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huang, b.

Publications and source records attributed to huang, b..

2 recordsLinked to original sources

Adipocyte microRNA-802 promotes adipose tissue inflammation and insulin resistance by modulating macrophages in obesity

Adipose tissue inflammation is now considered to be a key process underlying metabolic diseases in obese individuals. However, it remains unclear how adipose inflammation is initiated and maintained or the mechanism by which inflammation develops. We found that microRNA-802 (miR-802) expression in adipose tissue is progressively increased with the development of dietary obesity in obese mice and humans. The increasing trend of miR-802 preceded the accumulation of macrophages. Adipose tissue-specific knockout of miR-802 lowered macrophage infiltration and ameliorated systemic insulin resistance. Conversely, the specific overexpression of miR-802 in adipose tissue aggravated adipose inflammation in mice fed a high-fat diet. Mechanistically, miR-802 activates noncanonical and canonical NF-{kappa}B pathways by targeting its negative regulator, TRAF3. Next, NF-{kappa}B orchestrated the expression of chemokine and SREBP1, which translated into strong recruitment and M1-like polarization of macrophages. Our findings indicate that miR-802 endows adipose tissue with the ability to recruit and polarize macrophages, which underscores miR-802 as an innovative and attractive candidate for miRNA-based immune therapy for adipose inflammation.

immunology↗

Alopecosa nagpag acts on cardiac ventricular myocytes to kill prey

Spiders are excellent predator to kill their prey by peptide toxins from its venoms. Alopecosa nagpag (A. nagpag) is a new identified wolf spider distributing in Yunnan province and nothing has known about the venom. In this study, venom of A. nagpag showed mild toxicity to Kunming mouse with LD50 of 3.32 mg/kg. Action potential duration (APD) was prolonged in a frequency-dependent manner and whole currents of neonatal rat ventricular myocytes (NRVMs) were inhibited by venom. Meanwhile, venom of A. nagpag could largely increase L calcium currents (ICaL). Whereas sodium current (INa) and rapidly activating delayed rectifier potassium current (IKr) were significantly decreased by 100 g/mL venoms. No obvious inhibition was found on other ion channels such as rapidly activating and inactivating transient inward (IK1), rapid (IKr) and slow (IKs). As those ion channels play critical role in rhythm of cardiac ventricular myocytes, A. nagpag may lead prey to death by changing cardiac rhythm.

pharmacology and toxicology↗