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Published on: September 5, 2016
Impact of Transfused Citrate on Pathophysiology in Massive Transfusion
Jacob B Schriner1, J Michael Van Gent2, M Adam Meledeo3
1Center for Translational Injury Research, Department of Surgery, McGovern Medical School at The University of Texas Health Science Center at Houston, Houston, TX.
Insights
Citrate accumulation during massive transfusions can worsen bleeding by impairing clotting and lowering calcium levels. Managing citrate load is crucial in trauma patients to prevent a fatal cycle of coagulopathy and hypocalcemia.
Area of Science:
- Physiology
- Transfusion Medicine
- Biochemistry
Background:
- Massive transfusion in bleeding patients involves administering large volumes of blood products containing citrate.
- Citrate is an anticoagulant used in stored blood, but it can have physiological effects.
- The impact of citrate on patient outcomes, beyond hypocalcemia, requires further elucidation.
Purpose of the Study:
- To review the physiological effects of citrate during massive transfusion in bleeding patients.
- To explore the complex interactions between citrate, coagulopathy, and metabolic derangements in trauma.
Main Methods:
- A narrative review of curated literature.
- Searches included terms like "citrate intoxication," "citrate massive transfusion," and "hypocalcemia of trauma."
- English-language review articles, prospective, and retrospective studies were included.
Main Results:
- Citrate clearance is impaired in hemorrhagic shock due to acidemia and hypothermia.
- Circulating citrate inhibits thrombin generation and platelet function, exacerbating coagulopathy.
- Citrate contributes to ionized hypocalcemia, creating a detrimental cycle in bleeding patients.
Conclusions:
- The physiological impact of citrate extends beyond hypocalcemia and is poorly understood.
- Whole blood transfusion may reduce the citrate burden compared to component therapy.
- Limiting citrate infusion and addressing induced hypocalcemia are critical in managing bleeding patients.
Abstract:
This narrative review article seeks to highlight the effects of citrate on physiology during massive transfusion of the bleeding patient.
Data Sources:
A limited library of curated articles was created using search terms including "citrate intoxication," "citrate massive transfusion," "citrate pharmacokinetics," "hypocalcemia of trauma," "citrate phosphate dextrose," and "hypocalcemia in massive transfusion." Review articles, as well as prospective and retrospective studies were selected based on their relevance for inclusion in this review.
Study Selection:
Given the limited number of relevant studies, studies were reviewed and included if they were written in English. This is not a systematic review nor a meta-analysis.
Data Extraction And Synthesis:
As this is not a meta-analysis, new statistical analyses were not performed. Relevant data were summarized in the body of the text.
Conclusions:
The physiologic effects of citrate independent of hypocalcemia are poorly understood. While a healthy individual can rapidly clear the citrate in a unit of blood (either through the citric acid cycle or direct excretion in urine), the physiology of hemorrhagic shock can lead to decreased clearance and prolonged circulation of citrate. The so-called "Diamond of Death" of bleeding-coagulopathy, acidemia, hypothermia, and hypocalcemia-has a dynamic interaction with citrate that can lead to a death spiral. Hypothermia and acidemia both decrease citrate clearance while circulating citrate decreases thrombin generation and platelet function, leading to ionized hypocalcemia, coagulopathy, and need for further transfusion resulting in a new citrate load. Whole blood transfusion typically requires lower volumes of transfused product than component therapy alone, resulting in a lower citrate burden. Efforts should be made to limit the amount of citrate infused into a patient in hemorrhagic shock while simultaneously addressing the induced hypocalcemia.
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