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Biology subjects

Rector, R. S.

Publications and source records attributed to Rector, R. S..

3 recordsLinked to original sources

The Adipomyokine Follistatin-like-1 Restores Cardiovascular Function in a Swine Model of Diabetic Myocardial Infarction

Obesity, diabetes, and metabolic syndrome increase the incidence and complicate the management of myocardial infarction (MI). Current treatments do not adequately blunt the progression to chronic ischemic heart disease and heart failure, making these diseases the largest cause of mortality worldwide. Insulin resistance and metabolic syndrome were induced in obese Ossabaw swine prior to ischemia/reperfusion injury-induced MI. Subcutaneous administration of the adipomyokine Follistatin-like-1 (recombinant non-glycosylated human FSTL1, ngFSTL1) for two weeks, beginning one month following myocardial infarction, decreased infarct necrosis, increased blood flow, and increased cardiomyocyte proliferation within the infarct region, leading to improved systolic and diastolic function. ngFSTL-1 also enhanced coronary and peripheral vascular function by increasing BKCa channel-dependent vasodilatory capacity. We conclude that subcutaneous ngFSTL1 ameliorated clinically relevant parameters of cardiac and vascular dysfunction in a preclinical swine model of diabetic MI, and suggest FSTL1 treatment may be broadly efficacious in humans. ARTICLE HIGHLIGHTSO_LISubcutaneous administration of recombinant human non-glycosylated FSTL1 (ngFSTL1) for 2 weeks, 1 month after infarction/reperfusion injury, improved cardiac function in a preclinical obese swine model of diabetic MI. C_LIO_LIngFSTL1 treatment induced cardiomyocyte proliferation and improved coronary perfusion, resulting in reduced necrosis of the infarct region. C_LIO_LIngFSTL1 treatment increased blood flow through peripheral arterioles, including cerebral and skeletal muscle, in addition to cardiac arterioles. C_LIO_LISystemic delivery of the non-glycosylated form of the adipomyokine FSTL1 might be an effective treatment for diabetic MI. C_LI

physiology↗

Endurance exercise drives temporal and sexual dimorphic multi-omic adaptations in liver metabolism-Findings from MoTrPAC.

The mechanisms by which exercise modulate liver metabolism, a central regulator of systemic metabolism, are poorly understood. Leveraging data from MoTrPAC, we analyzed liver adaptations across 1, 2, 4, and 8 weeks of exercise in male and female rats using multi-omic approaches. Female livers displayed a progressive increase in oxidative phosphorylation (OXPHOS) complexes (at the protein level), while male livers showed an increase in acetylation of OXPHOS, TCA cycle, and fatty acid oxidation enzymes. Exercise also enhanced liver cholesterol and bile acid synthesis, reducing liver lipid metabolites in males after 8 weeks of exercise. Male rats had higher fecal cholesterol and cholic acid levels, indicating a sex-specific mechanism of lipid excretion with exercise. Moreover, 8 weeks of training reduced markers related to hepatic stellate cell activation and fibrosis in both sexes. This study highlights the sexual dimorphic and temporal molecular signatures by which exercise modulates liver metabolism to provide hepatoprotective effects.

physiology↗

The mitochondrial multi-omic response to exercise training across tissues

Mitochondria are adaptable organelles with diverse cellular functions critical to whole-body metabolic homeostasis. While chronic endurance exercise training is known to alter mitochondrial activity, these adaptations have not yet been systematically characterized. Here, the Molecular Transducers of Physical Activity Consortium (MoTrPAC) mapped the longitudinal, multi-omic changes in mitochondrial analytes across 19 tissues in male and female rats endurance trained for 1, 2, 4 or 8 weeks. Training elicited substantial changes in the adrenal gland, brown adipose, colon, heart and skeletal muscle, while we detected mild responses in the brain, lung, small intestine and testes. The colon response was characterized by non-linear dynamics that resulted in upregulation of mitochondrial function that was more prominent in females. Brown adipose and adrenal tissues were characterized by substantial downregulation of mitochondrial pathways. Training induced a previously unrecognized robust upregulation of mitochondrial protein abundance and acetylation in the liver, and a concomitant shift in lipid metabolism. The striated muscles demonstrated a highly coordinated response to increase oxidative capacity, with the majority of changes occurring in protein abundance and post-translational modifications. We identified exercise upregulated networks that are downregulated in human type 2 diabetes and liver cirrhosis. In both cases HSD17B10, a central dehydrogenase in multiple metabolic pathways and mitochondrial tRNA maturation, was the main hub. In summary, we provide a multi-omic, cross-tissue atlas of the mitochondrial response to training and identify candidates for prevention of disease-associated mitochondrial dysfunction.

molecular biology↗