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蓝藻酶氰酸酶的表达增强了拟南芥中的氰酸盐代谢及氰酸盐耐受性。

Expression of the cyanobacterial enzyme cyanase increases cyanate metabolism and cyanate tolerance in Arabidopsis.

作者信息

Kebeish Rashad, Al-Zoubi Omar

机构信息

Biology Department, Faculty of Science Yanbu, Taibah University, KSA, King Khalid Rd, Al amoedi, Yanbu El-Bahr, 46423, Saudi Arabia.

Plant Biotechnology Laboratory (PBL), Botany and Microbiology Department, Faculty of Science, Zagazig University, El-Gamaa Street 1, Zagazig, Sharkia, 44519, Egypt.

出版信息

Environ Sci Pollut Res Int. 2017 Apr;24(12):11825-11835. doi: 10.1007/s11356-017-8866-z. Epub 2017 Mar 25.

Abstract

Cyanate and its derivatives are considered as environmental hazardous materials. Cyanate is released to the environment through many chemical industries and mining wastewater. Cyanase enzyme converts cyanate into CO and NH in a bicarbonate-dependent reaction. At low cyanate concentrations, the endogenous plant cyanases play a vital role in cyanate detoxification. However, such cyanate biodegradation system is probably insufficient due to the excess cyanate concentrations at contaminated sites. In this study, we have transferred the activity of the cyanobacterial cyanase into Arabidopsis thaliana plants in order to enhance plant resistance against cyanate toxicity. The enzyme was shown to be active in planta. Transgenic plants exposed to cyanate, either applied by foliar spray or supplemented in growth medium, showed less reduction in pigment contents, antioxidant enzymes, carbohydrate contents, and reduced levels of plant growth retardation. Plant growth assays under cyanate stress showed enhanced growth and biomass accumulation in cyanase overexpressors compared to control plants. Results of this study provide evidence for developing novel eco-friendly phytoremediation systems for cyanate detoxification.

摘要

氰酸盐及其衍生物被视为环境有害物质。氰酸盐通过许多化学工业和采矿废水排放到环境中。氰酸酶在依赖碳酸氢盐的反应中将氰酸盐转化为一氧化碳和氨。在低氰酸盐浓度下,植物内源性氰酸酶在氰酸盐解毒中起着至关重要的作用。然而,由于污染场地氰酸盐浓度过高,这种氰酸盐生物降解系统可能并不充分。在本研究中,我们已将蓝藻氰酸酶的活性转移到拟南芥植物中,以增强植物对氰酸盐毒性的抗性。该酶在植物体内表现出活性。通过叶面喷施或在生长培养基中添加氰酸盐处理的转基因植物,其色素含量、抗氧化酶、碳水化合物含量的降低较少,植物生长受抑制程度也较低。在氰酸盐胁迫下的植物生长试验表明,与对照植物相比,氰酸酶过表达植株的生长和生物量积累得到增强。本研究结果为开发新型环保型氰酸盐解毒植物修复系统提供了证据。

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