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Analysis of Physiologic E-Selectin-Mediated Leukocyte Rolling on Microvascular Endothelium
Published on: February 11, 2009
Histamine induces leukocyte rolling in post-capillary venules. A P-selectin-mediated event
1Immunological Sciences Research Group, University of Calgary Medical Center, Alberta, Canada.
Abstract:
The objective of this study was to systematically assess the molecular mechanisms and kinetics of histamine-induced leukocyte rolling in rat mesenteric venules using intravital microscopy. A complicating factor in these studies is surgical preparation-induced leukocyte rolling (spontaneous rolling), which leads to a lack of effect of histamine on this parameter. Therefore, we identified the source of the surgery-induced leukocyte rolling (partial mast cell degranulation) and established that pretreatment of animals with sodium cromoglycate (connective tissue mast cell stabilizer) inhibited spontaneous leukocyte rolling. Superfusion of the mast cell-stabilized rat mesentery with histamine caused a profound increase in leukocyte rolling which persisted for the entire hour of experimentation. Diphenhydramine (H1-receptor antagonist) but not cimetidine (H2-receptor antagonist) prevented the rise in histamine-induced leukocyte rolling. An anti-P-selectin Ab but not an anti-CD18 Ab reversed the histamine-induced leukocyte rolling in a dose-dependent fashion. In this model of low base line rolling, exposure of the mesentery to the chemotactic agent platelet-activating factor did not induce leukocyte rolling or adhesion. However, co-administration of histamine with platelet-activating factor did indeed promote leukocyte adhesion suggesting that the presence of at least one effector of P-selectin is a minimal requirement for chemotactically-stimulated leukocytes to adhere to postcapillary venules. This study demonstrates for the first time that histamine induces leukocyte rolling via a P-selectin-dependent mechanism in vivo. This is a prolonged, H1 receptor-mediated event that may contribute significantly to the early phase of inflammation.
Insights
Histamine triggers leukocyte rolling in inflammation through a P-selectin dependent pathway. This H1 receptor-mediated event is crucial for the early stages of inflammatory responses.
Area of Science:
- Immunology
- Cell Biology
- Physiology
Background:
- Surgical preparation can induce spontaneous leukocyte rolling, complicating studies on histamine's effects.
- Spontaneous rolling originates from partial mast cell degranulation.
Purpose of the Study:
- To investigate the molecular mechanisms and kinetics of histamine-induced leukocyte rolling in rat mesenteric venules.
- To differentiate histamine's role from surgery-induced effects and identify key molecular mediators.
Main Methods:
- Intravital microscopy was used to observe leukocyte rolling in rat mesenteric venules.
- Mast cells were stabilized using sodium cromoglycate to inhibit spontaneous rolling.
- Histamine's effects were assessed in the presence of H1 and H2 receptor antagonists (diphenhydramine and cimetidine, respectively).
- Antibodies against P-selectin and CD18 were used to investigate the role of adhesion molecules.
Main Results:
- Histamine significantly increased leukocyte rolling, an effect sustained for one hour.
- This histamine-induced rolling was blocked by diphenhydramine (H1 antagonist) but not cimetidine (H2 antagonist).
- Leukocyte rolling was reversed by an anti-P-selectin antibody in a dose-dependent manner, but not by an anti-CD18 antibody.
- Histamine, in combination with platelet-activating factor, promoted leukocyte adhesion, highlighting P-selectin's role.
Conclusions:
- Histamine induces leukocyte rolling in vivo via a P-selectin-dependent mechanism.
- This is a prolonged, H1 receptor-mediated process.
- This mechanism likely contributes significantly to the early phase of inflammation.
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