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Ligand-binding proteins: their potential for application in systems for controlled delivery and uptake of ligands.

机译:配体结合蛋白:它们在控制配体传递和摄取系统中的潜力。

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摘要

Unstable or harmful agents, such as drugs, vitamins, flavors, pheromones, and catalysts, for use in pharmaceutics, personal care, functional foods, crop protection, laboratories, offices, and industrial processes, require stabilization against oxidation and degradation or shielding from sensitive environments. Therefore, binding them to carriers with high affinity and selectivity for targeting to the right environment and subsequent controlled release is beneficial, especially if this allows improved control of (stimulus-induced) release. Proteins often possess one or more of these properties, whereas modern biotechnology and bioinformatics provide an increasing number of tools to engineer and adapt these properties. Carrier systems are now developed that incorporate proteins as the central ligand-binding component, e.g., lectins for glucose-triggered release of glycosylated insulin and bispecific antibodies for brain targeting of drugs, but ligand-binding proteins can potentially be used in many other applications. Collectively, the proteins available in nature bind an impressive variety of ligands and non-natural analogs. In this light, various ligand-binding protein classes are surveyed, including biotin-, lipid-, immunosuppressant-, insect pheromone-, phosphate-, and sulfate-binding proteins, as well as bacterial periplasmic proteins, lectins, serum albumins, immunoglobulins, and inactivated enzymes. Disadvantages, such as enzymatic degradation or immunogenicity, associated with the pharmaceutical use of certain proteins can be avoided by incorporating these proteins in more complex carrier and targeting systems. In other applications, this may not be necessary. The enclosure of high-affinity (potentially stimulus-sensitive) binding proteins within an envelope that acts as a diffusion barrier for the ligand may provide excellent slow release. Many possibilities seem to be as yet unexplored.
机译:用于药物,个人护理,功能性食品,农作物保护,实验室,办公室和工业过程的不稳定或有害试剂,例如药物,维生素,调味剂,信息素和催化剂,需要稳定化以防氧化和降解或屏蔽敏感物质环境。因此,将它们以高亲和力和选择性结合到载体上以靶向正确的环境和随后的受控释放是有益的,特别是如果这允许改进的(刺激诱导的)释放控制。蛋白质通常具有一种或多种这些特性,而现代生物技术和生物信息学提供了越来越多的工具来工程化和适应这些特性。现在已经开发出将蛋白质作为主要的配体结合成分的载体系统,例如,用于葡萄糖触发的糖基化胰岛素释放的凝集素和用于药物靶向大脑的双特异性抗体,但是配体结合蛋白可能会在许多其他应用中使用。总的来说,自然界中可用的蛋白质结合了令人印象深刻的各种配体和非天然类似物。因此,研究了各种配体结合蛋白,包括生物素,脂质,免疫抑制剂,昆虫信息素,磷酸盐和硫酸盐结合蛋白,以及细菌周质蛋白,凝集素,血清白蛋白,免疫球蛋白,和灭活的酶。通过将某些蛋白质掺入更复杂的载体和靶向系统中,可以避免与某些蛋白质的药物使用相关的缺点,例如酶促降解或免疫原性。在其他应用程序中,这可能不是必需的。高亲和力(可能对刺激敏感)的结合蛋白在被膜中充当配体扩散屏障的外壳可能提供出色的缓慢释放。许多可能性似乎尚未开发。

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