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重组DNA技术与点击化学:生成用于控制磷酸钙矿化的混合弹性蛋白样-组蛋白水凝胶的强大组合。

Recombinant DNA technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralization.

作者信息

Misbah Mohamed Hamed, Santos Mercedes, Quintanilla Luis, Günter Christina, Alonso Matilde, Taubert Andreas, Rodríguez-Cabello José Carlos

机构信息

G.I.R. Bioforge, University of Valladolid, CIBER-BBN, Paseo de Belén 19, 47011 Valladolid, Spain.

Institute of Earth and Environmental Sciences, University of Potsdam, D-14476 Potsdam, Germany.

出版信息

Beilstein J Nanotechnol. 2017 Apr 4;8:772-783. doi: 10.3762/bjnano.8.80. eCollection 2017.

Abstract

Understanding the mechanisms responsible for generating different phases and morphologies of calcium phosphate by elastin-like recombinamers is supreme for bioengineering of advanced multifunctional materials. The generation of such multifunctional hybrid materials depends on the properties of their counterparts and the way in which they are assembled. The success of this assembly depends on the different approaches used, such as recombinant DNA technology and click chemistry. In the present work, an elastin-like recombinamer bearing lysine amino acids distributed along the recombinamer chain has been cross-linked via Huisgen [2 + 3] cycloaddition. The recombinamer contains the SN15 peptide domains inspired by salivary statherin, a peptide epitope known to specifically bind to and nucleate calcium phosphate. The benefit of using click chemistry is that the hybrid elastin-like-statherin recombinamers cross-link without losing their fibrillar structure. Mineralization of the resulting hybrid elastin-like-statherin recombinamer hydrogels with calcium phosphate is described. Thus, two different hydroxyapatite morphologies (cauliflower- and plate-like) have been formed. Overall, this study shows that crosslinking elastin-like recombinamers leads to interesting matrix materials for the generation of calcium phosphate composites with potential applications as biomaterials.

摘要

了解由类弹性蛋白重组体产生不同相和形态的磷酸钙的机制对于先进多功能材料的生物工程至关重要。此类多功能杂化材料的生成取决于其对应物的性质以及它们的组装方式。这种组装的成功取决于所使用的不同方法,如重组DNA技术和点击化学。在本工作中,一种沿重组体链分布有赖氨酸氨基酸的类弹性蛋白重组体已通过惠斯根[2 + 3]环加成反应进行交联。该重组体包含受唾液磷蛋白启发的SN15肽结构域,唾液磷蛋白是一种已知能特异性结合磷酸钙并使其成核的肽表位。使用点击化学的好处是类弹性蛋白 - 磷蛋白重组体杂化物在交联时不会失去其纤维状结构。描述了所得类弹性蛋白 - 磷蛋白重组体水凝胶与磷酸钙的矿化过程。因此,形成了两种不同的羟基磷灰石形态(菜花状和板状)。总体而言,本研究表明交联类弹性蛋白重组体可产生有趣的基质材料,用于生成具有生物材料潜在应用的磷酸钙复合材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cdd5/5389180/c40ebe3aab89/Beilstein_J_Nanotechnol-08-772-g002.jpg

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