The ability of venous pCO2 to predict arterial pCO2 within the normal range was tested by measuring pCO2 in blood sampled simultaneously from a large forearm vein (PER), from the superior vena cava (SVC), and from an artery in 35 anaesthetized patients. The relationship between arterial and both venous pCO2's were studied in a first series of 15 patients (ASA physical status class I-II) anaesthetized with methohexitone, fentanyl, pancuronium and nitrous oxide/oxygen, and in a second series of 20 patients scheduled for cardiac surgery anaesthetized with flunitrazepam, fentanyl, pancuronium and nitrous oxide. A marked correlation was found between arterial and both venous pCO2's samples in the normal patients (a/PER: r = 0.922; a/SVC: r = 0.940); in the patients with abnormal cardiovascular status the correlation observed was less pronounced (a/PER: r = 0.501; a/SVC: r = 0.507). In view of the similar correlation coefficients observed from the PER or SVC blood sampling sites, we conclude that the degree of accuracy of the prediction of paCO2 from the venous pCO2's is not modified by the origin of the venous blood. The differences between the coefficients of correlation found in the normal patients and in those with abnormal cardiovascular function indicate that venous pCO2 as estimate of paCO2 appears useful only in subjects with normal haemodynamic status.
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Cureus
November 2024
Infectious Diseases, Ziauddin University, Karachi, PAK.
Background Venous blood gas (VBG) investigation is a widespread option for arterial blood gas analysis because it is easier to draw and has a lower risk of complications during phlebotomy. This study aimed to establish reference intervals for the accurate analysis of VBG results as there is a lack of published data. Method Dr.
View Article and Find Full Text PDFJ Med Biochem
September 2024
University of Verona, Section of Clinical Biochemistry and School of Medicine, Verona, Italy.
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View Article and Find Full Text PDFAcad Emerg Med
December 2024
Department of Emergency Medicine, George Washington University School of Medicine and Health Sciences, Washington, DC, USA.
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View Article and Find Full Text PDFScand J Clin Lab Invest
January 2025
Department of Clinical Biochemistry, Gødstrup Hospital, Herning, Denmark.
Venous blood is considered an acceptable alternative to arterial blood for assessment of metabolic acid-base disorders. Also, venous sampling using lithium-heparin (Li-Hep) tubes is advantageous to arterial sampling using PICO syringes, the risk of complications being lower. Usage of partly filled tubes without firm knowledge about the clinical consequences is, however, a pre-analytic consideration.
View Article and Find Full Text PDFTransplant Proc
December 2024
Division of Cardiac Surgery, Department of Surgery, Faculty of Medicine, University of Alberta; Mazankowski Alberta Heart Institute, Edmonton, Alberta, Canada; Alberta Transplant Institute, Edmonton, Alberta, Canada; Canadian Donation and Transplantation Research Program, Edmonton, Alberta, Canada. Electronic address:
Background: Ex-Situ Lung Perfusion (ESLP) employs a membrane deoxygenator and mixed (N/O/CO) or pure sweep gas (CO) to target venous blood gas composition with physiologic pCO and pH. Clinically, mild permissive alkalosis counteracts elevated pulmonary vascular resistance (PVR) to improve perfusion. Increased PVR and pulmonary artery pressure (PAP) during ESLP mirrors rising pro-inflammatory cytokines.
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