Fruit crops in the era of genome editing: closing the regulatory gap

被引:21
作者
Alvarez, Derry [1 ]
Cerda-Bennasser, Pedro [1 ]
Stowe, Evan [2 ,3 ]
Ramirez-Torres, Fabiola [2 ,3 ]
Capell, Teresa [1 ]
Dhingra, Amit [2 ,3 ]
Christou, Paul [1 ,4 ]
机构
[1] Univ Lleida, Dept Plant Prod & Forestry Sci, Agrotecnio Ctr, Lleida, Spain
[2] Washington State Univ, Dept Hort, Pullman, WA 99164 USA
[3] Washington State Univ, Mol Plant Sci Program, Pullman, WA 99164 USA
[4] Catalan Inst Res & Adv Studies, ICREA, Barcelona, Spain
关键词
Apple; Papaya; Pineapple; Genome editing; Commercialization;
D O I
10.1007/s00299-021-02664-x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The conventional breeding of fruits and fruit trees has led to the improvement of consumer-driven traits such as fruit size, yield, nutritional properties, aroma and taste, as well as the introduction of agronomic properties such as disease resistance. However, even with the assistance of modern molecular approaches such as marker-assisted selection, the improvement of fruit varieties by conventional breeding takes considerable time and effort. The advent of genetic engineering led to the rapid development of new varieties by allowing the direct introduction of genes into elite lines. In this review article, we discuss three such case studies: the Arctic(R) apple, the Pinkglow pineapple and the SunUp/Rainbow papaya. We consider these events in the light of global regulations for the commercialization of genetically modified organisms (GMOs), focusing on the differences between product-related systems (the USA/Canada comparative safety assessment) and process-related systems (the EU "precautionary principle" model). More recently, genome editing has provided an efficient way to introduce precise mutations in plants, including fruits and fruit trees, replicating conventional breeding outcomes without the extensive backcrossing and selection typically necessary to introgress new traits. Some jurisdictions have reacted by amending the regulations governing GMOs to provide exemptions for crops that would be indistinguishable from conventional varieties based on product comparison. This has revealed the deficiencies of current process-related regulatory frameworks, particularly in the EU, which now stands against the rest of the world as a unique example of inflexible and dogmatic governance based on political expediency and activism rather than rigorous scientific evidence.
引用
收藏
页码:915 / 930
页数:16
相关论文
共 141 条
[21]  
Carter, 2012, PETITION DETERMINATI, P1
[22]   Recovering polyploid papaya in vitro regenerants as screened by flow cytometry [J].
Clarindo, Wellington Ronildo ;
de Carvalho, Carlos Roberto ;
Araujo, Fernanda Santos ;
de Abreu, Isabella Santiago ;
Otoni, Wagner Campos .
PLANT CELL TISSUE AND ORGAN CULTURE, 2008, 92 (02) :207-214
[23]   Site-selected insertional mutagenesis of tomato with maize Ac and Ds elements [J].
Cooley, MB ;
Goldsbrough, AP ;
Still, DW ;
Yoder, JI .
MOLECULAR AND GENERAL GENETICS, 1996, 252 (1-2) :184-194
[24]   The domestication and evolutionary ecology of apples [J].
Cornille, Amandine ;
Giraud, Tatiana ;
Smulders, Marinus J. M. ;
Roldan-Ruiz, Isabel ;
Gladieux, Pierre .
TRENDS IN GENETICS, 2014, 30 (02) :57-65
[25]  
Crosby J. A., 1992, Acta Horticulturae, P43
[26]  
Ebrahim, 2003, TRANSGENIC PINEAPPLE
[27]  
Ehrenfeld N, 2004, BIOL RES, V37, P71, DOI 10.4067/S0716-97602004000100008
[28]   BpMADS4 has a central role in inflorescence initiation in silver birch (Betula pendula) [J].
Elo, Annakaisa ;
Lemmetyinen, Juha ;
Novak, Anu ;
Keinonen, Kaija ;
Porali, Ilkka ;
Hassinen, Minna ;
Sopanen, Tuomas .
PHYSIOLOGIA PLANTARUM, 2007, 131 (01) :149-158
[29]  
Emlay D., 1992, EXPORTED ABSTRACT RE
[30]  
Entine J, TRANSGEN RES