Cuffed endotracheal tube as a cardiopulmonary bypass venous return cannula
Bibliographic record
Abstract
Central MessageA cuffed endotracheal tube was used as a cardiopulmonary bypass IVC return cannula in a patient with an in situ IVC-RA stent and no femoral vein access.A 49-year-old White man presented with congestive heart failure from an iatrogenic aorto-right atrial (RA) fistula secondary to an inferior vena cava (IVC) stent placed 1 year previously. The patient suffered from antiphospholipid antibody syndrome for 12 years. During this time, he developed Budd-Chiari syndrome secondary to IVC thrombosis and was considered for liver transplantation. IVC stenting into the RA resolved his liver concerns. Unfortunately, although his liver issues were resolved, he subsequently developed heart failure and both an aorto-right atrial fistula and an atrial septal defect were discovered, possibly related to the IVC stent (Figure 1). An interventional approach for repair was not feasible.Figure 1A and B, Inferior vena cava stent and relation in the right atrium. C, Aorto-right atrial fistula, connection in the noncoronary sinus. D, Large secundum atrial septal defect.View Large Image Figure ViewerDownload Hi-res image Download (PPT)The patient was scheduled for surgical repair. Due to the rigid IVC-RA stent, conventional IVC cannulation and snaring was not possible. Preoperative peripheral venous Doppler demonstrated subtotally occlusive, bilateral common femoral, femoral, and popliteal vein thromboses, precluding femoral cannulation for venous return. Instead, a cuffed endotracheal tube (ETT) was used. When inflated, it provided a seal against the IVC stent. Intraoperatively, a size 7.0 armored, cuffed ETT (Smiths Medical International) was assembled (Figure 2). Internal and external ETT diameters were 7.0 mm and 9.6 mm, respectively. A conventional IVC cannulation technique was used, and the uninflated ETT was advanced until it was felt the cuffed portion was at the level of the intrahepatic IVC stent. The ETT cuff was inflated and the cardiopulmonary bypass (CPB) circuit was connected (Figure 3; Video 1). The atrial septal defect was subsequently closed using a pericardial patch and aorta-RA fistula closed using pledgeted stitches. The total crossclamp time and pump time were 29 minutes and 54 minutes, respectively. After CPB discontinuation, the cuffed ETT was removed from the IVC without injury or stenosis in the IVC stent (Video 2). The patient was discharged home on the eighth postoperative day. The patient has provided expressed consent to publish this case report.Figure 2Size 7.0 armored, cuffed endotracheal tube connected to cardiopulmonary bypass cannula tubing (asterisk). The cuff is deflated (arrow).View Large Image Figure ViewerDownload Hi-res image Download (PPT)Figure 3Intraoperative cardiopulmonary circuit. Superior vena cava cannula (asterisk) is joined with the inflated, armored, cuffed endotracheal tube inferior vena cava return cannula (arrow) for venous return.View Large Image Figure ViewerDownload Hi-res image Download (PPT)DiscussionIt is well known that dry operative fields expedite cardiac procedures. Although cardiac surgeons have benefited from CPB for several decades, advancements in venous cannula designs have been limited. To our knowledge, no cannulas exist that would allow adequate drainage from a stented vena cava.We present a case report of a 49-year-old male patient with an iatrogenic aorto-right atrial fistula following an IVC stent insertion to treat hepatic IVC thrombosis. Conventional IVC cannulation through the right atrium could not be effectively achieved, as an incomplete seal from the size mismatch between the inner surface of the stent and outer surface of the cannula would preclude safe bypass. Femoral vein cannulation was not possible given the extensive, bilateral occlusion of the common femoral veins. The surgical team considered simultaneously introducing a drop sucker and a pump sucker, both at full suction, but this was also considered inefficient. Performing the operation under deep hypothermic circulatory arrest was also not ideal, given