Intercellular Ca 2+ wave propagation involving positive feedback between CRAC channels and cysteinyl leukotrienes
- 31 October 2008
- journal article
- research article
- Published by Wiley in The FASEB Journal
- Vol. 23 (3), 894-905
- https://doi.org/10.1096/fj.08-118935
Abstract
Mast cells are key components of the immune system, where they help orchestrate the inflammatory response. Aberrant mast cell activation is linked to a variety of allergic diseases, including asthma, eczema, rhinitis, and nasal polyposis, which in combination affect up to 20% of the population in industrialized countries. On activation, mast cells release a variety of signals that target the bronchi and vasculature and recruit other immune cells to the inflammatory site. Prominent among such signals are the cysteinyl leukotrienes, a family of potent proinflammatory lipid mediators comprising leukotriene C4 (LTC4), LTD4, and LTE4. LTC4, the parent compound, is secreted from mast cells following Ca2+ influx through store-operated calcium release-activated calcium (CRAC) channels. Here, we show that activated mast cells release a paracrine signal that evokes Ca2+ signals in spatially separate resting mast cells. The paracrine signal was identified as a cysteinyl leukotriene because 1) RNAi knockdown or pharmacological block of the 5-lipoxygenase enzyme prevented activated mast cells from stimulating resting cells. 2) Block of cysteinyl leukotriene type I receptors on resting mast cells with the clinically prescribed receptor antagonist montelukast prevented their activation by active mast cells. 3) RNAi knockdown of cysteinyl leukotriene type I receptors on resting cells prevented them from responding to the paracrine signal derived from activated mast cells. 4) Purified LTC4 evoked Ca2+ signals in mast cells that were identical to those triggered by the paracrine signal. Low levels of stimulus intensity released sufficient levels of leukotriene to activate resting cells. Leukotriene secretion still occurred tens of minutes after stimulation, suggesting a role as a long-lasting trigger in mast cell activation. Stimulation of the cysteinyl leukotriene receptor activated CRAC channels and evoked prominent store-operated Ca2+ entry. This resulted in further cysteinyl leukotriene production, triggering a positive feedback cascade. Acutely isolated mast cells from patients with allergic rhinitis exhibited store-operated Ca2+ influx through CRAC channels and responded to cysteinyl leukotrienes. Histological analysis of samples taken from patients revealed clustering of mast cells, often located within 20 μm of each other, a distance sufficient for paracrine signaling by leukotrienes to operate effectively. We conclude that a positive-feedback cascade involving CRAC channels and cysteinyl leukotrienes constitute a novel mechanism for sustaining mast cell activation.—Di Capite, J., Shirley, A., Nelson, C., Bates, G., Parekh, A. B. Intercellular Ca2+ wave propagation involving positive feedback between CRAC channels and cysteinyl leukotrienes.Keywords
This publication has 44 references indexed in Scilit:
- Defective mast cell effector functions in mice lacking the CRACM1 pore subunit of store-operated calcium release–activated calcium channelsNature Immunology, 2007
- CRACM1 Multimers Form the Ion-Selective Pore of the CRAC ChannelCurrent Biology, 2006
- Ca2+ store depletion causes STIM1 to accumulate in ER regions closely associated with the plasma membraneThe Journal of cell biology, 2006
- Orai1 is an essential pore subunit of the CRAC channelNature, 2006
- Genome-wide RNAi screen of Ca 2+ influx identifies genes that regulate Ca 2+ release-activated Ca 2+ channel activityProceedings of the National Academy of Sciences, 2006
- Cysteinyl leukotrienes: multi‐functional mediators in allergic rhinitisClinical and Experimental Allergy, 2006
- CRACM1 Is a Plasma Membrane Protein Essential for Store-Operated Ca 2+ EntryScience, 2006
- A mutation in Orai1 causes immune deficiency by abrogating CRAC channel functionNature, 2006
- STIM1 is a Ca2+ sensor that activates CRAC channels and migrates from the Ca2+ store to the plasma membraneNature, 2005
- STIM Is a Ca2+ Sensor Essential for Ca2+-Store-Depletion-Triggered Ca2+ InfluxCurrent Biology, 2005