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Pfeifer, T. A.

Publications and source records attributed to Pfeifer, T. A..

2 recordsLinked to original sources

A high-content imaging workflow to screen for molecules that reduce cellular uptake of α-synuclein preformed fibrils

A classical pathological hallmark of many neurodegenerative diseases is the formation of protein-rich aggregates and inclusions. In Parkinsons disease (PD), -synuclein (-syn) constitutes a major protein component of pathological inclusions, termed Lewy bodies. These -syn aggregates are hypothesized to spread throughout the nervous system by cell-to-cell transmission acting as templates to amplify aggregate formation. In vitro generated -syn aggregates, commonly called preformed fibrils (PFFs), have been used to investigate a number of aspects related to -syn mediated pathology across different model systems. Here we describe a semi-automated assay to screen for small molecules that interfere with the cellular uptake and accumulation of PFFs. The assay uses dopaminergic progenitor cells (DPCs), derived from human induced pluripotent stem cells (hiPSCs). In an initial screen, we tested 1520 small molecules and identified several molecules that strongly reduce intracellular PFF load in DPCs. From these hits, candidate compounds were validated in dopaminergic neurons (DNs) to demonstrate the utility of the assay. This assay provides a robust, scalable and adaptable tool to screen for molecules that affect PFF uptake in hiPSC-derived cell models. Within the scope of this screen, it led to the identification of a set of compounds with diverse annotated targets that effectively reduce the uptake of synuclein aggregates in DPCs and DNs.

neuroscience↗

High-throughput LacZ/CPRG screen identifies novel potential antibiotics targeting Gram-negative bacterial envelopes to combat resistance

BackgroundBacterial resistance, exacerbated by multidrug-resistant Gram-negative (GN) pathogens, poses a public health threat due to their impermeable envelopes, which block many antibiotics. ObjectivesWe aimed to develop a high-throughput screening (HTS) method to identify small molecules targeting GN bacterial envelopes and assess their antibacterial potential. MethodsEnvelope disruption in Escherichia coli and Pseudomonas aeruginosa was assessed using a {beta}-galactosidase (LacZ)/CPRG reporter assay in LB at 37{degrees}C. The assay was validated through screening the LOPAC1280 and KD24761 compound libraries. Concentration-response relationships, permeabilisation constants (K50), co-permeabilisation assays, minimal inhibitory concentration (MIC) measurements, and bacterial microscopy post-MICs were performed. ResultsThe assay demonstrated robust performance, evidenced by high Z-factor and signal-to-noise (S/N ratios. Screening identified 57 active compounds (1.2% of the library), including {beta}-lactams and three non-antibiotic molecules--suloctidil, isorotenone, and alexidine--that exhibited concentration-dependent antibacterial activity. Alexidine showed the most potent activity, with the lowest K50 (2.7x10-3 mM) and MICs of 0.004 mM for E. coli and 0.015 mM for P. aeruginosa. Suloctidil and isorotenone induced spherical cell morphology, while alexidine induced a filamentous phenotype, indicative of envelope disruption. The assay also identified antibiotics for monotherapy and combination therapy, with ampicillin, alexidine, and suloctidil enhancing chloramphenicols efficacy against E. coli MG1655. ConclusionsThe LacZ/CPRG reporter assay effectively identified compounds targeting bacterial envelopes, including novel molecules with antibacterial activity against GN pathogens, making it a promising tool for antibiotic discovery or combination therapy.

microbiology↗