the cerebral, cardiovascular, renal, and coagulative complications associated with hypothermic arrest.1Conolly S. Arrowsmith J.E. Klein A.A. Deep hypothermic circulatory arrest.BJA Educ. 2010; 10: 138-142Google ScholarThe use of cuffed ETTs during CPB operations has previously been described as left ventricular vents and for temporarily sealing ruptured right atrial walls during cannulation.2Zumbro G.L. Treasure R.L. A simple and effective left ventricular vent tube.Ann Thorac Surg. 1976; 21: 458Abstract Full Text PDF PubMed Scopus (3) Google Scholar,3Morritt G.N. Holden M.P. The cuffed endotracheal tube in emergency cardiopulmonary bypass operations.Ann Thorac Surg. 1981; 31: 287-288Abstract Full Text PDF PubMed Scopus (2) Google Scholar We used the ETT cuff's ability to expand and create a near-perfect seal against the stent, allowing for successful IVC cannulation. The clear operative field simplified a complex operation, thereby minimizing crossclamp time. This technique could also be considered for superior vena cava stents.This cannulation technique is not without its risks and considerations. The surgical team must decide on an ETT that is narrower than the stent's intraluminal diameter. This could be facilitated by preoperative imaging, but the surgeon must be ready for intraoperative discrepancies. Moreover, the cuff is at risk of rupture from an exposed or sharp stent wire edge. Finally, surgeons must be cognizant of the depth of insertion of the tube, as prolonged obstruction of hepatic veins by a deeply placed cuff may be deleterious.4Aydinli M. Bayraktar Y. Budd-Chiari syndrome: etiology, pathogenesis and diagnosis.World J Gastroenterol. 2007; 13: 2693-2696Crossref PubMed Scopus (106) Google ScholarConclusionsA thorough surgical plan for a bloodless operative field is instrumental for minimizing operative time and maximizing chances of success. This report describes the successful use of a cuffed ETT as an IVC return cannula in a patient with a large IVC stent in situ and no femoral vein access. A cuffed endotracheal tube was used as a cardiopulmonary bypass IVC return cannula in a patient with an in situ IVC-RA stent and no femoral vein access. A cuffed endotracheal tube was used as a cardiopulmonary bypass IVC return cannula in a patient with an in situ IVC-RA stent and no femoral vein access. A 49-year-old White man presented with congestive heart failure from an iatrogenic aorto-right atrial (RA) fistula secondary to an inferior vena cava (IVC) stent placed 1 year previously. The patient suffered from antiphospholipid antibody syndrome for 12 years. During this time, he developed Budd-Chiari syndrome secondary to IVC thrombosis and was considered for liver transplantation. IVC stenting into the RA resolved his liver concerns. Unfortunately, although his liver issues were resolved, he subsequently developed heart failure and both an aorto-right atrial fistula and an atrial septal defect were discovered, possibly related to the IVC stent (Figure 1). An interventional approach for repair was not feasible. The patient was scheduled for surgical repair. Due to the rigid IVC-RA stent, conventional IVC cannulation and snaring was not possible. Preoperative peripheral venous Doppler demonstrated subtotally occlusive, bilateral common femoral, femoral, and popliteal vein thromboses, precluding femoral cannulation for venous return. Instead, a cuffed endotracheal tube (ETT) was used. When inflated, it provided a seal against the IVC stent. Intraoperatively, a size 7.0 armored, cuffed ETT (Smiths Medical International) was assembled (Figure 2). Internal and external ETT diameters were 7.0 mm and 9.6 mm, respectively. A conventional IVC cannulation technique was used, and the uninflated ETT was advanced until it was felt the cuffed portion was at the level of the intrahepatic IVC stent. The ETT cuff was inflated and the cardiopulmonary bypass (CPB) circuit was connected (Figure 3; Video 1). The atrial septal defect was subsequently closed using a pericardial patch and aorta-RA fistula closed using pledgeted stitches. The total crossclamp time and pump time were 29 minutes and 