Biological Research· 2026Q1
GPCR/moody reduction at the blood–brain barrier accelerates Alzheimer’s-like neurodegeneration in Drosophila
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- 2026year
Short summary
Weakening the blood-brain barrier (BBB) by reducing the GPCR moody in Drosophila accelerates Alzheimer's-like neurodegeneration, increasing vacuole formation, apoptosis, and behavioral deficits in flies expressing amyloid-beta.
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Key points
- Knocking down the GPCR moody in Drosophila's subperineurial glia increased blood-brain barrier (BBB) permeability.
- BBB disruption exacerbated neurodegeneration in flies expressing human amyloid-beta, leading to increased vacuole formation and apoptosis in optic lobes.
- Moody knockdown accelerated locomotor decline and increased seizure susceptibility in amyloid-beta expressing flies.
- The study demonstrates a synergistic interaction between BBB dysfunction and amyloid toxicity.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Background The blood–brain barrier (BBB) is essential for maintaining central nervous system homeostasis by regulating the exchange of molecules between the brain and circulating blood. Dysfunction of this barrier has been implicated in the progression of several neurodegenerative disorders, including Alzheimer’s disease (AD). Results In this study, we investigated the role of BBB integrity in modulating AD-like pathology using a Drosophila melanogaster model. We generated an AD model by expressing human amyloid-β (hAβ 1–42 ) in all glial cells, which resulted in reduced lifespan, locomotor deficits, and amyloid plaque deposition. To induce BBB dysfunction, we selectively knocked down the G protein-coupled receptor moody in subperineurial glia (SPG), a key component of the Drosophila BBB. moody knockdown resulted in a significant increase in paracellular permeability without markedly altering hAβ 1–42 accumulation. However, BBB disruption exacerbated neurodegeneration, as evidenced by increased vacuole formation and apoptosis in the optic lobes, along with reduced neuropil size in both the medulla and mushroom body β lobes. Behavioural assays revealed that moody knockdown accelerated locomotor decline and increased seizure susceptibility in AD animals, whereas these effects were absent in flies lacking hAβ 1–42 expression. Conclusions Together, our findings demonstrate a synergistic interaction between BBB dysfunction and amyloid toxicity, highlighting the protective role of BBB integrity against neurodegeneration. This study establishes Drosophila as a powerful model for dissecting neurovascular contributions to AD and underscores the importance of BBB maintenance in mitigating disease progression.
The authors' abstract, as published at the source. Biological Research, 2026 · DOI ↗
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Field: Neurology (Neuroscience)
NeurologyNeuroscience