Literature DB >> 22518004

Liver angiotensinogen is the primary source of renal angiotensin II.

Taiji Matsusaka1, Fumio Niimura, Akihiro Shimizu, Ira Pastan, Akihiko Saito, Hiroyuki Kobori, Akira Nishiyama, Iekuni Ichikawa.   

Abstract

Angiotensin II content in the kidney is much higher than in the plasma, and it increases more in kidney diseases through an uncertain mechanism. Because the kidney abundantly expresses angiotensinogen mRNA, transcriptional dysregulation of angiotensinogen within the kidney is one potential cause of increased renal angiotensin II in the setting of disease. Here, we observed that kidney-specific angiotensinogen knockout mice had levels of renal angiotensinogen protein and angiotensin II that were similar to those levels of control mice. In contrast, liver-specific knockout of angiotensinogen nearly abolished plasma and renal angiotensinogen protein and renal tissue angiotensin II. Immunohistochemical analysis in mosaic proximal tubules of megalin knockout mice revealed that angiotensinogen protein was incorporated selectively in megalin-intact cells of the proximal tubule, indicating that the proximal tubule reabsorbs filtered angiotensinogen through megalin. Disruption of the filtration barrier in a transgenic mouse model of podocyte-selective injury increased renal angiotensin II content and markedly increased both tubular and urinary angiotensinogen protein without an increase in renal renin activity, supporting the dependency of renal angiotensin II generation on filtered angiotensinogen. Taken together, these data suggest that liver-derived angiotensinogen is the primary source of renal angiotensinogen protein and angiotensin II. Furthermore, an abnormal increase in the permeability of the glomerular capillary wall to angiotensinogen, which characterizes proteinuric kidney diseases, enhances the synthesis of renal angiotensin II.

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Year:  2012        PMID: 22518004      PMCID: PMC3380650          DOI: 10.1681/ASN.2011121159

Source DB:  PubMed          Journal:  J Am Soc Nephrol        ISSN: 1046-6673            Impact factor:   10.121


  45 in total

1.  NF-kappaB-dependent increase in intrarenal angiotensin II induced by proteinuria.

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Journal:  Kidney Int       Date:  2005-08       Impact factor: 10.612

2.  Angiotensin receptor blocker protection against podocyte-induced sclerosis is podocyte angiotensin II type 1 receptor-independent.

Authors:  Taiji Matsusaka; Takako Asano; Fumio Niimura; Masaru Kinomura; Akihiro Shimizu; Ayumi Shintani; Ira Pastan; Agnes B Fogo; Iekuni Ichikawa
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3.  Enhanced intrarenal angiotensinogen contributes to early renal injury in spontaneously hypertensive rats.

Authors:  Hiroyuki Kobori; Yuri Ozawa; Yuki Suzaki; Akira Nishiyama
Journal:  J Am Soc Nephrol       Date:  2005-05-11       Impact factor: 10.121

4.  Glomerular sclerosis is prevented during urinary tract obstruction due to podocyte protection.

Authors:  Taiji Matsusaka; Kazuto Kobayashi; Valentina Kon; Ira Pastan; Agnes B Fogo; Iekuni Ichikawa
Journal:  Am J Physiol Renal Physiol       Date:  2010-12-22

5.  AT1A angiotensin receptors in the renal proximal tubule regulate blood pressure.

Authors:  Susan B Gurley; Anne D M Riquier-Brison; Jurgen Schnermann; Matthew A Sparks; Andrew M Allen; Volker H Haase; John N Snouwaert; Thu H Le; Alicia A McDonough; Beverley H Koller; Thomas M Coffman
Journal:  Cell Metab       Date:  2011-04-06       Impact factor: 27.287

6.  Intrarenal renin angiotensin system revisited: role of megalin-dependent endocytosis along the proximal nephron.

Authors:  Marcus Pohl; Henriette Kaminski; Hayo Castrop; Michael Bader; Nina Himmerkus; Markus Bleich; Sebastian Bachmann; Franziska Theilig
Journal:  J Biol Chem       Date:  2010-10-21       Impact factor: 5.157

7.  Differential expression of nuclear AT1 receptors and angiotensin II within the kidney of the male congenic mRen2. Lewis rat.

Authors:  Karl D Pendergrass; David B Averill; Carlos M Ferrario; Debra I Diz; Mark C Chappell
Journal:  Am J Physiol Renal Physiol       Date:  2006-01-10

8.  A novel mechanism for angiotensin II formation in streptozotocin-diabetic rat glomeruli.

Authors:  Rekha Singh; Ashok K Singh; David J Leehey
Journal:  Am J Physiol Renal Physiol       Date:  2005-02-08

9.  Genetic engineering of glomerular sclerosis in the mouse via control of onset and severity of podocyte-specific injury.

