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一个新基因促进拟南芥在干旱胁迫下的种子萌发。

A de novo Gene Promotes Seed Germination Under Drought Stress in Arabidopsis.

作者信息

Jin Guang-Teng, Xu Yong-Chao, Hou Xing-Hui, Jiang Juan, Li Xin-Xin, Xiao Jia-Hui, Bian Yu-Tao, Gong Yan-Bo, Wang Ming-Yu, Zhang Zhi-Qin, Zhang Yong E, Zhu Wang-Sheng, Liu Yong-Xiu, Guo Ya-Long

机构信息

State Key Laboratory of Systematic and Evolutionary Botany, Institute of Botany, Chinese Academy of Sciences, Beijing 100093, China.

China National Botanical Garden, Beijing 100093, China.

出版信息

Mol Biol Evol. 2025 Jan 6;42(1). doi: 10.1093/molbev/msae262.

Abstract

The origin of genes from noncoding sequences is a long-term and fundamental biological question. However, how de novo genes originate and integrate into the existing pathways to regulate phenotypic variations is largely unknown. Here, we selected 7 genes from 782 de novo genes for functional exploration based on transcriptional and translational evidence. Subsequently, we revealed that Sun Wu-Kong (SWK), a de novo gene that originated from a noncoding sequence in Arabidopsis thaliana, plays a role in seed germination under osmotic stress. SWK is primarily expressed in dry seed, imbibing seed and silique. SWK can be fully translated into an 8 kDa protein, which is mainly located in the nucleus. Intriguingly, SWK was integrated into an extant pathway of hydrogen peroxide content (folate synthesis pathway) via the upstream gene cytHPPK/DHPS, an Arabidopsis-specific gene that originated from the duplication of mitHPPK/DHPS, and downstream gene GSTF9, to improve seed germination in osmotic stress. In addition, we demonstrated that the presence of SWK may be associated with drought tolerance in natural populations of Arabidopsis. Overall, our study highlights how a de novo gene originated and integrated into the existing pathways to regulate stress adaptation.

摘要

基因起源于非编码序列是一个长期存在的根本性生物学问题。然而,从头起源的基因如何产生并整合到现有通路中以调节表型变异,在很大程度上仍是未知的。在此,我们基于转录和翻译证据,从782个从头起源的基因中挑选了7个基因进行功能探索。随后,我们发现源自拟南芥非编码序列的一个从头起源基因孙悟空(SWK),在渗透胁迫下的种子萌发过程中发挥作用。SWK主要在干种子、吸胀种子和角果中表达。SWK能够完全翻译成一个8千道尔顿的蛋白质,该蛋白质主要定位于细胞核。有趣的是,SWK通过上游基因cytHPPK/DHPS(一个源自mitHPPK/DHPS基因重复的拟南芥特异性基因)和下游基因GSTF9,被整合到过氧化氢含量的现存通路(叶酸合成通路)中,以促进渗透胁迫下的种子萌发。此外,我们证明了SWK的存在可能与拟南芥自然种群的耐旱性有关。总体而言,我们的研究突出了一个从头起源的基因是如何产生并整合到现有通路中以调节胁迫适应性的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79e3/11721784/1f3dce467b53/msae262f1.jpg

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