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Development of novel short-term heating angioplasty: thermal denaturation dynamics of collagen in artery wall

机译:新型短期加热血管成形术的发展:动脉壁中胶原蛋白的热变性动力学

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摘要

We have studied to develop the new thermal angioplasty methodology, photo-thermo dynamic balloon angioplasty (PTDBA), which provides artery dilatation with short-term (<15s) and uniform heating through the balloon by the combination of the efficient laser driven heat generation and fluid perfusion. Thermal denaturation degree of the collagen in artery media may be the important factor to attain sufficient artery dilatation for the PTDBA. In order to predict the optimum heating condition i.e. the balloon temperature and heating duration, we investigated the thermal denaturation dynamics of artery collagen in ex vivo. The extracted fresh porcine carotid artery was used. The temperature-dependent light scattering property and mechanical property of the artery specimen were simultaneously measured during artery temperature rising by specially made setup to assess the denaturation of arterial collagen. The change rate of the backscattered light intensity from the artery specimen; I(T)/I_0 with 633nm was measured to evaluate the artery scattering property change with the thermal denaturation. The artery specimen was heated from 25℃ to 80℃ with constant temperature rising rate of 3℃/min. The measured I(T)/I_0 was suddenly increased over 48℃. This boundary temperature might be the initiation temperature of the arterial collagen denaturation. We defined the variation of the I(T)/I_0 as the collagen denaturation ratio, and calculated the reactive enthalpy by the chemical equilibrium theory. Since the calculated enthalpy was similar to the enthalpy in literature report, the variety of I(T)/I_0 during the temperature rising might be attributed to the collagen conformational change due to the denaturation. In terms of the artery internal force measurement, the artery force was decreased with increasing of the artery temperature up to 65℃ (i.e. softening), and increased over 65℃ (i.e. shrinkage). We confirmed that the changes of the backscattered light (at 633nm in wavelength) from the artery might represent the artery collagen thermal denaturation degree.
机译:我们已经研究开发了新的热血管成形术方法,即光热动态球囊成形术(PTDBA),该方法通过有效的激光驱动的热产生和热能的结合,在短时间内(<15s)进行动脉扩张,并通过球囊均匀加热。液体灌注。动脉介质中胶原蛋白的热变性程度可能是获得足够的PTDBA动脉扩张的重要因素。为了预测最佳加热条件,即球囊温度和加热持续时间,我们研究了离体动脉胶原蛋白的热变性动力学。使用提取的新鲜猪颈动脉。通过特殊设置评估动脉胶原的变性,同时在动脉温度升高期间同时测量了动脉标本的随温度变化的光散射特性和机械特性。来自动脉标本的反向散射光强度的变化率;测量633nm的I(T)/ I_0,以评估随热变性的动脉散射特性变化。以3℃/ min的恒定升温速率将动脉样本从25℃加热至80℃。在48℃以上,测得的I(T)/ I_0突然升高。该边界温度可能是动脉胶原变性的起始温度。我们将I(T)/ I_0的变化定义为胶原变性率,并通过化学平衡理论计算反应焓。由于计算的焓与文献报道的焓相似,因此温度升高时I(T)/ I_0的变化可能归因于变性引起的胶原构象变化。就动脉内力的测量而言,随着动脉温度升高至65℃(即软化),动脉力降低,而在65℃以上(即收缩)时升高。我们证实,来自动脉的反向散射光(波长为633nm)的变化可能代表了动脉胶原蛋白的热变性程度。

著录项

  • 来源
    《Optical interactions with tissue and cells XX》|2009年|71750R.1-71750R.8|共8页
  • 会议地点 San Jose CA(US)
  • 作者单位

    School of Fundamental Science and Technology, Graduate School of Science and Technology, KEIO University, 3-14-1 Hiyoshi, Yokohama, Kohoku, Kanagawa, 223-0061, Japan;

    School of Fundamental Science and Technology, Graduate School of Science and Technology, KEIO University, 3-14-1 Hiyoshi, Yokohama, Kohoku, Kanagawa, 223-0061, Japan;

    School of Fundamental Science and Technology, Graduate School of Science and Technology, KEIO University, 3-14-1 Hiyoshi, Yokohama, Kohoku, Kanagawa, 223-0061, Japan;

    School of Fundamental Science and Technology, Graduate School of Science and Technology, KEIO University, 3-14-1 Hiyoshi, Yokohama, Kohoku, Kanagawa, 223-0061, Japan;

    School of Fundamental Science and Technology, Graduate School of Science and Technology, KEIO University, 3-14-1 Hiyoshi, Yokohama, Koho;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    collagen; thermal denature; artery wall; balloon angioplasty;

    机译:胶原;热变性动脉壁球囊血管成形术;

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