Literature DB >> 28424208

Architecture of the rat nephron-arterial network: analysis with micro-computed tomography.

Donald J Marsh1, Dmitry D Postnov2, Douglas J Rowland3, Anthony S Wexler4, Olga V Sosnovtseva2, Niels-Henrik Holstein-Rathlou2.   

Abstract

Among solid organs, the kidney's vascular network stands out, because each nephron has two distinct capillary structures in series and because tubuloglomerular feedback, one of the mechanisms responsible for blood flow autoregulation, is specific to renal tubules. Tubuloglomerular feedback and the myogenic mechanism, acting jointly, autoregulate single-nephron blood flow. Each generates a self-sustained periodic oscillation and an oscillating electrical signal that propagates upstream along arterioles. Similar electrical signals from other nephrons interact, allowing nephron synchronization. Experimental measurements show synchronization over fields of a few nephrons; simulations based on a simplified network structure that could obscure complex interactions predict more widespread synchronization. To permit more realistic simulations, we made a cast of blood vessels in a rat kidney, performed micro-computed tomography at 2.5-μm resolution, and recorded three-dimensional coordinates of arteries, afferent arterioles, and glomeruli. Nonterminal branches of arcuate arteries form treelike structures requiring two to six bifurcations to reach terminal branches at the tree tops. Terminal arterial structures were either paired branches at the tops of the arterial trees, from which 52.6% of all afferent arterioles originated, or unpaired arteries not at the tree tops, yielding the other 22.9%; the other 24.5% originated directly from nonterminal arteries. Afferent arterioles near the corticomedullary boundary were longer than those farther away, suggesting that juxtamedullary nephrons have longer afferent arterioles. The distance separating origins of pairs of afferent arterioles varied randomly. The results suggest an irregular-network tree structure with vascular nodes, where arteriolar activity and local blood pressure interact.
Copyright © 2017 the American Physiological Society.

Entities:  

Keywords:  afferent arteriole distribution; nephron dynamics; network dynamics; renal blood flow regulation; renal vascular network

Mesh:

Year:  2017        PMID: 28424208      PMCID: PMC5582900          DOI: 10.1152/ajprenal.00092.2017

Source DB:  PubMed          Journal:  Am J Physiol Renal Physiol        ISSN: 1522-1466


  47 in total

1.  Nonlinear interactions in renal blood flow regulation.

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2.  Structural morphology of renal vasculature.

Authors:  David A Nordsletten; Shane Blackett; Michael D Bentley; Erik L Ritman; Nicolas P Smith
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3.  Vascular coupling induces synchronization, quasiperiodicity, and chaos in a nephron tree.

Authors:  Donald J Marsh; Olga V Sosnovtseva; Erik Mosekilde; Niels-Henrik Holstein-Rathlou
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4.  Volume ordering for analysis and modeling of vascular systems.

Authors:  M Marxen; J G Sled; R M Henkelman
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5.  Internephron coupling by conducted vasomotor responses in normotensive and spontaneously hypertensive rats.

Authors:  A J Wagner; N H Holstein-Rathlou; D J Marsh
Journal:  Am J Physiol       Date:  1997-03

6.  The renal vascular system of the monkey: a gross anatomical description.

Authors:  M J Horacek; A M Earle; J P Gilmore
Journal:  J Anat       Date:  1987-08       Impact factor: 2.610

7.  Morphometry of pig coronary arterial trees.

Authors:  G S Kassab; C A Rider; N J Tang; Y C Fung
Journal:  Am J Physiol       Date:  1993-07

8.  Diameter-defined Strahler system and connectivity matrix of the pulmonary arterial tree.

Authors:  Z L Jiang; G S Kassab; Y C Fung
Journal:  J Appl Physiol (1985)       Date:  1994-02

9.  Three-dimensional reconstruction of the rat nephron.

Authors:  Erik I Christensen; Birgitte Grann; Inger B Kristoffersen; Elisabeth Skriver; Jesper S Thomsen; Arne Andreasen
Journal:  Am J Physiol Renal Physiol       Date:  2014-01-29

10.  Dynamics of nephron-vascular network.

Authors:  D D Postnov; D E Postnov; D J Marsh; N-H Holstein-Rathlou; O V Sosnovtseva
Journal:  Bull Math Biol       Date:  2012-10-19       Impact factor: 1.758

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  5 in total

1.  Rho kinase inhibitors reduce voltage-dependent Ca2+ channel signaling in aortic and renal microvascular smooth muscle cells.

Authors:  Zhengrong Guan; Joshua J Baty; Shali Zhang; Colton E Remedies; Edward W Inscho
Journal:  Am J Physiol Renal Physiol       Date:  2019-08-21

Review 2.  Tubuloglomerular Feedback Synchronization in Nephrovascular Networks.

Authors:  Tayyaba Zehra; William A Cupples; Branko Braam
Journal:  J Am Soc Nephrol       Date:  2021-04-08       Impact factor: 14.978

3.  Evaluation of 2D super-resolution ultrasound imaging of the rat renal vasculature using ex vivo micro-computed tomography.

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Journal:  Sci Rep       Date:  2021-12-21       Impact factor: 4.379

4.  Synchronization in renal microcirculation unveiled with high-resolution blood flow imaging.

Authors:  Dmitry Postnov; Donald J Marsh; Will A Cupples; Niels-Henrik Holstein-Rathlou; Olga Sosnovtseva
Journal:  Elife       Date:  2022-05-06       Impact factor: 8.713

5.  Renal microvasculature in the adult pipid frog, Xenopus laevis: A scanning electron microscope study of vascular corrosion casts.

Authors:  Alois Lametschwandtner; Bernd Minnich
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  5 in total

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