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首页> 外文期刊>RSC Advances >The design and development of short peptide-based novel smart materials to prevent fouling by the formation of non-toxic and biocompatible coatings
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The design and development of short peptide-based novel smart materials to prevent fouling by the formation of non-toxic and biocompatible coatings

机译:基于短肽的新型智能材料的设计与开发,防止污染非毒性和生物相容性涂层

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Biofouling refers to the undesirable process that leads to the accumulation of microorganisms such as bacteria or fungi on substrates. This is one of the major concerns associated with several components of our regular life such as food, health, water and energy. In the healthcare sector, biofouling on medical devices is known to cause infections, which are often resistant to conventional antibiotics and lead to increase in the number of hospital and surgery-related deaths. One of the better ways to tackle the problem of biofouling is the development of smart antifouling materials that can produce a biocompatible, non-toxic, eco-friendly and functional coating and maintain a biological environment without any adverse effect. To this end, in the present study, we have reported the design and synthesis of two simple chemically modified peptides, namely, PA1 (PFB-VVD) and PA2 (PFB-LLE). The design as well as the amino acid sequence of the peptides contains three basic components that enable their ability to (i) self-assemble into functional coatings, (ii) bind with the desired surface via the bi-dentate coordination of dicarboxylate groups and (iii) exhibit antifouling activity and generate a non-toxic biocompatible supramolecular coating on the desired surface. PA1 having aspartic acid as the anchoring moiety exhibits better antifouling activity compared to PA2 that has glutamic acid as the anchoring moiety. This is probably due to the greater adhesive force or binding affinity of aspartic acid to the examined surface compared to that of glutamic acid, as confirmed by force measurement studies using AFM. Most importantly, the simple drop-coating method promises great advantages due to its ease of operation, which leads to a reduction in the production cost and increase in the scope of commercialization. To the best of our knowledge, this is the first attempt to develop an ultra-short peptide-based smart antifouling material with a dicarboxylate group as the surface binding moiety. Furthermore, these findings promise to provide further insights into antifouling mechanisms in the future by the development of a smart material using a dicarboxylate group as an anchoring moiety.
机译:生物污染是指不希望的过程,导致底物上的细菌或真菌等微生物的积累。这是与我们普通生活的几个组成部分相关的主要问题之一,例如食物,健康,水和能量。在医疗领域,已知医疗装置的生物污染引起感染,这通常耐常见的抗生素,导致医院和手术死亡人数增加。解决生物污染问题的更好方法是开发智能防污材料,可以生产生物相容性,无毒,环保和功能涂层,并保持生物环境而不会产生任何不利影响。为此,在本研究中,我们已经报道了两个简单化学改性肽的设计和合成,即PA1(PFB-VVD)和PA2(PFB-LLE)。该设计以及肽的氨基酸序列含有三种碱性组分,使其能够(I)自组装成功能涂层,(ii)通过二羧酸二羧酸酯基团的双齿状配位与所需表面结合( III)表现出防污活性并在所需表面上产生无毒的生物相容性的超分子涂层。与锚定部分的具有天冬氨酸的PA1表现出与具有谷氨酸作为锚定部分的PA2相比的更好的防污活性。这可能是由于天冬氨酸对所检查表面的粘合力或与谷氨酸的结合相比,通过使用AFM的力测量研究证实。最重要的是,由于其易操作性,简单的滴涂法承诺了很大的优势,这导致生产成本降低和商业化范围的增加。据我们所知,这是第一次尝试用二羧酸基团开发基于超短肽的智能防污材料,作为表面结合部分。此外,这些调查结果承诺通过使用二羧酸基团作为锚定部分的智能材料的智能材料进行将来进一步了解未来的防污机制。

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