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首页> 外文期刊>Seminars in Thrombosis and Hemostasis >A Review of Design Considerations for Hemocompatibility within Microfluidic Systems
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A Review of Design Considerations for Hemocompatibility within Microfluidic Systems

机译:微流体系统内血液化设计考虑述评

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摘要

The manipulation of blood within in vitro environments presents a persistent challenge, due to the highly reactive nature of blood, and its multifaceted response to material contact, changes in environmental conditions, and stimulation during handling. Microfluidic Lab-on-Chip systems offer the promise of robust point-of-care diagnostic tools and sophisticated research platforms. The capacity for precise control of environmental and experimental conditions afforded by microfluidic technologies presents unique opportunities that are particularly relevant to research and clinical applications requiring the controlled manipulation of blood. A critical bottleneck impeding the translation of existing Lab-on-Chip technology from laboratory bench to the clinic is the ability to reliably handle relatively small blood samples without negatively impacting blood composition or function. This review explores design considerations critical to the development of microfluidic systems intended for use with whole blood from an engineering perspective. Material hemocompatibility is briefly explored, encompassing common microfluidic device materials, as well as surface modification strategies intended to improve hemocompatibility. Operational hemocompatibility, including shear-induced effects, temperature dependence, and gas interactions are explored, microfluidic sample preparation methodologies are introduced, as well as current techniques for on-chip manipulation of the whole blood. Finally, methods of assessing hemocompatibility are briefly introduced, with an emphasis on primary hemostasis and platelet function.
机译:由于血液的高度反应性,其对材料接触的高度反应性,环境条件的变化以及处理过程中的血液变化,因此,在体外环境中的操纵呈现持续挑战。微流体实验室内部系统提供强大的护理点诊断工具和复杂的研究平台的承诺。微流体技术提供了精确控制环境和实验条件的能力呈现出与需要受控操纵血液的研究和临床应用特别相关的机会。将现有的实验室技术从实验室工作台转移到诊所的临界瓶颈是能够可靠地处理相对小的血液样品,而不会产生血液组成或功能。该综述探讨了对旨在从工程角度开发用于全血的微流体系统至关重要的设计考虑因素。简要探索材料血液相位性,包括常见的微流体装置材料,以及旨在改善血液相位性的表面改性策略。探讨了操作血液化,包括剪切诱导的效果,温度依赖性和气体相互作用,引入了微流体样品制备方法,以及目前用于整个血液的片上操纵的技术。最后,简要介绍了评估血液相位力的方法,重点是初级止血和血小板功能。

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