German Heart Center Munich at the Technische Universität München, Department of Cardiovascular Surgery, Lazarettstrasse 36, D-80636 Munich, Germany.
Biomed Eng Online. 2011 Jul 21;10:62. doi: 10.1186/1475-925X-10-62.
The use of human saphenous vein grafts (HSVGs) as a bypass conduit is a standard procedure in the treatment of coronary artery disease while their early occlusion remains a major problem.
We have developed an ex vivo perfusion system, which uses standardized and strictly controlled hemodynamic parameters for the pulsatile and non-static perfusion of HSVGs to guarantee a reliable analysis of molecular parameters under different pressure conditions. Cell viability of HSVGs (n = 12) was determined by the metabolic conversion of 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyl-tetrazolium bromide (MTT) into a purple formazan dye.
Under physiological flow rates (10 mmHg) HSVGs remained viable for two weeks. Their exposure to arterial conditions (100 mmHg) was possible for one week without important reduction in viability. Baseline expression of matrix metalloproteinase-2 (MMP-2) after venous perfusion (2.2 ± 0.5, n = 5) was strongly up-regulated after exposure to arterial conditions for three days (19.8 ± 4.3) or five days (23.9 ± 6.1, p < 0.05). Zymographic analyses confirmed this increase on the protein level. Our results suggest that expression and activity of MMP-2 are strongly increased after exposure of HSVGs to arterial hemodynamic conditions compared to physiological conditions.
Therefore, our system might be helpful to more precisely understand the molecular mechanisms leading to an early failure of HSVGs.
在治疗冠状动脉疾病时,使用人体大隐静脉移植物(HSVGs)作为旁路移植物是一种标准程序,但其早期闭塞仍然是一个主要问题。
我们开发了一种离体灌注系统,该系统使用标准化和严格控制的血流动力学参数对 HSVGs 进行脉动和非静态灌注,以保证在不同压力条件下对分子参数进行可靠分析。通过 3-(4,5-二甲基噻唑-2-基)-2,5-二苯基四氮唑溴盐(MTT)的代谢转化将 HSVGs(n = 12)的细胞活力测定为紫色甲臜染料。
在生理流速(10 mmHg)下,HSVGs 保持存活两周。它们暴露于动脉条件(100 mmHg)下一周而不显著降低存活率。静脉灌注后的基质金属蛋白酶-2(MMP-2)基线表达(2.2 ± 0.5,n = 5)在暴露于动脉条件三天后(19.8 ± 4.3)或五天后(23.9 ± 6.1,p < 0.05)强烈上调。蛋白水平的酶谱分析证实了这一增加。我们的结果表明,与生理条件相比,HSVGs 暴露于动脉血流动力学条件后 MMP-2 的表达和活性大大增加。
因此,我们的系统可能有助于更准确地了解导致 HSVGs 早期失效的分子机制。