利用 SCoT、ISSR 和 SRAP 技术对沙特阿拉伯北部地区种植的精英橄榄品种进行分子鉴定

IF 3.4 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Reem M. Alharbi , Nanis H. Gomah , Wafik S.M. Ragab , Nabil S. Awad , Mohamed A. Abdein
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引用次数: 0

摘要

在本研究中,通过分子遗传分析确定了 2022 年收获季节在沙特阿拉伯北部地区(Al-Jauf)种植的九个橄榄栽培品种(Olea europaea L.),分别为 Dolce、Agezi、Maraki、Coratina、Koronieki、Picual、Manzanillo、Arbosana 和 Arbequina。利用 SCoT、ISSR 和 SRAP 以及两种同工酶(过氧化物酶和多酚氧化酶)图谱来检测遗传多样性水平。SCoT 引物共鉴定出 46 个扩增条带,其中 4 个引物在本研究使用的 9 个栽培品种中诱导出 7 个独特标记(多态性为 41.8%)。ISSR 引物产生了 29 条扩增条带,包括 8 个独特标记,多态性比例为 79.9%。SRAP 引物组合共产生 37 条扩增条带。其中 4 个引物组合显示了 8 个独特的栽培品种特异性标记,多态性为 58.4%。研究发现,Picual 和 Koronieki 的相似系数最高,而 Manzanillo 和 Dolce 的相似系数最低。这些差异程度可能是由于生长表现、不同的起源、性状和地理模式造成的。多尔切栽培品种与其他任何研究过的栽培品种组合,以及曼萨尼洛与马拉基组合,对杂交计划都是有意义的,因为要获得更高的重要特征值,需要更高的观察距离。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular characterization of elite olive cultivars grown in the North region of Saudi Arabia using SCoT, ISSR, and SRAP techniques

In the current study, nine olive cultivars (Olea europaea L.) coined as Dolce, Aggezi, Maraki, Coratina, Koronieki, Picual, Manzanillo, Arbosana, and Arbequina cultivated in Saudi Arabia's Northern region (Al-Jauf) during the 2022 harvest season were identified through molecular genetic analysis. SCoT, ISSR, and SRAP, as well as two isozyme (peroxidase and polyphenol-oxidase) profiles, were used to detect the levels of genetic diversity. The SCoT primers identified a total of 46 amplified bands, while four of these primers induced seven unique markers among the nine cultivars used in this study (41.8% polymorphism). ISSR primers generated 29 amplified bands, including eight unique markers, with a 79.9% polymorphism percentage. SRAP primer combinations exhibited a total of 37 amplified bands. Four of these combinations revealed eight unique cultivar-specific markers with a 58.4% polymorphism. It was discovered that Picual and Koronieki had the highest similarity coefficient, while Manzanillo and Dolce had the lowest. These degrees of variance could result from growing performance, distinct origins, traits, and geographic patterns. The Dolce cultivar in combination with any other studied cultivars and Manzanillo with Maraki would make sense for the hybridization program because of the higher observed distances needed to obtain higher values of important characteristics.

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来源期刊
Biocatalysis and agricultural biotechnology
Biocatalysis and agricultural biotechnology Agricultural and Biological Sciences-Agronomy and Crop Science
CiteScore
7.70
自引率
2.50%
发文量
308
审稿时长
48 days
期刊介绍: Biocatalysis and Agricultural Biotechnology is the official journal of the International Society of Biocatalysis and Agricultural Biotechnology (ISBAB). The journal publishes high quality articles especially in the science and technology of biocatalysis, bioprocesses, agricultural biotechnology, biomedical biotechnology, and, if appropriate, from other related areas of biotechnology. The journal will publish peer-reviewed basic and applied research papers, authoritative reviews, and feature articles. The scope of the journal encompasses the research, industrial, and commercial aspects of biotechnology, including the areas of: biocatalysis; bioprocesses; food and agriculture; genetic engineering; molecular biology; healthcare and pharmaceuticals; biofuels; genomics; nanotechnology; environment and biodiversity; and bioremediation.
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