Literature DB >> 22427113

Transient expression of artificial microRNAs targeting Grapevine fanleaf virus and evidence for RNA silencing in grapevine somatic embryos.

Noémie S Jelly1, Paul Schellenbaum, Bernard Walter, Pascale Maillot.   

Abstract

Grapevines are affected worldwide by viruses that compromise fruit yield and quality. Grapevine fanleaf virus (GFLV) causes fanleaf degeneration disease, a major threat to grapevine production. Transgenic approaches exploiting the RNA silencing machinery have proven suitable for engineering viral resistance in several crop species. However, the artificial microRNA (amiRNA)-based strategy has not yet been reported in grapevine. We developed two amiRNA precursors (pre-amiRNAs) targeting the coat protein (CP) gene of GFLV and characterised their functionality in grapevine somatic embryos. To create these pre-amiRNAs, natural pre-miR319a of Arabidopsis thaliana was modified by overlapping PCR in order to replace miR319a with two amiRNAs targeting different regions of the CP gene: amiR(CP)-1 or amiR(CP)-2. Transient expression of these two pre-amiRNA constructs was tested in grapevine somatic embryos after co-cultivation with Agrobacterium tumefaciens. Expression of amiR(CP)-1 and amiR(CP)-2 was detected in plant tissues by an endpoint stem-loop RT-PCR as early as 1 day after a 48-h co-cultivation, indicating active processing of pre-amiRNAs by the plant machinery. In parallel, GUS-sensor constructs (G(CP)-1 and G(CP)-2) were obtained by fusing the target sequence of amiR(CP)-1 or amiR(CP)-2 to the 3' terminus of the GUS gene. Co-transformation assays with GUS-sensors and the pre-amiRNA constructs provided evidence for in vivo recognition and cleavage of the 21-nt target sequence of GUS-sensors by the corresponding amiRNA. This is the first report of amiRNA ectopic expression in grapevine. The constructs we developed could be useful for engineering GFLV-resistant grapes in the future.

Entities:  

Mesh:

Substances:

Year:  2012        PMID: 22427113     DOI: 10.1007/s11248-012-9611-5

Source DB:  PubMed          Journal:  Transgenic Res        ISSN: 0962-8819            Impact factor:   2.788


  39 in total

1.  The role of the Arabidopsis morning loop components CCA1, LHY, PRR7, and PRR9 in temperature compensation.

Authors:  Patrice A Salomé; Detlef Weigel; C Robertson McClung
Journal:  Plant Cell       Date:  2010-11-23       Impact factor: 11.277

Review 2.  Nomenclature and functions of RNA-directed RNA polymerases.

Authors:  Michael Wassenegger; Gabi Krczal
Journal:  Trends Plant Sci       Date:  2006-02-13       Impact factor: 18.313

3.  Highly specific gene silencing by artificial microRNAs in the unicellular alga Chlamydomonas reinhardtii.

Authors:  Attila Molnar; Andrew Bassett; Eva Thuenemann; Frank Schwach; Shantanu Karkare; Stephan Ossowski; Detlef Weigel; David Baulcombe
Journal:  Plant J       Date:  2009-01-19       Impact factor: 6.417

4.  Secoviridae: a proposed family of plant viruses within the order Picornavirales that combines the families Sequiviridae and Comoviridae, the unassigned genera Cheravirus and Sadwavirus, and the proposed genus Torradovirus.

Authors:  Hélène Sanfaçon; Joan Wellink; Olivier Le Gall; Alexander Karasev; René van der Vlugt; Thierry Wetzel
Journal:  Arch Virol       Date:  2009-04-07       Impact factor: 2.574

5.  Optimization of Agrobacterium-mediated transient assays of gene expression in lettuce, tomato and Arabidopsis.

Authors:  Tadeusz Wroblewski; Anna Tomczak; Richard Michelmore
Journal:  Plant Biotechnol J       Date:  2005-03       Impact factor: 9.803

6.  Expression of artificial microRNAs in tomato confers efficient and stable virus resistance in a cell-autonomous manner.

Authors:  Xiaohui Zhang; Hanxia Li; Junhong Zhang; Chanjuan Zhang; Pengjuan Gong; Khurram Ziaf; Fangming Xiao; Zhibiao Ye
Journal:  Transgenic Res       Date:  2010-09-14       Impact factor: 2.788

7.  Recovery of Nicotiana benthamiana plants from a necrotic response induced by a nepovirus is associated with RNA silencing but not with reduced virus titer.

