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Polymeric coatings on micro- and nanometric particles for bioapplications

机译:用于生物应用的微米和纳米颗粒上的聚合物涂层

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Particles and notably magnetic particles are used more and more extensively in bioanalytical processes today owing to their ability to considerably facilitate the development of protocols (e.g., easy rinsing and exchange of buffers) and allow miniaturization. Such protocols largely combine the advantages of heterogeneous and homogeneous assays. Applications of these particles, e.g., in protein or nucleic acids purification, immunoassays, or enzymatic microreactors, are developing rapidly, as reflected by the number of commercial kits that are regularly launched. The particles are also increasingly used in microfluidics, in which their potential for miniaturization is at its best. For optimal applications, however, and notably for the analysis and biomolecules and biological samples that are often complex, mastering the interactions between various molecules—particularly biopolymers such as nucleic acids and proteins and the particle surface—and the grafting of active compounds onto the particles is critical and is indeed the major bottleneck to success. These surface interaction properties are responsible for the direct performance of the particles, such as load capacity and kinetics. Most often, however, the bottlenecks to development and key features for performance lie in mastering the surface properties of the grafted active compounds. These properties are responsible for the intrinsic performance, such as load capacity or reaction kinetics, and are also crucial for the control of spurious effects such as nonspecific adsorption or loss of colloidal stability. By providing an intermediate layer between the particle and its environment, that can be tailored both physically and chemically, polymer coatings offer a very powerful tool for controlling the surface properties of micro- and nanoparticles and for their biofunctionalization. Intense research is being performed in this area, stimulated by the strong potential applications mentioned above, and by the recent development of numerous new chemical routes that simplify the synthesis/grafting of polymers, such as controlled radical polymerization methods or click chemistry. We provide here a general review of the field. We first give a general overview of the main features and properties of micro- and nanoparticles that are important for bioapplications, such as specific surface area, surface charge, zeta potential, and colloidal stability. We then summarize the different particle morphologies and the configurations that polymers can adopt on their surfaces, from a structural and physical point of view. We also describe the different strategies that can be used to cover particles with polymers, including physisorption, covalent grafting, or direct polymerization onto the particle. This is followed by a section dedicated to the different characterization methods that can be used to master the development of coating protocols, and to control the final properties. We end with a description of a few typical applications, in which the consequences and importance of the different parameters described in the review are exemplified and discussed.
机译:颗粒,特别是磁性颗粒,由于其能够显着促进方案开发(例如,易于漂洗和交换缓冲液)并允许小型化的能力,因此在当今的生物分析过程中被越来越广泛地使用。这样的方案很大程度上结合了异构和均相测定的优点。这些颗粒的应用,例如在蛋白质或核酸纯化,免疫测定或酶促微​​反应器中的应用正在迅速发展,这可以从定期推出的商业试剂盒的数量中看出。颗粒还越来越多地用于微流体中,其中它们的微型化潜力处于最佳状态。但是,为了获得最佳应用,尤其是对于分析以及通常是复杂的生物分子和生物样品,要掌握各种分子之间的相互作用,尤其是诸如核酸和蛋白质之类的生物聚合物与颗粒表面之间的相互作用,以及将活性化合物嫁接到颗粒上至关重要,确实是成功的主要瓶颈。这些表面相互作用性质负责颗粒的直接性能,例如负载能力和动力学。但是,最常见的发展瓶颈和性能关键特征在于掌握接枝活性化合物的表面性能。这些性质负责固有性能,例如负载能力或反应动力学,并且对于控制杂散效应(例如非特异性吸附或胶体稳定性的损失)也至关重要。通过在颗粒及其周围环境之间提供一个可以在物理和化学上进行调整的中间层,聚合物涂层为控制微粒和纳米颗粒的表面特性及其生物功能化提供了非常强大的工具。由于上述强大的潜在应用程序,以及最近开发的许多简化聚合物合成/接枝的新化学路线(例如受控自由基聚合方法或点击化学)的推动,正在对该领域进行大量研究。我们在这里提供对该领域的总体回顾。首先,我们对生物应用中重要的微米级和纳米级颗粒的主要特征和特性进行了总体概述,例如比表面积,表面电荷,ζ电位和胶体稳定性。然后,我们从结构和物理角度总结了聚合物可以在其表面上采用的不同颗粒形态和构型。我们还描述了可用于用聚合物覆盖颗粒的不同策略,包括物理吸附,共价接枝或直接聚合到颗粒上。接下来是专门介绍不同表征方法的部分,可用于掌握涂层方案的开发并控制最终性能。我们以对一些典型应用的描述作为结尾,其中例举并讨论了本评论中描述的不同参数的后果和重要性。

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