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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Measurement of reaction kinetics of [Lu-177]Lu-DOTA-TATE using a microfluidic system
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Measurement of reaction kinetics of [Lu-177]Lu-DOTA-TATE using a microfluidic system

机译:使用微流体系统测量[Lu-177] Lu-dota-tate的反应动力学

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摘要

Microfluidic synthesis techniques can offer improvement over batch syntheses which are currently used for radiopharmaceutical production. These improvements are, for example, better mixing of reactants, more efficient energy transfer, less radiolysis, faster reaction optimization, and overall improved reaction control. However, scale-up challenges hinder the routine clinical use, so the main advantage is currently the ability to optimize reactions rapidly and with low reactant consumption. Translating those results to clinical systems could be done based on calculations, if kinetic constants and diffusion coefficients were known. This study describes a microfluidic system with which it was possible to determine the kinetic association rate constants for the formation of [Lu-177] Lu-DOTA-TATE under conditions currently used for clinical production. The kinetic rate constants showed a temperature dependence that followed the Arrhenius equation, allowing the determination of Arrhenius parameters for a Lu-DOTA conjugate (A = 1.24 +/- 0.05 x 10(19) M-1 s(-1), E-A = 109.5 +/- 0.1 x 10(3) J mol-1) for the first time. The required reaction time for the formation of [Lu-177] Lu-DOTA-TATE (99% yield) at 80 degrees C was 44 s in a microfluidic channel (100 mu m). Simulations done with COMSOL Multiphysics r indicated that processing clinical amounts (3 mL reaction solution) in less than 12 min is possible in a micro-or milli-fluidic system, if the diameter of the reaction channel is increased to over 500 mu m. These results show that a continuous, microfluidic system can become a viable alternative to the conventional, batch-wise radiolabelling technique.
机译:微流体合成技术可以提供对目前用于放射性药物生产的批量合成的改进。这些改进是,例如,更好地混合反应物,更有效的能量转移,较少的放射性,更快的反应优化以及整体改善的反应对照。然而,扩大挑战阻碍了常规的临床用途,因此主要优势是目前能够快速优化反应和低反应性消耗的能力。如果众所周知的动力学常数和扩散系数,可以将这些结果转换为临床系统。该研究描述了一种微流体系统,其中可以在目前用于临床生产的条件下形成[Lu-177] Lu-dota-tate的形成动力学率常数。动力速率常数显示出遵循Arrhenius方程的温度依赖性,允许确定Lu-dota缀合物的Arrhenius参数(a = 1.24 +/- 0.05×10(19)m-1 s(-1),EA = 109.5 +/- 0.1 x 10(3)J Mol-1)首次。在80℃下形成[Lu-177] Lu-dota-tate(99%收率)的所需反应时间在微流体通道(100μm)中是44秒。使用COMSOL多血晶r的模拟表明,如果反应通道的直径增加到超过500μm,则可以在微型或毫流系统中处理临床量(3ml反应溶液)在小于12分钟的情况下。这些结果表明,连续的微流体系统可以成为常规,批量的放射性标记技术的可行替代方案。

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    Delft Univ Technol Dept Radiat Sci &

    Technol Mekelweg 15 NL-2629 JB Delft Netherlands;

    Delft Univ Technol Dept Radiat Sci &

    Technol Mekelweg 15 NL-2629 JB Delft Netherlands;

    Delft Univ Technol Dept Radiat Sci &

    Technol Mekelweg 15 NL-2629 JB Delft Netherlands;

    Erasmus MC Dept Radiol &

    Nucl Med Wytemaweg 80 NL-3015 CN Rotterdam Netherlands;

    Erasmus MC Dept Radiol &

    Nucl Med Wytemaweg 80 NL-3015 CN Rotterdam Netherlands;

    Delft Univ Technol Dept Radiat Sci &

    Technol Mekelweg 15 NL-2629 JB Delft Netherlands;

    Delft Univ Technol Dept Radiat Sci &

    Technol Mekelweg 15 NL-2629 JB Delft Netherlands;

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  • 正文语种 eng
  • 中图分类 化学 ; 无机化学 ;
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