1,172
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Risk factors influence the arterial line patency in ICU-bound patients during COVID-19 pandemic: An observational cohort study

ORCID Icon, , , , , ORCID Icon, , ORCID Icon & ORCID Icon show all
Pages 401-411 | Received 20 Mar 2023, Accepted 27 Apr 2023, Published online: 04 May 2023

References

  • Lodigiani C, Iapichino G, Carenzo L, et al. Venous and arterial thromboembolic complications in COVID-19 patients admitted to an academic hospital in Milan, Italy. Thromb Res. 2020;191:9–14.
  • Klok FA, Kruip M, van der Meer NJM, et al. Incidence of thrombotic complications in critically ill ICU patients with COVID-19. Thromb Res. 2020;191:145–147. DOI:10.1016/j.thromres.2020.04.013
  • Llitjos JF, Leclerc M, Chochois C, et al. High incidence of venous thromboembolic events in anticoagulated severe COVID-19 patients. J Thromb Haemost. 2020;18(7):1743–1746. DOI:10.1111/jth.14869
  • Al-Samkari H, Karp Leaf RS, Dzik WH, et al. COVID-19 and coagulation: bleeding and thrombotic manifestations of SARS-CoV-2 infection. Blood. 2020;136(4):489–500. DOI:10.1182/blood.2020006520
  • Santoliquido A, Porfidia A, Nesci A, et al. Incidence of deep vein thrombosis among non-ICU patients hospitalized for COVID-19 despite pharmacological thromboprophylaxis. J Thromb Haemost. 2020;18(9):2358–2363. DOI:10.1111/jth.14992
  • Albutt K, Luckhurst CM, Alba GA, et al. Design and impact of a COVID-19 multidisciplinary bundled procedure team. Ann Surg. 2020;272(2):e72–3. DOI:10.1097/SLA.0000000000004089
  • Zon RL, Merz LE, Fields KG, et al. Thrombosis-related loss of arterial lines in the first wave of COVID-19 and non–COVID-19 intensive care unit patients. Anesth Analg. 2022;136(1):70–78. DOI:10.1213/ANE.0000000000006214
  • Davis FM, Stewart JM. Radial artery cannulation. A prospective study in patients undergoing cardiothoracic surgery. Br J Anaesth. 1980;52(1):41–47.
  • Scheer B, Perel A, Pfeiffer UJ. Clinical review: complications and risk factors of peripheral arterial catheters used for haemodynamic monitoring in anaesthesia and intensive care medicine. crit care. 2002;6(3):199–204.
  • AACN. Evaluation of the effects of heparinized and nonheparinized flush solutions on the patency of arterial pressure monitoring lines: the AACN thunder project. By the American association of critical-care nurses. Am J Crit Care. 1993;2(1):3–15. DOI:10.4037/ajcc1993.2.1.3.
  • Del Cotillo M, Grane N, Llavore M, et al. Heparinized solution vs. saline solution in the maintenance of arterial catheters: a double blind randomized clinical trial. Intensive care Med. 2008;34(2):339–343.
  • Martin C, Saux P, Papazian L, et al. Long-term arterial cannulation in ICU patients using the radial artery or dorsalis pedis artery. Chest. 2001;119(3):901–906.
  • Gunther SC, Schwebel C, Hamidfar-Roy R, et al. Complications of intravascular catheters in ICU: definitions, incidence and severity. A randomized controlled trial comparing usual transparent dressings versus new-generation dressings (the ADVANCED study). Intensive care Med. 2016;42(11):1753–1765. DOI:10.1007/s00134-016-4582-2
  • Cannesson M, Pestel G, Ricks C, et al. Hemodynamic monitoring and management in patients undergoing high risk surgery: a survey among North American and European anesthesiologists. crit care. 2020;15(4):R197.
  • Zevola DR, Dioso J, Moggio R. Comparison of heparinized and nonheparinized solutions for maintaining patency of arterial and pulmonary artery catheters. Am J Crit Care. 1997;6(1):52–55.
  • Slogoff S, Keats AS, Arlund C. On the safety of radial artery cannulation. Anesthesiology. 1983;59(1):42–47.
  • Maurer LR, Luckhurst CM, Hamidi A, et al. A low dose heparinized saline protocol is associated with improved duration of arterial line patency in critically ill COVID-19 patients. J Crit Care. 2020;60:253–259.
  • Tang N, Bai H, Chen X, et al. Anticoagulant treatment is associated with decreased mortality in severe coronavirus disease 2019 patients with coagulopathy. J Thromb Haemost. 2020;18(5):1094–1099.
  • Vinholt PJ, Hvas AM, Frederiksen H, et al. Platelet count is associated with cardiovascular disease, cancer and mortality: a population-based cohort study. Thromb Res. 2016;148:136–142.
  • Nopp S, Moik F, Jilma B, et al. Risk of venous thromboembolism in patients with COVID-19: a systematic review and meta-analysis. Res Pract Thromb Haemost. 2020;4(7):1178–1191.
  • Bardin-Spencer AJ, Spencer TR. Arterial insertion method: a new method for systematic evaluation of ultrasound-guided radial arterial catheterization. J Vasc Access. 2021;22(5):733–738.
  • Aminian A, Saito S, Takahashi A, et al. Impact of sheath size and hemostasis time on radial artery patency after transradial coronary angiography and intervention in Japanese and non-Japanese patients: a substudy from RAP and BEAT (radial artery patency and bleeding, efficacy, adverse event) randomized multicenter trial. Catheter Cardiovasc Interv. 2017;92:844–851.
  • Imbriaco G, Monesi A, Spencer TR. Preventing radial arterial catheter failure in critical care — Factoring updated clinical strategies and techniques. Anaesth Crit Care Pain Med. 2022;41(4):101096.
  • Ayzac L, Girard R, Baboi L, et al. Ventilator-associated pneumonia in ARDS patients: the impact of prone positioning. A secondary analysis of the PROSEVA trial. Intensive care Med. 2016;42(5):871–878. DOI:10.1007/s00134-015-4167-5
  • Guerin C, Albert RK, Beitler J, et al. Prone position in ARDS patients: why, when, how and for whom. Intensive care Med. 2020;46(12):2385–2396. DOI:10.1007/s00134-020-06306-w
  • Roy S, Kabach M, Patel DB, et al. Radial artery access complications: prevention, diagnosis and management. Cardiovasc Revasc Med. 2022;40:163–171.
  • Schachinger V, Kasper W, Wollschlager H, et al. Incidence, predisposing factors, acute complications and prognostic significance of intracoronary thrombus formation during PTCA. Z Kardiol. 1993;82(11):712–720.
  • Fleury Y, Arroyo D, Couchepin C, et al. Impact of intravascular thrombosis on failure of radial arterial catheters in critically ill patients: a nested case-control study. Intensive care Med. 2018;44(5):553–563. DOI:10.1007/s00134-018-5149-1