Plasmalogens are a class of glycerophospholipids shown to play critical roles in membrane structure and function. Decreased plasmalogens are reported in the brain and blood of Parkinson's disease (PD) patients. The present study investigated the hypothesis that augmenting plasmalogens could protect striatal dopamine neurons that degenerate in response to 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) treatment in mice, a PD model. First, in a pre-treatment experiment male mice were treated for 10 days with the docosahexaenoic acid (DHA)-plasmalogen precursor PPI-1011 (10, 50 and 200 mg/kg). On day 5 mice received MPTP and were killed on day 11. Next, in a post-treatment study, male mice were treated with MPTP and then received daily for 5 days PPI-1011 (5, 10 and 50 mg/kg). MPTP treatment reduced serum plasmalogen levels, striatal contents of dopamine (DA) and its metabolites, serotonin, DA transporter (DAT) and vesicular monoamine transporter 2 (VMAT2). Pre-treatment with PPI-1011 (10 and 50 mg/kg) prevented all MPTP-induced effects. Positive correlations were measured between striatal DA contents and serum plasmalogen levels as well as striatal DAT and VMAT2 specific binding. Post-treatment with PPI-1011 prevented all MPTP-induced effects at 50 mg/kg but not at lower doses. Positive correlations were measured between striatal DA contents and serum plasmalogen levels as well as striatal DAT and VMAT2 specific binding in the post-treatment experiment. PPI-1011 treatment (10 days at 5, 10 and 50 mg/kg) of intact mice left unchanged striatal biogenic amine contents. These data demonstrate that treatment with a plasmalogen precursor is capable of protecting striatal dopamine markers in an animal model of PD.
Many current tandem mass spectrometry (MS) methods for measuring phosphatidylcholines (PtdChos) rely only on precursor ion scanning of the common 184 m/z phosphocholine fragment with positive electrospray ionization (+ESI), and thus measure pools of PtdChos rather than specific isoforms. In this paper, we developed and compared an isotope dilution, tandem MS method capable of quantifying PtdChos based on specific fatty acid side-chains to the traditional 184 m/z method. The method is based on the detection of PtdCho ammonium formate (AmF) adduct as parent ions and fatty acid fragment daughter ions under negative electrospray ionization (−ESI). Accuracy, imprecision, and recovery were below 15 %, with acceptable linearity (R 2 > 0.99) up to 5 μg/mL. We used the method to analyze the distributions of PtdChos with common side-chain combinations among 60 subjects and showed that it was possible for two individuals to have the same PtdCho pool concentration based on detection of the 184 m/z fragment, but up to a fourfold difference in the levels of specific isoforms comprising the pool based on our method. We then compared the results of both methods across 572 patients with mild cognitive impairment (MCI), Alzheimer’s disease (AD), or no impairment (NI), which showed that statistically significant associations between specific PtdCho isoforms and AD were masked with the 184 m/z method. Our findings demonstrate the importance of isoform specificity for quantifying PtdChos, and suggest caution when interpreting analytical data based on pools of biomarkers.