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Abstracts from the International Congress of Parkinson’s and Movement Disorders.

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Patient-Derived α-Synuclein Kinetic Subtypes Drive Distinct Pathological Propagation Patterns and Brain Network Alterations in Parkinson’s Disease Mouse Models

W. Dai (Urumqi, China)

Meeting: 2026 International Congress

Keywords: Alpha-synuclein, Functional magnetic resonance imaging(fMRI), Lewy bodies

Category: Parkinson's Disease: Pathophysiology / molecular mechanisms of disease

Objective: To validate whether patient-derived α-synuclein (α-Syn) aggregates with distinct kinetic properties produce differentiated pathological propagation patterns, brain network functional alterations, and behavioral phenotypes in Parkinson’s disease (PD) animal models.

Background: Structural heterogeneity of α-synuclein (α-Syn) aggregates may underlie the clinical diversity of Parkinson’s disease (PD). This study aimed to validate whether kinetic subtypes of patient-derived α-Syn aggregates produce distinct pathological propagation patterns and brain functional alterations in animal models.

Method: Skin-derived α-Syn amplification products from one rapid-kinetics (Fast-PD) and one slow-kinetics (Slow-PD) PD patient were stereotactically injected into the right striatum of C57BL/6 mice. Pathological evolution was dynamically observed at 20, 90, and 180 days post-injection through in situ quiescent seed amplification assay (QSAA), pS129-α-Syn/GFAP immunofluorescence, tyrosine hydroxylase immunohistochemistry, 9.4T resting-state functional MRI (RS-fMRI), and behavioral tests.

Results: Fast-PD products formed dense mature fibrils with strong proteinase K resistance, while Slow-PD products showed sparse short fibrils. Fast-PD demonstrated continuously aggressive pathological dissemination with sustained high seed activity at 180 days, cerebellar ALFF increase-hippocampal ALFF decrease dissociation, and severe motor coordination deficits (pole test time increased 100%, P=0.038). Slow-PD showed indolent progression with relatively silent brain functional changes and mild motor symptom progression (pole test time increased 43%, P=0.002). Notably, seed activity dynamics (QSAA) and phosphorylated pathology (pS129) showed divergent temporal patterns, suggesting decoupling between seeding capacity and pathological deposition.

Conclusion: Patient-derived α-Syn aggregates with distinct kinetic properties establish PD mouse models with differentiated pathological dissemination patterns, brain functional signatures, and behavioral phenotypes. This provides experimental evidence that α-Syn strain heterogeneity constitutes the structural basis of PD clinical heterogeneity and validates the kinetic-based subtyping system.

α-Syn pathology and astrocyte reactivity

α-Syn pathology and astrocyte reactivity

skin products

skin products

ALFF comparison results

ALFF comparison results

QSAA detection of propagation pathways

QSAA detection of propagation pathways

To cite this abstract in AMA style:

W. Dai. Patient-Derived α-Synuclein Kinetic Subtypes Drive Distinct Pathological Propagation Patterns and Brain Network Alterations in Parkinson’s Disease Mouse Models [abstract]. Mov Disord. 2026; 41 (suppl 1). https://www.mdsabstracts.org/abstract/patient-derived-%ce%b1-synuclein-kinetic-subtypes-drive-distinct-pathological-propagation-patterns-and-brain-network-alterations-in-parkinsons-disease-mouse-models/. Accessed October 1, 2026.
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