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Updated: Jan 20, 2026

Receptor Autoradiography Protocol for the Localized Visualization of Angiotensin II Receptors
Published on: June 7, 2016
Angiotensin receptor expression revealed by reporter mice and beneficial effects of AT2R agonist in retinal cells
Amrisha Verma1, Ping Zhu1, Annette de Kloet2
1Departments of Ophthalmology, College of Pharmacy, University of Florida, Gainesville, FL, 32610, USA.
Abstract:
The renin-angiotensin system (RAS) plays a vital role in cardiovascular physiology and body homeostasis. In addition to circulating RAS, a local RAS exists in the retina. Dysfunction of local RAS, resulting in increased levels of Angiotensin II (Ang II) and activation of AT1R-mediated signaling pathways, contributes to tissue pathophysiology and end-organ damage. Activation of AT2R on other hand is known to counteract the effects of AT1R activation and produce anti-inflammatory and anti-oxidative effects. We examined the expression of angiotensin receptors in the retina by using transgenic dual reporter mice and by real-time RT-PCR. We further evaluated the effects of C21, a selective agonist of AT2R, in reducing Ang II, lipopolysaccharide (LPS) and hydrogen peroxide induced oxidative stress and inflammatory responses in cultured human ARPE-19 cells. We showed that both AT1Ra and AT2R positive cells are detected in different cell types of the eye, including the RPE/choroid complex, ciliary body/iris, and neural retina. AT1Ra is more abundantly expressed than AT2R in mouse retina, consistent with previous reports. In the neural retina, AT1Ra are also detected in photoreceptors whereas AT2R are mostly expressed in the inner retinal neurons and RGCs. In cultured human RPE cells, activation of AT2R with C21 significantly blocked Ang II, LPS and hydrogen peroxide -induced NF-κB activation and inflammatory cytokine expression; Ang II and hydrogen peroxide-induced reactive oxygen species (ROS) production and MG132-induced apoptosis, comparable to the effects of Angiotensin-(1-7) (Ang-(1-7)), another protective component of the RAS, although C21 is more potent in reducing some of the effects induced by Ang II, whereas Ang-(1-7) is more effective in reducing some of the LPS and hydrogen peroxide-induced effects. These results suggest that activation of AT2R may represent a new therapeutic approach for retinal diseases.
Insights
The renin-angiotensin system (RAS) in the eye has distinct receptors. Activating angiotensin II type 2 receptors (AT2R) with C21 shows potential for treating retinal diseases by reducing inflammation and oxidative stress.
Area of Science:
- Ophthalmology
- Cardiovascular Physiology
- Molecular Biology
Background:
- The renin-angiotensin system (RAS) is crucial for cardiovascular health and homeostasis.
- A local RAS within the retina plays a role in ocular physiology.
- Dysregulation of retinal RAS, particularly increased Angiotensin II (Ang II), contributes to retinal damage via AT1R activation.
Purpose of the Study:
- To investigate the expression of angiotensin receptors (AT1R and AT2R) in the retina.
- To evaluate the therapeutic potential of C21, a selective AT2R agonist, in mitigating retinal oxidative stress and inflammation.
Main Methods:
- Utilized transgenic dual reporter mice and real-time RT-PCR to examine angiotensin receptor expression in ocular tissues.
- Employed cultured human ARPE-19 cells to assess the effects of C21 on Ang II, LPS, and hydrogen peroxide-induced cellular responses.
Main Results:
- Both AT1R and AT2R were detected in various retinal cell types, with AT1R being more abundant.
- AT2R activation by C21 significantly inhibited Ang II, LPS, and hydrogen peroxide-induced NF-κB activation, inflammatory cytokine release, reactive oxygen species (ROS) production, and apoptosis in RPE cells.
- C21 demonstrated potent effects comparable to Angiotensin-(1-7) (Ang-(1-7)), with specific advantages in certain induced responses.
Conclusions:
- The study confirms the presence and differential localization of AT1R and AT2R in the retina.
- Activation of AT2R using C21 emerges as a promising therapeutic strategy for managing retinal diseases characterized by inflammation and oxidative stress.
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