Protein Adsorption on Biomaterial Surfaces: Subsequent Conformational and Biological Consequences – A Review

Q4 Materials Science Journal of Surface Science and Technology Pub Date : 2020-08-20 DOI:10.18311/JSST/2020/23282
S. Mitra
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引用次数: 6

Abstract

Protein adsorption on solid surfaces is an immensely complex event comprising versatile biological and physico-chemical factors. This review focuses to ascertain the nature and biocompatibility of solid matrices essential for the medical needs during prosthetic implantations. It deals with number of important factors; nature of the biomaterial surfaces, the native protein structure, and induced configurational changes during the adsorbed state, andphysico-chemical influences liable for the event. The adsorption process demonstrates that solid surfaces are enabling to alter the protein structure. The conversion of neutral zymogens factor XII, and factor VII (FXII and FVII) to active enzymatic state (FXIIa and FVIIa) initiating the blood coagulation cascade following intrinsic or extrinsic pathway is a prime example regarding the configuration alteration during adsorbed state compared to its nativestate. Additionally, the activation of the complement cascade arises as a result of immune activation due to the adsorbed proteins on solid matrices. It is well known that interfacial tension compels the protein molecules to alter their structure, and is the prime factor behind the configuration transformation. Influences like contact angle, wettability, zeta potential and hydrophobicity along with other inter-aligned forces are involved. It is found that hydrophobic surfaces allow more proteins to bind but fail to activate the coagulation cascade. Contrarily, hydrophilic surfaces despite the feeble adsorption ability impose adequate changes to induce the enzymatic action. The nature of adsorption at the stationary state has been explained following the Gibbs' model of surface excess, Langmuir or any of the equivalent paradigms. But uniqueness in adsorption behavior is noticed in the ‘Vroman effect' while undergoing multiple protein interaction on the solid surfaces. Additionally, the property of cell adhesion heavily relies on the surface matter. Hydrophobicity, surface charge, chemical composition, and topography concertedly play crucial role. Further, prior adsorption of proteins on the adsorbent imposes profound effect on the cell and microbial adhesions which obviously depends on the character of proteins, and cells including the surface chemical composition of the adsorbents. The incident of bio-fouling which often enforces harmful effect arising from various implants is primarily instigated by the adsorption of proteins leading to subsequent invasion prompted by the immune cells. For avoidance, special categories of biomaterials are in the process of manufacturing. Despite having numerous adverse effects, cellular adhesion also shows few beneficial roles, like enhancing the growth of human vein endothelium cells and neurons. The adhesion of bacteria or microorganisms on many solid surfaces induces significantly different effects maintaining their longer survival period.
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蛋白质在生物材料表面的吸附:随后的构象和生物学后果综述
蛋白质在固体表面的吸附是一个非常复杂的过程,包含多种生物和物理化学因素。这篇综述的重点是确定的性质和生物相容性的固体基质必不可少的医疗需要在假体植入。它涉及许多重要因素;生物材料表面的性质、天然蛋白质结构、吸附状态下诱导的构型变化,以及导致这一事件的物理化学影响。吸附过程表明,固体表面能够改变蛋白质结构。中性酶原因子XII和因子VII (FXII和FVII)转化为活性酶状态(FXIIa和FVIIa),在内在或外在途径下启动凝血级联,这是吸附状态与天然状态相比构型改变的一个主要例子。此外,补体级联的激活是由于吸附在固体基质上的蛋白质的免疫激活而产生的。众所周知,界面张力迫使蛋白质分子改变其结构,并且是构型转变背后的主要因素。影响像接触角,润湿性,ζ电位和疏水性以及其他相互排列的力。发现疏水表面允许更多的蛋白质结合,但不能激活凝血级联。相反,亲水表面尽管吸附能力弱,但施加足够的变化来诱导酶的作用。吸附在固定状态的性质已经解释了吉布斯模型的表面过剩,朗缪尔或任何等效范式。但在固体表面进行多种蛋白质相互作用时,注意到吸附行为的独特性,即“Vroman效应”。此外,细胞粘附的性质在很大程度上依赖于表面物质。疏水性、表面电荷、化学成分和地形共同起着至关重要的作用。此外,蛋白质在吸附剂上的预先吸附会对细胞和微生物的粘附产生深远的影响,这显然取决于蛋白质和细胞的特性,包括吸附剂的表面化学成分。生物污染的发生通常是由各种植入物引起的有害影响,其主要原因是蛋白质的吸附导致免疫细胞的后续入侵。为了避免,特殊类别的生物材料正在制造过程中。尽管有许多不利影响,细胞粘附也显示出一些有益的作用,如促进人静脉内皮细胞和神经元的生长。细菌或微生物在许多固体表面的粘附产生了显著不同的效果,维持了它们较长的生存期。
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期刊介绍: The Indian Society for Surface Science and Technology is an organization for the cultivation, interaction and dissemination of knowledge in the field of surface science and technology. It also strives to promote Industry-Academia interaction
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