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Biology subjects

Brown, E. J.

Publications and source records attributed to Brown, E. J..

2 recordsLinked to original sources

Global proteomics of Ubqln2-based murine models of ALS

Familial forms of neurodegenerative diseases commonly involve mutation of aggregation-prone proteins or components of the protein degradation machinery that act on aberrant proteins. Ubqln2 encodes a member of the UBL/UBA family of proteasome shuttle factors that is thought to facilitate proteasomal degradation of substrates, and mutation of this gene results in a familial form of ALS/FTD in humans. How Ubqln2 dysfunction leads to neurodegeneration, however, remains uncertain. We undertook a comprehensive study to identify proteomic changes upon Ubqln2 perturbation in multiple murine models of Ubqln2-mediated neurodegenerative disease. By performing quantitative multiplexed proteomics on neural tissues of affected animals, we identified a small group of proteins whose abundance is tightly linked to UBQLN2 function: the ubiquitin ligase TRIM32 and two retroelement-derived proteins, PEG10 and CXX1B. Further studies using cultured cells of human origin, including induced neurons, found similar changes in protein abundance upon Ubqln2 loss, and pulse-chase studies suggested that PEG10 and TRIM32 are direct clients of UBQLN2. In conclusion, our study provides a deep understanding of the proteomic landscape of ALS-related Ubqln2 mutants and identifies candidate client proteins that are altered in vivo in disease models and whose degradation is promoted by UBQLN2.

cell biology

Inhibiting LXRα Phosphorylation in Hematopoietic Cells Reduces Inflammation and Attenuates Atherosclerosis and Obesity

Atherosclerosis and obesity share pathological features including inflammation mediated by innate and adaptive immune cells. LXR, a nuclear receptor, plays a central role in the transcription of inflammatory and lipid metabolic genes. LXR is modulated by phosphorylation at serine 196 (LXR pS196), however, the functional consequences of LXR pS196 in hematopoietic cell precursors in atherosclerosis and obesity have not been investigated. To assess the importance of LXR phosphorylation, bone marrow from LXRWT and S196A mice was transplanted into Ldlr-/- mice, which were fed a high fat, high cholesterol diet prior to evaluation of atherosclerosis and obesity. Plaques from S196A mice showed reduced inflammatory monocyte recruitment, lipid accumulation, and macrophage proliferation. Expression profiling of CD68+ cells from S196A mouse plaques revealed downregulation of pro-inflammatory genes and upregulation of mitochondrial genes characteristic of anti-inflammatory macrophages. Furthermore, S196A mice had lower body weight and less visceral adipose tissue; this was associated with transcriptional reprograming of the adipose tissue macrophages and resolution of inflammation resulting in less fat accumulation within adipocytes. Thus, reducing LXR pS196 in hematopoietic cells attenuates atherosclerosis and obesity by reprogramming the transcriptional activity of LXR to an anti-inflammatory phenotype.

molecular biology