Authors:  Juan Jovel; Melanie Walker; Hélène Sanfaçon
Journal:  J Virol       Date:  2007-08-29       Impact factor: 5.103

8.  Real-time quantification of microRNAs by stem-loop RT-PCR.

Authors:  Caifu Chen; Dana A Ridzon; Adam J Broomer; Zhaohui Zhou; Danny H Lee; Julie T Nguyen; Maura Barbisin; Nan Lan Xu; Vikram R Mahuvakar; Mark R Andersen; Kai Qin Lao; Kenneth J Livak; Karl J Guegler
Journal:  Nucleic Acids Res       Date:  2005-11-27       Impact factor: 16.971

9.  Field safety assessment of recombination in transgenic grapevines expressing the coat protein gene of Grapevine fanleaf virus.

Authors:  Emmanuelle Vigne; Véronique Komar; Marc Fuchs
Journal:  Transgenic Res       Date:  2004-04       Impact factor: 3.145

10.  Protocol: a highly sensitive RT-PCR method for detection and quantification of microRNAs.

Authors:  Erika Varkonyi-Gasic; Rongmei Wu; Marion Wood; Eric F Walton; Roger P Hellens
Journal:  Plant Methods       Date:  2007-10-12       Impact factor: 4.993

View more
  17 in total

1.  Artificial miRNA-mediated down-regulation of two monolignoid biosynthetic genes (C3H and F5H) cause reduction in lignin content in jute.

Authors:  Farhana Shafrin; Sudhanshu Sekhar Das; Neeti Sanan-Mishra; Haseena Khan
Journal:  Plant Mol Biol       Date:  2015-10-09       Impact factor: 4.076

Review 2.  Artificial microRNA mediated gene silencing in plants: progress and perspectives.

Authors:  Manish Tiwari; Deepika Sharma; Prabodh Kumar Trivedi
Journal:  Plant Mol Biol       Date:  2014-07-15       Impact factor: 4.076

3.  Expression of disease resistance in genetically modified grapevines correlates with the contents of viral sequences in the T-DNA and global genome methylation.

Authors:  Daniela Dal Bosco; Iraci Sinski; Patrícia S Ritschel; Umberto A Camargo; Thor V M Fajardo; Ricardo Harakava; Vera Quecini
Journal:  Transgenic Res       Date:  2018-06-06       Impact factor: 2.788

Review 4.  RNA interference and crop protection against biotic stresses.

Authors:  Ranjeet Kaur; Aparajita Choudhury; Sambhavana Chauhan; Arundhati Ghosh; Ruby Tiwari; Manchikatla Venkat Rajam
Journal:  Physiol Mol Biol Plants       Date:  2021-09-22

5.  Efficient silencing gene construct for resistance to multiple common bean (Phaseolus vulgaris L.) viruses.

Authors:  Abdolbaset Azizi; Jeanmarie Verchot; Ahmad Moieni; Masoud Shams-Bakhsh
Journal:  3 Biotech       Date:  2020-05-30       Impact factor: 2.406

Review 6.  Plant miRNAome and antiviral resistance: a retrospective view and prospective challenges.

Authors:  Shunmugiah Veluchamy Ramesh; Milind B Ratnaparkhe; Giriraj Kumawat; Girish Kumar Gupta; Syed Masroor Husain
Journal:  Virus Genes       Date:  2014-01-21       Impact factor: 2.198

7.  Testing the efficiency of plant artificial microRNAs by transient expression in Nicotiana benthamiana reveals additional action at the translational level.

Authors:  Shi Yu; Guillaume Pilot
Journal:  Front Plant Sci       Date:  2014-11-19       Impact factor: 5.753

8.  Artificial microRNA-derived resistance to Cassava brown streak disease.

Authors:  Henry Wagaba; Basavaprabhu L Patil; Settumba Mukasa; Titus Alicai; Claude M Fauquet; Nigel J Taylor
Journal:  J Virol Methods       Date:  2016-02-18       Impact factor: 2.014

9.  Nanobody-mediated resistance to Grapevine fanleaf virus in plants.

Authors:  Caroline Hemmer; Samia Djennane; Léa Ackerer; Kamal Hleibieh; Aurélie Marmonier; Sophie Gersch; Shahinez Garcia; Emmanuelle Vigne; Véronique Komar; Mireille Perrin; Claude Gertz; Lorène Belval; François Berthold; Baptiste Monsion; Corinne Schmitt-Keichinger; Olivier Lemaire; Bernard Lorber; Carlos Gutiérrez; Serge Muyldermans; Gérard Demangeat; Christophe Ritzenthaler
Journal:  Plant Biotechnol J       Date:  2017-10-06       Impact factor: 9.803

Review 10.  Grapevine Pathogenic Microorganisms: Understanding Infection Strategies and Host Response Scenarios.

Authors:  Grace Armijo; Rudolf Schlechter; Mario Agurto; Daniela Muñoz; Constanza Nuñez; Patricio Arce-Johnson
Journal:  Front Plant Sci       Date:  2016-03-30       Impact factor: 5.753

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.