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Optical Spectroscopic and Morphological Characterizations of Curcuminized Silk Biomaterials: A Perspective from Drug Stabilization

机译:姜黄素蚕丝生物材料的光谱学和形态学表征:从药物稳定化的角度

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Silk protein fibroins have gained remarkable attention in recent years as a potential drug carrier in the developing medicinal field of research. In this work, the stability of anticancer agent curcumin in the presence of two different silk protein fibroins from nonmulberry Antheraea mylitta (Am) and mulberry Bombyx mori (Bm) has been examined, and the possible mechanism of stabilization in a physiologically relevant medium has also been explored. In solution phase, upon treatment with curcumin, the predominated β-sheet structure of Am is marginally altered, whereas in the case of Bm, a substantial structural changeover has been observed (from coil to β-sheet) to accommodate the hydrophobic drug. Also, the morphological assessments suggest that curcumin is nicely housed in the nanoscaffold of silk fibroin (SF). Consequently, the extent of degradation of curcumin is remarkably suppressed upon encapsulation with the SF. The dissimilarity in the binding patterns of curcumin with these silk proteins could be responsible for the observed difference in the stability orders. Curcumin binds the surface of Bm, whereas in Am, the drug is incorporated in the hydrophobic cavity, and as a consequence, the drug is effectively sequestered out of the aqueous medium. The increase in the fluorescence quantum yield upon interaction with the protein greatly modulates the excited-state intermolecular hydrogen atom transfer (ESIPT) process, which is in tune with a substantial increase in the lifetime of the excited-state of curcumin. The ESIPT is known to play a crucial role in the degradation of curcumin under physiological pH conditions, which perhaps implies its potential therapeutic activity in the presence of silk. The in-depth spectroscopic analyses of curcumin–SF complexes in aqueous medium can provide useful insights for further applicative developments in bioengineering.
机译:丝蛋白纤维蛋白近年来作为发展中的医学研究领域中潜在的药物载体而受到了极大的关注。在这项工作中,研究了抗癌剂姜黄素在两种不同的蚕丝蛋白纤维蛋白(来自桑mul和桑蚕(Bm))中的稳定性,并探讨了可能的稳定机制。还研究了生理学相关的介质。在溶液相中,用姜黄素处理后,Am的主要β-折叠结构发生了少许变化,而在Bm的情况下,已观察到了很大的结构转换(从卷曲到β-折叠)以容纳疏水性药物。同样,形态学评估表明姜黄素很好地容纳在丝素蛋白(SF)的纳米支架中。因此,姜黄素的降解程度在用SF包封时被显着抑制。姜黄素与这些丝蛋白的结合方式的差异可能是所观察到的稳定性顺序差异的原因。姜黄素结合Bm的表面,而在Am中,药物被掺入疏水性腔中,因此,药物被有效地隔离在水性介质中。与蛋白质相互作用时,荧光量子产率的增加极大地调节了激发态分子间氢原子转移(ESIPT)过程,这与姜黄素激发态寿命的显着增加是一致的。已知ESIPT在生理pH条件下的姜黄素降解中起着至关重要的作用,这也许暗示着在丝绸存在下其潜在的治疗活性。水性介质中姜黄素-SF复合物的深入光谱分析可以为生物工程的进一步应用开发提供有用的见识。

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