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转基因小麦根外分泌植酸酶可利用植酸盐增强磷吸收

Extracellular Secretion of Phytase from Transgenic Wheat Roots Allows Utilization of Phytate for Enhanced Phosphorus Uptake.

作者信息

Mohsin Samreen, Maqbool Asma, Ashraf Mehwish, Malik Kauser Abdulla

机构信息

Department of Biological Sciences, Forman Christian College (A Chartered University), Lahore, Pakistan.

出版信息

Mol Biotechnol. 2017 Aug;59(8):334-342. doi: 10.1007/s12033-017-0020-0.

DOI:10.1007/s12033-017-0020-0
PMID:28667571
Abstract

A significant portion of organic phosphorus comprises of phytates which are not available to wheat for uptake. Hence for enabling wheat to utilize organic phosphorus in form of phytate, transgenic wheat expressing phytase from Aspergillus japonicus under barley root-specific promoter was developed. Transgenic events were initially screened via selection media containing BASTA, followed by PCR and BASTA leaf paint assay after hardening. Out of 138 successfully regenerated T events, only 12 had complete constructs and thus further analyzed. Positive T1 transgenic plants, grown in sand, exhibited 0.08-1.77, 0.02-0.67 and 0.44-2.14 fold increase in phytase activity in root extracts, intact roots and external root solution, respectively, after 4 weeks of phosphorus stress. Based on these results, T2 generation of four best transgenic events was further analyzed which showed up to 1.32, 56.89, and 15.40 fold increase in phytase activity in root extracts, intact roots and external root solution, respectively, while in case of real-time PCR, maximum fold increase of 19.8 in gene expression was observed. Transgenic lines showed 0.01-1.18 fold increase in phosphorus efficiency along with higher phosphorus content when supplied phytate or inorganic phosphorus than control plants. Thus, this transgenic wheat may aid in reducing fertilizer utilization and enhancing wheat yield.

摘要

很大一部分有机磷由肌醇六磷酸组成,小麦无法吸收利用这些肌醇六磷酸。因此,为了使小麦能够利用肌醇六磷酸形式的有机磷,培育了在大麦根特异性启动子控制下表达来自日本曲霉植酸酶的转基因小麦。最初通过含有草丁膦的选择培养基筛选转基因事件,然后在炼苗后进行PCR和草丁膦叶喷检测。在138个成功再生的T代事件中,只有12个具有完整构建体,因此对其进行了进一步分析。在磷胁迫4周后,种植在沙子中的阳性T1转基因植株的根提取物、完整根系和根外溶液中的植酸酶活性分别提高了0.08 - 1.77倍、0.02 - 0.67倍和0.44 - 2.14倍。基于这些结果,对四个最佳转基因事件的T2代进行了进一步分析,结果显示根提取物、完整根系和根外溶液中的植酸酶活性分别提高了1.32倍、56.89倍和15.40倍,而在实时PCR检测中,基因表达的最大增幅为19.8倍。当提供肌醇六磷酸或无机磷时,转基因株系的磷效率提高了0.01 - 1.18倍,磷含量也高于对照植株。因此,这种转基因小麦可能有助于减少化肥使用并提高小麦产量。

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Plant Biotechnol J. 2017 Apr;15(4):415-422. doi: 10.1111/pbi.12636. Epub 2016 Nov 1.
2
Phytate (Inositol Hexakisphosphate) in Soil and Phosphate Acquisition from Inositol Phosphates by Higher Plants. A Review.土壤中的植酸盐(肌醇六磷酸)以及高等植物从肌醇磷酸盐中获取磷的研究综述
Plants (Basel). 2015 May 22;4(2):253-66. doi: 10.3390/plants4020253.
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The secretion of the bacterial phytase PHY-US417 by Arabidopsis roots reveals its potential for increasing phosphate acquisition and biomass production during co-growth.
Front Microbiol. 2020 Feb 14;11:188. doi: 10.3389/fmicb.2020.00188. eCollection 2020.
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Enzyme Res. 2018 Mar 11;2018:8240698. doi: 10.1155/2018/8240698. eCollection 2018.
拟南芥根部分泌的细菌植酸酶PHY-US417揭示了其在共生生长过程中增加磷获取和生物量生产的潜力。
Plant Biotechnol J. 2016 Sep;14(9):1914-24. doi: 10.1111/pbi.12552. Epub 2016 Mar 30.
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