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Bivalirudin anticoagulation for an infant with heparin resistance on ECMO: A case report
Siqi Guo1,2, Lan Chen1,2, Jing Shi1,3
1Key Laboratory of Birth Defects and Related Diseases of Women and Children (Sichuan University), Ministry of Education, Chengdu, Sichuan Province, China.
Insights
Managing anticoagulation in neonatal extracorporeal membrane oxygenation (ECMO) is challenging. This case highlights using bivalirudin and advanced monitoring, including thrombin-antithrombin complex (TAT), to ensure safe and effective anticoagulation in critically ill infants.
Area of Science:
- Neonatal intensive care
- Pediatric critical care medicine
- Extracorporeal life support
Background:
- Extracorporeal membrane oxygenation (ECMO) is a vital life support system for critically ill children, with neonates having the best prognosis (74% survival).
- Managing coagulation balance during ECMO is critical due to high risks of bleeding and thrombosis.
- Neonatal physiology presents unique hemostatic challenges compared to adults.
Purpose of the Study:
- To describe the management of anticoagulation in a neonate undergoing ECMO.
- To address challenges with heparin monitoring and explore alternative anticoagulation strategies.
- To evaluate the effectiveness of bivalirudin and advanced laboratory monitoring in neonatal ECMO.
Main Methods:
- A full-term male infant with respiratory distress received venoarterial ECMO with initial heparin anticoagulation.
- Heparin resistance was encountered, leading to a switch to bivalirudin.
- Anticoagulation was managed using activated clotting time (ACT), activated partial thromboplastin time, thrombin-antithrombin complex (TAT), and thromboelastography (TEG)-ACT.
Main Results:
- The infant's respiratory and circulatory functions stabilized on ECMO with bivalirudin.
- No bleeding complications were observed during treatment.
- ECMO was successfully weaned after achieving stable physiological parameters.
Conclusions:
- Bivalirudin can be an effective anticoagulant in neonatal ECMO, but precise dose adjustment requires careful monitoring.
- Optimal laboratory monitoring is crucial, and bedside ACT may not always be sufficient.
- Combining activated partial thromboplastin time with TAT and considering TEG-ACT can aid in complex anticoagulation management.
Rationale:
Extracorporeal membrane oxygenation (ECMO) technology in the field of intense care for children in China has developed rapidly, and it has become a key strategy for the rescue treatment of critically ill children and an advanced extracorporeal life support system. Compared with adults and children, neonatal respiratory disease with ECMO support has the best prognosis, with an average survival rate of 74%. Bleeding and thrombotic events during ECMO are common, morbid, and potentially lethal. Therefore, how to balance the coagulation state is the key to ECMO management.
Patient Concerns:
A full-term male infant (2h 5min) was hospitalized for respiratory distress and cyanosis. With a history of premature rupture of membranes (>7 hours) and a birth weight of 3000 g, the patient had Apgar scores of 7, 8, and 9 at 1, 5, and 10 minutes, respectively.
Diagnoses:
This infant has the indication of extracorporeal membrane lung support. After full communication, venoarterial-ECMO was performed, and intravenous infusion of heparin was used for anticoagulation management.
Interventions:
We encountered an unreliable heparin monitoring in an infant on ECMO, which considered as heparin resistance. Subsequently, we switched the anticoagulant from heparin to bivalirudin and managed by using multiple laboratory tests including activated clotting time (ACT) and activated partial thromboplastin time. The phenomenon of inconsistent monitoring results occurred later. To help the clinic to adjust the anticoagulation dose accurately, we adopted additional tests such as thrombin-antithrombin complex (TAT) and fibrin/fibrinogen degradation products and applied comparison of thrombela stogram (TEG)-ACT with anticoagulated specimens and bedside non-anticoagulated ACT, then recommended clinicians to use activated partial thromboplastin time combined with TAT.
Outcomes:
In collaboration with other symptomatic supportive treatments, the ECMO flow was gradually reduced, the respiratory and circulatory functions were stable after reducing the flow rate, there was no bleeding tendency, and the ECMO was finally evacuated.
Lessons:
Due to the unique physiological characteristics of newborns, the hemostatic changes differ significantly from those in adults. Precise monitoring of anticoagulation becomes a critical and challenging task. Bivalirudin can be effectively used for anticoagulation management in neonatal ECMO; however, due to its unique characteristics, precise dose adjustment poses a challenge. Selecting the optimal laboratory monitoring indicators is crucial in this regard. In some cases, bedside ACT may not be the optimal anticoagulation monitoring parameter, and when necessary, comparative analysis can be conducted using anticoagulant-sample ACTs such as thrombela stogram-ACT. Traditional markers such as D-dimer/fibrinogen degradation products and newer indicators like TAT can reflect the activation of coagulation and assist in monitoring the anticoagulation effect, especially when there is conflicting information among the monitoring parameters.
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