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Biology subjects

Brestoff, J. R.

Publications and source records attributed to Brestoff, J. R..

4 recordsLinked to original sources

Multiplexed quantum sensing reveals coordinated thermomagnetic regulation of mitochondria

Mitochondria are multifunctional organelles that convert the potential energy stored in nutrients and intermediary metabolites into both heat and an electrochemical proton-motive force. However, how these outputs are synchronized in cells remains an enduring question. In this work, leveraging multiplexed nanodiamond quantum sensors to monitor both changes in temperature and magnetic field fluctuations in single primary cells obtained from diverse tissues in adult mice, we identified thermomagnetic correlation profiles uncovering a regulatory feedback loop in which the cell draws upon available intracellular iron to maintain the mitochondrial electrochemical gradient. These profiles reverse in cells derived from a mouse model of Leigh syndrome and raise the intriguing possibility that primary mitochondrial diseases can be understood as disorders of thermomagnetic homeostasis.

biophysics↗

Immune cells regulate circulating adipocyte extracellular vesicle levels in response to metabolic shifts

Extracellular vesicles (EVs) are now recognized as potent mediators of intercellular and inter-organ signaling and implicated in the pathogenesis of obesity and its associated comorbidities such as diabetes, cancer, cardiovascular disease, and neurodegeneration. Despite a surge of new functional information about EVs, we still lack a basic understanding of how endogenous EV levels are controlled to regulate inter-organ signaling. New flow cytometry technology has allowed us to study the regulation of circulating, endogenous EVs from metabolically relevant cell types like adipocytes. From this, we provide evidence for a paradigm of EV regulation where tissue resident immune cells, predominantly macrophages, clear EVs released by local tissue cells or EVs entering the tissue from circulation, an activity that determines circulating EV levels. In obesity, EV uptake by adipose tissue immune cells is reduced, concomitant with increased circulating adipocyte-specific EVs (adipoEVs) and reduced EV clearance rates. AdipoEVs are significantly elevated in mouse circulation from one day to 20 weeks of high-fat feeding. In humans we found that adipocyte EV levels negatively correlate with whole-body and liver insulin sensitivity and are not associated with adipose mass. This work suggests that tissue resident immune cells act as a gatekeeper for tissue EV entry into circulation and are thereby a major regulator of inter-organ EV signaling.

physiology↗

MXRA8 promotes adipose tissue whitening to drive obesity

Matrix-remodeling associated 8 (MXRA8), also known as Dual immunoglobulin domain cell adhesion molecule (DICAM), is a type 1 transmembrane protein that reportedly binds the V{beta}3 integrin1 and regulates the differentiation of osteoclasts2 and chondrocytes3, tumor growth4, T cell trafficking5, and angiogenesis6. MXRA8 is also an essential entry receptor for chikungunya virus and other related arthritogenic alphaviruses.7-9 We compared MXRA8 expression in 51 tissues in the Human Protein Atlas and found it is most highly expressed in white adipose tissue (WAT), however the function of MXRA8 in WAT is unknown. Here, we found that MXRA8 expression in WAT is increased in people with obesity and that this response is also observed in a mouse model of high fat-diet (HFD)-induced obesity. Single-nucleus RNA sequencing and high-dimensional spectral flow cytometry analyses revealed that MXRA8 is expressed predominantly by adipocyte progenitor (AP) cells and mature adipocytes. MXRA8 mutant primary adipocytes from inguinal (i)WAT exhibited increased expression of Uncoupling protein 1 (UCP1), a thermogenic protein expressed by beige and brown adipocytes that limits obesity pathogenesis.10-12 Indeed, MXRA8 mutant mice fed a HFD had preserved UCP1+ beige and brown adipocytes and were protected from HFD-induced obesity in a UCP1-dependent manner. Collectively, these findings indicate that MXRA8 promotes whitening of beige and brown adipose tissues to drive obesity pathogenesis and identify MXRA8 as a possible therapeutic target to treat obesity and associated metabolic diseases.

physiology↗

Adipocyte lipin 1 is positively associated with metabolic health in humans and regulates systemic metabolism in mice.

Dysfunctional adipose tissue is believed to promote the development of hepatic steatosis and systemic insulin resistance, but many of the mechanisms involved are still unclear. Lipin 1 catalyzes the conversion of phosphatidic acid to diacylglycerol (DAG), the penultimate step of triglyceride synthesis, which is essential for lipid storage. Herein we found that adipose tissue LPIN1 expression is decreased in people with obesity compared to lean subjects and low LPIN1 expression correlated with multi-tissue insulin resistance and increased rates of hepatic de novo lipogenesis. Comprehensive metabolic and multi-omic phenotyping demonstrated that adipocyte-specific Lpin1-/- mice had a metabolically-unhealthy phenotype, including liver and skeletal muscle insulin resistance, hepatic steatosis, increased hepatic de novo lipogenesis, and transcriptomic signatures of nonalcoholic steatohepatitis that was exacerbated by high-fat diets. We conclude that adipocyte lipin 1-mediated lipid storage is vital for preserving adipose tissue and systemic metabolic health and its loss predisposes mice to nonalcoholic steatohepatitis.

physiology↗