用于治疗和诊断的蛋白质生物材料。

IF 5 Q1 ENGINEERING, BIOMEDICAL Progress in biomedical engineering (Bristol, England) Pub Date : 2022-01-01 Epub Date: 2021-10-26 DOI:10.1088/2516-1091/ac2841
Stanley Chu, Andrew L Wang, Aparajita Bhattacharya, Jin Kim Montclare
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引用次数: 6

摘要

蛋白质是一些用途最广泛、研究最深入的大分子,具有广泛的生物医学应用。蛋白质的天然和生物来源为这些材料提供了比合成材料更大的优势,如天生的生物活性、细胞的识别能力和降低的免疫原性潜力。此外,蛋白质可以通过改变其伯氨基酸序列而容易地功能化,并且通常可以自发地或在特定的环境条件下进一步自组装成更高阶的结构。这篇综述将介绍基于蛋白质的生物材料在递送小分子、遗传物质、蛋白质和细胞等治疗货物方面的最新进展。首先,我们将讨论二级结构基序(更复杂蛋白质的构建块)具有独特特性的方式,使其能够用于治疗递送。接下来,讨论了由这些构建块制成的超分子组装体,如纤维、纳米颗粒和水凝胶,这些构建块被设计成以内聚的方式表现。最后,我们将介绍对蛋白质材料的额外修饰,这些修饰赋予材料环境响应性。这包括蛋白质分子机器人的新兴领域,以及将治疗潜力与现代成像模式相结合的基于蛋白质的治疗材料,包括近红外荧光光谱(NIRF)、单光子发射计算机断层扫描/计算机断层扫描(SPECT/CT)、正电子发射断层扫描(PET)、磁共振成像(MRI),以及超声/光声成像(US/PAI)。
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Protein Based Biomaterials for Therapeutic and Diagnostic Applications.

Proteins are some of the most versatile and studied macromolecules with extensive biomedical applications. The natural and biological origin of proteins offer such materials several advantages over their synthetic counterparts, such as innate bioactivity, recognition by cells and reduced immunogenic potential. Furthermore, proteins can be easily functionalized by altering their primary amino acid sequence and can often be further self-assembled into higher order structures either spontaneously or under specific environmental conditions. This review will feature the recent advances in protein-based biomaterials in the delivery of therapeutic cargo such as small molecules, genetic material, proteins, and cells. First, we will discuss the ways in which secondary structural motifs, the building blocks of more complex proteins, have unique properties that enable them to be useful for therapeutic delivery. Next, supramolecular assemblies, such as fibers, nanoparticles, and hydrogels, made from these building blocks that are engineered to behave in a cohesive manner, are discussed. Finally, we will cover additional modifications to protein materials that impart environmental responsiveness to materials. This includes the emerging field of protein molecular robots, and relatedly, protein-based theranostic materials that combine therapeutic potential with modern imaging modalities, including near-infrared fluorescence spectroscopy (NIRF), single-photo emission computed tomography/computed tomography (SPECT/CT), positron emission tomography (PET), magnetic resonance imaging (MRI), and ultrasound/photoacoustic imaging (US/PAI).

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