Authors:  Taiji Matsusaka; Jing Xin; Suguri Niwa; Kazuto Kobayashi; Akira Akatsuka; Hiroomi Hashizume; Qing-Cheng Wang; Ira Pastan; Agnes B Fogo; Iekuni Ichikawa
Journal:  J Am Soc Nephrol       Date:  2005-03-09       Impact factor: 10.121

10.  Megalin contributes to the early injury of proximal tubule cells during nonselective proteinuria.

Authors:  Yaeko Motoyoshi; Taiji Matsusaka; Akihiko Saito; Ira Pastan; Thomas E Willnow; Shuki Mizutani; Iekuni Ichikawa
Journal:  Kidney Int       Date:  2008-09-03       Impact factor: 10.612

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  116 in total

Review 1.  Proximal nephron.

Authors:  Jia L Zhuo; Xiao C Li
Journal:  Compr Physiol       Date:  2013-07       Impact factor: 9.090

2.  Novel mechanism of blood pressure regulation by forkhead box class O1-mediated transcriptional control of hepatic angiotensinogen.

Authors:  Yajuan Qi; Kebin Zhang; Yuxin Wu; Zihui Xu; Qian Chen Yong; Rajesh Kumar; Kenneth M Baker; Qinglei Zhu; Shouwen Chen; Shaodong Guo
Journal:  Hypertension       Date:  2014-07-28       Impact factor: 10.190

3.  Increased urinary angiotensinogen is an effective marker of chronic renal impairment in very low birth weight children.

Authors:  Naoto Nishizaki; Daishi Hirano; Yuji Nishizaki; Shuichiro Fujinaga; Satoru Nagata; Yoshiyuki Ohtomo; Kazunari Kaneko; Toshiaki Shimizu
Journal:  Clin Exp Nephrol       Date:  2013-11-01       Impact factor: 2.801

4.  Angiotensinogen and Megalin Interactions Contribute to Atherosclerosis-Brief Report.

Authors:  Feiming Ye; Ya Wang; Congqing Wu; Deborah A Howatt; Chia-Hua Wu; Anju Balakrishnan; Adam E Mullick; Mark J Graham; A H Jan Danser; Jian'an Wang; Alan Daugherty; Hong S Lu
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5.  Divergent localization of angiotensinogen mRNA and protein in proximal tubule segments of normal rat kidney.

Authors:  Masumi Kamiyama; Kristina M Farragut; Michelle K Garner; L Gabriel Navar; Hiroyuki Kobori
Journal:  J Hypertens       Date:  2012-12       Impact factor: 4.844

6.  Podocyte injury enhances filtration of liver-derived angiotensinogen and renal angiotensin II generation.

Authors:  Taiji Matsusaka; Fumio Niimura; Ira Pastan; Ayumi Shintani; Akira Nishiyama; Iekuni Ichikawa
Journal:  Kidney Int       Date:  2013-11-27       Impact factor: 10.612

7.  Obesity-mediated autophagy insufficiency exacerbates proteinuria-induced tubulointerstitial lesions.

Authors:  Kosuke Yamahara; Shinji Kume; Daisuke Koya; Yuki Tanaka; Yoshikata Morita; Masami Chin-Kanasaki; Hisazumi Araki; Keiji Isshiki; Shin-ichi Araki; Masakazu Haneda; Taiji Matsusaka; Atsunori Kashiwagi; Hiroshi Maegawa; Takashi Uzu
Journal:  J Am Soc Nephrol       Date:  2013-10-03       Impact factor: 10.121

Review 8.  Thick Ascending Limb Sodium Transport in the Pathogenesis of Hypertension.

Authors:  Agustin Gonzalez-Vicente; Fara Saez; Casandra M Monzon; Jessica Asirwatham; Jeffrey L Garvin
Journal:  Physiol Rev       Date:  2019-01-01       Impact factor: 37.312

Review 9.  Renal generation of angiotensin II and the pathogenesis of hypertension.

Authors:  Jorge F Giani; Tea Janjulia; Brian Taylor; Ellen A Bernstein; Kandarp Shah; Xiao Z Shen; Alicia A McDonough; Kenneth E Bernstein; Romer A Gonzalez-Villalobos
Journal:  Curr Hypertens Rep       Date:  2014-09       Impact factor: 5.369

10.  The absence of intrarenal ACE protects against hypertension.

Authors:  Romer A Gonzalez-Villalobos; Tea Janjoulia; Nicholas K Fletcher; Jorge F Giani; Mien T X Nguyen; Anne D Riquier-Brison; Dale M Seth; Sebastien Fuchs; Dominique Eladari; Nicolas Picard; Sebastian Bachmann; Eric Delpire; Janos Peti-Peterdi; L Gabriel Navar; Kenneth E Bernstein; Alicia A McDonough
Journal:  J Clin Invest       Date:  2013-04-24       Impact factor: 14.808

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