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Swayhoover, T.

Publications and source records attributed to Swayhoover, T..

2 recordsLinked to original sources

In Cellulo pharmacological profiling and genomic editing reveals paralog-specific targets for PA generation during PLC signaling

Phosphatidic acid (PA) is an essential intermediate generated during phospholipase C (PLC) signaling, but its regulation is complex. PA can be generated by ten different diacylglycerol kinase paralogs (DGKs) and two different phospholipase D paralogs (PLDs) in mammals. Because these enzymes are activated under diverse conditions and at various membranes, understanding paralog-specific contributions to PA production is critical for therapeutic development of drugs that modulate the PLC pathway. To address this, we aimed to characterize the paralog specificity of the DGK inhibitors R59022 and BMS-502 against individual endogenously-tagged DGK paralogs in live cells. We found that R59022 and BMS-502 both recruited endogenous DGKalpha to the plasma membrane, and inhibited the catalytic fragment of DGKalpha when ectopically localized to the mitochondrial outer membrane. However, at its effective dose, R59022 paradoxically increased PA levels, while BMS-502 functioned as a potent inhibitor. Live-cell imaging experiments using BMS-502 with carbachol stimulation of endogenous muscarinic receptors showed that inhibition of both DGKalpha and the PLDs is needed to substantially reduce PA levels during PLC activation. Our findings both identify paralog-specific druggable targets for modulating PLC signaling events, and establish a new platform for characterizing DGK and PLD activity in living cells.

biochemistry↗

Independent validation of the SnxA biosensor as a sensitive reporter of PI(3,5)P2 dynamics

PI(3,5)P2 is an endosomal lipid whose depletion is associated with a variety of pathologies such as neurodegenerative diseases. However, studying this lipid in physiological and disease models has been difficult due to the scarcity of the lipid and the lack of live-cell imaging tools. That is until recently, when a novel PI(3,5)P2 biosensor, SnxA, was characterized. Despite the exciting promise of this new sensor, it was still unclear if SnxA unbiasedly reported on PI(3,5)P2 levels and how its sensitivity compared to other PI(3,5)P2 biosensors. In this work, we addressed these gaps by using a recruitable PIKfyve construct to demonstrate that ectopically generated PI(3,5)P2 at mitochondria was sufficient to recruit SnxA. Further, we co-expressed putative PI(3,5)P2 biosensors to definitively show that SnxA is more sensitive to PI(3,5)P2. We also validated previous results by showing that SnxA depends on PI(3,5)P2 for membrane binding, SnxA responds to PI(3,5)P2 production at endosomes, and that PI(3,5)P2 levels decline quickly when its production is inhibited. Thus, we conclude that SnxA is a robust and sensitive PI(3,5)P2 biosensor that facilitates real-time analysis of this key lipid.

cell biology↗