Three-Dimentional Architecture of the Renal Inner Medulla of the Desert Rodent Dipodomys Merriami: Potential Impact on the Urinary Concentrating Mechanism

The objective of the following research project was to analyze the methods behind the urinary concentrating mechanism in Dipodomys merriami, Merriam's kangaroo rat. We hypothesize that the inner medulla of Dipodomys merriami contains extreme examples of various architectural features as well as...

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Main Author: Issaian, Tadeh
Language:en
Published: The University of Arizona. 2010
Online Access:http://hdl.handle.net/10150/156916
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spelling ndltd-arizona.edu-oai-arizona.openrepository.com-10150-1569162015-10-23T04:28:34Z Three-Dimentional Architecture of the Renal Inner Medulla of the Desert Rodent Dipodomys Merriami: Potential Impact on the Urinary Concentrating Mechanism Issaian, Tadeh The objective of the following research project was to analyze the methods behind the urinary concentrating mechanism in Dipodomys merriami, Merriam's kangaroo rat. We hypothesize that the inner medulla of Dipodomys merriami contains extreme examples of various architectural features as well as transport properties which enable it to produce concentrated urine at over 6000mOsm/Kg water. The three-dimensional architecture of the vasculature and nephron segments inside the renal inner medulla (IM) was assessed using digital reconstruction from tissue sections. Descending thin limbs (DTLs), ascending thin limbs (ATLs), collecting ducts (CDs), and ascending vasa recta (AVR) were identified with indirect immunofluorescence using antibodies and lectins that recognize segment-specific proteins associated with solute and water transport (AQP1, ClC-K1, and AQP2). Electron microscopy shows close contact between CDs, AVR, and ATLs at adherence areas. The CDs, AVR, and ATLs are sufficiently close together to form discrete interstitial compartments. This architectural arrangement and apparent isolation of these compartments raise questions regarding their function. One possibility is that lateral solute diffusion from ATLs and CDs into AVR could be preferentially restricted to these areas. Interstitial cell architecture, which could increase and define compartmentalization, may further restrict diffusive exchange. 2010-12 text Electronic Thesis http://hdl.handle.net/10150/156916 en Copyright © is held by the author. Digital access to this material is made possible by the University Libraries, University of Arizona. Further transmission, reproduction or presentation (such as public display or performance) of protected items is prohibited except with permission of the author. The University of Arizona.
collection NDLTD
language en
sources NDLTD
description The objective of the following research project was to analyze the methods behind the urinary concentrating mechanism in Dipodomys merriami, Merriam's kangaroo rat. We hypothesize that the inner medulla of Dipodomys merriami contains extreme examples of various architectural features as well as transport properties which enable it to produce concentrated urine at over 6000mOsm/Kg water. The three-dimensional architecture of the vasculature and nephron segments inside the renal inner medulla (IM) was assessed using digital reconstruction from tissue sections. Descending thin limbs (DTLs), ascending thin limbs (ATLs), collecting ducts (CDs), and ascending vasa recta (AVR) were identified with indirect immunofluorescence using antibodies and lectins that recognize segment-specific proteins associated with solute and water transport (AQP1, ClC-K1, and AQP2). Electron microscopy shows close contact between CDs, AVR, and ATLs at adherence areas. The CDs, AVR, and ATLs are sufficiently close together to form discrete interstitial compartments. This architectural arrangement and apparent isolation of these compartments raise questions regarding their function. One possibility is that lateral solute diffusion from ATLs and CDs into AVR could be preferentially restricted to these areas. Interstitial cell architecture, which could increase and define compartmentalization, may further restrict diffusive exchange.
author Issaian, Tadeh
spellingShingle Issaian, Tadeh
Three-Dimentional Architecture of the Renal Inner Medulla of the Desert Rodent Dipodomys Merriami: Potential Impact on the Urinary Concentrating Mechanism
author_facet Issaian, Tadeh
author_sort Issaian, Tadeh
title Three-Dimentional Architecture of the Renal Inner Medulla of the Desert Rodent Dipodomys Merriami: Potential Impact on the Urinary Concentrating Mechanism
title_short Three-Dimentional Architecture of the Renal Inner Medulla of the Desert Rodent Dipodomys Merriami: Potential Impact on the Urinary Concentrating Mechanism
title_full Three-Dimentional Architecture of the Renal Inner Medulla of the Desert Rodent Dipodomys Merriami: Potential Impact on the Urinary Concentrating Mechanism
title_fullStr Three-Dimentional Architecture of the Renal Inner Medulla of the Desert Rodent Dipodomys Merriami: Potential Impact on the Urinary Concentrating Mechanism
title_full_unstemmed Three-Dimentional Architecture of the Renal Inner Medulla of the Desert Rodent Dipodomys Merriami: Potential Impact on the Urinary Concentrating Mechanism
title_sort three-dimentional architecture of the renal inner medulla of the desert rodent dipodomys merriami: potential impact on the urinary concentrating mechanism
publisher The University of Arizona.
publishDate 2010
url http://hdl.handle.net/10150/156916
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