Transcriptome analysis of tilapia streptococcus agalactiae in response to baicalin.

IF 1.6 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Genes & genomics Pub Date : 2024-10-22 DOI:10.1007/s13258-024-01541-7
Qing-Qin Huang, Shao-Long Liu, Ji-Hui Huang, Fei Wang, Zi-Chen Zhao, Heng-Wei Deng, Chuan Lin, Wei-Liang Guo, Zhi-Hong Zhong, Jian-Long Li, Dong-Dong Zhang, Shi-Feng Wang, Yong-Can Zhou
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Abstract

Streptococcus agalactiae (S. agalactiae) is a highly pathogenic bacterial pathogen in aquatic animals. Our previous study has demonstrated the significant inhibitory effect of baicalin on β-hemolytic/cytolytic activity, which is a key virulence factor of S. agalactiae. In this study, we aimed to elucidate the mechanism underlying baicalin's inhibition of S. agalactiae β-hemolytic/cytolytic activity by transcriptomic analysis. Bacteria were exposed to 39.06 µg/mL baicalin for 6 h, and their β-hemolytic/cytolytic activities were assessed using blood plates. Then, the differentially expressed genes (DEGs) were identified and characterized by RNA sequencing (RNA-Seq), and further confirmed using the qRT-PCR. A total of 10 DEGs with 7 significantly up-regulated and 3 significantly down-regulated, were found to be affected significantly under baicalin treatment. These DEGs were associated with 5 biological processes, 5 cellular components, and 3 molecular functions. They were primarily enriched in 3 pathways: lacD and lacC in galactose metabolism, lrgA and lrgB in the two-component system, and ribH/rib4 in riboflavin metabolism. These suggested that baicalin might inhibit the conversion of pyruvate to acetyl-CoA and malonyl-CoA, which are crucial precursors for β-hemolysin/cytolysin synthesis, and result in the accumulation of pyruvate, suppress the expressions of pyruvate cell membrane channel protein genes lrgA and lrgB. Baicalin could compensatory up-regulate the expressions of tryptophan/tyrosine ABC transporter family genes, ABC.X4.A, ABC.X4.P, and ABC.X4.S by inhibiting the expression of cyl A/B in cyl operons. Moreover, it hinders the conversion of D-glucose 1-phosphate to the dTDP-L-rhamnose pathway and leads to a deficiency of L-rhamnose, an important precursor for β-hemolysin/cytolysin synthesis.

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罗非鱼链球菌对黄芩苷反应的转录组分析。
无乳链球菌(S. agalactiae)是水生动物的一种高致病性细菌病原体。黄芩苷的β-溶血/溶胞活性是无乳链球菌的一个关键毒力因子,而黄芩苷对β-溶血/溶胞活性有显著的抑制作用。本研究旨在通过转录组分析阐明黄芩苷抑制 S. agalactiae β-溶血/溶胞活性的机制。将细菌暴露于 39.06 µg/mL 黄芩苷中 6 小时,并使用血平板评估其 β-溶血/溶胞活性。然后,通过 RNA 测序(RNA-Seq)鉴定和表征差异表达基因(DEGs),并通过 qRT-PCR 进一步确认。结果发现,共有 10 个 DEGs 在黄芩苷处理下受到显著影响,其中 7 个显著上调,3 个显著下调。这些 DEGs 与 5 个生物过程、5 个细胞组分和 3 个分子功能相关。它们主要富集在3个通路中:半乳糖代谢中的lacD和lacC,双组分系统中的lrgA和lrgB,核黄素代谢中的ribH/rib4。这表明黄芩苷可能会抑制丙酮酸向乙酰-CoA和丙二酰-CoA的转化,而乙酰-CoA和丙二酰-CoA是合成β-溶血素/溶胞素的重要前体,从而导致丙酮酸的积累,抑制丙酮酸细胞膜通道蛋白基因lrgA和lrgB的表达。黄芩苷可通过抑制cyl操作子中cyl A/B的表达,代偿性地上调色氨酸/酪氨酸ABC转运体家族基因ABC.X4.A、ABC.X4.P和ABC.X4.S的表达。此外,它还会阻碍 D-葡萄糖-1-磷酸向 dTDP-L 鼠李糖途径的转化,导致 L-鼠李糖的缺乏,而 L-鼠李糖是合成 β 溶血素/溶胞素的重要前体。
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来源期刊
Genes & genomics
Genes & genomics 生物-生化与分子生物学
CiteScore
3.70
自引率
4.80%
发文量
131
审稿时长
6-12 weeks
期刊介绍: Genes & Genomics is an official journal of the Korean Genetics Society (http://kgenetics.or.kr/). Although it is an official publication of the Genetics Society of Korea, membership of the Society is not required for contributors. It is a peer-reviewed international journal publishing print (ISSN 1976-9571) and online version (E-ISSN 2092-9293). It covers all disciplines of genetics and genomics from prokaryotes to eukaryotes from fundamental heredity to molecular aspects. The articles can be reviews, research articles, and short communications.
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