54 minutes, respectively. After CPB discontinuation, the cuffed ETT was removed from the IVC without injury or stenosis in the IVC stent (Video 2). The patient was discharged home on the eighth postoperative day. The patient has provided expressed consent to publish this case report. DiscussionIt is well known that dry operative fields expedite cardiac procedures. Although cardiac surgeons have benefited from CPB for several decades, advancements in venous cannula designs have been limited. To our knowledge, no cannulas exist that would allow adequate drainage from a stented vena cava.We present a case report of a 49-year-old male patient with an iatrogenic aorto-right atrial fistula following an IVC stent insertion to treat hepatic IVC thrombosis. Conventional IVC cannulation through the right atrium could not be effectively achieved, as an incomplete seal from the size mismatch between the inner surface of the stent and outer surface of the cannula would preclude safe bypass. Femoral vein cannulation was not possible given the extensive, bilateral occlusion of the common femoral veins. The surgical team considered simultaneously introducing a drop sucker and a pump sucker, both at full suction, but this was also considered inefficient. Performing the operation under deep hypothermic circulatory arrest was also not ideal, given the cerebral, cardiovascular, renal, and coagulative complications associated with hypothermic arrest.1Conolly S. Arrowsmith J.E. Klein A.A. Deep hypothermic circulatory arrest.BJA Educ. 2010; 10: 138-142Google ScholarThe use of cuffed ETTs during CPB operations has previously been described as left ventricular vents and for temporarily sealing ruptured right atrial walls during cannulation.2Zumbro G.L. Treasure R.L. A simple and effective left ventricular vent tube.Ann Thorac Surg. 1976; 21: 458Abstract Full Text PDF PubMed Scopus (3) Google Scholar,3Morritt G.N. Holden M.P. The cuffed endotracheal tube in emergency cardiopulmonary bypass operations.Ann Thorac Surg. 1981; 31: 287-288Abstract Full Text PDF PubMed Scopus (2) Google Scholar We used the ETT cuff's ability to expand and create a near-perfect seal against the stent, allowing for successful IVC cannulation. The clear operative field simplified a complex operation, thereby minimizing crossclamp time. This technique could also be considered for superior vena cava stents.This cannulation technique is not without its risks and considerations. The surgical team must decide on an ETT that is narrower than the stent's intraluminal diameter. This could be facilitated by preoperative imaging, but the surgeon must be ready for intraoperative discrepancies. Moreover, the cuff is at risk of rupture from an exposed or sharp stent wire edge. Finally, surgeons must be cognizant of the depth of insertion of the tube, as prolonged obstruction of hepatic veins by a deeply placed cuff may be deleterious.4Aydinli M. Bayraktar Y. Budd-Chiari syndrome: etiology, pathogenesis and diagnosis.World J Gastroenterol. 2007; 13: 2693-2696Crossref PubMed Scopus (106) Google Scholar It is well known that dry operative fields expedite cardiac procedures. Although cardiac surgeons have benefited from CPB for several decades, advancements in venous cannula designs have been limited. To our knowledge, no cannulas exist that would allow adequate drainage from a stented vena cava. We present a case report of a 49-year-old male patient with an iatrogenic aorto-right atrial fistula following an IVC stent insertion to treat hepatic IVC thrombosis. Conventional IVC cannulation through the right atrium could not be effectively achieved, as an incomplete seal from the size mismatch between the inner surface of the stent and outer surface of the cannula would preclude safe bypass. Femoral vein cannulation was not possible given the extensive, bilateral occlusion of the common femoral veins. The surgical team considered simultaneously introducing a drop sucker and a pump sucker, both at full suction, but this was also considered inefficient. Performing the operation under deep hypothermic circulatory arrest was also not ideal, given the