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Signal exchange in plant-microbe interactions.

作者信息

Halverson L J, Stacey G

出版信息

Microbiol Rev. 1986 Jun;50(2):193-225. doi: 10.1128/mr.50.2.193-225.1986.

DOI:10.1128/mr.50.2.193-225.1986
PMID:3523189
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC373064/
Abstract
摘要

相似文献

1
Signal exchange in plant-microbe interactions.植物-微生物相互作用中的信号交换。
Microbiol Rev. 1986 Jun;50(2):193-225. doi: 10.1128/mr.50.2.193-225.1986.
2
[Phytoalexins and their significance for the resistance of higher plants to harmful organisms].
Pharm Unserer Zeit. 1992 May;21(3):99-104. doi: 10.1002/pauz.19920210307.
3
Structure and function of plant cell wall polysaccharides.植物细胞壁多糖的结构与功能。
J Cell Sci Suppl. 1985;2:203-17. doi: 10.1242/jcs.1985.supplement_2.11.
4
Structure and function of the primary cell walls of plants.植物初生细胞壁的结构与功能。
Annu Rev Biochem. 1984;53:625-63. doi: 10.1146/annurev.bi.53.070184.003205.
5
[The role of phytoalexins in natural plant resistance].[植保素在植物天然抗性中的作用]
Postepy Biochem. 1991;37(2):104-12.
6
Oligosaccharins involved in plant growth and host-pathogen interactions.参与植物生长和宿主-病原体相互作用的寡糖素。
Biochem Soc Symp. 1994;60:89-94.
7
Phytoalexins.植物抗毒素
Arch Biochem Biophys. 1985 Feb 1;236(2):455-72. doi: 10.1016/0003-9861(85)90648-4.
8
Phytoalexins as part of induced defence reactions in plants: their elicitation, function and metabolism.植物抗毒素作为植物诱导防御反应的一部分:其诱导、功能及代谢
Ciba Found Symp. 1990;154:140-53; discussion 153-6. doi: 10.1002/9780470514009.ch11.
9
Mechanisms of induced resistance in plants.植物诱导抗性的机制
Annu Rev Microbiol. 1983;37:51-79. doi: 10.1146/annurev.mi.37.100183.000411.
10
Plant-microbe interactions: chemical diversity in plant defense.植物与微生物的相互作用:植物防御中的化学多样性
Science. 2009 May 8;324(5928):746-8. doi: 10.1126/science.1171661.

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A novel function of N-signaling in plants with special reference to interaction influencing plant growth, nitrogen use efficiency, and cross talk with plant hormones.N信号在植物中的一种新功能,特别涉及影响植物生长、氮利用效率以及与植物激素相互作用的相互关系。
3 Biotech. 2019 Mar;9(3):109. doi: 10.1007/s13205-019-1638-3. Epub 2019 Feb 28.
2
Comparative Transcriptome Analysis Reveals Cool Virulence Factors of Ralstonia solanacearum Race 3 Biovar 2.比较转录组分析揭示了青枯雷尔氏菌3号生理小种2型菌株的低温致病因子
PLoS One. 2015 Oct 7;10(10):e0139090. doi: 10.1371/journal.pone.0139090. eCollection 2015.
3
Effects of the Bradyrhizobium japonicum waaL (rfaL) Gene on Hydrophobicity, Motility, Stress Tolerance, and Symbiotic Relationship with Soybeans.日本慢生根瘤菌 waaL(rfaL)基因对疏水性、运动性、胁迫耐受性以及与大豆共生关系的影响。
Int J Mol Sci. 2015 Jul 23;16(8):16778-91. doi: 10.3390/ijms160816778.
4
Does plant immunity play a critical role during initiation of the legume-rhizobium symbiosis?植物免疫在豆科植物与根瘤菌共生关系的起始过程中是否发挥关键作用?
Front Plant Sci. 2015 Jun 2;6:401. doi: 10.3389/fpls.2015.00401. eCollection 2015.
5
Molecular characterization of the virulence gene virA of the Agrobacterium tumefaciens octopine Ti plasmid.农杆菌 octopine Ti 质粒毒力基因 virA 的分子特征。
Plant Mol Biol. 1987 Nov;9(6):635-45. doi: 10.1007/BF00020539.
6
Molecular characterization of the virulence gene virA of the Agrobacterium tumefaciens octopine Ti plasmid.农杆菌 octopine Ti 质粒毒力基因 virA 的分子特征。
Plant Mol Biol. 1988 Mar;11(2):227-37. doi: 10.1007/BF00015676.
7
Enhanced nodule initiation on alfalfa by wild-typeRhizobium meliloti co-inoculated withnod gene mutants and other bacteria.野生型根瘤菌 meliloti 与nod 基因突变体和其他细菌共同接种苜蓿可增强结瘤起始。
Planta. 1988 Jun;174(3):385-95. doi: 10.1007/BF00959525.
8
Host-specificity mutants of Rhizobium meliloti have additive effects in situ on initiation of alfalfa nodules.苜蓿根瘤菌的宿主特异性突变体能在原位对苜蓿根瘤的起始产生累加效应。
Planta. 1990 Apr;181(1):109-16. doi: 10.1007/BF00202332.
9
Differential accumulation of hydroxyproline-rich glycoproteins in bean root nodule cells infected with a wild-type strain or a C4-dicarboxylic acid mutant of Rhizobium leguminosarum bv. phaseoli.在感染根瘤菌野毒株或 C4-二羧酸突变株的菜豆根瘤细胞中,羟脯氨酸丰富的糖蛋白的差异积累。
Planta. 1991 Jul;184(4):457-67. doi: 10.1007/BF00197893.
10
Fungal elicitors induce a transient release of active oxygen species from cultured spruce cells that is dependent on Ca(2+) and protein-kinase activity.真菌诱导物诱导培养云杉细胞瞬时释放活性氧,该过程依赖于 Ca(2+) 和蛋白激酶活性。
Planta. 1992 Apr;187(1):136-41. doi: 10.1007/BF00201635.

