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Revealing the principal attributes of protein adsorption on block copolymer surfaces with direct experimental evidence at the single protein level

机译:揭示蛋白质的主要属性嵌段共聚物表面吸附在单一的直接实验证据蛋白质水平

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Understanding protein adsorption onto polymer surfaces is of great importance in designing biomaterials, improving bioanalytical devices, and controlling biofouling, to name a few examples. Although steady research efforts have been advancing this field, our knowledge of this ubiquitous and complex phenomenon is still limited. In this study, we elucidate competitive protein adsorption behaviors sequentially occurring onto nanoscale block copolymer (BCP) surfaces via combined experimental and computer simulation approaches. The model systems chosen for our investigation are immunoglobulin G and fibrinogen introduced in different orders into the self-assembled nanodomains of poly(styrene)-block-poly (methylmethacrylate). We unambiguously reveal the adsorption, desorption, and replacement events of the same protein molecules via single protein tracking with atomic force microscopy. We then ascertain adsorption-related behaviors such as lateral mobility and self-association of proteins. We provide the much-needed, direct experimental proof of sequential adsorption events at the biomolecular level, which was virtually nonexistent before. We determine key protein adsorption pathways and dominant tendencies of sequential protein adsorption. We also reveal preadsorbed surface-associated behaviors in sequential adsorption, distinct from situations involving initially empty surfaces. We perform Monte-Carlo simulations to further substantiate our experimental outcomes. Our endeavors in this study may facilitate a well-guided mechanistic understanding of protein-polymer interactions by providing definite experimental evidence of competitive, sequential adsorption at the nanoscale. Increasingly, biomaterial and biomedical applications rely on systems of multicomponent proteins and chemically intricate, nanoscale polymer surfaces. Hence, our findings can also be beneficial for the development of next-generation nanobiomaterials and nanobiosensors exploiting self-assembled BCP nanodomain surfaces.
机译:理解蛋白质吸附在聚合物在设计表面具有十分重要的意义生物材料,提高分析设备,和控制生物淤积,等等的例子。推动这一领域,我们的知识无处不在的和复杂的现象仍然是有限的。蛋白质吸附行为顺序发生在纳米尺度的嵌段共聚物(BCP)表面通过实验和计算机相结合仿真方法。因为我们的调查是免疫球蛋白G和纤维蛋白原中引入不同的订单的自组装nanodomains聚(苯乙烯)-block-poly(甲基丙烯酸甲酯)。明确地揭示了吸附、解吸,和更换事件相同的蛋白质通过单一的蛋白质分子与原子跟踪力显微镜。adsorption-related横向等行为流动性和self-association的蛋白质。提供急需的、直接的实验连续吸附事件的证据生物分子水平,实际上以前不存在的。吸附途径和主导的倾向连续的蛋白质吸附。preadsorbed surface-associated行为连续的吸附、截然不同的情况最初涉及空表面。蒙特卡罗模拟进一步证实我们的实验结果。研究可能促进well-guided机械的protein-polymer相互作用的理解提供明确的实验证据竞争力,连续的吸附纳米级。生物医学应用程序依赖的系统多组分蛋白质和化学错综复杂,纳米聚合物表面。也可以是有益的发展下一代随着和利用自组装nanobiosensors BCPnanodomain表面。

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