蓝藻中m4C DNA甲基化对四吡咯生物合成的表观遗传控制。

IF 3.9 2区 生物学 Q1 GENETICS & HEREDITY
Nils Schmidt, Nils Stappert, Kaori Nimura-Matsune, Satoru Watanabe, Roman Sobotka, Martin Hagemann, Wolfgang R Hess
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引用次数: 0

摘要

表观遗传DNA修饰是真核生物基因表达的关键,但其在细菌中的调控意义尚不清楚。在Synechocystis 6803中,DNA甲基转移酶M.Ssp6803II修饰GGCC基序中的第一个胞嘧啶,形成n4 -甲基胞嘧啶(GGm4CC)。删除sll0729基因(∆sll0729)导致叶绿素水平降低,这一现象被抑制基因突变逆转。对7个抑制基因克隆的重测序显示,slr1790启动子的鉴别序列存在GGCC到GGTC的共同突变,该序列编码原卟啉原IX氧化酶HemJ,对四吡罗生物合成至关重要。转录组学和qPCR分析表明,∆sll0729突变体中slr1790表达异常。这种畸变导致卟啉III和原卟啉IX的积累,表明HemJ活性受损。为了证实DNA甲基化在hemJ表达中的重要性,我们将具有不同鉴别序列的hemJ启动子变体引入野生型,然后进行sll0729缺失。sll0729缺失在具有GGTC鉴别基序的菌株中分离,产生野生型样的色素沉着,而新制备的具有天然hemJ启动子的突变体呈现蓝色表型。这些发现表明,hemJ在聚胞菌中受到严格调控,而n4 -甲基胞嘧啶对hemJ的正常表达至关重要。因此,胞嘧啶n4甲基化在聚囊藻和其他蓝藻中是一个相关的表观遗传标记。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Epigenetic control of tetrapyrrole biosynthesis by m4C DNA methylation in a cyanobacterium.

Epigenetic DNA modifications are pivotal in eukaryotic gene expression, but their regulatory significance in bacteria is less understood. In Synechocystis 6803, the DNA methyltransferase M.Ssp6803II modifies the first cytosine in the GGCC motif, forming N4-methylcytosine (GGm4CC). Deletion of the sll0729 gene encoding M.Ssp6803II (∆sll0729) caused a bluish phenotype due to reduced chlorophyll levels, which was reversed by suppressor mutations. Re-sequencing of 7 suppressor clones revealed a common GGCC to GGTC mutation in the slr1790 promoter's discriminator sequence, encoding protoporphyrinogen IX oxidase, HemJ, crucial for tetrapyrrole biosynthesis. Transcriptomic and qPCR analyses indicated aberrant slr1790 expression in ∆sll0729 mutants. This aberration led to the accumulation of coproporphyrin III and protoporphyrin IX, indicative of impaired HemJ activity. To confirm the importance of DNA methylation in hemJ expression, hemJ promoter variants with varying discriminator sequences were introduced into the wild type, followed by sll0729 deletion. The sll0729 deletion segregated in strains with the GGTC discriminator motif, resulting in wild-type-like pigmentation, whereas freshly prepared ∆sll0729 mutants with the native hemJ promoter exhibited the bluish phenotype. These findings demonstrate that hemJ is tightly regulated in Synechocystis and that N4-methylcytosine is essential for proper hemJ expression. Thus, cytosine N4-methylation is a relevant epigenetic marker in Synechocystis and likely other cyanobacteria.

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来源期刊
DNA Research
DNA Research 生物-遗传学
CiteScore
6.00
自引率
4.90%
发文量
39
审稿时长
4.5 months
期刊介绍: DNA Research is an internationally peer-reviewed journal which aims at publishing papers of highest quality in broad aspects of DNA and genome-related research. Emphasis will be made on the following subjects: 1) Sequencing and characterization of genomes/important genomic regions, 2) Comprehensive analysis of the functions of genes, gene families and genomes, 3) Techniques and equipments useful for structural and functional analysis of genes, gene families and genomes, 4) Computer algorithms and/or their applications relevant to structural and functional analysis of genes and genomes. The journal also welcomes novel findings in other scientific disciplines related to genomes.
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