-1::1
Simple Hit Counter
Skip to content

Products

Solutions

×
×
Sign In

EN

EN - EnglishCN - 简体中文DE - DeutschES - EspañolKR - 한국어IT - ItalianoFR - FrançaisPT - Português do BrasilPL - PolskiHE - עִבְרִיתRU - РусскийJA - 日本語TR - TürkçeAR - العربية
Sign In Start Free Trial

RESEARCH

JoVE Journal

Peer reviewed scientific video journal

Behavior
Biochemistry
Bioengineering
Biology
Cancer Research
Chemistry
Developmental Biology
View All
JoVE Encyclopedia of Experiments

Video encyclopedia of advanced research methods

Biological Techniques
Biology
Cancer Research
Immunology
Neuroscience
Microbiology
JoVE Visualize

Visualizing science through experiment videos

EDUCATION

JoVE Core

Video textbooks for undergraduate courses

Analytical Chemistry
Anatomy and Physiology
Biology
Cell Biology
Chemistry
Civil Engineering
Electrical Engineering
View All
JoVE Science Education

Visual demonstrations of key scientific experiments

Advanced Biology
Basic Biology
Chemistry
View All
JoVE Lab Manual

Videos of experiments for undergraduate lab courses

Biology
Chemistry

BUSINESS

JoVE Business

Video textbooks for business education

Accounting
Finance
Macroeconomics
Marketing
Microeconomics

OTHERS

JoVE Quiz

Interactive video based quizzes for formative assessments

Authors

Teaching Faculty

Librarians

K12 Schools

Biopharma

Products

RESEARCH

JoVE Journal

Peer reviewed scientific video journal

JoVE Encyclopedia of Experiments

Video encyclopedia of advanced research methods

JoVE Visualize

Visualizing science through experiment videos

EDUCATION

JoVE Core

Video textbooks for undergraduates

JoVE Science Education

Visual demonstrations of key scientific experiments

JoVE Lab Manual

Videos of experiments for undergraduate lab courses

BUSINESS

JoVE Business

Video textbooks for business education

OTHERS

JoVE Quiz

Interactive video based quizzes for formative assessments

Solutions

Authors
Teaching Faculty
Librarians
<<<<<<< HEAD
K12 Schools
Biopharma
=======
K12 Schools
>>>>>>> dee1fd4 (fixed header link)

Language

English

EN

English

CN

简体中文

DE

Deutsch

ES

Español

KR

한국어

IT

Italiano

FR

Français

PT

Português do Brasil

PL

Polski

HE

עִבְרִית

RU

Русский

JA

日本語

TR

Türkçe

AR

العربية

    Menu

    JoVE Journal

    Behavior

    Biochemistry

    Bioengineering

    Biology

    Cancer Research

    Chemistry

    Developmental Biology

    Engineering

    Environment

    Genetics

    Immunology and Infection

    Medicine

    Neuroscience

    Menu

    JoVE Encyclopedia of Experiments

    Biological Techniques

    Biology

    Cancer Research

    Immunology

    Neuroscience

    Microbiology

    Menu

    JoVE Core

    Analytical Chemistry

    Anatomy and Physiology

    Biology

    Cell Biology

    Chemistry

    Civil Engineering

    Electrical Engineering

    Introduction to Psychology

    Mechanical Engineering

    Medical-Surgical Nursing

    View All

    Menu

    JoVE Science Education

    Advanced Biology

    Basic Biology

    Chemistry

    Clinical Skills

    Engineering

    Environmental Sciences

    Physics

    Psychology

    View All

    Menu

    JoVE Lab Manual

    Biology

    Chemistry

    Menu

    JoVE Business

    Accounting

    Finance

    Macroeconomics

    Marketing

    Microeconomics

Start Free Trial
Loading...
Home
JoVE Journal
Medicine
Quantifying Glomerular Permeability of Fluorescent Macromolecules Using 2-Photon Microscopy in Mu...
Quantifying Glomerular Permeability of Fluorescent Macromolecules Using 2-Photon Microscopy in Mu...
JoVE Journal
Medicine
A subscription to JoVE is required to view this content.  Sign in or start your free trial.
JoVE Journal Medicine
Quantifying Glomerular Permeability of Fluorescent Macromolecules Using 2-Photon Microscopy in Munich Wistar Rats

Quantifying Glomerular Permeability of Fluorescent Macromolecules Using 2-Photon Microscopy in Munich Wistar Rats

Full Text
10,966 Views
11:13 min
April 17, 2013

DOI: 10.3791/50052-v

Ruben M. Sandoval1, Bruce A. Molitoris1

1Medicine/Nephrology,Indiana University School of Medicine

A technique utilizing high resolution intavital 2-photon microscopy to directly visualize and quantify gloemrular filtration in surface glomeruli. This method allows for direct determination of permeability characteristics of macromolecules in both normal and diseased states.