cerebral, cardiovascular, renal, and coagulative complications associated with hypothermic arrest.1Conolly S. Arrowsmith J.E. Klein A.A. Deep hypothermic circulatory arrest.BJA Educ. 2010; 10: 138-142Google Scholar The use of cuffed ETTs during CPB operations has previously been described as left ventricular vents and for temporarily sealing ruptured right atrial walls during cannulation.2Zumbro G.L. Treasure R.L. A simple and effective left ventricular vent tube.Ann Thorac Surg. 1976; 21: 458Abstract Full Text PDF PubMed Scopus (3) Google Scholar,3Morritt G.N. Holden M.P. The cuffed endotracheal tube in emergency cardiopulmonary bypass operations.Ann Thorac Surg. 1981; 31: 287-288Abstract Full Text PDF PubMed Scopus (2) Google Scholar We used the ETT cuff's ability to expand and create a near-perfect seal against the stent, allowing for successful IVC cannulation. The clear operative field simplified a complex operation, thereby minimizing crossclamp time. This technique could also be considered for superior vena cava stents. This cannulation technique is not without its risks and considerations. The surgical team must decide on an ETT that is narrower than the stent's intraluminal diameter. This could be facilitated by preoperative imaging, but the surgeon must be ready for intraoperative discrepancies. Moreover, the cuff is at risk of rupture from an exposed or sharp stent wire edge. Finally, surgeons must be cognizant of the depth of insertion of the tube, as prolonged obstruction of hepatic veins by a deeply placed cuff may be deleterious.4Aydinli M. Bayraktar Y. Budd-Chiari syndrome: etiology, pathogenesis and diagnosis.World J Gastroenterol. 2007; 13: 2693-2696Crossref PubMed Scopus (106) Google Scholar ConclusionsA thorough surgical plan for a bloodless operative field is instrumental for minimizing operative time and maximizing chances of success. This report describes the successful use of a cuffed ETT as an IVC return cannula in a patient with a large IVC stent in situ and no femoral vein access. A thorough surgical plan for a bloodless operative field is instrumental for minimizing operative time and maximizing chances of success. This report describes the successful use of a cuffed ETT as an IVC return cannula in a patient with a large IVC stent in situ and no femoral vein access.
Fetched live from OpenAlex and de-inverted. Abstracts are not stored in this database: the inverted indexes are 8.6 GB of the frame’s 9.3 GB of text, and the host has 13 GB free.
How this classification was reachedexpand
Full frame distilled prediction
Teacher imitationNot calibrated prevalence, not ground truth. Human validation pending. Learned from the 10,348 direct Codex labels and 10,348 direct Gemma labels. Candidate is the union of thresholded teacher heads; consensus is their intersection. These outputs are machine_predicted_unvalidated and are not human labels or direct frontier model labels.
Codex and Gemma teacher scores by category
| Category | Codex | Gemma |
|---|---|---|
| Metaresearch | 0.000 | 0.000 |
| Meta-epidemiology (narrow) | 0.000 | 0.000 |
| Meta-epidemiology (broad) | 0.000 | 0.000 |
| Bibliometrics | 0.000 | 0.000 |
| Science and technology studies | 0.000 | 0.000 |
| Scholarly communication | 0.000 | 0.000 |
| Open science | 0.000 | 0.000 |
| Research integrity | 0.000 | 0.001 |
| Insufficient payload (model declined to judge) | 0.001 | 0.000 |
Machine scores (provisional)
The two teacher heads of the student model, read on this work. A score orders the frame for review; it never asserts a category, and the validation status ships verbatim with every row.
Baseline scores from an immature model (maturity gate not passed, 7 training rounds). Scores rank; they never assert a category.
score_only:v0-immature-baseline · verbatim from the scoring run: score_only means the number may rank works, and no category label ships from itClassification
machine, unvalidatedMachine predicted; a candidate call from one teacher head, not a consensus.
How this classification was reached, model by model and score by score, is at the end of the page under "How this classification was reached".