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Levin, N. K.

Publications and source records attributed to Levin, N. K..

3 recordsLinked to original sources

The free fatty acid 2 receptor regulates the activation potency of C5a and the sensitivity to the antagonist avacopan

The complement derived neutrophil chemoattractant C5a, is a potent activator of the neutrophil superoxide anion generating NADPH oxidase. An allosteric modulator specific for the free fatty acid 2 receptor increases the activating potency but not the efficacy of C5a. The allosteric modulator also decreases the inhibitory effect of the C5a receptor antagonist avacopan, suggesting that the NADPH oxidase is activated by two different signaling pathways downstream of the receptor for C5a. While the allosteric modulator affected the C5a-mediated activation of the NADPH oxidase, the C5a-induced rise in the intracellular concentration of free calcium ions was unaffected. The C5a receptor and the free fatty acid receptor belong to the family of G protein-coupled receptors family. Our results show that the activated C5a receptors generate signals that directly activate the NADPH oxidase and allosterically modulated free fatty acid receptors which secondarily generate signals that elicit NADPH oxidase activity. This is in line with an earlier described receptor transactivation model, by which the fatty acid receptor is activated by receptor downstream signals generated by several different neutrophil receptors to which we now add the receptor for C5a. In addition, the fatty acid receptor was higher ranked than the receptor for C5a, in the neutrophil receptor hierarchy. The dual receptor trans-regulatory effects, by which the receptor for C5a activates the fatty acid receptor and by which this receptor reduces the C5a response, represent new regulatory mechanisms of importance for the NADPH oxidase activity in neutrophils.

cell biology↗

THE ACTIN CYTOSKELETON CONTROLS NADPH OXIDASE ACTIVATION AND G PROTEIN RECRUITMENT MEDIATED BY NEUTROPHIL G-alpha-q-COUPLED RECEPTORS

Signaling by formyl peptide receptor 1 (FPR1), the prototype G protein-coupled receptor (GPCR) expressed in neutrophil leukocytes, is initiated by an activation of a G protein containing a Gi subunit. FPR1 activation results in an increase in the cytosolic concentration of free calcium ions ([Ca2+]i), and an activation of the superoxide anion producing NADPH oxidase. Receptor downstream signals generated by the danger molecule ATP recognized by the purinergic receptor P2Y2 are transduced by a G protein containing a Gq subunit. The neutrophil response induced by ATP also includes a transient rise in [Ca2+]i, but the downstream signals do not activate the NADPH oxidase. ATP can, however, activate this enzyme system through a receptor transactivation mechanism dependent not only on the ATP receptor but also on the free fatty acid receptor FFA2R, provided that this receptor is allosterically modulated. This occurs through a novel mechanism whereby FFA2R is activated from the cytosolic side of the plasma membrane by Gq transduced signals generated by the ATP receptor. Furthermore, in neutrophils with a disrupted actin cytoskeleton, ATP (as well as platelet activating factor; recognized by the Gq-coupled PAFR) becomes a potent NADPH oxidase activating agonist. At high concentrations of the actin cytoskeleton disrupting drug latrunculin A the activation was only partly reduced by Gq inhibition. More importantly, this response was also partly inhibited by pertussis toxin. The effects on the ATP-induced NADPH oxidase activity, of the Gq inhibitor and pertussis toxin were more and less pronounced, respectively, when the concentration of latrunculin A was reduced. Taken together, we show that in primary human neutrophils the actin cytoskeleton is part of the regulatory machinery that determines the activation of NADPH oxidase activation and the G protein recruitment profile downstream of activated of Gq-coupled GPCRs. HighlightsO_LIATP is a biased signaling agonist unable to activate the neutrophil NADPH oxidase C_LIO_LIATP activates the NADPH oxidase through P2Y2R mediated transactivation of FFA2R C_LIO_LIActin cytoskeleton disruption enables ATP to activate the NADPH oxidase C_LIO_LICytoskeleton regulated NADPH oxidase activation depends on Gi and Gq signaling C_LIO_LIThe actin cytoskeleton regulates the G protein recruitment profile of P2Y2R C_LI

immunology↗

Activation and signaling characteristics of the hydroxy-carboxylic acid 3 receptor identified in human neutrophils through a microfluidic flow cell technique

Human neutrophils express numerous G protein-coupled receptors (GPCRs) of importance for immune regulation. Several of the functionally known neutrophil GPCRs, are not part of the human neutrophil proteome. To identify GPCRs not earlier shown to be expressed in human neutrophils, we utilized a microfluidic flow cell technique in combination with subcellular granule fractionation and liquid chromatography-tandem mass spectrometry (LC-MS/MS). This approach added the hydroxy-carboxylic acid 3 receptor (HCA3R) to the human neutrophil proteome. The {beta}-oxidation intermediate 3-hydroxy-octanoic acid (3-OH-C8) is the primary endogenous agonist for this receptor which is highly expressed in adipocytes where it has anti-lipolytic effects. Literature describing the role and function of HCA3R in human neutrophils is scarce. We now show that 3-OH-C8 as well the synthetic HCA3R agonist IBC 293 activate human neutrophils determined as an increase in the intracellular concentration of free calcium ions ([Ca2+]i) and activation of the NADPH oxidase. However, in contrast to the rise in [Ca2+]i which could be triggered in naive neutrophils, pre-treatment of neutrophils was required for HCA3Rs to activate the NADPH oxidase. That is, the HCA3R-mediated NADPH oxidase activation occurred only in neutrophils pre-treated with either an actin cytoskeleton disrupter or an allosteric modulator targeting the GPCR termed free fatty acid receptor 2 (FFA2R). Our findings demonstrate that HCA3R is not only a new member of the human neutrophil proteome, but also exhibits functional activity with complex signaling pathways when stimulated with endogenous and synthetic HCA3R agonists.

immunology↗