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Photothermal damage is correlated to the delivery rate of time-integrated temperature

机译:光热损伤与时间积分温度的传递速率相关

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Photothermal damage rate processes in biological tissues are usually characterized by a kinetics approach. This stems from experimental data that show how the transformation of a specified biological property of cells or biomolecule (plating efficiency for viability, change in birefringence, tensile strength, etc.) is dependent upon both time and temperature. However, kinetic methods require determination of kinetic rate constants and knowledge of substrate or product concentrations during the reaction. To better understand photothermal damage processes we have identified temperature histories of cultured retinal cells receiving minimum lethal thermal doses for a variety of laser and culture parameters. These "threshold" temperature histories are of interest because they inherently contain information regarding the fundamental thermal dose requirements for damage in individual cells. We introduce the notion of time-integrated temperature (Tint) as an accumulated thermal dose (ATD) with units of ℃ s. Damaging photothermal exposure raises the rate of ATD accumulation from that of the ambient (e.g. 37 ℃) to one that correlates with cell death (e.g. 52 ℃). The degree of rapid increase in ATD (AATD) during photothermal exposure depends strongly on the laser exposure duration and the ambient temperature.
机译:生物组织中的光热损伤率过程通常以动力学方法为特征。这源于实验数据,这些数据表明细胞或生物分子特定生物学特性的转化(存活率的镀覆效率,双折射的变化,抗张强度等)如何取决于时间和温度。但是,动力学方法需要确定动力学速率常数并了解反应过程中底物或产物的浓度。为了更好地了解光热损伤过程,我们确定了接受各种激光和培养参数的最低致死热剂量的培养视网膜细胞的温度历史。这些“阈值”温度历史记录是令人感兴趣的,因为它们固有地包含有关单个细胞损坏的基本热剂量要求的信息。我们引入时间积分温度(Tint)的概念,以单位为s的累积热剂量(ATD)表示。有害的光热暴露使ATD的积累速率从周围环境(例如37℃)提高到与细胞死亡(例如52℃)相关的速率。光热曝光期间ATD(AATD)的快速增加程度在很大程度上取决于激光曝光时间和环境温度。

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