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Tropea, T. F.

Publications and source records attributed to Tropea, T. F..

2 recordsLinked to original sources

α-Synuclein Conformations in Plasma Distinguish Parkinson's Disease from Dementia with Lewy Bodies

AbstractSpread and aggregation of misfolded -synuclein (aSyn) within the brain is the pathologic hallmark of Lewy body diseases (LBD), including Parkinsons disease (PD) and dementia with Lewy bodies (DLB). While evidence exists for multiple aSyn protein conformations, often termed "strains" for their distinct biological properties, it is unclear whether PD and DLB result from aSyn strain differences, and biomarkers that differentiate PD and DLB are lacking. Moreover, while pathological forms of aSyn have been detected outside the brain (e.g., in skin, gut, blood), the functional significance of these peripheral aSyn species is unclear. Here, we developed assays using monoclonal antibodies selective for two different aSyn species generated in vitro - termed Strain A and Strain B - and used them to evaluate human brain tissue, cerebrospinal fluid (CSF), and plasma, through immunohistochemistry, enzyme-linked immunoassay, and immunoblotting. Surprisingly, we found that plasma aSyn species detected by these antibodies differentiated individuals with PD vs. DLB in a discovery cohort (UPenn, n=235, AUC 0.83) and a multi-site replication cohort (Parkinsons Disease Biomarker Program, or PDBP, n=200, AUC 0.72). aSyn plasma species detected by the Strain A antibody also predicted rate of cognitive decline in PD. We found no evidence for aSyn strains in CSF, and ability to template aSyn fibrillization differed for species isolated from plasma vs. brain, and in PD vs. DLB. Taken together, our findings suggest that aSyn conformational differences may impact clinical presentation and cortical spread of pathological aSyn. Moreover, the enrichment of these aSyn strains in plasma implicates a non-central nervous system source.

neuroscience↗

Biomarker discovery in progressive supranuclear palsy from human cerebrospinal fluid using mass spectrometry-based proteomics

Progressive supranuclear palsy (PSP) is a neurodegenerative disorder that is often misdiagnosed as Parkinsons Disease (PD) because of shared symptoms. PSP is characterized by the accumulation of tau protein in specific brain regions, which results in loss of balance, gaze impairment, and dementia. Diagnosing PSP is often challenging, and theres a significant demand for reliable biomarkers. However, existing biomarkers, including tau protein and neurofilament light chain (NfL) levels in cerebrospinal fluid (CSF), show inconsistencies in distinguishing PSP from other neurodegenerative disorders. To overcome these limitations, we conducted a comprehensive proteome analysis for CSF samples from 40 PSP, 40 PD, and healthy controls (HC) using the tandem mass tag-based quantification method, identifying 3,653 unique proteins. Our statistical analysis identified 190, 152, and 247 differentially expressed proteins when comparing PSP vs. HC, PSP vs. PD, and PSP against both PD and HC, respectively. Gene set enrichment analysis and interactome analysis conducted with the differentially expressed proteins in PSP CSF indicated that most of them were implicated in cell adhesion, cholesterol metabolism, and glycan biosynthesis. Cell-type enrichment analysis revealed that neuronally-derived proteins were predominant among the differentially expressed proteins. Potential biomarker classification performance showed that ATP6AP2 (reduced in PSP) had the highest AUC (0.922), followed by NEFM, EFEMP2, LAMP2, CHST12, FAT2, B4GALT1, LCAT, CBLN3, FSTL5, ATP6AP1, and GGH. This is the first large-scale mass spectrometry-based proteome analysis to discover CSF PSP biomarkers differentiating from both controls and PD, thereby laying a foundation for further development and validation.

systems biology↗