University of Natural Resources and Life Sciences, Vienna, Department of Applied Genetics and Cell Biology, Institute of Microbial Genetics, Tulln an der Donau, Austria.
Aalborg University, Department of Chemistry and Bioscience, Aalborg, Denmark.
PLoS Genet. 2024 Jan 2;20(1):e1011075. doi: 10.1371/journal.pgen.1011075. eCollection 2024 Jan.
Facultative heterochromatin marked by histone H3 lysine 27 trimethylation (H3K27me3) is an important regulatory layer involved in secondary metabolite (SM) gene silencing and crucial for fungal development in the genus Fusarium. While this histone mark is essential in some (e.g., the rice pathogen Fusarium fujikuroi), it appears dispensable in other fusaria. Here, we show that deletion of FpKMT6 is detrimental but not lethal in the plant pathogen Fusarium proliferatum, a member of the Fusarium fujikuroi species complex (FFSC). Loss of FpKmt6 results in aberrant growth, and expression of a large set of previously H3K27me3-silenced genes is accompanied by increased H3K27 acetylation (H3K27ac) and an altered H3K36me3 pattern. Next, H3K9me3 patterns are affected in Δfpkmt6, indicating crosstalk between both heterochromatic marks that became even more obvious in a strain deleted for FpKMT1 encoding the H3K9-specific histone methyltransferase. In Δfpkmt1, all H3K9me3 marks present in the wild-type strain are replaced by H3K27me3, a finding that may explain the subtle phenotype of the Δfpkmt1 strain which stands in marked contrast to other filamentous fungi. A large proportion of SM-encoding genes is allocated with H3K27me3 in the wild-type strain and loss of H3K27me3 results in elevated expression of 49% of them. Interestingly, genes involved in the biosynthesis of the phytohormones gibberellins (GA) are among the most upregulated genes in Δfpkmt6. Although several FFSC members harbor GA biosynthetic genes, its production is largely restricted to F. fujikuroi, possibly outlining the distinct lifestyles of these notorious plant pathogens. We show that H3K27me3 is involved in GA gene silencing in F. proliferatum and at least one additional FFSC member, and thus, may serve as a regulatory layer for gene silencing under non-favoring conditions.
组成型异染色质由组蛋白 H3 赖氨酸 27 三甲基化(H3K27me3)标记,是参与次级代谢物(SM)基因沉默的重要调控层,对镰刀菌属真菌的发育至关重要。虽然这种组蛋白标记在某些(例如水稻病原体镰孢菌)中是必不可少的,但在其他镰孢菌中似乎是可有可无的。在这里,我们表明,在植物病原体腐皮镰刀菌(Fusarium proliferatum)中,FpKMT6 的缺失是有害的,但不是致命的,腐皮镰刀菌是稻瘟病菌物种复合体(FFSC)的成员。FpKmt6 的缺失导致生长异常,并且一大组先前被 H3K27me3 沉默的基因的表达伴随着 H3K27 乙酰化(H3K27ac)的增加和 H3K36me3 模式的改变。接下来,Δfpkmt6 中的 H3K9me3 模式受到影响,表明这两种异染色质标记之间存在串扰,而在缺失编码 H3K9 特异性组蛋白甲基转移酶的 FpKMT1 的菌株中,这种串扰变得更加明显。在 Δfpkmt1 中,野生型菌株中存在的所有 H3K9me3 标记都被 H3K27me3 取代,这一发现可能解释了 Δfpkmt1 菌株的微妙表型,与其他丝状真菌形成鲜明对比。在野生型菌株中,很大一部分编码次级代谢物的基因被 H3K27me3 分配,而 H3K27me3 的缺失导致其中 49%的基因表达升高。有趣的是,参与植物激素赤霉素(GA)生物合成的基因是 Δfpkmt6 中上调最多的基因之一。尽管几个 FFSC 成员都含有 GA 生物合成基因,但它们的产生主要局限于稻瘟病菌,这可能勾勒出这些臭名昭著的植物病原体截然不同的生活方式。我们表明,H3K27me3 参与腐皮镰刀菌和至少另一个 FFSC 成员中 GA 基因的沉默,因此,它可能作为非有利条件下基因沉默的调控层。