Depth-resolved fiber photometry of amyloid plaque signals in freely behaving Alzheimer’s disease mice
Byron, Nicole and McAlinden, Niall and Pisano, Filippo and Pisanello, Marco and Ferreira, Jacques and Montinaro, Cinzia and Mathieson, Keith and De Vittorio, Massimo and Pisanello, Ferruccio and Sakata, Shuzo (2025) Depth-resolved fiber photometry of amyloid plaque signals in freely behaving Alzheimer’s disease mice. Neurophotonics, 12 (3). 035014. (https://doi.org/10.1117/1.NPh.12.3.035014)
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Abstract
Significance: Current preclinical evaluation of Alzheimer’s disease pathology in mouse models relies on postmortem analyses, which hinders the development and optimization of novel therapeutic approaches. While in vivo methods exist, monitoring amyloid plaque signals across multiple brain regions in freely behaving animals remains a significant challenge. Aim: We aim to develop a novel optical approach to address this challenge. Approach: We used flat and tapered optical fibers in an Alzheimer’s mouse model. Results: We first confirmed that conventional flat fiber-based photometry can detect amyloid plaque signals across multiple brain regions under anesthesia after injecting a blood-brain barrier permeable tracer, Methoxy-X04. The depth profile of in vivo fluorescent signals is correlated with histological signals. A machine learning approach could distinguish between in vivo fluorescent signals of mice with and without amyloid plaques. Next, after validating the feasibility of depth-resolved fiber photometry ex vivo, we chronically implanted a tapered fiber to monitor amyloid plaque signals in freely behaving mice. After injecting Methoxy-X04, fluorescent signals increased in a depth-specific manner in Alzheimer’s mice, but not in their wild-type littermates. Conclusions: Our approach expands the capabilities of fiber photometry to monitor molecular pathologies, such as amyloid plaques, even in a freely behaving condition.
ORCID iDs
Byron, Nicole, McAlinden, Niall
ORCID: https://orcid.org/0000-0002-0369-8788, Pisano, Filippo, Pisanello, Marco, Ferreira, Jacques, Montinaro, Cinzia, Mathieson, Keith
ORCID: https://orcid.org/0000-0002-9517-8076, De Vittorio, Massimo, Pisanello, Ferruccio and Sakata, Shuzo
ORCID: https://orcid.org/0000-0001-6796-411X;
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Item type: Article ID code: 94079 Dates: DateEvent23 September 2025Published4 September 2025AcceptedSubjects: Medicine > Pharmacy and materia medica Department: Faculty of Science > Strathclyde Institute of Pharmacy and Biomedical Sciences
Faculty of Science > Physics > Institute of Photonics
Technology and Innovation Centre > PhotonicsDepositing user: Pure Administrator Date deposited: 05 Sep 2025 15:48 Last modified: 02 Jun 2026 07:02 URI: https://strathprints.strath.ac.uk/id/eprint/94079
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