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本文引用的文献

1
Coevolution of roots and mycorrhizas of land plants.陆地植物根系与菌根的协同进化。
New Phytol. 2002 May;154(2):275-304. doi: 10.1046/j.1469-8137.2002.00397.x.
2
Sulphate uptake and xylem loading of mycorrhizal beech roots.菌根山毛榉根对硫酸盐的吸收及木质部装载
New Phytol. 1998 Oct;140(2):319-329. doi: 10.1046/j.1469-8137.1998.00266.x.
3
Effect of nitrogen species supply and mycorrhizal colonization on organosulfur and phenolic compounds in onions.氮素供应和菌根侵染对洋葱有机硫和酚类化合物的影响。
J Agric Food Chem. 2008 May 28;56(10):3538-45. doi: 10.1021/jf073337u. Epub 2008 May 6.
4
Plant nutrient-acquisition strategies change with soil age.植物的养分获取策略会随着土壤年代的变化而改变。
Trends Ecol Evol. 2008 Feb;23(2):95-103. doi: 10.1016/j.tree.2007.10.008. Epub 2008 Jan 11.
5
Sulfur metabolism in plants: are trees different?植物中的硫代谢:树木有何不同?
Plant Biol (Stuttg). 2007 Sep;9(5):620-37. doi: 10.1055/s-2007-965248.
6
Sulfate transport in Aspergillus nidulans: a novel gene encoding alternative sulfate transporter.构巢曲霉中的硫酸盐转运:一个编码替代性硫酸盐转运蛋白的新基因。
Fungal Genet Biol. 2007 Aug;44(8):715-25. doi: 10.1016/j.fgb.2006.11.007. Epub 2007 Jan 16.
7
Phylogenetic distribution and evolution of mycorrhizas in land plants.陆地植物菌根的系统发育分布与演化
Mycorrhiza. 2006 Jul;16(5):299-363. doi: 10.1007/s00572-005-0033-6. Epub 2006 May 6.
8
The role of choline sulphate in the sulphur metabolism of fungi.硫酸胆碱在真菌硫代谢中的作用。
Biochem J. 1960 Nov;77(2):305-15. doi: 10.1042/bj0770305.
9
Characteristics of sulfate transport across plasmalemma and tonoplast of carrot root cells.硫酸根跨胡萝卜根细胞质膜和液泡膜运输的特性
Plant Physiol. 1983 May;72(1):204-11. doi: 10.1104/pp.72.1.204.
10
Regulation of sulfate transport in filamentous fungi.丝状真菌中硫酸盐转运的调控。
Plant Physiol. 1970 Nov;46(5):720-7. doi: 10.1104/pp.46.5.720.

通过丛枝菌根的硫转移

Sulfur transfer through an arbuscular mycorrhiza.

作者信息

Allen James W, Shachar-Hill Yair

机构信息

Department of Plant Biology, Michigan State University, East Lansing, Michigan 48824, USA.

出版信息

Plant Physiol. 2009 Jan;149(1):549-60. doi: 10.1104/pp.108.129866. Epub 2008 Oct 31.

DOI:10.1104/pp.108.129866
PMID:18978070
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2613693/
Abstract

Despite the importance of sulfur (S) for plant nutrition, the role of the arbuscular mycorrhizal (AM) symbiosis in S uptake has received little attention. To address this issue, 35S-labeling experiments were performed on mycorrhizas of transformed carrot (Daucus carota) roots and Glomus intraradices grown monoxenically on bicompartmental petri dishes. The uptake and transfer of 35SO4(2-) by the fungus and resulting 35S partitioning into different metabolic pools in the host roots was analyzed when altering the sulfate concentration available to roots and supplying the fungal compartment with cysteine (Cys), methionine (Met), or glutathione. Additionally, the uptake, transfer, and partitioning of 35S from the reduced S sources [35S]Cys and [35S]Met was determined. Sulfate was taken up by the fungus and transferred to mycorrhizal roots, increasing root S contents by 25% in a moderate (not growth-limiting) concentration of sulfate. High sulfate levels in the mycorrhizal root compartment halved the uptake of 35SO4(2-) from the fungal compartment. The addition of 1 mm Met, Cys, or glutathione to the fungal compartment reduced the transfer of sulfate by 26%, 45%, and 80%, respectively, over 1 month. Similar quantities of 35S were transferred to mycorrhizal roots whether 35SO4(2-), [35S]Cys, or [35S]Met was supplied in the fungal compartment. Fungal transcripts for putative S assimilatory genes were identified, indicating the presence of the trans-sulfuration pathway. The suppression of fungal sulfate transfer in the presence of Cys coincided with a reduction in putative sulfate permease and not sulfate adenylyltransferase transcripts, suggesting a role for fungal transcriptional regulation in S transfer to the host. A testable model is proposed describing root S acquisition through the AM symbiosis.

摘要

尽管硫(S)对植物营养很重要,但丛枝菌根(AM)共生在硫吸收中的作用却很少受到关注。为了解决这个问题,在双隔层培养皿中对转化胡萝卜(胡萝卜属)根和单菌培养的根内球囊霉的菌根进行了35S标记实验。当改变根系可利用的硫酸盐浓度,并向真菌隔室供应半胱氨酸(Cys)、蛋氨酸(Met)或谷胱甘肽时,分析了真菌对35SO4(2-)的吸收和转运以及由此产生的35S在宿主根中分配到不同代谢库的情况。此外,还测定了来自还原态硫源[35S]Cys和[35S]Met的35S的吸收、转运和分配情况。真菌吸收硫酸盐并将其转移到菌根根中,在中等(非生长限制)硫酸盐浓度下,根系硫含量增加了25%。菌根根隔室中的高硫酸盐水平使真菌隔室中35SO4(2-)的吸收减半。在真菌隔室中添加1 mM Met、Cys或谷胱甘肽,在1个月内分别使硫酸盐的转运减少了26%、45%和80%。无论在真菌隔室中供应35SO4(2-)、[35S]Cys还是[35S]Met,转移到菌根根中的35S量相似。鉴定出了假定的硫同化基因的真菌转录本,表明存在转硫化途径。在Cys存在下真菌硫酸盐转运的抑制与假定的硫酸盐通透酶转录本的减少而非硫酸腺苷转移酶转录本的减少相一致,这表明真菌转录调控在硫向宿主转移中起作用。提出了一个可测试的模型,描述了通过AM共生获取根系硫的过程。