Micronutrient enrichment mediated by plant-microbe interactions and rice cultivation practices

被引:57
作者
Adak, Anurup [1 ]
Prasanna, Radha [1 ]
Babu, Santosh [1 ]
Bidyarani, Ngangom [1 ]
Verma, Shikha [1 ]
Pal, Madan [2 ]
Shivay, Yashbir Singh [2 ]
Nain, Lata [1 ]
机构
[1] ICAR Indian Agr Res Inst IARI, Div Microbiol, New Delhi 110012, India
[2] Indian Agr Res Inst, Div Agron, New Delhi, India
关键词
Anabaena; biofortification; cyanobacteria; enzyme activity; rice crop; BLUE-GREEN-ALGAE; INTENSIFICATION SRI; NUTRIENT-UPTAKE; ZINC UPTAKE; GROWTH; SOIL; TRICHODERMA; COPPER; IRON; CYANOBACTERIA;
D O I
10.1080/01904167.2016.1148723
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
A field experiment was conducted to evaluate the effect of different plant growth promoting microorganisms (PGPM) on micronutrient enrichment of rice crops grown under conventional (flooded) and SRI (System of Rice Intensification) practices. Significant differences were recorded among treatments and cultivation practices in terms of soil microbial activity reflected in enhanced nutrient uptake, enzyme activity, and yield. The Anabaena-based biofilm inoculants were particularly superior under both methods of cultivation, leading to 13-46% enhancement of iron and 15-41% enhancement of zinc in rice grains over uninoculated controls. SRI was found to be superior in terms of enhancing the concentration of zinc, copper, iron, and manganese (Zn, Cu, Fe and Mn), particularly in grains, and significant in increasing the activity of defense- and pathogenesis-related enzymes and yield parameters. This study illustrates the utility of cyanobacteria-based inoculants for both methods of rice cultivation and their significant interactions with the plant, leading to micronutrient enrichment of rice grains. Such formulations can complement the current biofortification strategies and help in combating the problems of malnutrition globally.
引用
收藏
页码:1216 / 1232
页数:17
相关论文
共 71 条
[1]  
[Anonymous], 1954, ESTIMATION AVAILABLE
[2]   Mining genomes of marine cyanobacteria for elements of zinc homeostasis [J].
Barnett, James P. ;
Millard, Andrew ;
Ksibe, Amira Z. ;
Scanlan, David J. ;
Schmid, Ralf ;
Blindauer, Claudia Andrea .
FRONTIERS IN MICROBIOLOGY, 2012, 3
[3]   Rhizobia inoculation improves nutrient uptake and growth of lowland rice [J].
Biswas, JC ;
Ladha, JK ;
Dazzo, FB .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 2000, 64 (05) :1644-1650
[4]   Iron transport, deposition and bioavailability in the wheat and barley grain [J].
Borg, Soren ;
Brinch-Pedersen, Henrik ;
Tauris, Birgitte ;
Holm, Preben B. .
PLANT AND SOIL, 2009, 325 (1-2) :15-24
[5]   Enrichment of cereal grains with zinc: Agronomic or genetic biofortification? [J].
Cakmak, Ismail .
PLANT AND SOIL, 2008, 302 (1-2) :1-17
[6]   Biofortification of Durum Wheat with Zinc and Iron [J].
Cakmak, Ismail ;
Pfeiffer, Wolfgang H. ;
McClafferty, Bonnie .
CEREAL CHEMISTRY, 2010, 87 (01) :10-20
[7]   A cadmium-lead-sensing ArsR-SmtB repressor with novel sensory sites - Complementary metal discrimination by NMTR and CMTR in a common cytosol [J].
Cavet, JS ;
Graham, AI ;
Meng, WM ;
Robinson, NJ .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (45) :44560-44566
[8]  
Chen LM, 2000, BOT BULL ACAD SINICA, V41, P99
[9]   Plant growth-promoting rhizobacteria mediate induced systemic resistance in rice against bacterial leaf blight caused by Xanthomonas oryzae pv. oryzae [J].
Chithrashree ;
Udayashankar, A. C. ;
Nayaka, S. Chandra ;
Reddy, M. S. ;
Srinivas, C. .
BIOLOGICAL CONTROL, 2011, 59 (02) :114-122
[10]   Use of plant growth-promoting bacteria for biocontrol of plant diseases:: Principles, mechanisms of action, and future prospects [J].
Compant, S ;
Duffy, B ;
Nowak, J ;
Clément, C ;
Barka, EA .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2005, 71 (09) :4951-4959