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Schwarzschild, M.

Publications and source records attributed to Schwarzschild, M..

2 recordsLinked to original sources

CSF glucosylsphingosine is a central readout of GCase impairment across genetic and sporadic Parkinson’s disease

Parkinsons disease (PD) risk converges on lysosomal biology, including reduced activity of glucocerebrosidase (GCase), encoded by GBA1. Glucosylsphingosine (GlcSph), a toxic deacylated glycosphingolipid and established target engagement biomarker in Gaucher disease, is difficult to quantify in cerebrospinal fluid (CSF) because of low abundance and isomeric interference. We optimized and qualified targeted LC-MS/MS assays for GlcSph in CSF and plasma and measured GlcSph and GCase activity (4-MU assay) in participants from the Parkinsons Progression Markers Initiative (PPMI), including GBA1 and LRRK2 mutation carriers with and without PD, sporadic PD, and healthy controls. Group level analyses showed higher levels of CSF and plasma GlcSph in GBA1 heterozygous variant carriers independent of disease status, [~]120% (p<0.0001) and [~]61% (p<0.0001), respectively, with CSF elevations reflecting allelic dosage and, to a lesser degree, variant severity. Notably, elevated CSF GlcSph was observed not only in carriers of pathogenic GBA1 mutations but also in individuals harboring common GBA1 risk variants. CSF GlcSph was also elevated by [~]30% in sporadic PD (p=0.002) and by [~]40% LRRK2 mutation carriers (p=0.0003), indicating shared central GCase pathway perturbation across PD subtypes. CSF and plasma GlcSph levels showed poor concordance across groups with the exception of the GBA-PD group, supporting the hypothesis that central and peripheral GCase pathway dysfunction arise through distinct biological mechanisms. Together, these findings establish CSF GlcSph as a sensitive biomarker of central GCase pathway impairment and may support its use as a pharmacodynamic and target engagement biomarker for therapeutics targeting GCase in PD. More broadly, CSF GlcSph may enable identification of biologically defined GCase-pathway dysfunction beyond genetically defined GBA1-associated PD, with potential implications for patient stratification in future disease-modifying trials.

Molecular Biology↗

Low-dose carbon monoxide therapy is neuroprotective in rodent models of Parkinson's disease

Paradoxically, cigarette smoking is associated with a reduced risk of Parkinsons disease (PD). This led us to hypothesize that carbon monoxide (CO) levels, which are constitutively but modestly elevated in smokers, might contribute to neuroprotection. Using rodent models of PD based on -synuclein (Syn) accumulation and oxidative stress, we show that low-dose CO mitigates neurodegeneration and reduces Syn pathology. Oral CO administration activated signaling cascades mediated by heme oxygenase-1 (HO-1), which have been implicated in limiting oxidative stress, and in promoting Syn degradation, thereby conferring neuroprotection. Consistent with a neuroprotective effect of smoking, HO-1 levels in cerebrospinal fluid were higher in human smokers compared to nonsmokers. Moreover, in PD brain samples, HO-1 levels were higher in neurons without Syn pathology. Thus, CO in rodent PD models reduces pathology and increases oxidative stress responses, phenocopying possible protective effects of smoking evident in PD patients. These data highlight the potential for low-dose CO modulated pathways to slow symptom onset and limit pathology in PD patients.

neuroscience↗