Biological Mechanism-based Neurology and Psychiatry: A BACE1/2 and Downstream Pathway Model

Harald Hampel1, Giuseppe Caruso2, Robert Nisticò3,4

  • 1Sorbonne University, Alzheimer Precision Medicine (APM), AP-HP, Pitié-Salpêtrière Hospital, Boulevard de l'hôpital, Paris, France.

Current Neuropharmacology
|December 2, 2021
PubMed

Insights

Oncology

Area of Science:

  • Neuroscience
  • Oncology
  • Psychiatry
  • Neurology

Background:

  • Comprehensive omics studies in oncology have identified molecular pathways linked to clinical phenotypes.
  • This has led to tumor type- and site-agnostic treatments, shifting medical paradigms.
  • This approach offers a blueprint for translating research to psychiatry and neurology.

Purpose of the Study:

  • To review translational studies on beta-site amyloid precursor protein cleaving enzyme (BACE) and neuregulin in neurological and psychiatric diseases.
  • To explore the potential of pathway-based, clinical symptom-agnostic categorization models in precision medicine for neurology and psychiatry.
  • To discuss how systems-level biology and pharmacology can advance precision medicine.

Main Methods:

  • Literature review of translational studies focusing on BACE and neuregulin.
  • Analysis of shared genetic/biological architecture across Alzheimer's disease, schizoaffective disorder, and autism spectrum disorders.
  • Speculative discussion on adopting pathway-based models in clinical practice.

Main Results:

  • BACE and neuregulin are key molecular orchestrators in distinct biological pathways relevant to neurological and psychiatric disorders.
  • Evidence suggests a shared genetic/biological basis among Alzheimer's disease, schizoaffective disorder, and autism spectrum disorders.
  • A paradigm shift towards pathway-based, symptom-agnostic classification is feasible and beneficial for precision medicine.

Conclusions:

  • Translating oncology's success in pathway-based therapeutics to neurology and psychiatry is a promising direction.
  • BACE-related science serves as a model for developing precision medicine solutions.
  • High-throughput techniques in systems biology can overcome limitations of traditional diagnostic constructs.

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