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8 Acute Pulmonary Embolism
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Even when patients are compliant with their anticoagulant regimen, treatment failure may still ensue from other factors that decrease drug levels. Rivaroxaban, for example, requires administration with the largest meal of the day to ensure adequate absorption. The site of absorption is also crucial to evaluate for patients requiring enteral administration of medication due to the inability to ingest orally. The distal tip of various feeding tubes may terminate in different sites (e.g., stomach, small intestine), which may drastically impact the absorption of DOACs. For example, rivaroxaban is mainly absorbed in the stomach and thus will have reduced absorp­tion when it is released distal to the stomach. In contrast, apixaban is absorbed in the small intestine and the stomach, and potentially in the colon as well [67, 68].
Pharmacists may also consider drug interactions that may lead to DOAC failure by reviewing the patient’s full medication history. Drug interactions mediated by CYP-450 or P-glycoprotein transport may decrease the concentration of DOACs.
antiseizure medications such as phenobarbital, phenytoin, and carbamazepine [36]. Uniquely, the use of DOACs with valproic acid or levetiracetam was also associated with high rates of thromboembolic events, despite no apparent drug interaction [31, 34].
If pharmacotherapy-related causes of treatment failure have been ruled out, patients may have other disease states that may contribute to treatment failure. For example, patients with antiphospholipid antibody syndrome should preferentially be treated with warfarin over DOACs, as DOACs were associated with an increased risk of recurrent thrombosis in this population [59]. If patients develop heparin­induced thrombocytopenia, the continued use of heparinoids may trigger new thromboses. Additionally, patients who underwent bariatric surgery may have ques­tionable absorption of DOACS, which may lead to treatment failure. The 2021 ISTH guideline recommended against the use of DOACs in the immediate phase of post-bariatric surgery [67, 68]. However, strong data for this claim is not available. In a study involving 102 post-bariatric surgery patients, the recurrence rates of VTE were 0% and 1.7% while receiving apixaban and rivaroxaban, respectively [62]. If the above concerns were addressed and the patient does not have any modiable or identied cause of treatment failure while on an anticoagulant, it may be reasonable to switch to an alternate agent.

8.7 Conclusion

While anticoagulation remains the cornerstone of PE management, assessment of patient-specic factors, risk for morbidity and mortality from PE, and risk for bleed­ing complications informs the decision to utilize systemic thrombolytic therapy, need for advanced interventional reperfusion procedures, as well as long-term anti­coagulant choice and duration of therapy. The pharmacist clinician is a highly quali­ed member of the healthcare team to lead nuanced discussions on the risks and benets of anticoagulant and thrombolytic therapies not only at the individual
212
S. K. Kim and L. A. Igneri
patient level, but also through the development of institutional PE treatment path­ways and implementation of safety measures. Additionally, pharmacist clinicians have demonstrated to be a valuable member of the PERT by facilitating thrombo­lytic and anticoagulation administration and improving the safety and overall care of patients with PE.

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Chapter 9
Extracorporeal Membrane Oxygenation
StephanieDavis, AlanaCiolek, andAtulDilawri
9.1 ECMO Overview andHistory
Extracorporeal membrane oxygenation (ECMO) is a technique that provides tem­porary pulmonary and/or cardiac support by offering circulation and perfusion out­side of the body [88]. Short-term ECMO was rst used in the 1950s during the rst open-heart procedure; subsequently, it was used throughout the 1960s in pediatric respiratory failure and during the repair of congenital heart conditions [88]. In the 1970s, long-term ECMO was successfully utilized for a patient with severe respira­tory distress syndrome (ARDS) [88]. It then gained momentum in subsequent years, particularly with the publication of the CESAR trial, demonstrating positive out­comes 6months after randomization, and then with its successful use during the H1N1 inuenza epidemic [88, 145].
There are two types of ECMO circuits that consist of several components: can­nulas, centrifugal blood pump, tubing, oxygenator, and heat exchanger (see Fig.9.1a, b) [48]. In short, venovenous ECMO (VV-ECMO) supports the pulmo- nary system, and venoarterial ECMO (VA-ECMO) provides respiratory and cardiac support [88]. In VV-ECMO, the circuit is connected in series to the heart and lungs, and in VA-ECMO, the circuit is connected in parallel [88]. Deoxygenated blood is removed from the venous system through the inow cannula and then passed
S. Davis (*) Cardiovascular Surgical ICU and Clinical Nutrition, The Johns Hopkins Hospital, Baltimore, MD, USA e-mail: sdavis87@jh.edu
A. Ciolek New York-Presbyterian Hospital/Weill Cornell Medical Center, New York, NY, USA
A. Dilawri Cardiothoracic Intensive Care, NewYork-Presbyterian Hospital, Columbia University Irving Medical Center, New York, NY, USA
Switzerland AG 2025 Y. Alzaidi, M. A. Gebily (eds.), The Pharmacist’s Expanded Role in Critical Care Medicine, https://doi.org/10.1007/978-3-031-77335-8_9
219© The Author(s), under exclusive license to Springer Nature
Drainage
ry
Oxygenator
ry
a
Cannula
b
Vena cava
Femoral Vein
Pump
Vena cava
Femoral Vein
Aorta
Femoral artery
Oxygenator
Aorta
Femoral artery
Return Cannula to femoral arte
Drainage
Cannula
Pump
Return Cannula to femoral arte
Fig. 9.1 VV- and VA-ECMO congurations. (a) Simplied visualization of peripheral VV-ECMO cannulation. The right femoral vein is cannulated to the inow cannula, which drains to a blood pump and then to an oxygenator (blood becomes oxygenated as depicted by the red color), and then the outow cannula drains blood back into the left femoral artery via the outow cannula. (b) Simplied visualization of peripheral VA-ECMO cannulation. In this gure, the right femoral vein is cannulated to the inow cannula, which proceeds to a blood pump and oxygenator. Oxygenated blood is returned to the left femoral artery via the outow cannula [115]. VV-ECMO veno-venous extracorporeal mem- brane oxygenation, VA-ECMO, venoarterial extracorporeal membrane oxygenation