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Ding, W.-X.

Publications and source records attributed to Ding, W.-X..

3 recordsLinked to original sources

Late-Life Alcohol Exposure Does Not Exacerbate Age-Dependent Reductions in Mouse Spatial Memory and Brain TFEB Activity

Alcohol consumption is believed to affect Alzheimers disease (AD) risk, but the contributing mechanisms are not well understood. A potential mediator of the proposed alcohol-AD connection is autophagy, a degradation pathway that maintains organelle and protein homeostasis. Autophagy is in turn regulated through the activity of Transcription factor EB (TFEB), which promotes lysosome and autophagy-related gene expression. To explore the effect of alcohol on brain TFEB and autophagy, we exposed young (3-month old) and aged (23-month old) mice to two alcohol-feeding paradigms and assessed biochemical, transcriptome, histology, and behavioral endpoints. In young mice, alcohol decreased hippocampal nuclear TFEB staining but increased SQSTM1/p62, LC3-II, ubiquitinated proteins, and phosphorylated Tau. Hippocampal TFEB activity was lower in aged mice than it was in young mice, and Gao-binge alcohol feeding did not worsen the age-related reduction in TFEB activity. To better assess the impact of chronic alcohol exposure, we fed young and aged mice alcohol for four weeks before completing Morris Water and Barnes Maze spatial memory testing. The aged mice showed worse spatial memory on both tests. While alcohol feeding slightly impaired spatial memory in the young mice, it had little effect or even slightly improved spatial memory in the aged mice. These findings suggest that aging is a far more important driver of spatial memory impairment and reduced autophagy flux than alcohol consumption.

animal behavior and cognition↗

Modulation of hepatic transcription factor EB activity during cold exposure uncovers direct regulation of bis(monoacylglycerol)phosphate lipids by Pla2g15

Cold exposure is a selective environmental stress that elicits a rapid metabolic shift to maintain energy homeostasis. In response to cold exposure, the liver rewires the metabolic state shifting from glucose to lipid catabolism. By probing the liver lipids in cold exposure, we observed that the lysosomal bis(monoacylglycero)phosphate (BMP) lipids were rapidly increased during cold exposure. BMP lipid changes occurred independently of lysosomal abundance but were dependent on the lysosomal transcriptional regulator transcription factor EB (TFEB). Knockdown of TFEB in hepatocytes decreased BMP lipid levels and led to cold intolerance in mice. We assessed TFEB binding sites of lysosomal genes and determined that the phospholipase Pla2g15 regulates BMP lipid catabolism. Knockdown of Pla2g15 in mice increased BMP lipid levels, ablated the cold-induced rise, and improved cold tolerance. Knockout of Pla2g15 in mice and hepatocytes led to increased BMP lipid levels, that were decreased with re-expression of Pla2g15. Mutation of the catalytic site of Pla2g15 ablated the BMP lipid breakdown. Together, our studies uncover TFEB regulation of BMP lipids through Pla2g15 catabolism.

biochemistry↗

Obesity Disrupts Pituitary UPR Leading to NAFLD

Obesity is the major risk factor for nonalcoholic fatty liver disease (NAFLD), for which effective cures are lacking. Despite the notion that obesity is associated with aberrant levels and action of pituitary hormones that are essential for maintaining hepatic metabolic and inflammatory states, the intrinsic pituitary endocrine abnormalities and their systemic consequences are incompletely defined. By characterizing the impact of diet-induced obesity (DIO) on the pituitary whole tissue and single cell transcriptome, we demonstrated that obesity disrupts pituitary endoplasmic reticulum (ER) homeostasis by suppressing the inositol-requiring enzyme- (IRE1)-mediated adaptive unfolded protein response (UPR). We further showed that defective pituitary UPR by IRE1-deletion in the anterior pituitary strikingly augmented obesity-associated systemic metabolic abnormalities, particularly the NAFLD-associated pathologies. Conversely, enhancing the adaptive UPR in the anterior pituitary, by genetic gain-of-function of spliced X-box binding protein 1 (sXBP1), ameliorated the systemic and hepatic metabolic defects observed in mice with pituitary IRE1 deletion. Intriguingly, disruption of the UPR in the pituitary resulted in impaired hepatic UPR, which was in part due to a defective thyroid hormone receptor (THR)-mediated activation of hepatic Xbp1. In contrast, activation of the hepatic THR signaling improved obesity-associated glucose intolerance and attenuated the impaired hepatic ER homeostasis in anterior pituitary-IRE1 deficient mice. Together, our study provides the first insight into disruption of endocrine signaling-mediated inter-organ UPR communication drives obesity-associated hepatic pathologies. Unraveling these connections might uncover new therapeutic targets for NAFLD and other obesity-associated diseases.

physiology↗