The overall goal of this procedure is to successfully visualize the filtration unit of the nephron and quantify filtration of fluorescent macromolecules across the filtration barrier into the urinary space in vivo. This is accomplished by first preparing the microscope stage for the live animal. Next, the kidney is exposed and the rat is placed on the stage.

Then individual glomeruli are identified and mapped and background 3D images are acquired. Finally, fluorescent albumin is infused. 3D volumes of individual glomeruli are acquired, and permeability is quantified.

Ultimately, results can be obtained that show the filtration coefficient of macromolecules across the glomeruli in the kidney through the use of intra vial two photon microscopy. The main advantage of two photon microscopy is that it allows for the simultaneous quantification of both glomerular filtration and proximal tubular reabsorption and transcytosis in the animal. At the same time, the implications of the technique extend beyond mechanistic into diagnostic and therapeutic as the importance of understanding both the role of the glomerular filtration and proximal tubular.

Reabsorption of albumin is critical in determining targeting of therapy. After anesthetizing the rat, insert an indwelling venous access line through either the jugular or femoral vein and shave the left flank from just below the rib cage to just above the left thigh. This is a non survival surgery.

Place the rat flat on its right side so that the left shaved side is facing up. Make sure it is flat on the bench with its posture elongated and not crouched with front paws touching each other and rear paws touching each other very gently. Palpate to feel the kidney to determine where it naturally lays within the retroperitoneum, and use a sharpie to draw a straight line parallel to the body with a pair of tooth forceps.

Pick up the skin and use a pair of hemostats to pinch the skin along the drawn line to crush the tissue and prevent bleeding using a pair of surgical scissors. Cut along the incision. Use the same procedure for cutting the outer muscle layer, which is thin as needed.

Use hemostats to prevent bleeding for the incision into the inner muscle layer, which will expose the peritoneum. Re palpate the kidney to estimate size. Pinch an incision line smaller than the kidney assuring the incision is just over the kidney.

It is best to make this incision too small and make it larger if needed. Locate the kidney and use forceps to grip the surrounding fat working towards the bottom pole of the kidney in a hand over hand fashion. Once the lower pole of the kidney is reached, gently pull the kidney through the incision while very gently squeezing below the kidney to exteriorize it.

If the incision is too small, crush the muscle layer and cut to widen it. Repeat the procedure to exteriorize the kidney after exteriorizing the rat's kidney and placing the rat on the microscope stage for imaging. If your microscope is equipped with a motorized stage capable of marking locations, using a dual pass fluorescein rod, domine filter, and a low powered objective, find and center individual glomeruli, which will appear as empty circular structures surrounded by proximal tubules.

Having an inherent yellow orange autofluorescence mark each location, switch the turret to a higher power water immersion objective, and take 3D data sets of each glomeruli. Making sure the capillary loops and Bowman space are clearly visible. Using a pseudo color palette will help to visualize these structures.

Next, focusing on a superficial blood vessel slowly infuse fluorescent albumin, making sure time is given to allow for systemic distribution for molecules with a low glomerular cing coefficient or GSC, it is essential to maximize the intensity values in the plasma, but not to reach levels that will saturate the photo detectors in the microscope. This increases detectability of filtered molecules After waiting approximately 10 minutes to allow any potential small molecular weight fragments to clear, acquire 3D volumes at one micron intervals to be used in calculating albumin's using metamorph image processing software. Load the 3D data sets along with the background images for each glomeruli in the volume containing the fluorescent albumin.

Locate a superficial capillary loop with enough empty space between its defined margins and the edge of the Bowman's capsule. In the background volume. Locate the same focal plane, which should contain all the visual cues of the albumin containing image.

Select a region within the capillary loop of interest and note the average intensity reading. Next, select a region within the Bowman space and note the average intensity reading. These will be used as background values for quantitation.

Select the similar region within the Bowman space in the albumin containing image. Do this for at least two other regions to acquire a value for the average intensity within Bowman's space. Select the capillary loop with the brightest plasma intensity and draw a region around it.

Next, using the threshold function, highlight the bright values within the circulating plasma, avoiding the dark streaks that are circulating red blood cells. Note the average intensity values of the selected plasma space. It is important to preferentially select the bright areas of the plasma because factors within the blood will only serve to cause an underestimation of plasma fluorescence levels.

Enter the values into an Excel spreadsheet to calculate the GSC where GSC equals the difference of the raw bowman space. Intensity minus background Bowman space intensity divided by the difference of the raw capillary loop intensity minus background capillary loop intensity. Uptake of filtered fluorescent albumin occurs predominantly in the early segment of proximal tubules.

The S one, this panel shows a cross section of a glomerulus and an S one segment taken from a Munich Wistar prompter rat, roughly 20 minutes post infusion of an initial Texas red RSA bolus. The opening of the Bowman space and avid uptake of the albumin in red is shown in the S one segment. This panel shows a shallow 20 micron 3D projection of the same dataset, and shown here is a lower power projection taken approximately 60 minutes post infusion.

