RNA-Seq profile of flavescence doree phytoplasma in grapevine

被引:27
作者
Abba, Simona [1 ]
Galetto, Luciana [1 ]
Carle, Patricia [2 ,3 ]
Carrere, Sebastien [4 ,5 ]
Delledonne, Massimo [6 ]
Foissac, Xavier [2 ,3 ]
Palmano, Sabrina [1 ]
Veratti, Flavio [1 ]
Marzachi, Cristina [1 ]
机构
[1] CNR, IPSP, I-10135 Turin, Italy
[2] INRA, Biol Fruit & Pathol UMR1332, F-33882 Villenave Dornon, France
[3] Univ Bordeaux, Biol Fruit & Pathol UMR1332, F-33882 Villenave Dornon, France
[4] INRA, LIPM, UMR441, F-31326 Castanet Tolosan, France
[5] CNRS, LIPM, UMR2594, F-31326 Castanet Tolosan, France
[6] Univ Verona, Dipartimento Biotecnol, I-37134 Verona, Italy
关键词
Flavescence doree phytoplasma; RNA-Seq; Vitis vinifera; Group II intron; Hypothetical proteins; qRT-PCR; GROUP-II INTRONS; GROUP 16SRV PHYTOPLASMAS; MEMBRANE-PROTEIN; GENE-EXPRESSION; PROTEOMIC ANALYSIS; GENOME; SEQUENCE; TRANSCRIPTOME; EVOLUTION; VARIABILITY;
D O I
10.1186/1471-2164-15-1088
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: The phytoplasma-borne disease flavescence doree is still a threat to European viticulture, despite mandatory control measures and prophylaxis against the leafhopper vector. Given the economic importance of grapevine, it is essential to find alternative strategies to contain the spread, in order to possibly reduce the current use of harmful insecticides. Further studies of the pathogen, the vector and the mechanisms of phytoplasma-host interactions could improve our understanding of the disease. In this work, RNA-Seq technology followed by three de novo assembly strategies was used to provide the first comprehensive transcriptomics landscape of flavescence doree phytoplasma (FD) infecting field-grown Vitis vinifera leaves. Results: With an average of 8300 FD-mapped reads per library, we assembled 347 sequences, corresponding to 215 annotated genes, and identified 10 previously unannotated genes, 15 polycistronic transcripts and three genes supposedly localized in the gaps of the FD92 draft genome. Furthermore, we improved the annotation of 44 genes with the addition of 5'/3' untranslated regions. Functional classification revealed that the most expressed genes were either related to translation and protein biosynthesis or hypothetical proteins with unknown function. Some of these hypothetical proteins were predicted to be secreted, so they could be bacterial effectors with a potential role in modulating the interaction with the host plant. Interestingly, qRT-PCR validation of the RNA-Seq expression values confirmed that a group II intron represented the FD genomic region with the highest expression during grapevine infection. This mobile element may contribute to the genomic plasticity that is necessary for the phytoplasma to increase its fitness and endorse host-adaptive strategies. Conclusions: The RNA-Seq technology was successfully applied for the first time to analyse the FD global transcriptome profile during grapevine infection. Our results provided new insights into the transcriptional organization and gene structure of FD. This may represent the starting point for the application of high-throughput sequencing technologies to study differential expression in FD and in other phytoplasmas with an unprecedented resolution.
引用
收藏
页数:13
相关论文
共 65 条
[1]   Gene expression in grapevine cultivars in response to Bois Noir phytoplasma infection [J].
Albertazzi, Giorgia ;
Milc, Justyna ;
Caffagni, Alessandra ;
Francia, Enrico ;
Roncaglia, Enrica ;
Ferrari, Francesco ;
Tagliafico, Enrico ;
Stefani, Emilio ;
Pecchioni, Nicola .
PLANT SCIENCE, 2009, 176 (06) :792-804
[2]   BASIC LOCAL ALIGNMENT SEARCH TOOL [J].
ALTSCHUL, SF ;
GISH, W ;
MILLER, W ;
MYERS, EW ;
LIPMAN, DJ .
JOURNAL OF MOLECULAR BIOLOGY, 1990, 215 (03) :403-410
[3]  
[Anonymous], 2014, EFSA J, V12, P3851, DOI [10.2903/j.efsa.2014.3851, DOI 10.2903/J.EFSA.2014.3851]
[4]   Multilocus sequence typing confirms the close genetic interrelatedness of three distinct flavescence doree phytoplasma strain clusters and group 16SrV phytoplasmas infecting grapevine and alder in Europe [J].
Arnaud, Guillaume ;
Malembic-Maher, Sylvie ;
Salar, Pascal ;
Bonnet, Patrick ;
Maixner, Michael ;
Marcone, Carmine ;
Boudon-Padieu, Elisabeth ;
Foissac, Xavier .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2007, 73 (12) :4001-4010
[5]   Living with genome instability: the adaptation of phytoplasmas to diverse environments of their insect and plant hosts [J].
Bai, Xiaodong ;
Zhang, Jianhua ;
Ewing, Adam ;
Miller, Sally A. ;
Radek, Agnes Jancso ;
Shevchenko, Dmitriy V. ;
Tsukerman, Kiryl ;
Walunas, Theresa ;
Lapidus, Alla ;
Campbell, John W. ;
Hogenhout, Saskia A. .
JOURNAL OF BACTERIOLOGY, 2006, 188 (10) :3682-3696
[6]   AY-WB Phytoplasma Secretes a Protein That Targets Plant Cell Nuclei [J].
Bai, Xiaodong ;
Correa, Valdir R. ;
Toruno, Tania Y. ;
Ammar, El-Desouky ;
Kamoun, Sophien ;
Hogenhout, Saskia A. .
MOLECULAR PLANT-MICROBE INTERACTIONS, 2009, 22 (01) :18-30
[7]  
Belli G, 2010, J PLANT PATHOL, V92, P303
[8]   Improved prediction of signal peptides: SignalP 3.0 [J].
Bendtsen, JD ;
Nielsen, H ;
von Heijne, G ;
Brunak, S .
JOURNAL OF MOLECULAR BIOLOGY, 2004, 340 (04) :783-795
[9]   Trimmomatic: a flexible trimmer for Illumina sequence data [J].
Bolger, Anthony M. ;
Lohse, Marc ;
Usadel, Bjoern .
BIOINFORMATICS, 2014, 30 (15) :2114-2120
[10]   TRANSSPLICING OF PREMESSENGER RNA IN PLANTS, ANIMALS, AND PROTISTS [J].
BONEN, L .
FASEB JOURNAL, 1993, 7 (01) :40-46