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离体培养技术和先进生物技术工具在提高唐菖蒲(唐菖蒲属)中的应用:现状与未来展望。

In Vitro Culture Technology and Advanced Biotechnology Tools Toward Improvement in Gladiolus (Gladiolus species): Present Scenario and Future Prospects.

机构信息

College of Horticulture, SVPUAT, Meerut, UP, 250110, India.

NIPGR, Aruna Asaf Ali Marg, New Delhi, 110067, India.

出版信息

Mol Biotechnol. 2024 Aug;66(8):1806-1835. doi: 10.1007/s12033-023-00818-8. Epub 2023 Aug 2.

DOI:10.1007/s12033-023-00818-8
PMID:37528332
Abstract

In the world's flower trade, gladiolus (Gladiolus spp.) is ranked first among bulbous flowers and eighth among cut flowers, with more than 30,000 different cultivars being grown. Mass multiplication and commercialization are restricted by the traditional propagation methods. However, the large-scale proliferation and improvement of the gladiolus have been accomplished with the aid of plant tissue culture and other biotechnological techniques. The current review includes a thorough examination of the growth and development parameters required for successful in vitro gladiolus development as well as cormel formation. Moreover, focus is being given to various techniques and methods such as in vitro cytogenetic stability and modification of chromosome number, in vitro mutagenesis and selection of pest resistance, in vitro identification and selection to develop virus-free germplasm, cryopreservation, synthetic seed technology, identifying virus diseases by RT-PCR, somaclonal variation, and protoplast and somatic hybridization. Molecular markers and their applications for genetic diversity analysis, relationships between different genotypes, and clonal stability analysis in Gladiolus species have been conducted by several research groups worldwide and are also being discussed. The article also covers efforts to enhance the functionality of plant phenotypes through genetic transformation. Future prospects for further improvement of ornamental gladiolus are also explored. Overall, the current review provides insight into the applications of basic and advanced biotechnological tools for gladiolus improvement.

摘要

在世界花卉贸易中,唐菖蒲(Gladiolus spp.)在球茎花卉中排名第一,在切花中排名第八,有超过 30000 个不同的品种。传统的繁殖方法限制了其大规模繁殖和商业化。然而,借助植物组织培养和其他生物技术手段,已经实现了唐菖蒲的大规模增殖和改良。本综述详细考察了成功进行唐菖蒲体外发育和小鳞茎形成所需的生长和发育参数。此外,还重点介绍了各种技术和方法,如体外细胞遗传学稳定性和染色体数目的修饰、体外诱变和抗虫性选择、体外鉴定和选择以开发无病毒种质、冷冻保存、合成种子技术、通过 RT-PCR 鉴定病毒病、体细胞变异以及原生质体和体细胞杂交。全球多个研究小组还进行了分子标记及其在遗传多样性分析、不同基因型之间关系以及唐菖蒲属克隆稳定性分析中的应用研究,并进行了讨论。本文还探讨了通过遗传转化来提高植物表型功能的研究进展。对进一步提高观赏唐菖蒲的前景也进行了探讨。总的来说,本文综述了基础和先进生物技术工具在唐菖蒲改良中的应用。

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本文引用的文献

1
Tissue Culture in Ornamentals: Cultivation Factors, Propagation Techniques, and Its Application.观赏植物的组织培养:培养因素、繁殖技术及其应用
Plants (Basel). 2022 Nov 23;11(23):3208. doi: 10.3390/plants11233208.
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Simultaneous targeting of duplicated genes in Petunia protoplasts for flower color modification via CRISPR-Cas9 ribonucleoproteins.通过 CRISPR-Cas9 核糖核蛋白在矮牵牛原生质体中同时靶向重复基因以修饰花色。
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Recent Studies on Anti-Depressant Bioactive Substances in Selected Species from the Genera and : A Systematic Review.
关于[属名]和[属名]选定物种中抗抑郁生物活性物质的最新研究:一项系统综述。
Pharmaceuticals (Basel). 2019 Nov 25;12(4):172. doi: 10.3390/ph12040172.
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Isolation and characterization of 15 SSR loci for the endangered European tetraploid species (Iridaceae).濒危欧洲四倍体物种(鸢尾科)15个简单序列重复位点的分离与鉴定
Appl Plant Sci. 2019 May 8;7(5):e01245. doi: 10.1002/aps3.1245. eCollection 2019 May.
5
Elimination of from infected cormels of three cultivars of gladiolus using thermo-, electro- and chemotherapy.利用热处理、电处理和化学处理消除唐菖蒲三个品种受感染的小种球中的(原文此处缺失具体物质)
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Plant Cell Rep. 2000 Sep;19(9):845-850. doi: 10.1007/s002990000204.
7
GhNAC83 inhibits corm dormancy release by regulating ABA signaling and cytokinin biosynthesis in Gladiolus hybridus.GhNAC83 通过调控百合中 ABA 信号和细胞分裂素合成抑制球茎休眠的解除。
J Exp Bot. 2019 Feb 20;70(4):1221-1237. doi: 10.1093/jxb/ery428.
8
GhTCP19 Transcription Factor Regulates Corm Dormancy Release by Repressing GhNCED Expression in Gladiolus.GhTCP19 转录因子通过抑制百合 GhNCED 表达调控球茎休眠的解除。
Plant Cell Physiol. 2019 Jan 1;60(1):52-62. doi: 10.1093/pcp/pcy186.
9
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Physiol Mol Biol Plants. 2018 May;24(3):493-501. doi: 10.1007/s12298-018-0519-2. Epub 2018 Apr 7.
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