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Global identification of alternative splicing in Shiraia bambusicola and analysis of its regulation in hypocrellin biosynthesis

机译:Shiraia Bambusicola替代剪接的全球识别及其在HypOrlin蛋白生物合成中的调控分析

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Hypocrellins, as natural pigments from Shiraia bambusicola, have extensive applications in the agricultural, cosmetic, food, and feed industries, and play a vital role in photodynamic therapy for anticancer and antiviral treatments. However, environmental stresses are always the bottlenecks for increasing hypocrellin yield during the process of fermentation. Pre-mRNA alternative splicing (AS) is an essential mechanism in the defense of abiotic stresses in the animal and plant kingdom, but is seldom involved in fungi. In this study, AS from genome-wide sequencing and RNA-seq data for S. bambusicola was analyzed for the first time. Interestingly, the proportion of AS in S. bambusicola was 38.44% (most of them participated in metabolic processes, covering pigmentation and response to stimulus), a much higher ratio than seen in that of other fungal species (1.3-18%). Here, we identified the relationship of AS and secondary metabolic (SM) biosynthesis under a series of abiotic stresses. Suitable fungicides suppressed hypocrellin production significantly, and AS occurred in key functional genes (sbFLO, sbMFS, sbPKS) of hypocrellin biosynthesis. In contrast, H2O2 improved the yield of hypocrellins, but AS were not found in the corresponding gene cluster. A further study showed that overexpressing an isoform of sbPKS (sbPKSa) in Shiraia bambusicola could dramatically down-regulate the expression of the original gene sbPKS and nearly inhibit the production of hypocrellins. Altogether, our study strongly supported the hypothesis that AS had a vital role in the regulation of hypocrellin biosynthesis under stresses, and initially explored whether SM functional genes were relevant for fungi.
机译:由于Shiraia Bambusicola的天然颜料,具有广泛应用在农业,化妆品,食品和饲料行业的广泛应用,并对抗癌和抗病毒治疗的光动力治疗起着至关重要的作用。然而,环境压力始终是用于在发酵过程中提高过侵入素产量的瓶颈。前mRNA替代剪接(AS)是动物和植物王国防御非生物胁迫的基本机制,但很少参与真菌。在本研究中,从基因组的测序和S. Bambusicola的RNA-SEQ数据首次进行分析。有趣的是,如S. Bambusicola的比例为38.44%(其中大多数参加了代谢过程,覆盖着色素沉着和对刺激的反应),比其他真菌物种(1.3-18%)所示的比例更高。在这里,我们确定了一系列非生物胁迫下的AS和二次代谢(SM)生物合成的关系。合适的杀菌剂显着抑制了假细胞的产生,并且如hypOcrellin生物合成的关键功能基因(sbflo,sbmfs,sbpks)中发生。相比之下,H 2 O 2改善了囊素的产率,但在相应的基因簇中未发现。进一步的研究表明,过表达了SBMBUSICOLA中的SBPKS(SBPKA)的同种型可以显着降低原始基因SBPK的表达,并几乎抑制培养的胚胎产生。完全,我们的研究强烈支持该假设,即在压力下对胚胎生物合成的调节中具有重要作用,最初探索了SM功能基因是否与真菌相关。

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