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开花观赏植物的乙烯抗性——改进与未来展望

Ethylene resistance in flowering ornamental plants - improvements and future perspectives.

作者信息

Olsen Andreas, Lütken Henrik, Hegelund Josefine Nymark, Müller Renate

机构信息

Faculty of Science, Department of Plant and Environmental Sciences, University of Copenhagen , Højbakkegård Alle 9-13, 2630 Taastrup, Denmark.

出版信息

Hortic Res. 2015 Aug 26;2:15038. doi: 10.1038/hortres.2015.38. eCollection 2015.

DOI:10.1038/hortres.2015.38
PMID:26504580
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4591681/
Abstract

Various strategies of plant breeding have been attempted in order to improve the ethylene resistance of flowering ornamental plants. These approaches span from conventional techniques such as simple cross-pollination to new breeding techniques which modify the plants genetically such as precise genome-editing. The main strategies target the ethylene pathway directly; others focus on changing the ethylene pathway indirectly via pathways that are known to be antagonistic to the ethylene pathway, e.g. increasing cytokinin levels. Many of the known elements of the ethylene pathway have been addressed experimentally with the aim of modulating the overall response of the plant to ethylene. Elements of the ethylene pathway that appear particularly promising in this respect include ethylene receptors as ETR1, and transcription factors such as EIN3. Both direct and indirect approaches seem to be successful, nevertheless, although genetic transformation using recombinant DNA has the ability to save much time in the breeding process, they are not readily used by breeders yet. This is primarily due to legislative issues, economic issues, difficulties of implementing this technology in some ornamental plants, as well as how these techniques are publically perceived, particularly in Europe. Recently, newer and more precise genome-editing techniques have become available and they are already being implemented in some crops. New breeding techniques may help change the current situation and pave the way toward a legal and public acceptance if products of these technologies are indistinguishable from plants obtained by conventional techniques.

摘要

为提高开花观赏植物的乙烯抗性,人们尝试了各种植物育种策略。这些方法涵盖了从简单异花授粉等传统技术到基因改造植物的新育种技术,如精确的基因组编辑。主要策略直接针对乙烯信号通路;其他策略则通过已知与乙烯信号通路拮抗的途径间接改变乙烯信号通路,例如提高细胞分裂素水平。为调节植物对乙烯的整体反应,人们已对乙烯信号通路中许多已知元件进行了实验研究。在这方面,乙烯信号通路中特别有前景的元件包括乙烯受体ETR1和转录因子EIN3等。尽管直接和间接方法似乎都取得了成功,然而,尽管利用重组DNA进行遗传转化能够在育种过程中节省大量时间,但育种者尚未广泛采用。这主要是由于立法问题、经济问题、在某些观赏植物中实施该技术的困难,以及公众对这些技术的看法,特别是在欧洲。最近,更新、更精确的基因组编辑技术已经出现,并且已经在一些作物中得到应用。如果这些技术的产品与通过传统技术获得的植物难以区分,新育种技术可能有助于改变当前状况,并为合法和公众接受铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/872a/4591681/9aa1ea6f9651/hortres201538-f1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/872a/4591681/9aa1ea6f9651/hortres201538-f1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/872a/4591681/9aa1ea6f9651/hortres201538-f1.jpg

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