Literature DB >> 21910639

Molecular bases of plant resistance to arthropods.

C Michael Smith1, Stephen L Clement.   

Abstract

Arthropod-resistant crops provide significant ecological and economic benefits to global agriculture. Incompatible interactions involving resistant plants and avirulent pest arthropods are mediated by constitutively produced and arthropod-induced plant proteins and defense allelochemicals synthesized by resistance gene products. Cloning and molecular mapping have identified the Mi-1.2 and Vat arthropod resistance genes as CC-NBS-LRR (coiled coil-nucleotide binding site-leucine rich repeat) subfamily NBS-LRR resistance proteins, as well as several resistance gene analogs. Genetic linkage mapping has identified more than 100 plant resistance gene loci and linked molecular markers used in cultivar development. Rice and sorghum arthropod-resistant cultivars and, to a lesser extent, raspberry and wheat cultivars are components of integrated pest management (IPM) programs in Asia, Australia, Europe, and North America. Nevertheless, arthropod resistance in most food and fiber crops has not been integrated due primarily to the application of synthetic insecticides. Plant and arthropod genomics provide many opportunities to more efficiently develop arthropod-resistant plants, but integration of resistant cultivars into IPM programs will succeed only through interdisciplinary collaboration.
Copyright © 2012 by Annual Reviews. All rights reserved.

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Year:  2011        PMID: 21910639     DOI: 10.1146/annurev-ento-120710-100642

Source DB:  PubMed          Journal:  Annu Rev Entomol        ISSN: 0066-4170            Impact factor:   19.686


  40 in total

1.  A saturated SNP linkage map for the orange wheat blossom midge resistance gene Sm1.

Authors:  Mulualem T Kassa; Sabrina Haas; Edgar Schliephake; Clare Lewis; Frank M You; Curtis J Pozniak; Ilona Krämer; Dragan Perovic; Andrew G Sharpe; Pierre R Fobert; Michael Koch; Ian L Wise; Paul Fenwick; Simon Berry; James Simmonds; Delphine Hourcade; Patrice Senellart; Laure Duchalais; Olivier Robert; Jutta Förster; Julian B Thomas; Wolfgang Friedt; Frank Ordon; Cristobal Uauy; Curt A McCartney
Journal:  Theor Appl Genet       Date:  2016-05-09       Impact factor: 5.699

2.  Characterization of novel wheat NBS domain-containing sequences and their utilization, in silico, for genome-scale R-gene mining.

Authors:  Dhia Bouktila; Yosra Habachi-Houimli; Yosra Khalfallah; Maha Mezghani-Khemakhem; Mohamed Makni; Hanem Makni
Journal:  Mol Genet Genomics       Date:  2014-03-18       Impact factor: 3.291

3.  Assessing Common Bean Cultivars for Resistance to the Soybean Looper Chrysodeixis includens (Lepidoptera: Noctuidae).

Authors:  R Morando; E L L Baldin; P L Cruz; A L Lourenção
Journal:  Neotrop Entomol       Date:  2017-02-16       Impact factor: 1.434

4.  Allelic diversity in an NLR gene BPH9 enables rice to combat planthopper variation.

Authors:  Yan Zhao; Jin Huang; Zhizheng Wang; Shengli Jing; Yang Wang; Yidan Ouyang; Baodong Cai; Xiu-Fang Xin; Xin Liu; Chunxiao Zhang; Yufang Pan; Rui Ma; Qiaofeng Li; Weihua Jiang; Ya Zeng; Xinxin Shangguan; Huiying Wang; Bo Du; Lili Zhu; Xun Xu; Yu-Qi Feng; Sheng Yang He; Rongzhi Chen; Qifa Zhang; Guangcun He
Journal:  Proc Natl Acad Sci U S A       Date:  2016-10-24       Impact factor: 11.205

5.  Antixenosis and antibiosis response of common bean (Phaseolus vulgaris) to two-spotted spider mite (Tetranychus urticae).

Authors:  Marie Shoorooei; Abdul Hadi Hoseinzadeh; Reza Maali-Amiri; Hossein Allahyari; Masoud Torkzadeh-Mahani
Journal:  Exp Appl Acarol       Date:  2018-03-09       Impact factor: 2.132

6.  Understanding the genetic mechanism of resistance in aphid-treated alfalfa (Medicago sativa L.) through proteomic analysis.

Authors:  Jun Chen; Hidayat Ullah; Xiongbing Tu; Zehua Zhang
Journal:  3 Biotech       Date:  2019-05-30       Impact factor: 2.406

7.  The Coiled-Coil and Nucleotide Binding Domains of BROWN PLANTHOPPER RESISTANCE14 Function in Signaling and Resistance against Planthopper in Rice.

Authors:  Liang Hu; Yan Wu; Di Wu; Weiwei Rao; Jianping Guo; Yinhua Ma; Zhizheng Wang; Xinxin Shangguan; Huiying Wang; Chunxue Xu; Jin Huang; Shaojie Shi; Rongzhi Chen; Bo Du; Lili Zhu; Guangcun He
Journal:  Plant Cell       Date:  2017-11-01       Impact factor: 11.277

8.  Cotton photosynthesis-related PSAK1 protein is involved in plant response to aphid attack.

Authors:  Jian-Min Zhang; Geng-Qing Huang; Yang Li; Yong Zheng; Xue-Bao Li
Journal:  Mol Biol Rep       Date:  2014-01-28       Impact factor: 2.316

9.  Performance of Bemisia tabaci Biotype B on Soybean Genotypes.

Authors:  P L Cruz; E L L Baldin
Journal:  Neotrop Entomol       Date:  2016-09-21       Impact factor: 1.434

10.  Resistance Sources and Antixenotic Factors in Brazilian Bean Genotypes Against Bemisia tabaci.

Authors:  T L B Santos; E L L Baldin; L P Ribeiro; C M Souza; M C E Soares; T L M Fanela; A L Lourenção
Journal:  Neotrop Entomol       Date:  2020-11-05       Impact factor: 1.434

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