Positive selection and functional divergence of farnesyl pyrophosphate synthase genes in plants

IF 2.946 Q3 Biochemistry, Genetics and Molecular Biology BMC Molecular Biology Pub Date : 2017-02-04 DOI:10.1186/s12867-017-0081-4
Jieying Qian, Yong Liu, Naixia Chao, Chengtong Ma, Qicong Chen, Jian Sun, Yaosheng Wu
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引用次数: 8

Abstract

Farnesyl pyrophosphate synthase (FPS) belongs to the short-chain prenyltransferase family, and it performs a conserved and essential role in the terpenoid biosynthesis pathway. However, its classification, evolutionary history, and the forces driving the evolution of FPS genes in plants remain poorly understood.

Phylogeny and positive selection analysis was used to identify the evolutionary forces that led to the functional divergence of FPS in plants, and recombinant detection was undertaken using the Genetic Algorithm for Recombination Detection (GARD) method. The dataset included 68 FPS variation pattern sequences (2 gymnosperms, 10 monocotyledons, 54 dicotyledons, and 2 outgroups). This study revealed that the FPS gene was under positive selection in plants. No recombinant within the FPS gene was found. Therefore, it was inferred that the positive selection of FPS had not been influenced by a recombinant episode. The positively selected sites were mainly located in the catalytic center and functional areas, which indicated that the 98S and 234D were important positively selected sites for plant FPS in the terpenoid biosynthesis pathway. They were located in the FPS conserved domain of the catalytic site. We inferred that the diversification of FPS genes was associated with functional divergence and could be driven by positive selection.

It was clear that protein sequence evolution via positive selection was able to drive adaptive diversification in plant FPS proteins. This study provides information on the classification and positive selection of plant FPS genes, and the results could be useful for further research on the regulation of triterpenoid biosynthesis.

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植物中法尼基焦磷酸合酶基因的正选择与功能分化
法尼基焦磷酸合成酶(FPS)属于短链戊烯基转移酶家族,在萜类生物合成途径中起着保守而重要的作用。然而,其分类、进化历史以及植物中FPS基因进化的驱动力仍然知之甚少。通过系统发育和正选择分析,确定导致植物中FPS功能分化的进化力量,并使用遗传算法进行重组检测(GARD)方法进行重组检测。数据集包括68个FPS变异模式序列(2个裸子植物、10个单子叶植物、54个双子叶植物和2个外群)。本研究表明,FPS基因在植物中处于正选择状态。在FPS基因内未发现重组。因此,我们推断FPS的阳性选择不受重组事件的影响。正选择位点主要位于催化中心和功能区,说明98S和234D是萜类生物合成途径中植物FPS的重要正选择位点。它们位于催化位点的FPS保守结构域。我们推测FPS基因的多样化与功能分化有关,可能是由正选择驱动的。很明显,通过正选择的蛋白质序列进化能够驱动植物FPS蛋白的适应性多样化。本研究为植物FPS基因的分类和阳性选择提供了信息,为进一步研究三萜生物合成的调控机制提供了依据。
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来源期刊
BMC Molecular Biology
BMC Molecular Biology 生物-生化与分子生物学
CiteScore
4.80
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: BMC Molecular Biology is an open access journal publishing original peer-reviewed research articles in all aspects of DNA and RNA in a cellular context, encompassing investigations of chromatin, replication, recombination, mutation, repair, transcription, translation and RNA processing and function.
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