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一种ATP结合盒转运蛋白HvABCB25赋予野生大麦铝解毒能力。

An ATP binding cassette transporter HvABCB25 confers aluminum detoxification in wild barley.

作者信息

Liu Wenxing, Feng Xue, Cao Fangbin, Wu Dezhi, Zhang Guoping, Vincze Eva, Wang Yizhou, Chen Zhong-Hua, Wu Feibo

机构信息

Department of Agronomy, College of Agriculture and Biotechnology, Zijingang Campus, Zhejiang University, Hangzhou 310058, China.

Department of Agronomy, College of Agriculture and Biotechnology, Zijingang Campus, Zhejiang University, Hangzhou 310058, China; Jiangsu Co-Innovation Center for Modern Production Technology of Grain Crops, Yangzhou University, Yangzhou 225009, China.

出版信息

J Hazard Mater. 2021 Jan 5;401:123371. doi: 10.1016/j.jhazmat.2020.123371. Epub 2020 Jul 3.

Abstract

Aluminum (Al) stress in acid soils is one of the major factors limiting crop productivity. ATP binding cassette (ABC) transporters have numerous roles in plants, but the link between ABCB protein subfamily and plant Al tolerance is still elusive. Here, we identified and characterized a novel tonoplast HvABCB25 in barley root cells. HvABCB25 was up-regulated in the transcriptome of Al-tolerant wild barley XZ16 under Al treatment and was highly Al-inducible in root tips. ABCB25 is originated from Streptophyte algae and evolutionarily conserved in land plants. Moreover, silencing HvABCB25 in Al-tolerant XZ16 led to significant suppression of Al tolerance as indicated by significantly reduced root growth and enhanced Al accumulation in root cells. Conversely, HvABCB25-overexpressed plants and Golden Promise showed similar Al content in whole roots and in cell sap, but the overexpression lines exhibited significantly higher Al-induced relative root growth and dry weight. Al florescence in cytosol of root cells were significantly less in overexpression lines than that in GP. These results indicated that overexpressing HvABCB25 may be responsible for Al detoxification via vacuolar Al sequestration in barley roots, providing useful insight into the genetic basis for a new Al detoxification mechanism towards plant Al tolerance in acid soils.

摘要

酸性土壤中的铝(Al)胁迫是限制作物生产力的主要因素之一。ATP结合盒(ABC)转运蛋白在植物中具有多种作用,但ABCB蛋白亚家族与植物耐铝性之间的联系仍不清楚。在这里,我们在大麦根细胞中鉴定并表征了一种新的液泡膜HvABCB25。HvABCB25在铝处理下耐铝野生大麦XZ16的转录组中上调,并且在根尖中高度受铝诱导。ABCB25起源于链形植物藻类,在陆地植物中进化保守。此外,在耐铝的XZ16中沉默HvABCB25导致耐铝性显著抑制,表现为根生长显著减少和根细胞中铝积累增加。相反,HvABCB25过表达植物和Golden Promise在整个根和细胞液中的铝含量相似,但过表达系表现出显著更高的铝诱导相对根生长和干重。过表达系根细胞胞质溶胶中的铝荧光明显低于Golden Promise。这些结果表明,过表达HvABCB25可能通过大麦根中液泡对铝的螯合作用来实现铝解毒,为酸性土壤中植物耐铝性新的铝解毒机制的遗传基础提供了有用的见解。

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