bioRxiv Science⌕ Search

Biology subjects

Wegert, V.

Publications and source records attributed to Wegert, V..

2 recordsLinked to original sources

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↗

Identification of two β-cell subtypes by 7 independent criteria

Despite the recent explosion in surveys of cell-type heterogeneity, the mechanisms that specify and stabilize highly related cell subtypes remain poorly understood. Here, focusing initially on exploring quantitative histone mark heterogeneity, we identify two major sub-types of pancreatic {beta}-cells ({beta}HI and {beta}LO). {beta}HI and {beta}LO cells differ in their size, morphology, cytosolic and nuclear ultrastructure, transcriptional output, epigenomes, cell surface marker, and function. Importantly, {beta}HI and {beta}LO cells can be FACS separated live into CD24+ ({beta}HI) and CD24- ({beta}LO) fractions. From an epigenetic viewpoint, {beta}HI-cells exhibit [~]4-fold higher levels of H3K27me3, more compacted chromatin, and distinct chromatin organization that associates with a specific pattern of transcriptional output. Functionally, {beta}HI cells have increased mitochondrial mass, activity, and insulin secretion both in vivo and ex vivo. Critically, Eed and Jmjd3 loss-of-function studies demonstrate that H3K27me3 dosage is a significant regulator of {beta}HI / {beta}LO cell ratio in vivo, yielding some of the first-ever specific models of {beta}-cell sub-type distortion. {beta}HI and {beta}LO sub-types are conserved in humans with {beta}HI-cells enriched in human Type-2 diabetes. These data identify two novel and fundamentally distinct {beta}-cell subtypes and identify epigenetic dosage as a novel regulator of {beta}-cell subtype specification and heterogeneity. HighlightsO_LIQuantitative H3K27me3 heterogeneity reveals 2 common {beta}-cell subtypes C_LIO_LI{beta}HI and {beta}LO cells are stably distinct by 7 independent sets of parameters C_LIO_LIH3K27me3 dosage controls {beta}HI / {beta}LO ratio in vivo C_LIO_LI{beta}HI and {beta}LO cells are conserved in humans and enriched in Type-2 diabetes C_LI

cell biology↗