DIRECT VISUALIZATION AND MEASUREMENT OF MICROSURGICALLY INDUCED THROMBOEMBOLISM

被引:12
作者
ANDRESEN, DM
OSHAUGHNESSY, M
ACLAND, RD
ANDERSON, GL
SCHUSCHKE, D
BANIS, J
BARKER, JH
机构
[1] Institute of Experimental Clinical Research, Aarhus University Hospital, Skejby, Aarhus
[2] Department of Plastic Surgery, Cork Regional Hospital, Cork
[3] Division of Plastic and Reconstructive Surgery, Department of Surgery, University of Louisville, Louisville, Kentucky
[4] Division of Plastic and Reconstructive Surgery, Department of Physiology, University of Louisville, Louisville, Kentucky
[5] Center for Applied Microcirculatory Studies, University of Louisville, Louisville, Kentucky
关键词
D O I
10.1002/micr.1920150609
中图分类号
R61 [外科手术学];
学科分类号
摘要
A common cause of free flap and replant failure is thrombotic occlusion of the anastomosed pedicle vessel(s). Clinical observations and subsequent experimental studies showed that platelet emboli generated at the arterial anastomosis caused significant alterations in the downstream microcirculation. To study both the thrombogenic arterial (anastomosis) site and the downstream microcirculation, we developed an animal model (the isolated rat cremaster) in which we could directly view and quantitatively analyze thrombus formation and the appearance of emboli in the downstream microcirculation. Using this model we studied the effect that reducing blood flow across the arterial anastomotic site had on thrombus formation at the anastomotic site and the appearance of emboli in the downstream microcirculation. In 40 male Sprague-Dawley rats we found that reducing blood flow velocity to approximately half of normal during reperfusion nearly eliminated emboli appearing in the downstream microcirculation compared with controls, 43.9 +/- 31.5 vs. 259.5 +/- 117.8 emboli, respectively. We also found that the same low flow had no effect on thrombus size at the pedicle artery injury site yet significantly decreased the rate at which thrombus formation occurred (time to maximum thrombus size; low flow = 25.3 +/- 8 minutes, normal flow = 6.6 +/- 3 minutes). From these studies we conclude that reducing pedicle artery blood flow in our rat model during reperfusion can protect the downstream microcirculation from platelet emboli-induced injury; however, the same reduction in flow does not affect thrombus formation in the pedicle artery. Further studies using direct observation/measurement techniques are needed for a better understanding of the mechanisms regulating free flap and replant failure.
引用
收藏
页码:413 / 420
页数:8
相关论文
共 51 条
[1]  
Reigstad A, Hetland KR, Bye K, Rokkum M, Free flaps in the reconstruction of hand and distal forearm injuries, J Hand Surg [Br], 17 B, pp. 185-188, (1992)
[2]  
Irons GB, Wood MB, Schmitt EH, Experience with one hundred consecutive free flaps, Ann Plast Surg, 18, pp. 17-23, (1987)
[3]  
Foucher G, Norris RW, Distal and very distal digital replantations, Br J Plast Surg, 45, pp. 199-203, (1992)
[4]  
Hamilton RB, O'Brien, Morrison A, MacLeon AM, Survival factors in replantation and revascularization of the amputated thumb—10 years experience, Scand J Plast Reconstr Surg, 18, pp. 163-173, (1984)
[5]  
Barker JH, Anderson GL, Gu J-M, Wyllie F, Acland RD, Experimental study of the relationship between alterations in tissue perfusion and anastomotic patency, Microsurgery, 14, pp. 409-415, (1993)
[6]  
Acland RD, Anderson GL, Siemionow M, McCabe S, Direct in vivo observations of embolic events in the microcirculation distal to a small‐vessel anastomosis, Plast Reconstr Surg, 84, pp. 280-289, (1989)
[7]  
Barker JH, Acland RD, Anderson GL, Patel J, Microcirculatory disturbances following the passage of emboli in an experimental free‐flap model, Plast Reconstr Surg, 90, pp. 95-102, (1992)
[8]  
Anderson GL, Acland RD, Siemionow M, McCabe SJ, Vascular isolation of the rat cremaster muscle, Microvasc Res, 36, pp. 56-63, (1988)
[9]  
Sato M, Oshima N, Hemodynamics at stenosis formed by growing platelet thrombi in mesenteric microvasculature of rat, Microvasc Res, 31, pp. 66-76, (1986)
[10]  
Arfors KE, Cockburn JS, Gross JF, Measurement of growth rate of laser‐induced intravascular platelet aggregation and the influence of blood flow velocity, Microvasc Res, 11, pp. 79-87, (1976)