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Single-Step Production of a Recyclable Nanobiocatalyst for Organophosphate Pesticides Biodegradation Using Functionalized Bacterial Magnetosomes

机译:使用功能化细菌磁小体一步生产有机磷农药可降解的可回收纳米生物催化剂。

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摘要

Enzymes are versatile catalysts in laboratories and on an industrial scale; improving their immobilization would be beneficial to broadening their applicability and ensuring their (re)use. Lipid-coated nano-magnets produced by magnetotactic bacteria are suitable for a universally applicable single-step method of enzyme immobilization. By genetically functionalizing the membrane surrounding these magnetite particles with a phosphohydrolase, we engineered an easy-to-purify, robust and recyclable biocatalyst to degrade ethyl-paraoxon, a commonly used pesticide. For this, we genetically fused the opd gene from Flavobacterium sp. ATCC 27551 encoding a paraoxonase to mamC, an abundant protein of the magnetosome membrane in Magnetospirillum magneticum AMB-1. The MamC protein acts as an anchor for the paraoxonase to the magnetosome surface, thus producing magnetic nanoparticles displaying phosphohydrolase activity. Magnetosomes functionalized with Opd were easily recovered from genetically modified AMB-1 cells: after cellular disruption with a French press, the magnetic nanoparticles are purified using a commercially available magnetic separation system. The catalytic properties of the immobilized Opd were measured on ethyl-paraoxon hydrolysis: they are comparable with the purified enzyme, with Km (and kcat) values of 58 µM (and 178 s−1) and 43 µM (and 314 s−1) for the immobilized and purified enzyme respectively. The Opd, a metalloenzyme requiring a zinc cofactor, is thus properly matured in AMB-1. The recycling of the functionalized magnetosomes was investigated and their catalytic activity proved to be stable over repeated use for pesticide degradation. In this study, we demonstrate the easy production of functionalized magnetic nanoparticles with suitably genetically modified magnetotactic bacteria that are efficient as a reusable nanobiocatalyst for pesticides bioremediation in contaminated effluents.
机译:酶是实验室和工业规模的多功能催化剂。改善其固定性将有助于扩大其适用性并确保其(重新)使用。由趋磁细菌产生的脂质包裹的纳米磁体适用于酶固定的普遍适用的单步方法。通过用磷酸水解酶对围绕磁铁矿颗粒的膜进行遗传功能化,我们设计了一种易于纯化,坚固耐用且可回收的生物催化剂,以降解常用的农药对氧磷。为此,我们在遗传上融合了黄杆菌属物种的opd基因。 ATCC 27551编码mamC(一种在Magnetospirillum magneticum AMB-1中磁小体膜的丰富蛋白质)的对氧磷酶。 MamC蛋白充当对氧磷酶在磁小体表面的锚定,从而产生显示磷酸水解酶活性的磁性纳米颗粒。用Opd功能化的磁小体可以很容易地从转基因的AMB-1细胞中回收:用French压榨机破坏细胞后,使用市售的磁分离系统纯化磁性纳米颗粒。固定化Opd的催化性能在乙基对氧磷水解中进行了测量:它们与纯化的酶相当,Km(和kcat)值为58 µM(和178 s-1)和43 µM(和314 s-1)。分别用于固定化和纯化的酶。因此,需要锌辅因子的金属酶Opd在AMB-1中可以适当地成熟。研究了功能化磁小体的回收利用,证明了它们的催化活性在反复用于农药降解中是稳定的。在这项研究中,我们证明了通过适当的基因修饰的趋磁细菌可以轻松生产功能化的磁性纳米颗粒,这些细菌可以有效地用作可重复使用的纳米生物催化剂,用于污染废水中的农药生物修复。

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