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Changes in protein kinases in brain aging and Alzheimer's disease. Implications for drug therapy
Abstract:
There is ample evidence for the involvement of aberrant protein phosphorylation reactions in aging and age-associated neurological disorders. Alzheimer's disease (AD) in particular. The exact nature of this involvement, however, is not yet elucidated. In the brain tissue of AD patients, there are numerous examples of altered protein phosphorylation pathways. Individual protein kinases and phosphorylation by these kinases in AD brain tissues have been found to be altered. Protein kinases studied include protein kinase C (PKC), protein tyrosine kinase (PTK), casein kinase II (CKII), Ca++/calmodulin-dependent kinase II and mitogen-activated protein (MAP) kinases, all of which are thought to be necessary for cell survival. Interestingly, different protein kinases are involved in different aspects of AD pathology. It is postulated that the perturbation of amyloid beta/A4-protein precursor (APP) metabolism triggers abnormal protein phosphorylation reactions responsible for dysfunction and eventual death of neurons in the brain. The association of APP mutation with certain familial types of AD strongly suggests that there might be a link between aberrant APP metabolism, protein phosphorylation cascades and the eventual expression of AD pathology (plaques and tangles) and neurodegeneration. In summary, recent studies emphasise the prime importance of protein phosphorylation in aging and AD. This raises the possibility that future pharmacological interventions might be devised to interfere with this kinase cascade for the prevention or treatment of age-associated neurological disorders.
Insights
Aberrant protein phosphorylation is implicated in aging and Alzheimer's disease (AD). Targeting these altered phosphorylation pathways offers potential for novel therapeutic strategies against neurodegenerative disorders.
Area of Science:
- Neuroscience
- Biochemistry
- Molecular Biology
Background:
- Aberrant protein phosphorylation is a key feature in aging and neurological disorders, particularly Alzheimer's disease (AD).
- Altered protein phosphorylation pathways and specific protein kinase activities are observed in AD brain tissues.
- Several protein kinases, including PKC, PTK, CKII, Ca++/calmodulin-dependent kinase II, and MAP kinases, are implicated.
Purpose of the Study:
- To elucidate the precise role of aberrant protein phosphorylation in Alzheimer's disease pathology.
- To investigate the link between amyloid precursor protein (APP) metabolism, phosphorylation cascades, and neurodegeneration in AD.
Main Methods:
- Analysis of protein phosphorylation pathways in AD brain tissue.
- Identification of altered protein kinases and their substrates in the context of AD pathology.
- Investigating the connection between APP metabolism and aberrant phosphorylation.
Main Results:
- Numerous examples of altered protein phosphorylation pathways identified in AD brain tissue.
- Specific protein kinases and their phosphorylation activities are found to be altered in AD.
- Perturbation of APP metabolism is postulated to trigger abnormal phosphorylation, leading to neuronal dysfunction and death.
Conclusions:
- Protein phosphorylation plays a critical role in aging and Alzheimer's disease.
- The interplay between APP metabolism, phosphorylation cascades, and AD pathology is significant.
- Interfering with kinase cascades presents a potential therapeutic avenue for age-associated neurological disorders.