QTL Mapping and Data Mining to Identify Genes Associated With the Sinorhizobium fredii HH103 T3SS Effector NopD in Soybean

被引:20
作者
Wang, Jinhui [1 ]
Wang, Jieqi [1 ]
Ma, Chao [1 ]
Zhou, Ziqi [1 ]
Yang, Decheng [1 ]
Zheng, Junzan [1 ]
Wang, Qi [1 ]
Li, Huiwen [1 ]
Zhou, Hongyang [1 ]
Sun, Zhijun [1 ]
Liu, Hanxi [1 ]
Li, Jianyi [1 ]
Chen, Lin [1 ]
Kang, Qinglin [1 ]
Qi, Zhaoming [1 ]
Jiang, Hongwei [2 ]
Zhu, Rongsheng [1 ]
Wu, Xiaoxia [1 ]
Liu, Chunyan [1 ]
Chen, Qingshan [1 ]
Xin, Dawei [1 ]
机构
[1] Northeast Agr Univ, Key Lab Soybean Biol & Breeding, Genet Chinese Agr Minist, Coll Agr,Key Lab Soybean Biol,Chinese Minist Educ, Harbin, Peoples R China
[2] Jilin Acad Agr Sci, Changchun, Peoples R China
来源
FRONTIERS IN PLANT SCIENCE | 2020年 / 11卷
基金
黑龙江省自然科学基金; 中国国家自然科学基金; 欧盟地平线“2020”;
关键词
symbiosis; T3SS effector; NopD; quantitative trait locus (QTL); haplotype; soybean; NODULATION OUTER PROTEINS; CONDITIONING INEFFECTIVE NODULATION; III-SECRETED PROTEIN; PHOSPHATASE 2C GENE; NITROGEN-FIXATION; AFFECTS SYMBIOSIS; GENOMIC SEQUENCE; XOPD TARGETS; KINASE; PLANTS;
D O I
10.3389/fpls.2020.00453
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
In some legume-rhizobium symbioses, host specificity is influenced by rhizobial type III effectors-nodulation outer proteins (Nops). However, the genes encoding host proteins that interact with Nops remain unknown. In this study, we aimed to identify candidate soybean genes associated with NopD, one of the type III effectors of Sinorhizobium fredii HH103. The results showed that the expression pattern of NopD was analyzed in rhizobia induced by genistein. We also found NopD can be induced by TtsI, and NopD as a toxic effector can induce tobacco leaf death. In 10 soybean germplasms, NopD played a positively effect on nodule number (NN) and nodule dry weight (NDW) in nine germplasms, but not in Kenjian28. Significant phenotype of NN and NDW were identified between Dongnong594 and Charleston, Suinong14 and ZYD00006, respectively. To map the quantitative trait locus (QTL) associated with NopD, a recombinant inbred line (RIL) population derived from the cross between Dongnong594 and Charleston, and chromosome segment substitution lines (CSSLs) derived from Suinong14 and ZYD00006 were used. Two overlapping conditional QTL associated with NopD on chromosome 19 were identified. Two candidate genes were identified in the confident region of QTL, we found that NopD could influence the expression of Glyma.19g068600 (FBD/LRR) and expression of Glyma.19g069200 (PP2C) after HH103 infection. Haplotype analysis showed that different types of Glyma.19g069200 haplotypes could cause significant nodule phenotypic differences, but Glyma.19g068600 (FBD/LRR) was not. These results suggest that NopD promotes S. fredii HH103 infection via directly or indirectly regulating Glyma.19g068600 and Glyma.19g069200 expression during the establishment of symbiosis between rhizobia and soybean plants.
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页数:16
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共 68 条
  • [31] Characterization of Nops, nodulation outer proteins, secreted via the type III secretion system of NGR234
    Marie, C
    Deakin, WJ
    Viprey, V
    Kopciñska, J
    Golinowski, W
    Krishnan, HB
    Perret, X
    Broughton, WJ
    [J]. MOLECULAR PLANT-MICROBE INTERACTIONS, 2003, 16 (09) : 743 - 751
  • [32] Stress-induced protein phosphatase 2C is a negative regulator of a mitogen-activated protein kinase
    Meskiene, I
    Baudouin, E
    Schweighofer, A
    Liwosz, A
    Jonak, C
    Rodriguez, PL
    Jelinek, H
    Hirt, H
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (21) : 18945 - 18952
  • [33] How effectors promote beneficial interactions
    Miwa, Hiroki
    Okazaki, Shin
    [J]. CURRENT OPINION IN PLANT BIOLOGY, 2017, 38 : 148 - 154
  • [34] Hijacking of leguminous nodulation signaling by the rhizobial type III secretion system
    Okazaki, Shin
    Kaneko, Takakazu
    Sato, Shusei
    Saeki, Kazuhiko
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (42) : 17131 - 17136
  • [35] A transcriptomic analysis of the effect of genistein on Sinorhizobium fredii HH103 reveals novel rhizobial genes putatively involved in symbiosis
    Perez-Montano, F.
    Jimenez-Guerrero, I.
    Acosta-Jurado, S.
    Navarro-Gomez, P.
    Ollero, F. J.
    Ruiz-Sainz, J. E.
    Lopez-Baena, F. J.
    Vinardell, J. M.
    [J]. SCIENTIFIC REPORTS, 2016, 6
  • [36] A High-Density Genetic Map for Soybean Based on Specific Length Amplified Fragment Sequencing
    Qi, Zhaoming
    Huang, Long
    Zhu, Rongsheng
    Xin, Dawei
    Liu, Chunyan
    Han, Xue
    Jiang, Hongwei
    Hong, Weiguo
    Hu, Guohua
    Zheng, Hongkun
    Chen, Qingshan
    [J]. PLOS ONE, 2014, 9 (08):
  • [37] VERSATILE SUICIDE VECTORS WHICH ALLOW DIRECT SELECTION FOR GENE REPLACEMENT IN GRAM-NEGATIVE BACTERIA
    QUANDT, J
    HYNES, MF
    [J]. GENE, 1993, 127 (01) : 15 - 21
  • [38] Identification of genes differentially expressed in husk tomato (Physalis philadelphica) in response to whitefly (Trialeurodes vaporariorum) infestation
    Quintana-Camargo, Martin
    Mendez-Moran, Lucila
    Ramirez-Romero, Ricardo
    Gurrola-Diaz, Carmen M.
    Carapia-Ruiz, Vicente
    Ibarra-Laclette, Enrique
    Paul Delano-Frier, John
    Sanchez-Hernandez, Carla
    [J]. ACTA PHYSIOLOGIAE PLANTARUM, 2015, 37 (02)
  • [39] QTLs underlying the genetic interrelationship between efficient compatibility of Bradyrhizobium strains with soybean and genistein secretion by soybean roots
    Ramongolalaina, Clarissien
    Teraishi, Masayoshi
    Okumoto, Yutaka
    [J]. PLOS ONE, 2018, 13 (04):
  • [40] Review: soil biological properties as indicators of soil quality in Australian viticulture
    Riches, D.
    Porter, I. J.
    Oliver, D. P.
    Bramley, R. G. V.
    Rawnsley, B.
    Edwards, J.
    White, R. E.
    [J]. AUSTRALIAN JOURNAL OF GRAPE AND WINE RESEARCH, 2013, 19 (03) : 311 - 323