本文引用的文献

1
Cell walls of crown-gall tumors and embryonic plant tissues lack agrobacterium adherence sites.冠瘿瘤和胚性植物组织的细胞壁缺乏农杆菌附着位点。
Science. 1978 Mar 10;199(4333):1075-8. doi: 10.1126/science.199.4333.1075.
2
Specific elicitors of plant phytoalexin production: detenninants of race specificity in pathogens?植物抗毒素产生的特定激发子:病原菌种特异性的决定因素?
Science. 1975 Jan 10;187(4171):74-5. doi: 10.1126/science.187.4171.74.
3
Lectins: a possible basis for specificity in the Rhizobium--legume root nodule symbiosis.凝集素:根瘤菌-豆科植物根瘤共生特异性的可能基础。
Science. 1974 Jul 19;185(4147):269-71. doi: 10.1126/science.185.4147.269.
4
Agglutination of plant protoplasts by fungal cell wall glucans.植物原生质体通过真菌细胞壁葡聚糖的凝集。
Science. 1978 Jul 28;201(4353):364-5. doi: 10.1126/science.201.4353.364.
5
Agglutinin from Alfalfa Necessary for Binding and Nodulation by Rhizobium meliloti.苜蓿凝集素是苜蓿根瘤菌结合与结瘤所必需的。
Science. 1981 Sep 25;213(4515):1513-5. doi: 10.1126/science.213.4515.1513.
6
Rapid switching of plant gene expression induced by fungal elicitor.真菌诱导子引发植物基因表达的快速转换。
Science. 1985 Mar 8;227(4691):1240-3. doi: 10.1126/science.227.4691.1240.
7
Eicosapentaenoic and Arachidonic Acids from Phytophthora infestans Elicit Fungitoxic Sesquiterpenes in the Potato.疫霉脂肪酸激发马铃薯产生真菌毒性倍半萜
Science. 1981 Apr 3;212(4490):67-9. doi: 10.1126/science.212.4490.67.
8
Soybean lines lacking the 120,000-dalton seed lectin.缺乏 120,000 道尔顿种子凝集素的大豆品系。
Science. 1978 Jun 16;200(4347):1277-9. doi: 10.1126/science.200.4347.1277.
9
A Structural Comparison of the Acidic Extracellular Polysaccharides from Rhizobium trifolii Mutants Affected in Root Hair Infection.根瘤菌三叶草突变体酸性胞外多糖在根毛侵染中受影响的结构比较。
Plant Physiol. 1986 Jan;80(1):134-7. doi: 10.1104/pp.80.1.134.
10
A Supernodulation and Nitrate-Tolerant Symbiotic (nts) Soybean Mutant.一个超级结瘤和耐硝酸盐共生(nts)大豆突变体。
Plant Physiol. 1985 May;78(1):34-40. doi: 10.1104/pp.78.1.34.