These images demonstrate that intra vital microscopy can allow visualization of the fate of infused material after filtration corroborating to some degree, the filtration coefficient observed shown here are images taken from the surface glomerulus. This panel is a background image and this image was taken about 12 minutes post infusion of Texas Red rat serum albumin. These two panels are drawn in pseudo color.

Three small regions of interest drawn in Bowman's space are used to calculate the average intensity of fluorescent albumin that has moved across the filtration barrier. Average intensity values for the individual regions were reported in the highlighted area within the show region Statistics dialogue box. The GSC value for albumin of 0.0111 derived for this individual glomerulus falls within the range scene in this strain of Munich star rats when in the fed condition.

Following this procedure, other methods such as quantitative and qualitative analysis can be performed on other renal structures to answer additional questions such as the eventual trafficking of the macromolecule after filtration into the urinary space After its development. This technique allowed researchers in renal physiology to explore dynamic physiologic and pathophysiologic processes, not just once but longitudinally. Over time, it was.

View the full transcript and gain access to thousands of scientific videos

Sign In Start Free Trial

Explore More Videos

2-photon MicroscopyGlomerular PermeabilityFluorescent MacromoleculesMunich Wistar RatsKidney DiseasesUrinary LossSerum AlbuminPodocytesVascular Endothelial CellsBasement MembraneGlomerular Filtration BarrierProximal Tubule CellsMicropunctureDextran PolymersBowman's SpaceAlbumin ReabsorptionTubular TranscytosisProteinuric Renal Diseases

Related Videos

Fluid Aspiration from Mouse Glomeruli: A Method to Aspirate Glomerular Fluid from Mouse Using Two-Photon Mediated Micropuncture

06:43

Fluid Aspiration from Mouse Glomeruli: A Method to Aspirate Glomerular Fluid from Mouse Using Two-Photon Mediated Micropuncture

Related Videos

2.8K Views

A High-throughput Method for Measurement of Glomerular Filtration Rate in Conscious Mice

07:07

A High-throughput Method for Measurement of Glomerular Filtration Rate in Conscious Mice

Related Videos

44.2K Views

Quantifying Single Microvessel Permeability in Isolated Blood-perfused Rat Lung Preparation

07:22

Quantifying Single Microvessel Permeability in Isolated Blood-perfused Rat Lung Preparation

Related Videos

9.9K Views

Single-channel Analysis and Calcium Imaging in the Podocytes of the Freshly Isolated Glomeruli

12:19

Single-channel Analysis and Calcium Imaging in the Podocytes of the Freshly Isolated Glomeruli

Related Videos

11.6K Views

An In Vivo Blood-brain Barrier Permeability Assay in Mice Using Fluorescently Labeled Tracers

09:35

An In Vivo Blood-brain Barrier Permeability Assay in Mice Using Fluorescently Labeled Tracers

Related Videos

26.1K Views

Assessment of Kidney Function in Mouse Models of Glomerular Disease

09:16

Assessment of Kidney Function in Mouse Models of Glomerular Disease

Related Videos

18.5K Views

Micropuncture of Bowman's Space in Mice Facilitated by 2 Photon Microscopy

07:37

Micropuncture of Bowman's Space in Mice Facilitated by 2 Photon Microscopy

Related Videos

9.8K Views

Transdermal Measurement of Glomerular Filtration Rate in Mice

07:25

Transdermal Measurement of Glomerular Filtration Rate in Mice

Related Videos

23.2K Views

Highly Sensitive Measurement of Glomerular Permeability in Mice with Fluorescein Isothiocyanate-polysucrose 70

09:16

Highly Sensitive Measurement of Glomerular Permeability in Mice with Fluorescein Isothiocyanate-polysucrose 70

Related Videos

7.3K Views

Using 2-Photon Microscopy to Quantify the Effects of Chronic Unilateral Ureteral Obstruction on Glomerular Processes

11:47

Using 2-Photon Microscopy to Quantify the Effects of Chronic Unilateral Ureteral Obstruction on Glomerular Processes

Related Videos

2.6K Views

JoVE logo
Contact Us Recommend to Library
Research
  • JoVE Journal
  • JoVE Encyclopedia of Experiments
  • JoVE Visualize
Business
  • JoVE Business
Education
  • JoVE Core
  • JoVE Science Education
  • JoVE Lab Manual
  • JoVE Quizzes
Solutions
  • Authors
  • Teaching Faculty
  • Librarians
  • K12 Schools
  • Biopharma
About JoVE
  • Overview
  • Leadership
Others
  • JoVE Newsletters
  • JoVE Help Center
  • Blogs
  • Site Maps
Contact Us Recommend to Library
JoVE logo

Copyright © 2026 MyJoVE Corporation. All rights reserved

Privacy Terms of Use Policies
WeChat QR code