Genetic diversity analysis and DNA fingerprint construction of Zanthoxylum species based on SSR and iPBS markers.

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2024-09-07 DOI:10.1186/s12870-024-05373-1
Xiaoxi Zhang, Wei Chen, Zhiwu Yang, Chengrong Luo, Weiwei Zhang, Feng Xu, Jiabao Ye, Yongling Liao
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Abstract

Zanthoxylum is a versatile economic tree species utilized for its spice, seasoning, oil, medicinal, and industrial raw material applications, and it has a lengthy history of cultivation and domestication in China. This has led to the development of numerous cultivars. However, the phenomenon of mixed cultivars and confusing names has significantly obstructed the effective utilization of Zanthoxylum resources and industrial development. Consequently, conducting genetic diversity studies and cultivar identification on Zanthoxylum are crucial. This research analyzed the genetic traits of 80 Zanthoxylum cultivars using simple sequence repeat (SSR) and inter-Primer Binding Site (iPBS) molecular markers, leading to the creation of a DNA fingerprint. This study identified 206 and 127 alleles with 32 SSR markers and 10 iPBS markers, respectively, yielding an average of 6.4 and 12.7 alleles (Na) per marker. The average polymorphism information content (PIC) for the SSR and iPBS markers was 0.710 and 0.281, respectively. The genetic similarity coefficients for the 80 Zanthoxylum accessions ranged from 0.0947 to 0.9868 and from 0.2206 to 1.0000, with mean values of 0.3864 and 0.5215, respectively, indicating substantial genetic diversity. Cluster analysis, corroborated by principal coordinate analysis (PCoA), categorized these accessions into three primary groups. Analysis of the genetic differentiation among the three Zanthoxylum (Z. bungeanum, Z. armatum, and Z. piperitum) populations using SSR markers revealed a mean genetic differentiation coefficient (Fst) of 0.335 and a gene flow (Nm) of 0.629, suggesting significant genetic divergence among the populations. Molecular variance analysis (AMOVA) indicated that 65% of the genetic variation occurred within individuals, while 35% occurred among populations. Bayesian model-based analysis of population genetic structure divided all materials into two groups. The combined PI and PIsibs value of the 32 SSR markers were 4.265 × 10- 27 and 1.282 × 10- 11, respectively, showing strong fingerprinting power. DNA fingerprints of the 80 cultivars were established using eight pairs of SSR primers, each assigned a unique numerical code. In summary, while both markers were effective at assessing the genetic diversity and relationships of Zanthoxylum species, SSR markers demonstrated superior polymorphism and cultivar discrimination compared to iPBS markers. These findings offer a scientific foundation for the conservation and sustainable use of Zanthoxylum species.

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基于 SSR 和 iPBS 标记的 Zanthoxylum 物种遗传多样性分析和 DNA 指纹构建。
黄樟是一种用途广泛的经济树种,可用作香料、调味品、油料、药材和工业原料,在中国有着悠久的栽培和驯化历史。它在中国的栽培和驯化历史悠久,因此培育出了众多栽培品种。然而,栽培品种混杂、名称混乱的现象极大地阻碍了黄樟资源的有效利用和产业发展。因此,对黄樟进行遗传多样性研究和栽培品种鉴定至关重要。本研究利用简单序列重复(SSR)和核苷酸间结合位点(iPBS)分子标记分析了 80 个 Zanthoxylum 栽培品种的遗传性状,从而建立了 DNA 指纹。这项研究利用 32 个 SSR 标记和 10 个 iPBS 标记分别鉴定出 206 和 127 个等位基因,每个标记平均鉴定出 6.4 和 12.7 个等位基因(Na)。SSR 标记和 iPBS 标记的平均多态性信息含量(PIC)分别为 0.710 和 0.281。80 个 Zanthoxylum 接种的遗传相似系数范围分别为 0.0947 至 0.9868 和 0.2206 至 1.0000,平均值分别为 0.3864 和 0.5215,表明遗传多样性很高。经主坐标分析(PCoA)证实,聚类分析将这些品种分为三个主要群体。利用 SSR 标记对三个 Zanthoxylum(Z. bungeanum、Z. armatum 和 Z. piperitum)种群之间的遗传分化进行分析,发现平均遗传分化系数(Fst)为 0.335,基因流(Nm)为 0.629,表明种群之间存在显著的遗传分化。分子方差分析(AMOVA)表明,65%的遗传变异发生在个体内部,35%发生在种群之间。基于贝叶斯模型的种群遗传结构分析将所有材料分为两组。32 个 SSR 标记的综合 PI 值和 PIsibs 值分别为 4.265 × 10- 27 和 1.282 × 10- 11,显示出很强的指纹识别能力。使用 8 对 SSR 引物建立了 80 个栽培品种的 DNA 指纹,每对引物都有一个唯一的数字编码。总之,虽然两种标记都能有效评估黄花梨物种的遗传多样性和遗传关系,但与 iPBS 标记相比,SSR 标记表现出更高的多态性和栽培品种鉴别能力。这些发现为保护和可持续利用 Zanthoxylum 物种提供了科学依据。
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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