|本期目录/Table of Contents|

[1]李岳峰,居立海,张来运,等.水分胁迫下丛枝菌根对水稻/绿豆间作系统 作物生长和氮磷吸收的影响[J].江苏农业科学,2013,41(04):58-61.
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水分胁迫下丛枝菌根对水稻/绿豆间作系统 作物生长和氮磷吸收的影响
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《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第41卷
期数:
2013年04期
页码:
58-61
栏目:
育种栽培与生理生化
出版日期:
2013-04-30

文章信息/Info

Title:
-
作者:
李岳峰1居立海2张来运3徐国华4
1.江苏省洪泽县农业委员会,江苏洪泽 223100; 2.江苏省洪泽县土壤肥料技术指导站,江苏洪泽 223100; 3.江苏省洪泽县农业技术推广站,江苏洪泽 223100; 4.南京农业大学资源与环境科学学院,江苏南京 210095
Author(s):
-
关键词:
丛枝菌根营养生长水分胁迫水稻绿豆间作
Keywords:
-
分类号:
S511.01
DOI:
-
文献标志码:
-
摘要:
采用土培试验方法,研究了不同土壤水分条件下接种丛枝菌根真菌(AMF)苏格兰球囊菌(Glomus caledonium)对水稻/绿豆间作系统营养和生理代谢及抗旱性的影响。结果表明,水分胁迫严重抑制植株的生长,但对AMF的生长发育和侵染影响不大。接种AMF不仅有利于植株对氮、磷的吸收,改善了植株的水分状况,增加了可溶性糖累积,降低了脯氨酸含量,减轻水分胁迫对植株生长的抑制程度。说明菌根可以改善植株的水分状况,使叶片相对含水量增加。
Abstract:
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参考文献/References:

