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Evidence for a Common Mechanism of SIRT1 Regulation by Allosteric Activators

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TLDR
Yuan et al. as mentioned in this paper found that specific hydrophobic motifs found in SIRT1 substrates such as PGC-1α and FOXO3a facilitate SIRT 1 activation by STACs.
Abstract
It's a SIRT Intense attention has focused on the SIRT1 deacetylase as a possible target for anti-aging drugs. But unexpected complications in assays of SIRT1 activity have made it unclear whether compounds thought to be sirtuin-activating compounds (STACs) are really direct regulators of the enzyme. Further exploration of these effects by Hubbard et al. (p. 1216; see the Perspective by Yuan and Marmorstein) revealed that interaction of SIRT1 with certain substrates allows activation of SIRT1 by STACs and identified critical amino acids in SIRT1 required for these effects. Mouse myoblasts reconstituted with SIRT1 mutated at this amino acid lost their responsiveness to STACs. An interaction of the deacetylase SIRT1 with its substrate offers a possible explanation for some effects on aging. [Also see Perspective by Yuan and Marmorstein] A molecule that treats multiple age-related diseases would have a major impact on global health and economics. The SIRT1 deacetylase has drawn attention in this regard as a target for drug design. Yet controversy exists around the mechanism of sirtuin-activating compounds (STACs). We found that specific hydrophobic motifs found in SIRT1 substrates such as PGC-1α and FOXO3a facilitate SIRT1 activation by STACs. A single amino acid in SIRT1, Glu230, located in a structured N-terminal domain, was critical for activation by all previously reported STAC scaffolds and a new class of chemically distinct activators. In primary cells reconstituted with activation-defective SIRT1, the metabolic effects of STACs were blocked. Thus, SIRT1 can be directly activated through an allosteric mechanism common to chemically diverse STACs.

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TL;DR: The fluorescent properties of these chromenone compounds do affect the measurement of the sirtuin activities of both inhibitors and activators, however, if the possible fluorescence properties are mitigated in the assay readout, these fluorogenic assays enable the screening of activity modulators.
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TL;DR: The probable mechanisms, potential benefits, and possible problems associated with administering resveratrol as an adjunct during resuscitation of hemorrhagic shock are explored.
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Epigenetic mechanisms in Alzheimer's disease.

TL;DR: It is concluded that focusing on lifestyle adjustments with an epigenetic background are the best way to prevent/delay the onset of this devastating disease.
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Inonotus obliquus extract alleviates myocardial ischemia/reperfusion injury by suppressing endoplasmic reticulum stress.

TL;DR: Pretreatment with IOE pretreatment protects the heart against MI/R injury through attenuating oxidative damage and suppressing ER stress-induced apoptosis, which may be primarily due to SIRT1 activation.
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Discovery of small molecule sirt1 activator using high-throughput virtual screening, molecular dynamics simulation, molecular mechanics generalized born/surface area (MM/GBSA) calculation, and biological evaluation

TL;DR: Simulation results were consistent with the in vivo enzymatic assay, which implied that compound y040-6677 had a comparable sirt1 activation compared with the reference molecule SRT1720, and it is hoped that compounds y040 -6677 might represent a promising chemical scaffold for further development of novel sirt 1 activators.
References
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疟原虫var基因转换速率变化导致抗原变异[英]/Paul H, Robert P, Christodoulou Z, et al//Proc Natl Acad Sci U S A

宁北芳, +1 more
TL;DR: PfPMP1)与感染红细胞、树突状组胞以及胎盘的单个或多个受体作用,在黏附及免疫逃避中起关键的作�ly.
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Small molecule activators of sirtuins extend Saccharomyces cerevisiae lifespan

TL;DR: The potent activator resveratrol, a polyphenol found in red wine, lowers the Michaelis constant of SIRT1 for both the acetylated substrate and NAD+, and increases cell survival by stimulating Sirt1-dependent deacetylation of p53.
Journal ArticleDOI

Nutrient control of glucose homeostasis through a complex of PGC-1alpha and SIRT1.

TL;DR: It is shown that the Sir2 homologue, SIRT1 controls the gluconeogenic/glycolytic pathways in liver in response to fasting signals through the transcriptional coactivator PGC-1α, and this findings have strong implications for the basic pathways of energy homeostasis, diabetes and lifespan.
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