Cisgenesis and Intragenesis: New tools For Improving Crops

被引:37
作者
Espinoza, C. [1 ]
Schlechter, R. [1 ]
Herrera, D. [1 ]
Torres, E. [1 ]
Serrano, A. [1 ]
Medina, C. [1 ]
Arce-Johnson, P. [1 ]
机构
[1] Pontificia Univ Catolica Chile, Fac Ciencias Biol, Dept Genet Mol & Microbiol, Santiago, Chile
关键词
cisgenesis; intragenesis; grapevine promoters; VvGRIP24; MONOSACCHARIDE TRANSPORTER; BACILLUS-THURINGIENSIS; ARABIDOPSIS-THALIANA; PLANTS; GENES; EXPRESSION; GRAPEVINE; ANTHOCYANIN; RESISTANCE; PROMOTERS;
D O I
10.4067/S0716-97602013000400003
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Genetically Modified Organisms (GMO) could be the answer for many relevant problems affecting crops. However, improving crops through GMO is also often associated with safety concerns, environmental risks and health issues due to the presence of foreign DNA. These limitations have prompted the development of alternative technologies. Recently, cisgenesis and intragenesis have been developed as new tools aimed to modify crops. While cisgenesis involves genetic modification using a complete copy of natural genes with their regulatory elements that belong exclusively to sexually compatible plants, intragenesis refers to the transference of new combinations of genes and regulatory sequences belonging to that particular species. So far, application of cisgenesis and intragenesis as alternatives to conventional transgenesis are limited to a few species, mainly due to the lack of knowledge of the regulatory sequences required. The grape is one of the most cultivated crops worldwide and is the most economically relevant crop in Chile. Its genomic sequence has been completed, making available new sources of information to improve grape traits by genetic manipulation. This review is focused on the current alternatives to transgenesis in plants, including new approaches to develop marker-free crops, their application to economically relevant crops and future perspectives in the area. Also, the identification of grapevine promoters with a wide range of expression profiles is shown. The expression pattern of these genes was analyzed in different tissues and developmental stages, as well as under several stresses and stimuli, giving a broad range of expression patterns, including genes expressed exclusively during ripening, in response to sugars, senescence and biotic stress, among others. Genes with strong and constitutive expression were also identified. Functional analysis using reporter genes has been conducted in order to confirm the promoter's transcription activity, opening new possibilities for developing cisgenic/intragenic grapevines.
引用
收藏
页码:323 / 331
页数:9
相关论文
共 70 条
  • [1] Agasse A., 2009, GRAPEVINE MOL PHYSL, V2nd, P105, DOI [DOI 10.1007/978-90-481-2305-65, 10.1007/978-90-481-2305-6_5, DOI 10.1007/978-90-481-2305-6_5, DOI 10.1007/978-90-481-2305-6-5]
  • [2] Scientific opinion addressing the safety assessment of plants developed through cisgenesis and intragenesis EFSA Panel on Genetically Modified Organ
    Andersson, Hans Christer
    Arpaia, Salvatore
    Bartsch, Detlef
    Casacuberta, Josep
    Davies, Howard
    du Jardin, Patrick
    Flachowsky, Gerhard
    Herman, Lieve
    Jones, Huw
    Kaerenlampi, Sirpa
    Kiss, Jozsef
    Kleter, Gijs
    Kuiper, Harry
    Messean, Antoine
    Nielsen, Kaare Magne
    Perry, Joe
    Poeting, Annette
    Sweet, Jeremy
    Tebbe, Christoph
    von Wright, Atte Johannes
    Wal, Jean-Michel
    [J]. EFSA JOURNAL, 2012, 10 (02)
  • [3] Bajaj S., 2008, 6 CAN PLANT GEN WORK, P62
  • [4] Golden rice:: Introducing the β-carotene biosynthesis pathway into rice endosperm by genetic engineering to defeat vitamin A deficiency
    Beyer, P
    Al-Babili, S
    Ye, XD
    Lucca, P
    Schaub, P
    Welsch, R
    Potrykus, I
    [J]. JOURNAL OF NUTRITION, 2002, 132 (03) : 506S - 510S
  • [5] Regulating transgenic crops sensibly: lessons from plant breeding, biotechnology and genomics
    Bradford, KJ
    Van Deynze, A
    Gutterson, N
    Parrott, W
    Strauss, SH
    [J]. NATURE BIOTECHNOLOGY, 2005, 23 (04) : 439 - 444
  • [6] BROOKES G, 2013, GM CROPS FOOD, V4
  • [7] CALLIS J, 1990, J BIOL CHEM, V265, P12486
  • [8] CARBARINO JE, 1995, PLANTS PLANT PHYSL, V109, P1371
  • [9] Sequence and structure evolved separately in a ribosomal ubiquitin variant
    Catic, Andre
    Sun, Zhen-Yu J.
    Ratner, Daniel M.
    Misaghi, Shahram
    Spooner, Eric
    Samuelson, John
    Wagner, Gerhard
    Ploegh, Hidde L.
    [J]. EMBO JOURNAL, 2007, 26 (14) : 3474 - 3483
  • [10] Tuber-specific silencing of asparagine synthetase-1 reduces the acrylamide-forming potential of potatoes grown in the field without affecting tuber shape and yield
    Chawla, Rekha
    Shakya, Roshani
    Rommens, Caius M.
    [J]. PLANT BIOTECHNOLOGY JOURNAL, 2012, 10 (08) : 913 - 924