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通过磁小体表达受蜘蛛丝启发的肽在体内对细菌磁性纳米颗粒进行包被。

In Vivo Coating of Bacterial Magnetic Nanoparticles by Magnetosome Expression of Spider Silk-Inspired Peptides.

机构信息

Department of Molecular Structural Biology , Max Planck Institute of Biochemistry , D-82152 Martinsried , Germany.

出版信息

Biomacromolecules. 2018 Mar 12;19(3):962-972. doi: 10.1021/acs.biomac.7b01749. Epub 2018 Feb 5.

Abstract

Magnetosomes are natural magnetic nanoparticles with exceptional properties that are synthesized in magnetotactic bacteria by a highly regulated biomineralization process. Their usability in many applications could be further improved by encapsulation in biocompatible polymers. In this study, we explored the production of spider silk-inspired peptides on magnetosomes of the alphaproteobacterium Magnetospirillum gryphiswaldense. Genetic fusion of different silk sequence-like variants to abundant magnetosome membrane proteins enhanced magnetite biomineralization and caused the formation of a proteinaceous capsule, which increased the colloidal stability of isolated particles. Furthermore, we show that spider silk peptides fused to a magnetosome membrane protein can be used as seeds for silk fibril growth on the magnetosome surface. In summary, we demonstrate that the combination of two different biogenic materials generates a genetically encoded hybrid composite with engineerable new properties and enhanced potential for various applications.

摘要

磁小体是具有特殊性质的天然磁性纳米颗粒,由趋磁细菌通过高度调控的生物矿化过程合成。通过封装在生物相容性聚合物中,可以进一步提高它们在许多应用中的可用性。在这项研究中,我们探索了在α变形菌 Magnetospirillum gryphiswaldense 的磁小体上生产受蜘蛛丝启发的肽。将不同的丝序列类似变体与丰富的磁小体膜蛋白进行基因融合,增强了磁铁矿的生物矿化作用,并导致形成了蛋白质胶囊,从而提高了分离颗粒的胶体稳定性。此外,我们还表明,与磁小体膜蛋白融合的蜘蛛丝肽可用作磁铁矿表面上丝纤维生长的种子。总之,我们证明了两种不同的生物材料的组合产生了一种具有可设计新特性的遗传编码杂化复合材料,并增强了其在各种应用中的潜力。

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