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Updated: Feb 15, 2026

Detecting Migration and Infiltration of Neutrophils in Mice
Published on: February 6, 2020
Vesicular nucleotide transporter mediates ATP release and migration in neutrophils
Yuika Harada1, Yuri Kato2, Takaaki Miyaji2
1From the Department of Membrane Biochemistry, Okayama University Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama 700-8530, Japan.
Abstract:
Neutrophils migrate to sites infected by pathogenic microorganisms. This migration is regulated by neutrophil-secreted ATP, which stimulates neutrophils in an autocrine manner through purinergic receptors on the plasma membrane. Although previous studies have shown that ATP is released through channels at the plasma membrane of the neutrophil, it remains unknown whether it is also released through alternate secretory systems involving vesicular mechanisms. In this study, we investigated the possible involvement of vesicular nucleotide transporter (VNUT), a key molecule for vesicular storage and nucleotide release, in ATP secretion from neutrophils. RT-PCR and Western blotting analysis indicated that VNUT is expressed in mouse neutrophils. Immunohistochemical analysis indicated that VNUT mainly colocalized with matrix metalloproteinase-9 (MMP-9), a marker of tertiary granules, which are secretory organelles. In mouse neutrophils, ATP release was inhibited by clodronate, which is a potent VNUT inhibitor. Furthermore, neutrophils from VNUT-/- mice did not release ATP and exhibited significantly reduced migration in vitro and in vivo These findings suggest that tertiary granule-localized VNUT is responsible for vesicular ATP release and subsequent neutrophil migration. Thus, these findings suggest an additional mechanism through which ATP is released by neutrophils.
Insights
Neutrophil migration relies on ATP release. This study reveals vesicular nucleotide transporter (VNUT) mediates ATP secretion via tertiary granules, crucial for neutrophil movement.
Area of Science:
- Immunology
- Cell Biology
- Molecular Biology
Background:
- Neutrophils migrate to infection sites, a process regulated by autocrine ATP signaling.
- ATP release from neutrophils occurs via plasma membrane channels, but alternative vesicular release mechanisms are unclear.
Purpose of the Study:
- To investigate the role of vesicular nucleotide transporter (VNUT) in ATP secretion from neutrophils.
- To determine if VNUT mediates ATP release through vesicular mechanisms.
Main Methods:
- RT-PCR and Western blotting to detect VNUT expression in mouse neutrophils.
- Immunohistochemistry to assess VNUT localization relative to secretory granule markers (MMP-9).
- Assessing ATP release and neutrophil migration in the presence of VNUT inhibitors (clodronate) and in VNUT knockout mice.
Main Results:
- VNUT is expressed in mouse neutrophils and localizes to tertiary granules.
- Inhibition of VNUT by clodronate reduced ATP release.
- Neutrophils from VNUT knockout mice showed no ATP release and impaired migration in vitro and in vivo.
Conclusions:
- Tertiary granule-localized VNUT is essential for vesicular ATP release in neutrophils.
- This VNUT-mediated vesicular ATP release pathway is critical for neutrophil migration to infection sites.
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