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Coyle-Asbil, B.

Publications and source records attributed to Coyle-Asbil, B..

2 recordsLinked to original sources

beta3-adrenergic browning of pericardial adipose tissue controls cardiac function

Dysfunctional adipose tissue (AT) is strongly linked to the development of cardiovascular diseases (CVD). Accumulation of AT around vital organs is detrimental to their respective function and overall health. Although there is strong evidence linking the accumulation of pericardial AT with CVD development, a comprehensive investigation on the adaptation of pAT in obesity is scarce. Here, by applying pair-wise bottom-up proteomics in pAT of humans and mice, we found pAT presents a browning signature, as demonstrated by enrichment of mitochondria, presence of UCP1, and greater metabolic capacity compared to subcutaneous AT. In mice fed a high-fat diet or obese patients, the pAT undergoes whitening, characterized by adipocyte hypertrophy, reduced mitochondrial content, respiratory capacity, and UCP1 levels. Lipectomy of pAT from obese mice decreased pathological ventricular hypertrophy. Conversely, selective {beta}3-adrenergic agonist treatment rescued pAT browning status and is associated with improved heart structure and function, including ventricular thickness, and fibrosis in obese mice. Importantly, lipectomy of pAT abrogated the positive effects of {beta}3-adrenergic agonism in cardiac function of obese mice. Altogether, our work positions pAT as a mechanistic driver of obesity-related cardiac dysfunction and establish {beta}3-adrenergic-mediated browning of pAT as a novel therapeutic treatment strategy.

physiology↗

Cardiac atrophy, dysfunction, and metabolic impairments: a cancer-induced heart failure phenotype

Muscle atrophy and weakness are prevalent features of cancer. While extensive research has characterized skeletal muscle wasting in cancer cachexia, limited studies have investigated how cardiac structure and function are affected by therapy-naive cancer. In cell-based models of orthotopic, syngeneic epithelial ovarian cancer (EOC) and pancreatic ductal adenocarcinoma (PDAC), and a patient-derived pancreatic xenograft model (PDX), we evaluated cardiac structure, function, and metabolism. Tumor-bearing mice showed cardiac atrophy and intrinsic systolic and diastolic dysfunction; associated with hypotension and exercise intolerance. In hearts of ovarian tumor-bearing mice, fatty acid-supported mitochondrial respiration decreased and carbohydrate-supported respiration increased, establishing a substrate shift in cardiac metabolism that is characteristic of heart failure. EOC decreased cytoskeletal and cardioprotective gene expression, which was paralleled by downregulation of transcription factors that regulate cardiomyocyte size and function. PDX tumors altered myosin heavy chain isoform expression - a molecular phenotype observed in heart failure. Markers of autophagy and ubiquitin-proteasome system were upregulated with cancer, providing evidence of catabolic signaling that promotes cardiac wasting. Together, metabolic stress, cardiac gene dysregulation, and upregulation of catabolic pathways contribute to cardiac atrophy and failure during cancer. Finally, we demonstrate that pathological cardiac remodeling is induced by human cancer, providing translational evidence of cancer-induced cardiomyopathy.

physiology↗