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Updated: Oct 23, 2025

Receptor Autoradiography Protocol for the Localized Visualization of Angiotensin II Receptors
Published on: June 7, 2016
Intratubular, Intracellular, and Mitochondrial Angiotensin II/AT1 (AT1a) Receptor/NHE3 Signaling Plays a Critical
Xiao Chun Li1, Chih-Hong Wang1, Ana Paula Oliveira Leite1
1Tulane Hypertension and Renal Center of Excellence, Department of Physiology, Tulane University School of Medicine,New Orleans, LA, United States.
Insights
New research reveals the crucial role of the angiotensin II system within kidney tubules, including mitochondria, in developing and worsening hypertension. Understanding these mechanisms offers new therapeutic targets for poorly controlled high blood pressure.
Area of Science:
- Nephrology
- Cardiovascular Research
- Molecular Biology
Background:
- Hypertension is a major risk factor for cardiovascular and kidney diseases, affecting millions globally.
- Current antihypertensive treatments are ineffective in about 50% of patients, highlighting the need for new therapeutic targets.
- Mechanisms of poorly controlled hypertension and associated organ damage require further elucidation.
Purpose of the Study:
- To investigate novel renal mechanisms and pathways contributing to poorly controlled hypertension.
- To explore the role of the intratubular, intracellular, and mitochondrial angiotensin II system in hypertension.
- To identify potential therapeutic targets for Angiotensin II-dependent hypertensive kidney diseases.
Main Methods:
- Utilized novel animal models and innovative experimental approaches.
- Investigated the uptake of angiotensin II by proximal tubules via the AT1a receptor.
- Examined the effects of intracellular and mitochondrial angiotensin II administration and genetic deletion of AT1 receptors or Na+/H+ exchanger 3 in proximal tubules.
Main Results:
- Circulating and intratubular angiotensin II are taken up by proximal tubules through an AT1a receptor-dependent mechanism.
- Intracellular and mitochondrial angiotensin II signaling in proximal tubule cells directly impacts blood pressure.
- Genetic deletion of proximal tubule AT1a receptors or Na+/H+ exchanger 3 reduces blood pressure and hypertension.
Conclusions:
- The intratubular, intracellular, and mitochondrial angiotensin II/AT1a receptor signaling plays a significant role in Angiotensin II-dependent hypertension.
- These findings offer a new perspective on renal mechanisms underlying poorly controlled hypertension.
- Targeting these specific intrarenal pathways may lead to improved treatments for hypertensive kidney diseases.
Abstract:
Hypertension is well recognized to be the most important risk factor for cardiovascular diseases, stroke, and end-stage kidney failure. A quarter of the world's adult populations and 46% of the US adults develop hypertension and currently require antihypertensive treatments. Only 50% of hypertensive patients are responsive to current antihypertensive drugs, whereas remaining patients may continue to develop cardiovascular, stroke, and kidney diseases. The mechanisms underlying the poorly controlled hypertension remain incompletely understood. Recently, we have focused our efforts to uncover additional renal mechanisms, pathways, and therapeutic targets of poorly controlled hypertension and target organ injury using novel animal models or innovative experimental approaches. Specifically, we studied and elucidated the important roles of intratubular, intracellular, and mitochondrial angiotensin II (Ang II) system in the development of Ang II-dependent hypertension. The objectives of this invited article are to review and discuss our recent findings that (a) circulating and intratubular Ang II is taken up by the proximal tubules via the (AT1) AT1a receptor-dependent mechanism, (b) intracellular administration of Ang II in proximal tubule cells or adenovirus-mediated overexpression of an intracellular Ang II fusion protein selectively in the mitochonria of the proximal tubules induces blood pressure responses, and (c) genetic deletion of AT1 (AT1a) receptors or the Na+/H+ exchanger 3 selectively in the proximal tubules decreases basal blood pressure and attenuates Ang II-induced hypertension. These studies provide a new perspective into the important roles of the intratubular, intracellular, and mitochondrial angiotensin II/AT1 (AT1a) receptor signaling in Ang II-dependent hypertensive kidney diseases.
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