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Updated: Dec 30, 2025

Fabrication of Amyloid-β-Secreting Alginate Microbeads for Use in Modelling Alzheimer's Disease
Published on: July 6, 2019
"Amyloid-beta accumulation cycle" as a prevention and/or therapy target for Alzheimer's disease
Chinthalapally V Rao1, Adam S Asch2, Daniel J J Carr3
1Center for Cancer Prevention and Drug Development, Department of Medicine, Hematology/Oncology Section, University of Oklahoma Health Sciences Center (OUHSC), Oklahoma City, OK, USA.
Abstract:
The cell cycle and its regulators are validated targets for cancer drugs. Reagents that target cells in a specific cell cycle phase (e.g., antimitotics or DNA synthesis inhibitors/replication stress inducers) have demonstrated success as broad-spectrum anticancer drugs. Cyclin-dependent kinases (CDKs) are drivers of cell cycle transitions. A CDK inhibitor, flavopiridol/alvocidib, is an FDA-approved drug for acute myeloid leukemia. Alzheimer's disease (AD) is another serious issue in contemporary medicine. The cause of AD remains elusive, although a critical role of latent amyloid-beta accumulation has emerged. Existing AD drug research and development targets include amyloid, amyloid metabolism/catabolism, tau, inflammation, cholesterol, the cholinergic system, and other neurotransmitters. However, none have been validated as therapeutically effective targets. Recent reports from AD-omics and preclinical animal models provided data supporting the long-standing notion that cell cycle progression and/or mitosis may be a valid target for AD prevention and/or therapy. This review will summarize the recent developments in AD research: (a) Mitotic re-entry, leading to the "amyloid-beta accumulation cycle," may be a prerequisite for amyloid-beta accumulation and AD pathology development; (b) AD-associated pathogens can cause cell cycle errors; (c) thirteen among 37 human AD genetic risk genes may be functionally involved in the cell cycle and/or mitosis; and (d) preclinical AD mouse models treated with CDK inhibitor showed improvements in cognitive/behavioral symptoms. If the "amyloid-beta accumulation cycle is an AD drug target" concept is proven, repurposing of cancer drugs may emerge as a new, fast-track approach for AD management in the clinic setting.
Insights
Targeting cell cycle regulators, successful in cancer therapy, may offer new Alzheimer's disease (AD) treatments. Inhibiting cyclin-dependent kinases (CDKs) in preclinical models improved AD symptoms, suggesting repurposed cancer drugs for AD management.
Area of Science:
- Neuroscience
- Oncology
- Genetics
Background:
- Alzheimer's disease (AD) pathogenesis is not fully understood, with current drug targets lacking validation.
- Cell cycle regulators are proven targets for anticancer drugs, demonstrating broad-spectrum efficacy.
Purpose of the Study:
- To review recent evidence linking cell cycle progression and mitosis to Alzheimer's disease (AD) pathology.
- To explore the potential of targeting the cell cycle as a therapeutic strategy for AD.
Main Methods:
- Review of AD-omics data and preclinical animal models.
- Analysis of genetic risk factors and the role of cyclin-dependent kinases (CDKs) in AD.
Main Results:
- Mitotic re-entry may drive amyloid-beta accumulation and AD pathology.
- AD-associated pathogens can induce cell cycle errors.
- Thirteen human AD genetic risk genes are implicated in cell cycle/mitosis.
- CDK inhibitor treatment improved cognitive/behavioral symptoms in preclinical AD models.
Conclusions:
- The cell cycle, particularly the "amyloid-beta accumulation cycle," is a potential therapeutic target for AD.
- Repurposing cancer drugs, such as CDK inhibitors, could accelerate AD treatment development.
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