Multi-dimensional epigenomic dynamics converge on H3K4 regulation of low CO2 adaptation in Nannochloropsis oceanica.

IF 11.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yanhai Gong, Qintao Wang, Li Wei, Lianhong Wang, Nana Lv, Xuefeng Du, Chen Shen, Yi Xin, Luyang Sun, Jian Xu
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Abstract

Despite their ecological and biotechnological importance, whether and how microalgae are regulated by epigenetics have remained poorly understood. In the model industrial microalga of Nannochloropsis oceanica, by comprehensive, multi-dimensional epigenomic analyses, we uncovered an epigenetic regulatory mechanism in response to CO2 level that involves the complex interplays among DNA methylation, histone modifications, dynamic nucleosome positioning, and 3D chromatin structure during low CO2 adaptation. Despite minimal DNA methylation, histone modifications including lysine acetylation, crotonylation, and methylation were associated with active chromatin states, and linked to 43.1% of the differentially expressed genes. Notably, histone H3K4 di-methylation (H3K4me2) exhibited a distinct dual-peak profile around the transcription start site, and is linked to dynamics of chromatin compartmentation. Knockout of NO24G02310, a candidate H3K4 methyltransferase, resulted in genome-wide H3K4me2 peak shifts and a decrease in H3K4me1 levels, accompanied by direct or indirect downregulation of NoHINT and NoPMA2 expression, slower microalgal growth and reduced photosynthesis (indicated by Fv/Fm), specifically under low CO2 conditions. Deletion and overexpression of the histidine triad nucleotide-binding protein of NoHINT and the plasma membrane H+-ATPase of NoPMA2 revealed the two enzymes' roles on growth and photosynthetic efficiency under low CO2, with NoHINT regulating growth and NoPMA2 influencing photosynthesis. Thereby, as a previously unappreciated strategy of low CO2 adaptation, NO24G02310 may coordinate the regulation of NoHINT and NoPMA2 through the participation of H3K4 modifications. These findings lay the foundation for enhancing microalgal productivity through epigenetic engineering.

多维表观基因组动力学聚焦于海洋纳米叶绿体H3K4调控低CO2适应。
尽管微藻具有重要的生态和生物技术意义,但表观遗传学是否以及如何调控微藻仍然知之甚少。通过对海洋纳米绿藻(Nannochloropsis oceanica)模型工业微藻进行全面、多维的表观基因组分析,揭示了低二氧化碳适应过程中DNA甲基化、组蛋白修饰、动态核小体定位和三维染色质结构等复杂相互作用的表观遗传调控机制。尽管DNA甲基化程度极低,但组蛋白修饰(包括赖氨酸乙酰化、巴豆酰化和甲基化)与活性染色质状态相关,并与43.1%的差异表达基因相关。值得注意的是,组蛋白H3K4二甲基化(H3K4me2)在转录起始位点周围表现出明显的双峰特征,并与染色质区隔动力学有关。敲除候选H3K4甲基转移酶NO24G02310,导致全基因组H3K4me2峰值移位和H3K4me1水平降低,并伴有NoHINT和NoPMA2表达的直接或间接下调,微藻生长减慢和光合作用减少(用Fv/Fm表示),特别是在低CO2条件下。NoHINT的组氨酸三联体核苷酸结合蛋白和NoPMA2的质膜H+- atp酶的缺失和过表达揭示了这两种酶在低CO2条件下对生长和光合效率的作用,NoHINT调节生长,NoPMA2影响光合作用。因此,NO24G02310可能通过参与H3K4修饰来协调NoHINT和NoPMA2的调节,作为一种之前未被认识到的低CO2适应策略。这些发现为通过表观遗传工程提高微藻产量奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plant Communications
Plant Communications Agricultural and Biological Sciences-Plant Science
CiteScore
15.70
自引率
5.70%
发文量
105
审稿时长
6 weeks
期刊介绍: Plant Communications is an open access publishing platform that supports the global plant science community. It publishes original research, review articles, technical advances, and research resources in various areas of plant sciences. The scope of topics includes evolution, ecology, physiology, biochemistry, development, reproduction, metabolism, molecular and cellular biology, genetics, genomics, environmental interactions, biotechnology, breeding of higher and lower plants, and their interactions with other organisms. The goal of Plant Communications is to provide a high-quality platform for the dissemination of plant science research.
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