accumulation drive a pathogenic process in Parkinson's disease, yet many brain regions develop more or less pathology than would be predicted by connectivity alone, indicating that intrinsic biological factors influence regional vulnerability. Here, we combined whole brain mapping of -synuclein pathology in wildtype mice 3 days to 9 months after seeding with network diffusion modeling based on anatomical connectivity to derive quantitative measures of regional vulnerability. To identify molecular drivers of this vulnerability, we generated a brain-wide sPAtial Neuron Gene Expression Atlas (PANGEA) and compared regional transcriptional profiles with model-derived vulnerability scores. Vulnerable regions were enriched for specific cellular programs. Specific kinases were also enriched in vulnerable regions, leading to the identification of group II p21-activated kinases (PAKs) as candidate regulators of -synucleinopathy. Pharmacological inhibition of group II PAKs reduced -synuclein aggregation and protected against neuron loss in primary neurons, remained effective when administered after pathology initiation, and suppressed pathology in vivo. Consistent with these findings, genetic depletion of PAK5/6 also suppressed -synuclein aggregation. Together, these results establish a framework linking network-level measures to cellular mechanisms of selective vulnerability and nominate group II PAKs as promising disease-modifying therapeutic targets for Parkinson's disease.

neuroscience↗

Tet2 loss suppress α-synuclein pathology by stimulating ciliogenesis

There are no approved treatments that slow Parkinsons disease (PD) progression and therefore it is important to identify novel pathogenic mechanisms that can be targeted. Loss of the epigenetic marker, Tet2 appears to have some beneficial effects in PD models, but the underlying mechanism of action is not well understood. We performed an unbiased transcriptomic analysis of cortical neurons isolated from patients with PD to identify dysregulated pathways and determine their potential contributions to the disease process. We discovered that genes associated with primary cilia, non-synaptic sensory and signaling organelles, are upregulated in both early and late PD patients. Enhancing ciliogenesis in primary cortical neurons via sonic hedgehog signaling suppressed the accumulation of -synuclein pathology in vitro. Interestingly, deletion of Tet2 in mice also enhanced the expression of primary cilia and sonic hedgehog signaling genes and rescued the accumulation of -synuclein pathology and dopamine neuron degeneration in vivo. Our findings demonstrate the crucial role of Tet2 loss in regulating ciliogenesis and potentially affecting the progression of PD pathology.

neuroscience↗

A rapid microglial metabolic response controls metabolism and improves memory

Chronic high-fat feeding triggers chronic metabolic dysfunction including obesity, insulin resistance, and diabetes. How high-fat intake first triggers these pathophysiological states remains unknown. Here, we identify an acute microglial metabolic response that rapidly translates intake of high-fat diet (HFD) to a surprisingly beneficial effect on metabolism and spatial / learning memory. High-fat intake rapidly increases palmitate levels in cerebrospinal fluid and triggers a wave of microglial metabolic activation characterized by mitochondrial membrane activation and fission as well as metabolic skewing towards aerobic glycolysis. These effects are detectable throughout the brain and can be detected within as little as 12 hours of HFD exposure. In vivo, microglial ablation and conditional DRP1 deletion show that the microglial metabolic response is necessary for the acute effects of HFD. 13C-tracing experiments reveal that in addition to processing via {beta}-oxidation, microglia shunt a substantial fraction of palmitate towards anaplerosis and re-release of bioenergetic carbons into the extracellular milieu in the form of lactate, glutamate, succinate, and intriguingly, the neuro-protective metabolite itaconate. Together, these data identify microglia as a critical nutrient regulatory node in the brain, metabolizing away harmful fatty acids and releasing the same carbons as alternate bioenergetic and protective substrates for surrounding cells. The data identify a surprisingly beneficial effect of short-term HFD on learning and memory. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=146 SRC="FIGDIR/small/535373v2_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@1b9699corg.highwire.dtl.DTLVardef@1c48efcorg.highwire.dtl.DTLVardef@18757d0org.highwire.dtl.DTLVardef@962cf6_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