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Genetically Engineering Bacillus subtilis with a Heat-Resistant Arsenite Methyltransferase for Bioremediation of Arsenic-Contaminated Organic Waste

机译:基因工程枯草芽孢杆菌用耐热亚砷酸甲基转移酶对受砷污染的有机废物进行生物修复

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摘要

Organic manures may contain high levels of arsenic (As) due to the use of As-containing growth-promoting substances in animal feed. To develop a bioremediation strategy to remove As from organic waste, Bacillus subtilis 168, a bacterial strain which can grow at high temperature but is unable to methylate and volatilize As, was genetically engineered to express the arsenite S-adenosylmethionine methyltransferase gene (CmarsM) from the thermophilic alga Cyanidioschyzon merolae. The genetically engineered B. subtilis 168 converted most of the inorganic As in the medium into dimethylarsenate and trimethylarsine oxide within 48 h and volatized substantial amounts of dimethylarsine and trimethylarsine. The rate of As methylation and volatilization increased with temperature from 37 to 50°C. When inoculated into an As-contaminated organic manure composted at 50°C, the modified strain significantly enhanced As volatilization. This study provides a proof of concept of using genetically engineered microorganisms for bioremediation of As-contaminated organic waste during composting.
机译:由于在动物饲料中使用了含砷的生长促进物质,有机粪便可能含有大量的砷(As)。为了开发从有机废物中去除As的生物修复策略,对枯草芽孢杆菌168(一种可以在高温下生长但不能甲基化和挥发As的细菌菌株)进行基因工程改造,使其表达砷中毒的S-腺苷甲硫氨酸甲基转移酶基因(CmarsM)。嗜热藻类Cyanidioschyzon merolae。经过基因工程改造的枯草芽孢杆菌168在48小时内将培养基中的大部分无机As转化为二甲基砷酸和三甲基ar氧化物,并挥发了大量的二甲基ar和三甲基ar。随着温度从37升高到50°C,砷的甲基化和挥发速率增加。当接种到50°C堆肥的被As污染的有机肥料中时,改良菌株显着增强了As的挥发。这项研究提供了在堆肥过程中使用基因工程微生物对As污染的有机废物进行生物修复的概念证明。

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