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Open AccessJournal ArticleDOI

ORAI1 and ORAI2 modulate murine neutrophil calcium signaling, cellular activation, and host defense.

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TLDR
ORAI1 and ORAI2 are the primary components of the neutrophil CRAC channel and identifies subpopulations of neutrophils where cell-membrane potential functions as a rheostat to modulate the SOCE response, which has implications for mechanisms that modulate neutrophIL function during infection, acute and chronic inflammatory conditions, and cancer.
Abstract
Calcium signals are initiated in immune cells by the process of store-operated calcium entry (SOCE), where receptor activation triggers transient calcium release from the endoplasmic reticulum, followed by opening of plasma-membrane calcium-release activated calcium (CRAC) channels. ORAI1, ORAI2, and ORAI3 are known to comprise the CRAC channel; however, the contributions of individual isoforms to neutrophil function are not well understood. Here, we show that loss of ORAI1 partially decreases calcium influx, while loss of both ORAI1 and ORAI2 completely abolishes SOCE. In other immune-cell types, loss of ORAI2 enhances SOCE. In contrast, we find that ORAI2-deficient neutrophils display decreased calcium influx, which is correlated with measurable differences in the regulation of neutrophil membrane potential via KCa3.1. Decreased SOCE in ORAI1-, ORAI2-, and ORAI1/2-deficient neutrophils impairs multiple neutrophil functions, including phagocytosis, degranulation, leukotriene, and reactive oxygen species (ROS) production, rendering ORAI1/2-deficient mice highly susceptible to staphylococcal infection. This study demonstrates that ORAI1 and ORAI2 are the primary components of the neutrophil CRAC channel and identifies subpopulations of neutrophils where cell-membrane potential functions as a rheostat to modulate the SOCE response. These findings have implications for mechanisms that modulate neutrophil function during infection, acute and chronic inflammatory conditions, and cancer.

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Physiological Functions of CRAC Channels

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Remodelling of Ca2+ homeostasis is linked to enlarged endoplasmic reticulum in secretory cells.

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Nanotechnology reinforced neutrophil-based therapeutic strategies for inflammatory diseases therapy

TL;DR: A comprehensive overview of the state-of-the-art progress of neutrophils and their function in a certain inflammatory context is briefly introduced in this paper , where the current research progresses about nanomaterials augmented efficient neutrophILS manipulation and developing neutrophil-based carriers utilizing nanotechnology for inflammation-targeted treatment are illustrated with specific research examples.
References
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Journal ArticleDOI

A mutation in Orai1 causes immune deficiency by abrogating CRAC channel function

TL;DR: It is proposed that Orai1 is an essential component or regulator of the CRAC channel complex, which contains four putative transmembrane segments and is based on a novel protein that was identified in SCID patients.
Journal ArticleDOI

Orai1 is an essential pore subunit of the CRAC channel

TL;DR: It is shown that Orai1 is a plasma membrane protein, and that CRAC channel function is sensitive to mutation of two conserved acidic residues in the transmembrane segments, which reduces Ca2+ influx, increases current carried by monovalent cations, and renders the channel permeable to Cs+.
Journal ArticleDOI

Phenotypic diversity and plasticity in circulating neutrophil subpopulations in cancer.

TL;DR: This work has identified a heterogeneous subset of low-density neutrophils (LDNs) that appear transiently in self-resolving inflammation but accumulate continuously with cancer progression, providing a mechanistic explanation to mitigate the controversy surrounding neutrophil function in cancer.
Journal ArticleDOI

Syk is required for integrin signaling in neutrophils.

TL;DR: It is shown that Syk is also an essential component of integrin signaling in neutrophils, and defects in integrin-mediated activation did not impair the Integrin-dependent in vitro or in vivo migration of syk(-/-) neutrophil or of cells deficient in Src-family kinases.
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