rna结合蛋白NrdA的过表达影响曲霉种的整体基因表达和次生代谢。

IF 3.1 2区 生物学 Q2 MICROBIOLOGY mSphere Pub Date : 2025-02-25 Epub Date: 2025-01-24 DOI:10.1128/msphere.00849-24
Chihiro Kadooka, Kosuke Izumitsu, Teigo Asai, Kentaro Hiramatsu, Kazuki Mori, Kayu Okutsu, Yumiko Yoshizaki, Kazunori Takamine, Masatoshi Goto, Hisanori Tamaki, Taiki Futagami
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引用次数: 0

摘要

RNA结合蛋白Nrd1参与RNA聚合酶II转录终止。在本研究中,我们发现同源NrdA在曲霉种的全局mRNA表达和次级代谢中起重要作用。利用Tet-On系统构建了一株nrdA条件表达菌株。kawachii。nrdA的下调导致了严重的生长缺陷,表明nrdA对川崎田鼠的增殖至关重要。平行RNA测序和RNA免疫沉淀测序分析鉴定了潜在的nrda相互作用转录物,对应于32%的预测川崎杆菌蛋白质编码基因。随后的基因本体论分析表明,NrdA的过表达影响了次生代谢物的产生。为了澄清这一点,我们构建了在发育早期过表达NrdA的芽曲霉、烟曲霉和米曲霉菌株。NrdA的过表达减少了A. nidulans中sterigmatocystin和青霉素的产生,以及A. fumigatus中helvolic acid和pyripypypena的产生。此外,它增加了米曲霉中曲酸的产量,降低了青霉素的产量。这些影响伴随着相关基因mRNA水平的几乎一致的变化。综上所述,这些结果表明NrdA是必需的rna结合蛋白,在曲霉种的全局基因表达和次生代谢中起着重要作用。IMPORTANCENrd1是Nrd1-Nab3-Sen1复合体的一个组成部分,是酵母中参与转录终止的重要rna结合蛋白。然而,其在丝状真菌中的作用尚未被研究。在本研究中,我们在曲霉种中鉴定了一个同源NrdA,鉴定了可能与NrdA相互作用的mRNA,并研究了NrdA过表达对luchuensis mut中mRNA表达的影响。kawachii。结果表明,至少在发育早期,NrdA控制着涉及多种代谢途径的全局基因表达,包括次级代谢过程。我们证明NrdA过表达显著影响了灰曲霉、米曲霉和烟曲霉次生代谢物的产生。我们的发现对真菌研究界具有重要意义,因为次生代谢是曲霉种的工业和临床重要方面。
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Overexpression of the RNA-binding protein NrdA affects global gene expression and secondary metabolism in Aspergillus species.

RNA-binding protein Nrd1 plays a role in RNA polymerase II transcription termination. In this study, we showed that the orthologous NrdA is important in global mRNA expression and secondary metabolism in Aspergillus species. We constructed an nrdA conditional expression strain using the Tet-On system in Aspergillus luchuenesis mut. kawachii. Downregulation of nrdA caused a severe growth defect, indicating that NrdA is essential for the proliferation of A. kawachii. Parallel RNA-sequencing and RNA immunoprecipitation-sequencing analysis identified potential NrdA-interacting transcripts, corresponding to 32% of the predicted protein-coding genes of A. kawachii. Subsequent gene ontology analysis suggested that overexpression of NrdA affects the production of secondary metabolites. To clarify this, we constructed Aspergillus nidulans, Aspergillus fumigatus, and Aspergillus oryzae strains overexpressing NrdA in the early developmental stage. Overexpression of NrdA reduced the production of sterigmatocystin and penicillin in A. nidulans, as well as that of helvolic acid and pyripyropene A in A. fumigatus. Moreover, it increased the production of kojic acid and reduced the production of penicillin in A. oryzae. These effects were accompanied by almost consistent changes in the mRNA levels of relevant genes. Collectively, these results suggest that NrdA is the essential RNA-binding protein, which plays a significant role in global gene expression and secondary metabolism in Aspergillus species.IMPORTANCENrd1, a component of the Nrd1-Nab3-Sen1 complex, is an essential RNA-binding protein involved in transcriptional termination in yeast. However, its role in filamentous fungi has not been studied. In this study, we characterized an orthologous NrdA in the Aspergillus species, identified potential NrdA-interacting mRNA, and investigated the effect of overexpression of NrdA on mRNA expression in Aspergillus luchuensis mut. kawachii. The results indicated that NrdA controls global gene expression involved in versatile metabolic pathways, including the secondary metabolic process, at least in the early developmental stage. We demonstrated that NrdA overexpression significantly affected the production of secondary metabolites in Aspergillus nidulans, Aspergillus oryzae, and Aspergillus fumigatus. Our findings are of importance to the fungal research community because the secondary metabolism is an industrially and clinically important aspect for the Aspergillus species.

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来源期刊
mSphere
mSphere Immunology and Microbiology-Microbiology
CiteScore
8.50
自引率
2.10%
发文量
192
审稿时长
11 weeks
期刊介绍: mSphere™ is a multi-disciplinary open-access journal that will focus on rapid publication of fundamental contributions to our understanding of microbiology. Its scope will reflect the immense range of fields within the microbial sciences, creating new opportunities for researchers to share findings that are transforming our understanding of human health and disease, ecosystems, neuroscience, agriculture, energy production, climate change, evolution, biogeochemical cycling, and food and drug production. Submissions will be encouraged of all high-quality work that makes fundamental contributions to our understanding of microbiology. mSphere™ will provide streamlined decisions, while carrying on ASM''s tradition for rigorous peer review.
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