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1From the Department of Anaesthesia, Harvard Medical School, Boston, Massachusetts, and Department of Anesthesiology, Perioperative and Pain Medicine, Brigham and Women's Hospital, Boston, Massachusetts.
Insights
Aortic cross-clamping (AoX) and unclamping cause significant hemodynamic changes, affecting multiple organ systems. Understanding these pathophysiologic mechanisms is crucial for managing complications during surgery.
Area of Science:
- Cardiovascular Physiology
- Surgical Hemodynamics
Background:
- Aortic cross-clamping (AoX) is a critical surgical maneuver with profound physiological consequences.
- Understanding the hemodynamic disturbances induced by AoX and subsequent unclamping is essential for patient management.
Observation:
- AoX increases aortic impedance, systemic vascular resistance, and afterload, leading to blood volume redistribution.
- Changes in preload depend on clamp location; distal clamping may cause splanchnic redistribution without preload increase.
- Mediator release during AoX acts as a double-edged sword, potentially mitigating or aggravating hemodynamic effects.
Findings:
- Increased afterload and preload necessitate enhanced myocardial contractility and coronary blood flow.
- Failure to increase coronary blood flow and contractility can lead to decompensation.
- Ischemia and reperfusion distal to the clamp are primary causes of organ injury (lungs, kidneys, spinal cord, viscera).
Implications:
- A comprehensive understanding of AoX pathophysiology aids in developing targeted strategies to prevent and treat homeostatic disturbances.
- This knowledge supports the implementation of rational and effective measures to mitigate surgical complications.
- Improved management of hemodynamic instability during AoX can reduce perioperative morbidity and mortality.
Abstract:
The Pathophysiology of Aortic Cross-clamping and Unclamping. By Gelman S. ANESTHESIOLOGY 1995; 82:1026-60. Reprinted with permission.Aortic cross-clamping (AoX) and unclamping are associated with severe hemodynamic disturbances in virtually all organs and systems. The main hemodynamic changes induced by AoX result from an increase in impedance to aortic flow, an increase in systemic vascular resistance and afterload, blood volume redistribution caused by collapse and constriction of venous vasculature distal to the aortic clamp, and a subsequent increase in preload. Preload may not increase if the aorta is clamped distal to the celiac artery; in that case, blood volume from distal venous vasculature may be redistributed to the splanchnic vasculature without associated increases in preload. Increases in afterload and preload demand an increase in contractility, which results in an autoregulatory increase in coronary blood flow. Without increases in coronary blood flow and myocardial contractility, decompensation may occur. Aortic cross-clamping is associated with the formation and release of many mediators which constitute a double-edged sword: they may mitigate or aggravate the harmful hemodynamic effects of AoX and unclamping. Injuries to the lungs, kidneys, spinal cord, or abdominal viscera are caused mainly by ischemia and reperfusion of organs distal to aortic cross-clamping. A clear understanding of the pathophysiologic mechanisms involved in these processes should help to promote rational, well-focused, and effective measures to prevent and treat homeostatic disturbances occurring during AoX and unclamping.
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