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本文引用的文献

1
Boron bridging of rhamnogalacturonan-II, monitored by gel electrophoresis, occurs during polysaccharide synthesis and secretion but not post-secretion.鼠李半乳糖醛酸聚糖-II的硼桥连作用可通过凝胶电泳监测,其发生于多糖合成与分泌过程中,而非分泌后。
Plant J. 2014 Feb;77(4):534-46. doi: 10.1111/tpj.12403. Epub 2014 Jan 24.
2
Roles of BOR2, a boron exporter, in cross linking of rhamnogalacturonan II and root elongation under boron limitation in Arabidopsis.硼载体蛋白 2(BOR2)在拟南芥硼限制下调控半乳糖醛酸聚糖Ⅱ的交联和根伸长中的作用。
Plant Physiol. 2013 Dec;163(4):1699-709. doi: 10.1104/pp.113.225995. Epub 2013 Oct 10.
3
Mechano-chemical aspects of organ formation in Arabidopsis thaliana: the relationship between auxin and pectin.拟南芥器官形成的力化学方面:生长素与果胶的关系。
PLoS One. 2013;8(3):e57813. doi: 10.1371/journal.pone.0057813. Epub 2013 Mar 12.
4
Review: mechanisms for boron deficiency-mediated changes in plant water relations.综述:硼缺乏介导的植物水分关系变化的机制。
Plant Sci. 2013 Apr;203-204:25-32. doi: 10.1016/j.plantsci.2012.12.012. Epub 2012 Dec 29.
5
Polar localization and endocytic degradation of a boron transporter, BOR1, is dependent on specific tyrosine residues.硼转运蛋白 BOR1 的极性定位和内吞降解依赖于特定的酪氨酸残基。
Plant Signal Behav. 2012 Jan;7(1):46-9. doi: 10.4161/psb.7.1.18527.
6
VvBOR1, the grapevine ortholog of AtBOR1, encodes an efflux boron transporter that is differentially expressed throughout reproductive development of Vitis vinifera L.葡萄同源基因 VvBOR1 编码一个硼外排转运蛋白,在葡萄属植物生殖发育的各个阶段均有差异表达。
Plant Cell Physiol. 2012 Feb;53(2):485-94. doi: 10.1093/pcp/pcs001. Epub 2012 Jan 13.
7
Pectin-induced changes in cell wall mechanics underlie organ initiation in Arabidopsis.果胶诱导的细胞壁力学变化是拟南芥器官起始的基础。
Curr Biol. 2011 Oct 25;21(20):1720-6. doi: 10.1016/j.cub.2011.08.057. Epub 2011 Oct 6.
8
Boron deficiency and transcript level changes.硼缺乏和转录水平变化。
Plant Sci. 2011 Aug;181(2):85-9. doi: 10.1016/j.plantsci.2011.05.001. Epub 2011 May 11.
9
A novel protein family mediates Casparian strip formation in the endodermis.一个新的蛋白家族在内皮层中介导了凯氏带的形成。
Nature. 2011 May 19;473(7347):380-3. doi: 10.1038/nature10070.
10
BARREN STALK FASTIGIATE1 is an AT-hook protein required for the formation of maize ears.无叶舌状突起 1 是玉米穗形成所必需的 AT 钩蛋白。
Plant Cell. 2011 May;23(5):1756-71. doi: 10.1105/tpc.111.084590. Epub 2011 May 3.

硼外流转运蛋白ROTTEN EAR是玉米花序发育和育性所必需的。

The boron efflux transporter ROTTEN EAR is required for maize inflorescence development and fertility.

作者信息

Chatterjee Mithu, Tabi Zara, Galli Mary, Malcomber Simon, Buck Amy, Muszynski Michael, Gallavotti Andrea

机构信息

Waksman Institute, Rutgers University, Piscataway, New Jersey 08854-8020.

Section of Cell and Developmental Biology, University of California San Diego, La Jolla, California 92093-0116.

出版信息

Plant Cell. 2014 Jul;26(7):2962-77. doi: 10.1105/tpc.114.125963. Epub 2014 Jul 17.

DOI:10.1105/tpc.114.125963
PMID:25035400
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4145125/
Abstract

Although boron has a relatively low natural abundance, it is an essential plant micronutrient. Boron deficiencies cause major crop losses in several areas of the world, affecting reproduction and yield in diverse plant species. Despite the importance of boron in crop productivity, surprisingly little is known about its effects on developing reproductive organs. We isolated a maize (Zea mays) mutant, called rotten ear (rte), that shows distinct defects in vegetative and reproductive development, eventually causing widespread sterility in its inflorescences, the tassel and the ear. Positional cloning revealed that rte encodes a membrane-localized boron efflux transporter, co-orthologous to the Arabidopsis thaliana BOR1 protein. Depending on the availability of boron in the soil, rte plants show a wide range of phenotypic defects that can be fully rescued by supplementing the soil with exogenous boric acid, indicating that rte is crucial for boron transport into aerial tissues. rte is expressed in cells surrounding the xylem in both vegetative and reproductive tissues and is required for meristem activity and organ development. We show that low boron supply to the inflorescences results in widespread defects in cell and cell wall integrity, highlighting the structural importance of boron in the formation of fully fertile reproductive organs.

摘要

尽管硼的自然丰度相对较低,但它是植物必需的微量营养元素。硼缺乏在世界多个地区导致主要作物减产,影响多种植物物种的繁殖和产量。尽管硼对作物生产力很重要,但令人惊讶的是,人们对其对发育中的生殖器官的影响知之甚少。我们分离出了一种玉米(Zea mays)突变体,称为“烂穗”(rte),它在营养和生殖发育方面表现出明显缺陷,最终导致其花序、雄穗和雌穗普遍不育。定位克隆表明,rte编码一种膜定位的硼外流转运蛋白,与拟南芥BOR1蛋白是共直系同源物。根据土壤中硼的可利用性,rte植株表现出广泛的表型缺陷,通过向土壤中添加外源硼酸可以完全挽救这些缺陷,这表明rte对于硼向地上组织的转运至关重要。rte在营养组织和生殖组织的木质部周围细胞中表达,是分生组织活性和器官发育所必需的。我们表明,向花序供应低硼会导致细胞和细胞壁完整性出现广泛缺陷,突出了硼在形成完全可育生殖器官中的结构重要性。