[1]Ruiz-Lozano J M,Azcon R. Haphal contribution to water uptake in mycorrhizal plant as affected by the fungial species and water status[J]. Physiologia Plantarum,1995,95:472-478.
[2]Goicoechean N,Antolin M C,Sanchez-diaz M.Gas exchange is related to drought[J]. Physiologia Plantarum,1997,100:989-997.
[3]贺学礼,李生秀. 不同VA菌根真菌对玉米生长及抗早性的影响[J]. 西北农业大学学报,1999,27(6):49-53.
[4]Auge R M. Water relations,drought and vesicular-arbuscular mycorrhizal symbiosis[J]. Mycorrhiza,2001,11:3-42.
[5]Marulanda A,Azcon R,Ruiz-Lozno J M. Contribution of six arbuscular mycorrhizal fungi isolates to water uptake by Lactuca sativa L. plants under drought stress[J]. Physiologia Plantarum,2003,119:526-533.
[6]林先贵,郝文英,施亚琴.VA菌根对植物耐早、涝能力的影响[J]. 土壤,1992,24(3):142-145.
[7]Kubikova E,Moore J L,Ownlew B H,et al. Mycorrhizal impact on osmotic adjustment in Ocimum basilicum during a lethal drying episode[J]. J Plant Physiol,2001,158:1227-1230.
[8]Davies F T,Potter J R,Linderman P G. Mycorrhiza and repeated drought exposure affect drought resistance and extraradical hyphae development of pepper plant s independent of plant size and nutrient content[J]. J Plant Physiol,1992,139(3):289-294.
[9]Alguacil M,Caravaca F,Hernandez D. Effect of arbuscular mycorrhizae and induced drought stress on antioxidant enzyme and nitrate reductase activities in Juniperus oxycedrus L. grown in a composted sewage sludge-amended semi-arid soil[J]. Plant soil,2006,279:209-218.
[10]Ruiz-Lozano J M,Collados C,Barea J M,et al. Cloning of cDNA encoding SODs from lettuce plants which show differential regulation by arbuscular mycorrhizal symbiosis and by drought stress[J]. J Experi Bota,2001,52:2241-2242
[11]夏建国,李静.利用从枝菌根真菌(AMF)提高植物抗旱性的研究进展[J]. 中国农学通报,2005,21(2):326-329.
[12]王曙光,林先贵,施亚琴. 丛枝菌根AM与植物的抗逆性[J]. 生态学杂志,2001,20(3):27-30.
[13]Phillip J M,Hayman D S. Improved procedures for clearing roots and staining parasitic and vesicular arbuscular mycorrhizal fungi for rapid assessment of infection[J]. T Brit Myco Soc,1970,55:158-160.
[14]Trouvelot A,Kough J L,Gianinazzi-Pearson V. Mesure de taux de mycorhization VA dun systeme radiculaire. Recherche de méthodes destimation ayant une signification fonctionnelle[C]//Gianinazzi-Pearson V,Gianinazzi S. Physiological and genetical aspects of mycorrhizae. Paris:INRA,1986:217-221.
[15]White D A,Beadle C L,Worledge D. Leaf water relations of Eucalyptus globules ssp. globules and E.nitens:seasonal,drought and species effects[J]. Tree Physiol,1996,16(5):469-476
[16]Muthukumar T,Uaiyan K. Influence of native endomycorrhizae,soil flooding and nurse plant on mycorrhizal status and growth of purple nutsedge(Cyperus rotundus L.)[J]. Agri Ecosys Environ,1997,6(1):51-58.
[17]Fagbola,Osonubi O,Mulongoy K,et al. Effects of drought stress and arbuscular mycorrhiza on the growth of Gliricidia seplum (Jacq). Walp,and Leucaena leucocephala (Lam.)de Wit. in simulated eroded soil conditions[J]. Mycorrhiza,2001,11:215-223.
[18]Dutra P V,Abad M,Alnela V,et al. Auxin interaction with the vesicular-arbuscular mycorrhizal fungus Glomus intraradics Schenck & Smith improves vegetative growth of two citrus rootstocks[J]. Sciential Horticuturae,1996,66:77-83.
[19]宋勇春,冯固,李晚林. 接种不同VA菌根真菌对红叶草利用不同磷源的影响[J]. 生态学报,2001,21(9):1506-1511.
[20]吴强盛,夏仁学. 从枝菌根真菌对柑桔嫁接苗积/红肉脐橙抗旱性的影响[J]. 应用生态学报,2005,16(5):865-869.
[21]Hodge A,Campbell C D,Fitter A H. An arbuscular mycorrhizal fungus accelerates decomposition and acpuires nitrogen directly from organic material[J]. Nature,2001,412:297-299.
[22]盖京苹,刘润进,李晓林. 山东省不同植被区内野生植物根围AM真菌的生态分布[J]. 生态学杂志,2000,19(4):18-22.
[23]李淑敏,李隆,张福锁. 从枝菌根真菌和根瘤菌对蚕豆吸收磷和氮的促进作用[J]. 中国农业大学学报,2004,9(1):11-15.
[24]Subramanian K S,Charest C. Influence of arbuscular mycorrhizae on the metabolism under drought stress[J]. Mycorrhiza,1995,5:273-278.
[25]吴强盛,夏仁学. 水分胁迫下丛枝菌根真菌对积实生苗生长和渗透调节物质含量的影响[J]. 植物生理与分子生物学学报,2004,30(5):583-588.
[26]任安芝,高玉葆,李侠. 内生真菌感染对黑麦草若于抗旱生理特征的影响[J]. 应用与环境生物学报.2002, 8(5):535-539.
[27]Trotel-Aziz P,Niogret M F,Larher F. Pronline level is partly under the control of abcisic acid in canola leaf discs during recovery from hyper-osmotic stress[J]. Physiologia Plantarum,2000,110:376-383.
[28]任文伟,钱吉,马骏,等. 不同地理种群羊草在聚乙二醇胁迫下含水量和游离脯氨酸含量的比较[J]. 生态学报,2000,20(2):349-352.
[29]Keller F,Ludlow M M. Carbohydrate metabolism in drought-stressed leaves of pigeonpea(Cajanus cajan)[J]. J Experi Bot,1993,44(8):1351-1359.
[30]陈世苹,高玉葆,梁宇,等. 水分胁迫下内生真菌感染对黑麦草叶内游离脯氨酸和脱落酸含量的影响[J]. 生态学报,2001,21(12):1964-1972.
[31]陈吉虎. 五种树种的苗期抗旱特性研究[D]. 泰安:山东农业大学,2003
[32]Auge R M. Water relation,drought and vesicular-abuscular mycorrhizal symbiosis[J]. Mycorrhiza,2001,11(1):3-42.

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备注/Memo

备注/Memo:
收稿日期:2012-12-25 基金项目:国家“863”计划(编号:2006AA10Z134)。 作者简介:李岳峰(1971—),男,湖南常德人,博士,主要从事菌根营养研究。Tel:(0517)87239753;E-mail:yfli1971@126.comn。 通信作者:徐国华,教授,博士生导师,主要从事植物分子生物学研究。Tel:(025)84396246;E-mail:ghxu@njau.edu.cn。
更新日期/Last Update: 1900-01-01