FcεRI-mediated mast cell degranulation requires calcium-independent microtubule-dependent translocation of granules to the plasma membrane

Author:

Nishida Keigo12,Yamasaki Satoru1,Ito Yukitaka13,Kabu Koki12,Hattori Kotaro4,Tezuka Tohru5,Nishizumi Hirofumi5,Kitamura Daisuke6,Goitsuka Ryo6,Geha Raif S.7,Yamamoto Tadashi5,Yagi Takeshi4,Hirano Toshio123

Affiliation:

1. Laboratory for Cytokine Signaling, RIKEN Research Center for Allergy and Immunology (RCAI), Kanagawa 230-0045, Japan

2. Laboratory of Developmental Immunology (C7), Graduate School of Medicine

3. Laboratory of Developmental Immunology, Graduate School of Frontier Biosciences, Osaka University, Osaka 565-0871, Japan

4. KOKORO-Biology Group and CREST, Graduate School of Frontier Biosciences, Osaka University, Osaka 565-0871, Japan

5. Division of Oncology, Department of Cancer Biology, Institute of Medical Science, University of Tokyo, Tokyo 108-8639, Japan

6. Division of Molecular Biology, Research Institute for Biological Sciences, Tokyo University of Science, Chiba 278-0022, Japan

7. Division of Immunology, Children's Hospital and Department of Pediatrics, Harvard Medical School, Boston, MA 02115

Abstract

The aggregation of high affinity IgE receptors (Fcε receptor I [FcεRI]) on mast cells is potent stimulus for the release of inflammatory and allergic mediators from cytoplasmic granules. However, the molecular mechanism of degranulation has not yet been established. It is still unclear how FcεRI-mediated signal transduction ultimately regulates the reorganization of the cytoskeleton and how these events lead to degranulation. Here, we show that FcεRI stimulation triggers the formation of microtubules in a manner independent of calcium. Drugs affecting microtubule dynamics effectively suppressed the FcεRI-mediated translocation of granules to the plasma membrane and degranulation. Furthermore, the translocation of granules to the plasma membrane occurred in a calcium-independent manner, but the release of mediators and granule–plasma membrane fusion were completely dependent on calcium. Thus, the degranulation process can be dissected into two events: the calcium-independent microtubule-dependent translocation of granules to the plasma membrane and calcium-dependent membrane fusion and exocytosis. Finally, we show that the Fyn/Gab2/RhoA (but not Lyn/SLP-76) signaling pathway plays a critical role in the calcium-independent microtubule-dependent pathway.

Publisher

Rockefeller University Press

Subject

Cell Biology

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