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用于增强有机外源性物质生物降解和植物修复的转基因植物。

Transgenic plants for enhanced biodegradation and phytoremediation of organic xenobiotics.

作者信息

Abhilash P C, Jamil Sarah, Singh Nandita

机构信息

Eco-Auditing Group, National Botanical Research Institute, Council of Scientific & Industrial Research, Rana Pratap Marg, Lucknow 226001, Uttar Pradesh, India.

出版信息

Biotechnol Adv. 2009 Jul-Aug;27(4):474-88. doi: 10.1016/j.biotechadv.2009.04.002. Epub 2009 Apr 14.

Abstract

Phytoremediation--the use of plants to clean up polluted soil and water resources--has received much attention in the last few years. Although plants have the inherent ability to detoxify xenobiotics, they generally lack the catabolic pathway for the complete degradation of these compounds compared to microorganisms. There are also concerns over the potential for the introduction of contaminants into the food chain. The question of how to dispose of plants that accumulate xenobiotics is also a serious concern. Hence the feasibility of phytoremediation as an approach to remediate environmental contamination is still somewhat in question. For these reasons, researchers have endeavored to engineer plants with genes that can bestow superior degradation abilities. A direct method for enhancing the efficacy of phytoremediation is to overexpress in plants the genes involved in metabolism, uptake, or transport of specific pollutants. Furthermore, the expression of suitable genes in root system enhances the rhizodegradation of highly recalcitrant compounds like PAHs, PCBs etc. Hence, the idea to amplify plant biodegradation of xenobiotics by genetic manipulation was developed, following a strategy similar to that used to develop transgenic crops. Genes from human, microbes, plants, and animals are being used successfully for this venture. The introduction of these genes can be readily achieved for many plant species using Agrobacterium tumefaciens-mediated plant transformation or direct DNA methods of gene transfer. One of the promising developments in transgenic technology is the insertion of multiple genes (for phase 1 metabolism (cytochrome P450s) and phase 2 metabolism (GSH, GT etc.) for the complete degradation of the xenobiotics within the plant system. In addition to the use of transgenic plants overexpressed with P450 and GST genes, various transgenic plants expressing bacterial genes can be used for the enhanced degradation and remediation of herbicides, explosives, PCBs etc. Another approach to enhancing phytoremediation ability is the construction of plants that secrete chemical degrading enzymes into the rhizosphere. Recent studies revealed that accelerated ethylene production in response to stress induced by contaminants is known to inhibit root growth and is considered as major limitation in improving phytoremediation efficiency. However, this can be overcome by the selective expression of bacterial ACC deaminase (which regulates ethylene levels in plants) in plants together with multiple genes for the different phases of xenobiotic degradation. This review examines the recent developments in use of transgenic-plants for the enhanced metabolism, degradation and phytoremediation of organic xenobiotics and its future directions.

摘要

植物修复——利用植物清理受污染的土壤和水资源——在过去几年中受到了广泛关注。尽管植物具有对异生物质进行解毒的内在能力,但与微生物相比,它们通常缺乏将这些化合物完全降解的分解代谢途径。人们还担心污染物会进入食物链。如何处理积累了异生物质的植物这一问题也备受关注。因此,植物修复作为一种治理环境污染的方法的可行性仍存在一定疑问。出于这些原因,研究人员致力于通过基因工程培育具有卓越降解能力的植物。一种直接提高植物修复效果的方法是在植物中过表达参与特定污染物代谢、吸收或运输的基因。此外,在根系中表达合适的基因可增强多环芳烃、多氯联苯等高度难降解化合物的根际降解。因此,人们借鉴培育转基因作物的策略,提出了通过基因操作增强植物对异生物质生物降解的想法。来自人类、微生物、植物和动物的基因已成功用于此项研究。利用根癌农杆菌介导的植物转化或直接DNA基因转移方法,许多植物物种都能轻松实现这些基因的导入。转基因技术的一个有前景的发展方向是插入多个基因(用于第一阶段代谢(细胞色素P450)和第二阶段代谢(谷胱甘肽、谷胱甘肽转移酶等)),以在植物系统中完全降解异生物质。除了使用过表达P450和GST基因的转基因植物外,各种表达细菌基因的转基因植物可用于增强除草剂、炸药、多氯联苯等的降解和修复。另一种提高植物修复能力的方法是构建能向根际分泌化学降解酶的植物。最近的研究表明,污染物诱导的应激反应会加速乙烯生成,已知这会抑制根系生长,被认为是提高植物修复效率的主要限制因素。然而,通过在植物中选择性表达细菌ACC脱氨酶(调节植物体内乙烯水平)以及用于异生物质不同降解阶段的多个基因,可以克服这一问题。本文综述了转基因植物在增强有机异生物质代谢、降解和植物修复方面的最新进展及其未来发展方向。

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