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The alternative renin-angiotensin system in critically ill patients: pathophysiology and therapeutic implications
Bruno Garcia1,2,3, Alexander Zarbock4, Rinaldo Bellomo5,6,7
1Department of Anesthesia and Peri-Operative Care, Division of Critical Care Medicine, University of California, San Francisco (UCSF), San Francisco, CA, USA.
Abstract:
The renin-angiotensin system (RAS) plays a crucial role in regulating blood pressure and the cardio-renal system. The classical RAS, mainly mediated by angiotensin I, angiotensin-converting enzyme, and angiotensin II, has been reported to be altered in critically ill patients, such as those in vasodilatory shock. However, recent research has highlighted the role of some components of the counterregulatory axis of the classical RAS, termed the alternative RAS, such as angiotensin-converting Enzyme 2 (ACE2) and angiotensin-(1-7), or peptidases which can modulate the RAS like dipeptidyl-peptidase 3, in many critical situations. In cases of shock, dipeptidyl-peptidase 3, an enzyme involved in the degradation of angiotensin and opioid peptides, has been associated with acute kidney injury and mortality and preclinical studies have tested its neutralization. Angiotensin-(1-7) has been shown to prevent septic shock development and improve outcomes in experimental models of sepsis. In the context of experimental acute lung injury, ACE2 activity has demonstrated a protective role, and its inactivation has been associated with worsened lung function, leading to the use of active recombinant human ACE2, in preclinical and human studies. Angiotensin-(1-7) has been tested in experimental models of acute lung injury and in a recent randomized controlled trial for patients with COVID-19 related hypoxemia. Overall, the alternative RAS appears to have a role in the pathogenesis of disease in critically ill patients, and modulation of the alternative RAS may improve outcomes. Here, we review the available evidence regarding the methods of analysis of the RAS, pathophysiological disturbances of this system, and discuss how therapeutic manipulation may improve outcomes in the critically ill.
Insights
The alternative renin-angiotensin system (RAS), including ACE2 and angiotensin-(1-7), is vital in critical illnesses. Modulating this system offers potential therapeutic benefits for critically ill patients.
Area of Science:
- Cardiovascular Research
- Renal Physiology
- Critical Care Medicine
Background:
- The classical renin-angiotensin system (RAS) is altered in critical illness, affecting blood pressure and cardio-renal function.
- The alternative RAS, involving ACE2 and angiotensin-(1-7), plays a key role in counterregulating the classical RAS.
- Components like dipeptidyl-peptidase 3 are implicated in shock, acute kidney injury, and mortality.
Purpose of the Study:
- To review the analysis methods for the RAS.
- To explore pathophysiological disturbances within the RAS in critical illness.
- To discuss therapeutic strategies targeting the alternative RAS for improved patient outcomes.
Main Methods:
- Review of existing literature on RAS analysis and function in critical care.
- Examination of preclinical and clinical studies on alternative RAS components.
- Synthesis of evidence on pathophysiological roles and therapeutic potential.
Main Results:
- The alternative RAS, particularly ACE2 and angiotensin-(1-7), shows protective roles in experimental models of sepsis and acute lung injury.
- Dipeptidyl-peptidase 3 inhibition is being explored for shock-related complications.
- Angiotensin-(1-7) has shown promise in sepsis models and COVID-19 hypoxemia.
Conclusions:
- The alternative RAS is significantly involved in the pathogenesis of critical illnesses.
- Therapeutic modulation of the alternative RAS presents a promising avenue for improving outcomes in critically ill patients.
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The kidneys are bean-shaped organs located in the retroperitoneal space, on either side of the vertebral column, between the T12 and L3 vertebrae. They are partially protected by the rib cage and surrounded by perirenal fat, which provides cushioning. They are responsible for urine formation and play critical roles in regulating blood pressure, electrolyte levels, and hormone production. The ureters...

