The complete chloroplast genome of Arachis lutescens Krapov. & Rigoni (Fabaceae).

IF 0.5 4区 生物学 Q4 GENETICS & HEREDITY
Mitochondrial DNA. Part B, Resources Pub Date : 2024-05-31 eCollection Date: 2024-01-01 DOI:10.1080/23802359.2024.2353230
Hexin Cui, He Xu, Yu Zhang, Chunrui Xu, Han Wang, Qinghua Li
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引用次数: 0

Abstract

Arachis lutescens Krapov. & Rigoni 1958 is an important species due to their potentially extensive applications for cultivated peanut breeding. The whole chloroplast genome of A. lutescens was successfully assembled and annotated for the first time. The complete chloroplast genome of A. lutescens is a typically circular structure of 156,398 bp with a GC content of 36.3%. It comprises a large single-copy (LSC) region of 85,950 bp, a small single-copy (SSC) region of 18,800 bp, and two inverted repeat regions (IRs) of 25,824 bp, each. The plastome of A. lutescens contains a total of 125 genes, including 81 protein-coding genes, 36 tRNAs, and eight rRNAs. The phylogenetic analysis strongly supports the close relationship between A. lutescens and cultivated peanut clades. This study contributes to our understanding of the molecular characteristics and evolutionary relationships of this plant species.

Arachis lutescens Krapov. & Rigoni(豆科植物)的完整叶绿体基因组。
Arachis lutescens Krapov. & Rigoni 1958 是一个重要的物种,因为其在栽培花生育种中具有潜在的广泛应用。我们首次成功地组装并注释了 A. lutescens 的整个叶绿体基因组。A. lutescens 的完整叶绿体基因组是一个典型的环状结构,长达 156,398 bp,GC 含量为 36.3%。它包括一个长达 85,950 bp 的大型单拷贝(LSC)区、一个长达 18,800 bp 的小型单拷贝(SSC)区和两个各长达 25,824 bp 的倒位重复区(IR)。A. lutescens 的质粒体共包含 125 个基因,其中包括 81 个蛋白质编码基因、36 个 tRNA 和 8 个 rRNA。系统发生分析有力地支持了 A. lutescens 与栽培花生支系之间的密切关系。这项研究有助于我们了解该植物物种的分子特征和进化关系。
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来源期刊
Mitochondrial DNA. Part B, Resources
Mitochondrial DNA. Part B, Resources Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
1.30
自引率
20.00%
发文量
670
期刊介绍: This open access journal publishes high-quality and concise research articles reporting the sequence of full mitochondrial genomes, and short communications focusing on the physical, chemical, and biochemical aspects of mtDNA and proteins involved in mtDNA metabolism and interactions.
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