Natural products, PGC-1 alpha, and Duchenne muscular dystrophy
ACTA PHARMACEUTICA SINICA B
Authors: Suntar, Ipek; Sureda, Antoni; Belwal, Tarun; Silva, Ana Sanches; Vacca, Rosa Anna; Tewari, Devesh; Sobarzo-Sanchez, Eduardo; Nabavi, Seyed Fazel; Shirooie, Samira; Dehpour, Ahmad Reza; Xu, Suowen; Yousefi, Bahman; Majidinia, Maryam; Daglia, Maria; D'Antona, Giuseppe; Nabavi, Seyed Mohammad
Abstract
Peroxisome proliferator-activated receptor gamma (PPAR gamma) is a transcriptional coactivator that binds to a diverse range of transcription factors. PPAR gamma coactivator 1 (PGC-1) coactivators possess an extensive range of biological effects in different tissues, and play a key part in the regulation of the oxidative metabolism, consequently modulating the production of reactive oxygen species, autophagy, and mitochondrial biogenesis. Owing to these findings, a large body of studies, aiming to establish the role of PGC-1 in the neuromuscular system, has shown that PGC-1 could be a promising target for therapies targeting neuromuscular diseases. Among these, some evidence has shown that various signaling pathways linked to PGC-1 alpha are deregulated in muscular dystrophy, leading to a reduced capacity for mitochondrial oxidative phosphorylation and increased reactive oxygen species (ROS) production. In the light of these results, any intervention aimed at activating PGC-1 could contribute towards ameliorating the progression of muscular dystrophies. PGC-1 alpha is influenced by different patho-physiological/pharmacological stimuli. Natural products have been reported to display modulatory effects on PPAR gamma activation with fewer side effects in comparison to synthetic drugs. Taken together, this review summarizes the current knowledge on Duchenne muscular dystrophy, focusing on the potential effects of natural compounds, acting as regulators of PGC-1 alpha. (C) 2020 Chinese Pharmaceutical Association and Institute of Materia Medica, Chinese Academy of Medical Sciences. Production and hosting by Elsevier B.V.
Role of metformin in epigenetic regulation of placental mitochondrial biogenesis in maternal diabetes
SCIENTIFIC REPORTS
Authors: Jiang, Shaoning; Teague, April M.; Tryggestad, Jeanie B.; Jensen, Mary E.; Chernausek, Steven D.
Abstract
Adverse maternal environments, such as diabetes and obesity, impair placental mitochondrial function, which affects fetal development and offspring long-term health. The underlying mechanisms and effective interventions to abrogate such effect remain unclear. Our previous studies demonstrated impaired mitochondrial biogenesis in male human placenta of diabetic mothers. In the present studies, epigenetic marks possibly related to mitochondrial biogenesis in placentae of women with diabetes (n=23) and controls (n=23) were analyzed. Effects of metformin were examined in human placental explants from a subgroup of diabetic women and in a mouse model of maternal high fat diet feeding. We found that maternal diabetes was associated with epigenetic regulation of mitochondrial biogenesis in human placenta in a fetal sex-dependent manner, including decreased histone acetylation (H3K27 acetylation) and increased promoter methylation of peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC-1 alpha). In male placenta, the levels of H3K27 acetylation and PGC-1 alpha promoter methylation correlated significantly with the activity of AMP-activated protein kinase (AMPK). Metformin treatment on male diabetic placental explant activated AMPK and stimulated PGC-1 alpha expression, concomitant with increased H3K27 acetylation and decreased PGC-1 alpha promoter methylation. In vivo, we show that maternal metformin treatment along with maternal high fat diet significantly increased mouse placental abundance of PGC-1 alpha expression and downstream mitochondrial transcription factor A (TFAM) and inhibited maternal high fat diet-impaired placental efficiency and glucose tolerance in offspring. Together, these findings suggest the capability of metformin to stimulate placental mitochondrial biogenesis and inhibit the aberrant epigenetic alterations occurring in maternal diabetes during pregnancy, conferring protective effects on offspring.