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首页> 外文期刊>American Journal of Physiology >Two-photon excitation fluorescence imaging of the living juxtaglomerular apparatus.
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Two-photon excitation fluorescence imaging of the living juxtaglomerular apparatus.

机译:活体肾小球设备的双光子激发荧光成像。

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摘要

Recently, multiphoton excitation fluorescence microscopy has been developed that offers important advantages over confocal imaging, particularly for in vivo visualization of thick tissue samples. We used this state-of-the-art technique to capture high-quality images and study the function of otherwise inaccessible cell types and complex cell structures of the juxtaglomerular apparatus (JGA) in living preparations of the kidney. This structure has multiple cell types that exhibit a complex array of functions, which regulate the process of filtrate formation and renal hemodynamics. We report, for the first time, on high-resolution three-dimensional morphology and Z-sectioning through isolated, perfused kidney glomeruli, tubules, and JGA. Time-series images show how alterations in tubular fluid composition cause striking changes in single-cell volume of the unique macula densa tubular epithelium in situ and how they also affect glomerular filtration through alterations in associated structures within the JGA. In addition, calcium imaging of the glomerulus and JGA demonstrates the utility of this system in capturing the complexity of events and effects that are exerted by the specific hypertensive autacoid angiotensin II. This imaging approach to the study of isolated, perfused live tissue with multiphoton microscopy may be applied to other biological systems in which multiple cell types form a functionally integrated syncytium.
机译:近来,已经开发出多光子激发荧光显微镜,其比共聚焦成像具有重要的优势,特别是对于厚组织样本的体内可视化。我们使用了这种最先进的技术来捕获高质量图像,并研究了肾脏的活体制剂中原本无法进入的细胞类型和近肾小管装置(JGA)的复杂细胞结构的功能。该结构具有多种细胞类型,这些细胞类型表现出一系列复杂的功能,这些功能可调节滤液形成过程和肾脏血液动力学。我们首次报告了高分辨率的三维形态学和通过分离的,灌注的肾小球,肾小管和JGA进行的Z切片。时间序列图像显示了管状液体成分的变化如何引起原位独特的黄斑部牙髓管状上皮单细胞体积的惊人变化,以及它们如何通过JGA中相关结构的变化影响肾小球滤过。此外,肾小球和JGA的钙成像证明了该系统在捕获由特定的高血压autacoid血管紧张素II产生的事件和效应的复杂性方面的实用性。这种用多光子显微镜研究分离的,灌注的活组织的成像方法可以应用于其他生物系统,在该系统中,多种细胞类型形成了功能整合的合胞体。

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