Sirt1 is an NAD(+)-dependent protein deacetylase that regulates many physiological functions, including stress resistance, adipogenesis, cell senescence and energy production. Sirt1 can be activated by energy deprivation, but the mechanism is poorly understood. Here, we report that Sirt1 is negatively regulated by ATP, which binds to the C-terminal domain (CTD) of Sirt1. ATP suppresses Sirt1 activity by impairing the CTD's ability to bind to the deacetylase domain as well as its ability to function as the substrate recruitment site. ATP, but not NAD(+), causes a conformational shift to a less compact structure. Mutations that prevent ATP binding increase Sirt1's ability to promote stress resistance and inhibit adipogenesis under h...
The NAD+-dependent protein deacetylase SIRT1 regulates transcriptional responses and enzymatic funct...
The biological function of most proteins relies on reversible post-translational modifications, amon...
<div><p>SIRT1 plays a key role in maintaining metabolic homeostasis in mammals by directly modulatin...
SIRT1, a NAD+-dependent protein deacetylase, is an important regulator in cellular stress response a...
SIRT1, a NAD+-dependent protein deacetylase, is an important regulator in cellular stress response a...
SIRT1, a NAD +-dependent protein deacetylase, is an important regulator in cellular stress response ...
SIRT1, a NAD +-dependent protein deacetylase, is an important regulator in cellular stress response ...
SIRT1, a NAD+-dependent protein deacetylase, is an important regulator in cellular stress response a...
SIRT1, a NAD+-dependent protein deacetylase, is an important regulator in cellular stress response a...
SIRT1 is a NAD+ dependent deacetylase that targets many histone and non histone proteins, thereby re...
AbstractSIRT1 is a NAD+-dependent deacetylase that plays important roles in many cellular processes....
Sirtuins are NAD+-dependent protein deacetylases regulating metabolism, stress responses and ageing ...
SIRT1 plays a key role in maintaining metabolic homeostasis in mammals by directly modu-lating the a...
SummaryThe NAD+-dependent protein deacetylase SIRT1 regulates energy metabolism, responses to stress...
The NAD+-dependent protein deacetylase SIRT1 regulates transcriptional responses and enzymatic funct...
The NAD+-dependent protein deacetylase SIRT1 regulates transcriptional responses and enzymatic funct...
The biological function of most proteins relies on reversible post-translational modifications, amon...
<div><p>SIRT1 plays a key role in maintaining metabolic homeostasis in mammals by directly modulatin...
SIRT1, a NAD+-dependent protein deacetylase, is an important regulator in cellular stress response a...
SIRT1, a NAD+-dependent protein deacetylase, is an important regulator in cellular stress response a...
SIRT1, a NAD +-dependent protein deacetylase, is an important regulator in cellular stress response ...
SIRT1, a NAD +-dependent protein deacetylase, is an important regulator in cellular stress response ...
SIRT1, a NAD+-dependent protein deacetylase, is an important regulator in cellular stress response a...
SIRT1, a NAD+-dependent protein deacetylase, is an important regulator in cellular stress response a...
SIRT1 is a NAD+ dependent deacetylase that targets many histone and non histone proteins, thereby re...
AbstractSIRT1 is a NAD+-dependent deacetylase that plays important roles in many cellular processes....
Sirtuins are NAD+-dependent protein deacetylases regulating metabolism, stress responses and ageing ...
SIRT1 plays a key role in maintaining metabolic homeostasis in mammals by directly modu-lating the a...
SummaryThe NAD+-dependent protein deacetylase SIRT1 regulates energy metabolism, responses to stress...
The NAD+-dependent protein deacetylase SIRT1 regulates transcriptional responses and enzymatic funct...
The NAD+-dependent protein deacetylase SIRT1 regulates transcriptional responses and enzymatic funct...
The biological function of most proteins relies on reversible post-translational modifications, amon...
<div><p>SIRT1 plays a key role in maintaining metabolic homeostasis in mammals by directly modulatin...