Literature DB >> 23720285

Renal ammonia metabolism and transport.

I David Weiner1, Jill W Verlander.   

Abstract

Renal ammonia metabolism and transport mediates a central role in acid-base homeostasis. In contrast to most renal solutes, the majority of renal ammonia excretion derives from intrarenal production, not from glomerular filtration. Renal ammoniagenesis predominantly results from glutamine metabolism, which produces 2 NH4(+) and 2 HCO3(-) for each glutamine metabolized. The proximal tubule is the primary site for ammoniagenesis, but there is evidence for ammoniagenesis by most renal epithelial cells. Ammonia produced in the kidney is either excreted into the urine or returned to the systemic circulation through the renal veins. Ammonia excreted in the urine promotes acid excretion; ammonia returned to the systemic circulation is metabolized in the liver in a HCO3(-)-consuming process, resulting in no net benefit to acid-base homeostasis. Highly regulated ammonia transport by renal epithelial cells determines the proportion of ammonia excreted in the urine versus returned to the systemic circulation. The traditional paradigm of ammonia transport involving passive NH3 diffusion, protonation in the lumen and NH4(+) trapping due to an inability to cross plasma membranes is being replaced by the recognition of limited plasma membrane NH3 permeability in combination with the presence of specific NH3-transporting and NH4(+)-transporting proteins in specific renal epithelial cells. Ammonia production and transport are regulated by a variety of factors, including extracellular pH and K(+), and by several hormones, such as mineralocorticoids, glucocorticoids and angiotensin II. This coordinated process of regulated ammonia production and transport is critical for the effective maintenance of acid-base homeostasis.

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Year:  2013        PMID: 23720285      PMCID: PMC4319187          DOI: 10.1002/cphy.c120010

Source DB:  PubMed          Journal:  Compr Physiol        ISSN: 2040-4603            Impact factor:   9.090


  189 in total

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  64 in total

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Authors:  Mary E Handlogten; Gunars Osis; Hyun-Wook Lee; Michael F Romero; Jill W Verlander; I David Weiner
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3.  Mechanisms of Metabolic Acidosis-Induced Kidney Injury in Chronic Kidney Disease.

Authors:  Donald E Wesson; Jerry M Buysse; David A Bushinsky
Journal:  J Am Soc Nephrol       Date:  2020-01-27       Impact factor: 10.121

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Authors:  I David Weiner; Jill W Verlander
Journal:  Physiol Rev       Date:  2017-04       Impact factor: 37.312

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Authors:  Ira Kurtz
Journal:  Compr Physiol       Date:  2014-10       Impact factor: 9.090

6.  A Handheld, Colorimetric Optoelectronic Dynamics Analyzer for Measuring Total Ammonia of Biological Samples.

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7.  Effects of emersion on acid-base regulation, osmoregulation, and nitrogen physiology in the semi-terrestrial mangrove crab, Helice formosensis.

Authors:  Garett Joseph Patrick Allen; Min-Chen Wang; Yung-Che Tseng; Dirk Weihrauch
Journal:  J Comp Physiol B       Date:  2021-02-22       Impact factor: 2.200

Review 8.  Metabolism.

Authors:  Ayesha Judge; Michael S Dodd
Journal:  Essays Biochem       Date:  2020-10-08       Impact factor: 8.000

Review 9.  The Role of RRT in Hyperammonemic Patients.

Authors:  Shruti Gupta; Andrew Z Fenves; Robert Hootkins
Journal:  Clin J Am Soc Nephrol       Date:  2016-05-19       Impact factor: 8.237

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Authors:  Nicole A Northrop; Laura E Halpin; Bryan K Yamamoto
Journal:  Neuropharmacology       Date:  2016-03-10       Impact factor: 5.250

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