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用于模拟基因表达和转录本进化的基于密码子的指标。

Codon-based indices for modeling gene expression and transcript evolution.

作者信息

Bahiri-Elitzur Shir, Tuller Tamir

机构信息

Department of Biomedical Engineering, Tel-Aviv University, Tel Aviv, Israel.

The Sagol School of Neuroscience, Tel-Aviv University, Tel Aviv, Israel.

出版信息

Comput Struct Biotechnol J. 2021 Apr 22;19:2646-2663. doi: 10.1016/j.csbj.2021.04.042. eCollection 2021.

Abstract

Codon usage bias (CUB) refers to the phenomena that synonymous codons are used in different frequencies in most genes and organisms. The general assumption is that codon biases reflect a balance between mutational biases and natural selection. Today we understand that the codon content is related and can affect all gene expression steps. Starting from the 1980s, codon-based indices have been used for answering different questions in all biomedical fields, including systems biology, agriculture, medicine, and biotechnology. In general, codon usage bias indices weigh each codon or a small set of codons to estimate the fitting of a certain coding sequence to a certain phenomenon (e.g., bias in codons, adaptation to the tRNA pool, frequencies of certain codons, transcription elongation speed, etc.) and are usually easy to implement. Today there are dozens of such indices; thus, this paper aims to review and compare the different codon usage bias indices, their applications, and advantages. In addition, we perform analysis that demonstrates that most indices tend to correlate even though they aim to capture different aspects. Due to the centrality of codon usage bias on different gene expression steps, it is important to keep developing new indices that can capture additional aspects that are not modeled with the current indices.

摘要

密码子使用偏好(CUB)是指在大多数基因和生物体中,同义密码子以不同频率被使用的现象。一般的假设是,密码子偏好反映了突变偏好和自然选择之间的平衡。如今我们知道,密码子组成是相关的,并且会影响基因表达的所有步骤。从20世纪80年代开始,基于密码子的指数就被用于回答所有生物医学领域的不同问题,包括系统生物学、农业、医学和生物技术。一般来说,密码子使用偏好指数会权衡每个密码子或一小组密码子,以估计某个编码序列与某种现象(例如,密码子偏好、对tRNA库的适应性、某些密码子的频率、转录延伸速度等)的契合度,并且通常易于实施。如今有几十种这样的指数;因此,本文旨在综述和比较不同的密码子使用偏好指数、它们的应用及优点。此外,我们进行的分析表明,即使大多数指数旨在捕捉不同方面,但它们往往相互关联。由于密码子使用偏好在不同基因表达步骤中的核心地位,持续开发能够捕捉当前指数未涵盖的其他方面的新指数非常重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/354f/8122159/3c4317066853/ga1.jpg

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