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编码序列结构特征与基因表达的综合分析……(原文不完整,翻译到此处)

Comprehensive analysis of coding sequence architecture features and gene expression in .

作者信息

Dong Shuwei, Zhang Long, Pang Wenhui, Zhang Yongli, Wang Chang, Li Zhenyi, Ma Lichao, Tang Wei, Yang Guofeng, Song Hui

机构信息

Grassland Agri-Husbandry Research Center, College of Grassland Science, Qingdao Agricultural University, Qingdao, China.

出版信息

Physiol Mol Biol Plants. 2021 Feb;27(2):213-222. doi: 10.1007/s12298-021-00938-y. Epub 2021 Feb 18.

Abstract

Coding sequence (CDS) architecture affects gene expression levels in organisms. Codon optimization can increase the gene expression level. Therefore, understanding codon usage patterns has important implications for research on genetic engineering and exogenous gene expression. To date, the codon usage patterns of many model plants have been analyzed. However, the relationship between CDS architecture and gene expression in remains poorly understood. According to the results of genome sequencing, has many resistant genes that can be used to improve the cultivated peanut. In this study, bioinformatic approaches were used to estimate CDS architectures, including frequency of the optimal codon (Fop), polypeptide length and GC contents at the first (GC1), second (GC2) and third (GC3) codon positions. In addition, RNA-seq datasets were downloaded from PeanutBase. The relationships between gene expression and CDS architecture were assessed both under normal growth as well as nematode and drought stress conditions. A total of 26 codons with high frequency were identified, which preferentially ended with A or T in CDSs under the above-mentioned three conditions. A similar CDS architecture was found in differentially expressed genes (DEGs) under nematode and drought stresses. The GC1 content differed between DEGs and non-differentially expressed genes (NDEGs) under both drought and nematode stresses. The expression levels of DEGs were affected by different CDS architectures compared with NDEGs under drought stress. In addition, no correlation was found between differential gene expression and CDS architecture neither under nematode nor under drought stress. These results aid the understanding of gene expression in .

摘要

编码序列(CDS)结构影响生物体中的基因表达水平。密码子优化可以提高基因表达水平。因此,了解密码子使用模式对基因工程和外源基因表达的研究具有重要意义。迄今为止,许多模式植物的密码子使用模式已被分析。然而,关于[具体植物名称未给出]中CDS结构与基因表达之间的关系仍知之甚少。根据基因组测序结果,[具体植物名称未给出]有许多可用于改良栽培花生的抗性基因。在本研究中,采用生物信息学方法来评估[具体植物名称未给出]的CDS结构,包括最优密码子频率(Fop)、多肽长度以及第一(GC1)、第二(GC2)和第三(GC3)密码子位置的GC含量。此外,从花生数据库下载了[具体植物名称未给出]的RNA-seq数据集。在正常生长以及线虫和干旱胁迫条件下评估了基因表达与CDS结构之间的关系。共鉴定出26个高频密码子,在上述三种条件下,[具体植物名称未给出]的CDS中这些密码子优先以A或T结尾。在受到线虫和干旱胁迫的差异表达基因(DEG)中发现了相似的CDS结构。在干旱和线虫胁迫下,DEG与非差异表达基因(NDEG)之间的GC1含量存在差异。与干旱胁迫下的NDEG相比,不同的CDS结构影响了DEG的表达水平。此外,在受到线虫胁迫和干旱胁迫时,差异基因表达与CDS结构之间均未发现相关性。这些结果有助于了解[具体植物名称未给出]中的基因表达。

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