2.University of Sheffield, Western Bank, Sheffield, S10 2TN, UK.
J Leukoc Biol. 2013 Oct;94(4):633-42. doi: 10.1189/jlb.1112594. Epub 2013 Mar 5.
To understand inflammation and immunity, we need to understand the biology of the neutrophil. Whereas these cells can readily be extracted from peripheral blood, their short lifespan makes genetic manipulations impractical. Murine knockout models have been highly informative, and new imaging techniques are allowing neutrophils to be seen during inflammation in vivo for the first time. However, there is a place for a new model of neutrophil biology, which readily permits imaging of individual neutrophils during inflammation in vivo, combined with the ease of genetic and chemical manipulation. The zebrafish has long been the model of choice for the developmental biology community, and the availability of genomic resources and tools for gene manipulation makes this an attractive model. Zebrafish innate immunity shares many features with mammalian systems, including neutrophils with morphological, biochemical, and functional features, also shared with mammalian neutrophils. Transgenic zebrafish with neutrophils specifically labeled with fluorescent proteins have been generated, and this advance has led to the adoption of zebrafish, alongside existing models, by a number of groups around the world. The use of these models has underpinned a number of key advances in the field, including the identification of a tissue gradient of hydrogen peroxide for neutrophil recruitment following tissue injury and direct evidence for reverse migration as a regulatable mechanism of inflammation resolution. In this review, we discuss the importance of zebrafish models in neutrophil biology and describe how the understanding of neutrophil biology has been advanced by the use of these models.
为了理解炎症和免疫,我们需要了解中性粒细胞的生物学。虽然这些细胞可以很容易地从外周血中提取出来,但它们的寿命很短,使得遗传操作变得不切实际。鼠类基因敲除模型非常有启发性,新的成像技术首次允许在体内炎症过程中观察到中性粒细胞。然而,需要一种新的中性粒细胞生物学模型,这种模型可以在体内炎症过程中很容易地对单个中性粒细胞进行成像,并结合遗传和化学操作的简便性。斑马鱼长期以来一直是发育生物学领域的首选模型,基因组资源和基因操作工具的可用性使其成为一个有吸引力的模型。斑马鱼先天免疫与哺乳动物系统有许多共同特征,包括具有形态、生化和功能特征的中性粒细胞,这些特征也与哺乳动物中性粒细胞相同。已经生成了具有荧光蛋白特异性标记的中性粒细胞的转基因斑马鱼,这一进展促使许多研究小组在现有的模型之外,采用了斑马鱼模型。这些模型的使用为该领域的许多关键进展提供了支持,包括鉴定了组织损伤后中性粒细胞募集的过氧化氢组织梯度,以及作为炎症消退的可调节机制的反向迁移的直接证据。在这篇综述中,我们讨论了斑马鱼模型在中性粒细胞生物学中的重要性,并描述了这些模型如何促进了对中性粒细胞生物学的理解。