A Closely Associated Phospholipase C Regulates Cation Channel Function through Phosphoinositide Hydrolysis.

J Neurosci

Department of Biomedical and Molecular Sciences, Physiology Graduate Program, Queen's University, Kingston, Ontario K7L 3N6, Canada

Published: August 2018

In the hemaphroditic sea snail, , reproduction is initiated when the bag cell neurons secrete egg-laying hormone during a protracted afterdischarge. A source of depolarization for the afterdischarge is a voltage-gated, nonselective cation channel, similar to transient receptor potential (TRP) channels. Once the afterdischarge is triggered, phospholipase C (PLC) is activated to hydrolyze phosphatidylinositol-4,5-bisphosphate (PIP) into diacylglycerol (DAG) and inositol trisphosphate (IP). We previously reported that a DAG analog, 1-oleoyl-2-acetyl--glycerol (OAG), activates a prominent, inward whole-cell cationic current that is enhanced by IP To examine the underlying mechanism, we investigated the effect of exogenous OAG and IP, as well as PLC activation, on cation channel activity and voltage dependence in excised, inside-out patches from cultured bag cell neurons. OAG transiently elevated channel open probability (P) when applied to excised patches; however, coapplication of IP prolonged the OAG-induced response. In patches exposed to OAG and IP, channel voltage dependence was left-shifted; this was also observed with OAG, but not to the same extent. Introducing the PLC activator, m-3M3FBS, to patches increased channel P, suggesting PLC may be physically linked to the channels. Accordingly, blocking PLC with U-73122 ablated the m-3M3FBS-induced elevation in P Treatment with m-3M3FBS left-shifted cation channel voltage dependence to a greater extent than exogenous OAG and IP Finally, OAG and IP potentiated the stimulatory effect of PKC, which is also associated with the channel. Thus, the PLC-PKC signaling system is physically localized such that PIP breakdown products liberated during the afterdischarge modulate the cation channel and temporally influence neuronal activity. Using excised patches from bag cell neurons, we present the first evidence of a nonselective cation channel physically associating with phospholipase C (PLC) at the single-channel level. PLC-mediated breakdown of phospholipids generates diacylglycerol and inositol trisphosphate, which activate the cation channel. This is mimicked by exogenous lipids; furthermore, these second messengers left-shift channel voltage dependence and enhance the response of the channel to protein kinase C. PLC-mediated lipid signaling controls single-channel currents to ensure depolarization is maintained for an extended period of firing, termed the afterdischarge, when the bag cell neurons secrete egg-laying hormone to trigger reproduction.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6705966PMC
http://dx.doi.org/10.1523/JNEUROSCI.0586-18.2018DOI Listing

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