Massive components in renewable hydrothermal liquid trigger ultra-high differentially expressed genes and diverse pathways for pathogen control

Yongdong Xu , Changbin Yuan , Anan Qu , Yueyao Wang , Linyan Zhang , Yifeng Zhang , Jianwen Lu , Taisheng Du , Zhidan Liu
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Abstract

Hydrothermal liquefaction aqueous phase (HTL-AP) greatly hindered the sustainable development of HTL technology due to its high output and diverse compound distribution. Herein, the antimicrobial behavior, application scenario and acton mechanism of HTL-AP were clarified since an emerging pathogen reduction approach by HTL-AP attracts increasing attention. We studied the molecular cognition and underlying mechanism for phytopathogen control provoked by HTL-AP via multiscale analysis including mycelial morphology, intracellular metabolites and transcriptome. HTL-AP in a very low concentration (only 1.5%) completely inhibited the growth of Botrytis cinerea (B. cinerea) and showed promising potential for seed-borne fungi control. Biochemical analysis revealed that the morphology was significantly changed, the contents of four intracellular compounds were all largely disordered, and activities of six enzymes simultaneously decreased in mycelium after uptake of HTL-AP. Further, the transcriptome analysis revealed the disturbance of the gene expression of B. cinerea in response to HTL-AP stress. Ultra-high differentially expressed genes were enriched, which was significantly distinguished from the reported fungicide agent. HTL-AP mainly acted on metabolic processes of B. cinerea while disruption of genetic information processes and cellular processes were also performed. All four main antimicrobial modes were observed in HTL-AP action, and multiple action pathways of HTL-AP exhibited a synergistic interaction in growth inhibition. The multiscale analysis in this study refreshed the knowledge and cognition of HTL-AP functioned for pathogen control, which was speculated due to the multiple active compounds. HTL-AP showed a high potential for seed-borne fungi control, contributing to the novel renewable and suatainable fungicide agent development and new antimicroial target discovery.

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可再生热液中的大量成分引发超高差异表达基因和多种病原体控制途径
水相热液化(HTL-AP)因其产量高、化合物分布多样而极大地阻碍了水相热液化技术的可持续发展。HTL-AP 是一种新兴的减少病原体的方法,越来越受到人们的关注,因此我们在此阐明了 HTL-AP 的抗菌行为、应用场景和作用机制。我们通过菌丝形态、胞内代谢物和转录组等多尺度分析,研究了 HTL-AP 控制植物病原菌的分子认知和内在机制。极低浓度(仅 1.5%)的 HTL-AP 可完全抑制灰霉病菌(B. cinerea)的生长,在种子传播真菌的防治方面具有广阔的前景。生化分析表明,吸收 HTL-AP 后,菌丝的形态发生了显著变化,四种细胞内化合物的含量均发生了很大程度的紊乱,六种酶的活性同时下降。此外,转录组分析表明,在 HTL-AP 胁迫下,B. cinerea 的基因表达发生了紊乱。富集了超高差异表达基因,这与已报道的杀真菌剂有明显区别。HTL-AP 主要作用于 B. cinerea 的代谢过程,同时也破坏遗传信息过程和细胞过程。在 HTL-AP 的作用中观察到了所有四种主要的抗菌模式,并且 HTL-AP 的多种作用途径在抑制生长方面表现出协同作用。本研究中的多尺度分析刷新了人们对 HTL-AP 控制病原体功能的认识和认知,并推测这是由于其含有多种活性化合物所致。HTL-AP 在控制种传真菌方面表现出很高的潜力,有助于新型可再生和可适配杀菌剂的开发和新抗菌靶标的发现。
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