Plant Virology Institute, National Research Council (IVV-CNR), UOS Grugliasco, Via L. da Vinci 44, 10095 Grugliasco, TO, Italy.
Transgenic Res. 2012 Dec;21(6):1163-81. doi: 10.1007/s11248-012-9602-6. Epub 2012 Mar 2.
Genetic transformation has emerged as a powerful tool for genetic improvement of fruit trees hindered by their reproductive biology and their high levels of heterozygosity. For years, genetic engineering of fruit trees has focussed principally on enhancing disease resistance (against viruses, fungi, and bacteria), although there are few examples of field cultivation and commercial application of these transgenic plants. In addition, over the years much work has been performed to enhance abiotic stress tolerance, to induce modifications of plant growth and habit, to produce marker-free transgenic plants and to improve fruit quality by modification of genes that are crucially important in the production of specific plant components. Recently, with the release of several genome sequences, studies of functional genomics are becoming increasingly important: by modification (overexpression or silencing) of genes involved in the production of specific plant components is possible to uncover regulatory mechanisms associated with the biosynthesis and catabolism of metabolites in plants. This review focuses on the main advances, in recent years, in genetic transformation of the most important species of fruit trees, devoting particular attention to functional genomics approaches and possible future challenges of genetic engineering for these species in the post-genomic era.
遗传转化已成为克服果树生殖生物学和高度杂合性障碍的遗传改良的有力工具。多年来,果树的基因工程主要集中在增强抗病性(抗病毒、真菌和细菌)上,尽管这些转基因植物的田间种植和商业应用的例子很少。此外,多年来,人们进行了大量工作来提高非生物胁迫耐受性,诱导植物生长和习性的改变,生产无标记的转基因植物,并通过修饰对特定植物成分的生产至关重要的基因来改善果实品质。最近,随着几个基因组序列的发布,功能基因组学的研究变得越来越重要:通过修饰(过表达或沉默)参与特定植物成分生产的基因,可以揭示与植物代谢物生物合成和分解代谢相关的调控机制。本综述重点介绍了近年来在最重要的果树物种遗传转化方面的主要进展,特别关注功能基因组学方法以及在后基因组时代对这些物种进行基因工程的可能未来挑战。