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Deacetylation Assays to Unravel the Interplay between Sirtuins (SIRT2) and Specific Protein-substrates
Published on: February 27, 2016
The sirtuin pathway in ageing and Alzheimer disease: mechanistic and therapeutic considerations
David J Bonda1, Hyoung-Gon Lee, Antoni Camins
1Department of Pathology, Case Western Reserve University, Cleveland, Ohio, USA.
Background:
Advances in gerontology have yielded crucial insights into the molecular and biochemical aspects of the ageing process. The sirtuin pathway, which is most notable for its association with the anti-ageing effects of calorie restriction, has received particular attention, and pharmacological or transgenic upregulation of the sirtuin pathway has shown promising results in laboratory models of ageing. Alzheimer's disease is a neurodegenerative disease that is imposing an increasing burden on society, and is the leading cause of senile dementia worldwide. The lack of therapies for Alzheimer's disease provides a strong incentive for the development of an effective treatment strategy and, interestingly, research has uncovered a mechanism of action of the sirtuin pathway that might have therapeutic potential for Alzheimer's disease.
Recent Developments:
SIRT1, one of the seven mammalian proteins of the sirtuin family of NAD(+)-dependent deacetylases, has recently been shown to attenuate amyloidogenic processing of amyloid-β protein precursor (APP) in cell culture studies in vitro and in transgenic mouse models of Alzheimer's disease. Mechanistically, SIRT1 increases α-secretase production and activity through activation of the α-secretase gene ADAM10. Because α-secretase is the enzyme responsible for the non-amyloidogenic cleavage of APP, upregulation of α-secretase shifts APP processing to reduce the pathological accumulation of the presumptive toxic Aβ species that results from β-secretase and γ-secretase activity. Interestingly, the spatial patterns of Aβ deposition in the brain might correlate with increased aerobic glycolysis in those regions. Because aerobic glycolysis depletes cellular levels of NAD(+) (through a decreased NAD(+)/NADH ratio), it is possible that a corresponding downregulation of the NAD(+)-dependent sirtuin pathway contributes to the amyloidogenic processing of APP. WHERE NEXT?: The specific inhibition of Aβ generation by SIRT1 coupled with the potential link between aerobic glycolysis, NAD(+) depletion, and amyloidogenesis through the sirtuin pathway has translational implications. On the one hand, the possible underlying role of the sirtuin pathway in Alzheimer's disease onset and development might increase our understanding of this devastating condition. On the other hand, therapeutic upregulation of SIRT1 might provide opportunities for the amelioration of Alzheimer's-disease-type neuropathology through inhibition of amyloidogenesis. Ultimately, further analysis into both aspects is necessary if any progress is to be made.
Insights
The sirtuin pathway, particularly SIRT1, may offer a new therapeutic target for Alzheimer's disease by inhibiting amyloid-beta production. Upregulating SIRT1 could reduce toxic protein accumulation in the brain.
Area of Science:
- Gerontology and Neurodegenerative Diseases
- Molecular Biology and Biochemistry
Background:
- Aging research reveals the sirtuin pathway's role in cellular processes.
- Alzheimer's disease (AD) is a growing global health concern with limited treatment options.
- The sirtuin pathway shows potential therapeutic relevance for AD.
Purpose of the Study:
- To explore the role of the sirtuin pathway, specifically SIRT1, in Alzheimer's disease pathogenesis.
- To investigate the mechanism by which SIRT1 influences amyloid precursor protein (APP) processing.
- To assess the therapeutic potential of modulating the sirtuin pathway for AD treatment.
Main Methods:
- In vitro cell culture studies.
- Transgenic mouse models of Alzheimer's disease.
- Analysis of SIRT1's effect on alpha-secretase (ADAM10) activity.
- Investigation of the link between aerobic glycolysis, NAD+ depletion, and amyloidogenesis.
Main Results:
- SIRT1 activation attenuates the amyloidogenic processing of amyloid-beta protein precursor (APP).
- SIRT1 enhances alpha-secretase (ADAM10) production and activity, promoting non-amyloidogenic APP cleavage.
- Reduced NAD+ levels, potentially due to aerobic glycolysis, may contribute to amyloidogenic APP processing via sirtuin pathway downregulation.
Conclusions:
- SIRT1's inhibition of amyloid-beta generation presents a potential therapeutic strategy for Alzheimer's disease.
- Modulating the sirtuin pathway could ameliorate Alzheimer's-related neuropathology by inhibiting amyloidogenesis.
- Further research is needed to fully understand the sirtuin pathway's role in AD and its therapeutic applications.
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