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1.
Food Funct ; 15(9): 5088-5102, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38666497

ABSTRACT

Diets rich in taurine can increase the production of taurine-conjugated bile acids, which are known to exert antihypertensive effects. Despite their benefits to the heart, kidney and arteries, their role in the central nervous system during the antihypertensive process remains unclear. Since hypothalamic paraventricular nucleus (PVN) plays a key role in blood pressure regulation, we aimed to investigate the function of bile acids in the PVN. The concentration of bile acids in the PVN of spontaneously hypertensive rats (SHRs) and normotensive Wistar-Kyoto rats (WKY) fed with normal chow was measured using LC-MS/MS, which identified taurocholic acid (TCA) as the most down-regulated bile acid. To fully understand the mechanism of TCA's functions in the PVN, bi-lateral PVN micro-infusion of TCA was carried out. TCA treatment in the PVN led to a significant reduction in the blood pressure of SHRs, with decreased plasma levels of norepinephrine and improved morphology of cardiomyocytes. It also decreased the number of c-fos+ neurons, reduced the inflammatory response, and suppressed oxidative stress in the PVN of the SHRs. Most importantly, the TGR5 receptors in neurons and microglia were activated. PVN infusion of SBI-115, a TGR5 specific antagonist, was able to counteract with TCA in the blood pressure regulation of SHRs. In conclusion, TCA supplementation in the PVN of SHRs can activate TGR5 in neurons and microglia, reduce the inflammatory response and oxidative stress, suppress activated neurons, and attenuate hypertension.


Subject(s)
Hypertension , Paraventricular Hypothalamic Nucleus , Receptors, G-Protein-Coupled , Taurocholic Acid , Animals , Male , Rats , Antihypertensive Agents/pharmacology , Blood Pressure/drug effects , Hypertension/drug therapy , Hypertension/metabolism , Neurons/drug effects , Neurons/metabolism , Paraventricular Hypothalamic Nucleus/metabolism , Paraventricular Hypothalamic Nucleus/drug effects , Rats, Inbred SHR , Rats, Inbred WKY , Receptors, G-Protein-Coupled/metabolism , Receptors, G-Protein-Coupled/genetics
2.
J Pers Med ; 12(3)2022 Mar 02.
Article in English | MEDLINE | ID: mdl-35330385

ABSTRACT

Expanded non-coding RNA repeats of CCUG are the underlying genetic causes for myotonic dystrophy type 2 (DM2). There is an urgent need for effective medications and potential drug targets that may alleviate the progression of the disease. In this study, 3140 small-molecule drugs from FDA-approved libraries were screened through lethality and locomotion phenotypes using a DM2 Drosophila model expressing 720 CCTG repeats in the muscle. We identified ten effective drugs that improved survival and locomotor activity of DM2 flies, including four that share the same predicted targets in the TGF-ß pathway. The pathway comprises two major branches, the Activin and BMP pathways, which play critical and complex roles in skeletal development, maintenance of homeostasis, and regeneration. The Drosophila model recapitulates pathological features of muscle degeneration in DM2, displaying shortened lifespan, a decline in climbing ability, and progressive muscle degeneration. Increased levels of p-smad3 in response to activin signaling were observed in DM2 flies. Decreased levels of activin signaling using additional specific inhibitors or genetic method ameliorated climbing defects, crushed thoraxes, structure, and organization of muscle fibers. Our results demonstrate that a decrease in activin signaling is sufficient to rescue muscle degeneration and is, therefore, a potential therapeutic target for DM2.

3.
Sheng Li Ke Xue Jin Zhan ; 38(3): 208-12, 2007 Jul.
Article in Chinese | MEDLINE | ID: mdl-17882976

ABSTRACT

DNA damage caused by many factors may lead to missense mutation, deletion or illegal recombination. To maintain genomic integrity, cells have evolved complex surveillance mechanisms termed cell cycle checkpoint. DNA damage checkpoint composed of various checkpoint-related proteins can sense DNA damage and execute cell cycle arrest through different signaling transduction pathway involving protein kinase cascades, thereby allowing time for cells to repair the damaged DNA.


Subject(s)
Cell Cycle Checkpoints/physiology , Cell Cycle Proteins/physiology , DNA Damage , Signal Transduction/physiology , Animals , DNA Repair , Humans , Protein Kinases/physiology
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