Accelerating drug discovery for Alzheimer's disease: best practices for preclinical animal studies

Diana W Shineman1, Guriqbal S Basi, Jennifer L Bizon

  • 1Alzheimer's Drug Discovery Foundation, 57 West 57 Street, Suite 904, New York, NY 10019, USA. dshineman@alzdiscovery.org.

Insights

Improving Alzheimer's disease (AD) animal studies is crucial for developing effective treatments. Recommendations focus on enhancing rigor, reproducibility, and reporting of preclinical research to improve translation to human clinical trials.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Biomedical Research

Background:

  • Animal models are vital for understanding Alzheimer's disease (AD) mechanisms.
  • Over 300 interventions tested in AD models show limited success in human clinical trials.
  • Key challenges include model limitations, inconsistent study conduct, and publication bias.

Purpose of the Study:

  • To establish best practices for preclinical animal studies of investigational AD therapies.
  • To improve the validity, reproducibility, and predictive value of AD animal research.
  • To enhance the efficiency and reliability of translating preclinical findings to human clinical trials.

Main Methods:

  • Convened an expert advisory panel of academic, industry, and government scientists.
  • Developed recommendations for AD animal study design, conduct, and reporting.
  • Focused on improving measurement, analysis, model selection, quality control, and reporting standards.

Main Results:

  • Recommendations cover target measurement, model choice, breeding quality control, and study design.
  • Key considerations include a priori hypotheses, PK/PD studies, biomarkers, sample size, and power analysis.
  • Distinguishing exploratory from therapeutic studies and establishing a public data repository were also recommended.

Conclusions:

  • Implementing these best practices can significantly improve the methodological quality of AD animal studies.
  • Enhanced preclinical research will increase the predictive value of animal models for human AD therapies.
  • These improvements are essential for more efficient and reliable translation to human clinical trials.

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