首页> 外文会议>Conference on BioMEMS and Nanotechnology; 20071205-07; Canberra(AU) >Characterization of flows in micro contractions using micro PIV and CFD to study the protein aggregation process
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Characterization of flows in micro contractions using micro PIV and CFD to study the protein aggregation process

机译:使用微PIV和CFD表征微收缩中的流量,以研究蛋白质聚集过程

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Protein aggregation is arguably the most common and troubling manifestation of protein instability, encountered in almost all stages of protein drug development. The production process in the pharmaceutical industry can induce flows with shear and extensional components and high strain rates which can affect the stability of proteins. We use a microfluidic platform to produce accurately controlled strain regions in order to systematically study the main parameters of the flow involved in the protein aggregation. This work presents a characterization of the pressure driven flow encountered in arrays of micro channels. The micro channels were fabricated in polydimethyl siloxane (PDMS) using standard soft-lithography techniques with a photolithographically patterned KMPR mold. We present a relationship of the main geometrical variables of the micro channels and its impact on the extensional strain rate along the center line, for different cross sectional shapes and over a range of strain rates typically encountered in protein processing. Computational Fluid Dynamics (CFD) simulations have been carried out to gain more detailed local flow information, and the results have been validated with experiments. We show good agreement between the CFD and experiments and demonstrate the use of microfluidics in the production of a large range of controllable shear and extensional rates that can mimic large scale processing conditions.
机译:蛋白质聚集可以说是蛋白质不稳定性最常见和令人不安的表现,几乎在蛋白质药物开发的所有阶段都遇到。制药行业的生产过程可能会诱发带有剪切和拉伸成分以及高应变速率的流动,从而影响蛋白质的稳定性。我们使用微流体平台来产生精确控制的应变区域,以便系统地研究参与蛋白质聚集的主要参数。这项工作提出了在微通道阵列中遇到的压力驱动流的表征。使用带有光刻图案化的KMPR模具的标准软光刻技术,在聚二甲基硅氧烷(PDMS)中制造微通道。我们提出了微通道的主要几何变量及其对沿中心线的拉伸应变率的影响的关系,适用于不同的横截面形状和在蛋白质加工中通常遇到的一系列应变率。已经进行了计算流体动力学(CFD)模拟,以获取更详细的局部流动信息,并且该结果已通过实验验证。我们在CFD和实验之间显示出良好的一致性,并证明了微流控技术在可模拟大规模加工条件的大范围可控制剪切和拉伸速率生产中的使用。

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