🏆 Foundational Paper

A high-powered view of the filtration barrier.

Peti-Peterdi János, Sipos Arnold

📰 Journal of the American Society of Nephrology : JASN 📅 2010 📊 154 citations

Abstract

Multiphoton excitation fluorescence microscopy is a powerful noninvasive imaging technique for the deep optical sectioning of living tissues. Its application in several intact tissues is a significant advance in our understanding of organ function, including renal pathophysiological mechanisms. The glomerulus, the filtering unit in the kidney, is one good example of a relatively inaccessible and complex structure, with cell types that are otherwise difficult to study at high resolution in their native environment. In this article, we address the application, advantages, and limitations of this imaging technology for the study of the glomerular filtration barrier and the controversy it recently generated regarding the glomerular filtration of macromolecules. More advanced and accurate multiphoton determinations of the glomerular sieving coefficient that are presented here dismiss previous claims on the filtration of nephrotic levels of albumin. The sieving coefficient of 70-kD dextran was found to be around 0.001. Using a model of focal segmental glomerulosclerosis, increased filtration barrier permeability is restricted only to areas of podocyte damage, consistent with the generally accepted role of podocytes and the glomerular origin of albuminuria. Time-lapse imaging provides new details and important in vivo confirmation of the dynamics of podocyte movement, shedding, replacement, and the role of the parietal epithelial cells and Bowman's capsule in the pathology of glomerulosclerosis.

🔬 Techniques

✨ Fluorophores

🔬 Cell Lines

📷 Detectors

CCD

🏛️ Research Organizations (ROR)

Affiliated research institutions:

📊 Figures

Figure 1

Limitations of the multiphoton fluorescence imaging approach when measuring glomerular sieving of macromolecules. (A) In vivo multiphoton image of an intact glomerulus (G) from a Munich-Wistar-Fromter...

Figure 2

Multiphoton images of glomeruli in vivo in (A) control or (B) PAN-treated Munich-Wistar-Fromter rat and (C) control C57BL6 mouse kidneys. The intravascular space (plasma) marker 70-kD dextran-rhodamin...

Figure 3

Podocyte pseudocysts that form as a result of PAN treatment are enlargements of the subpodocyte space. (A) In vivo multiphoton image of an intact glomerulus from a PAN-treated Munich-Wistar-Fromter ra...

Figure 4

Increased GFB permeability is restricted to areas of podocyte damage. (A) In vivo multiphoton image of a glomerulus from a PAN-treated Munich-Wistar-Fromter rat. The intravascular space (plasma) is la...

Figure 5

Time-lapse imaging of the shedding and replacement of podocytes in vivo in PAN-treated Munich-Wistar-Fromter rats. The intravascular space (plasma) marker 70-kD dextran-rhodamine B (red) was given in ...

Figure images are served from the NIH/NLM PubMed Central Open Access Subset or Europe PMC; copyright remains with the publishers and authors.

🏛️ Imaging Facility

🏛️ University of Southern California

💬 Discussion

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