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本文引用的文献

1
Gene families and evolution of trehalose metabolism in plants.植物中海藻糖代谢的基因家族与进化
Funct Plant Biol. 2007 Jun;34(6):550-563. doi: 10.1071/FP06315.
2
Accumulation of soluble carbohydrates, trehalase and sucrose synthase in effective (Fix+) and ineffective (Fix-) nodules of soybean cultivars that differentially nodulate with Bradyrhizobium japonicum.在与日本慢生根瘤菌形成不同结瘤情况的大豆品种的有效(固氮阳性)和无效(固氮阴性)根瘤中可溶性碳水化合物、海藻糖酶和蔗糖合酶的积累。
Funct Plant Biol. 2003 Oct;30(9):965-971. doi: 10.1071/FP03002.
3
Overexpression of the trehalase gene AtTRE1 leads to increased drought stress tolerance in Arabidopsis and is involved in abscisic acid-induced stomatal closure.海藻糖酶基因 AtTRE1 的过表达导致拟南芥耐旱性增强,并参与脱落酸诱导的气孔关闭。
Plant Physiol. 2013 Mar;161(3):1158-71. doi: 10.1104/pp.112.211391. Epub 2013 Jan 22.
4
Down-regulation of PvTRE1 enhances nodule biomass and bacteroid number in the common bean.下调 PvTRE1 可增强菜豆中的根瘤生物量和类菌体数量。
New Phytol. 2013 Jan;197(1):194-206. doi: 10.1111/nph.12002. Epub 2012 Nov 1.
5
Biochemical properties of an extracellular trehalase from Malbranchea pulchella var. Sulfurea.马布兰奇氏硫色变种胞外海藻糖酶的生化性质。
J Microbiol. 2011 Oct;49(5):809-15. doi: 10.1007/s12275-011-0532-4. Epub 2011 Nov 9.
6
MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods.MEGA5:用于最大似然法、进化距离法和最大简约法的分子进化遗传学分析。
Mol Biol Evol. 2011 Oct;28(10):2731-9. doi: 10.1093/molbev/msr121. Epub 2011 May 4.
7
Long-term effects of the trehalase inhibitor trehazolin on trehalase activity in locust flight muscle.三羟甲基氨基甲烷抑制剂海藻糖酶在蝗虫飞行肌海藻糖酶活性中的长期影响。
J Exp Biol. 2010 Nov 15;213(Pt 22):3852-7. doi: 10.1242/jeb.042028.
8
Trehalase-2 protein contributes to trehalase activity enhanced by diapause hormone in developing ovaries of the silkworm, Bombyx mori.海藻糖酶-2 蛋白有助于滞育激素增强家蚕发育卵巢中海藻糖酶的活性。
J Insect Physiol. 2011 May;57(5):608-13. doi: 10.1016/j.jinsphys.2010.10.001. Epub 2010 Oct 27.
9
The catalytic and other residues essential for the activity of the midgut trehalase from Spodoptera frugiperda.鳞翅目夜蛾科昆虫中肠海藻糖酶活性所必需的催化及其他残基。
Insect Biochem Mol Biol. 2010 Oct;40(10):733-41. doi: 10.1016/j.ibmb.2010.07.006. Epub 2010 Aug 5.
10
A membrane-bound trehalase from Chironomus riparius larvae: purification and sensitivity to inhibition.摇蚊幼虫膜结合海藻糖酶的纯化及其对抑制的敏感性。
Glycobiology. 2010 Sep;20(9):1186-95. doi: 10.1093/glycob/cwq087. Epub 2010 Jun 11.

海藻糖酶:被忽视的碳代谢调控因子?

Trehalases: a neglected carbon metabolism regulator?

机构信息

Departamento de Biología Molecular de Plantas; Instituto de Biotecnología/Universidad Nacional Autónoma de México; Cuernavaca, Morelos, México.

出版信息

Plant Signal Behav. 2013 Jul;8(7):e24778. doi: 10.4161/psb.24778. Epub 2013 May 1.

DOI:10.4161/psb.24778
PMID:23656873
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3909059/
Abstract

Trehalases are enzymes that carry out the degradation of the non-reducing disaccharide trehalose. Trehalase phylogeny unveiled three major branches comprising those from bacteria; plant and animals; and those from fungal origin. Comparative analysis between several deduced trehalase structures and the crystallographic structure of bacterial trehalase indicated that these enzyme's structures are highly conserved in spite of the marked differences found at the sequence level. These results suggest a bacterial origin for the trehalases in contrast to an eukaryotic origin, as previously proposed. Trehalases structural analysis showed that they contain six discrete motifs which are characteristic of each phylogenetic group, suggesting a positive evolutionary selection pressure for the structural conservation. Interestingly, trehalases are involved in multiple regulatory functions: In the response against pathogens (plant-pathogen interactions); the regulation of bacterial viability in symbiotic interactions (legume-Rhizobium); carbon partitioning in plants; regulating chitin biosynthesis, as well as energy supply in the hemolymph for flight, in insects. In summary, trehalases seem to have a prokaryotic origin and play an active role in carbon metabolism and other diverse regulatory effects on cell physiology.

摘要

海藻糖酶是能够分解非还原性二糖海藻糖的酶。海藻糖酶系统发育揭示了三个主要分支,包括来自细菌、植物和动物的分支,以及来自真菌的分支。对几种推断的海藻糖酶结构与细菌海藻糖酶的晶体结构进行比较分析表明,尽管在序列水平上存在显著差异,但这些酶的结构高度保守。这些结果表明,海藻糖酶的细菌起源与先前提出的真核起源相反。海藻糖酶结构分析表明,它们包含六个离散的基序,每个基序都具有系统发育组的特征,这表明结构保守受到积极的进化选择压力。有趣的是,海藻糖酶参与多种调节功能:在对病原体的反应中(植物-病原体相互作用);在共生相互作用中调节细菌活力(豆科植物-根瘤菌);在植物中进行碳分配;调节几丁质生物合成,以及为昆虫的飞行提供血淋巴中的能量供应。总之,海藻糖酶似乎具有原核起源,并在碳代谢和对细胞生理学的其他多种调节作用中发挥积极作用。