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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.
Abstract:
In oncology, comprehensive omics and functional enrichment studies have led to an extensive profiling of (epi)genetic and neurobiological alterations that can be mapped onto a single tumor's clinical phenotype and divergent clinical phenotypes expressing common pathophysiological pathways. Consequently, molecular pathway-based therapeutic interventions for different cancer typologies, namely tumor type- and site-agnostic treatments, have been developed, encouraging the real-world implementation of a paradigm shift in medicine. Given the breakthrough nature of the new-generation translational research and drug development in oncology, there is an increasing rationale to transfertilize this blueprint to other medical fields, including psychiatry and neurology. In order to illustrate the emerging paradigm shift in neuroscience, we provide a state-of-the-art review of translational studies on the β-site amyloid precursor protein cleaving enzyme (BACE) and its most studied downstream effector, neuregulin, which are molecular orchestrators of distinct biological pathways involved in several neurological and psychiatric diseases. This body of data aligns with the evidence of a shared genetic/biological architecture among Alzheimer's disease, schizoaffective disorder, and autism spectrum disorders. To facilitate a forward-looking discussion about a potential first step towards the adoption of biological pathway-based, clinical symptom-agnostic, categorization models in clinical neurology and psychiatry for precision medicine solutions, we engage in a speculative intellectual exercise gravitating around BACE-related science, which is used as a paradigmatic case here. We draw a perspective whereby pathway-based therapeutic strategies could be catalyzed by highthroughput techniques embedded in systems-scaled biology, neuroscience, and pharmacology approaches that will help overcome the constraints of traditional descriptive clinical symptom and syndrome-focused constructs in neurology and psychiatry.
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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