血粉调节白纹伊蚊中肠细菌群落结构和代谢功能

IF 2.2 2区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xiao Wei , Xiangna Zhao
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引用次数: 0

摘要

蚊媒疾病的传播与蚊子吸血行为有着内在的联系,然而中肠微生物群对吸血的代谢适应仍然知之甚少。本研究旨在描述白纹伊蚊吸血后中肠微生物群的结构和功能变化,并阐明其潜在的生理意义。在这项研究中,我们采用16S rRNA基因扩增结合PacBio Sequel II测序来表征白纹伊蚊吸血前后中肠道微生物群的变化。饲喂血液后,我们观察到微生物组成的显著重组。这种转变的特点是不动杆菌和沃尔巴克氏菌的显著富集,沃尔巴克氏菌取代黄杆菌成为优势分类群。在功能上,血液喂养促进了与移动遗传元件和应激耐受相关的通路的上调,主要由乳酸杆菌科驱动。此外,我们首次全面分析了血餐诱导的蚊子中肠道微生物群代谢网络重塑。餐后微生物群表现出增强的丙酮酸和甘氨酸分解代谢能力。这些发现表明,血餐诱导了以养分利用和氧化管理为目标的微生物快速代谢适应。该研究揭示了微生物群动态如何支持蚊子在营养胁迫下的宿主适应,并为基于微生物群的策略干扰媒介能力提供了潜在的目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Blood meal modulates midgut bacterial community structure and metabolic function in Aedes albopictus

Blood meal modulates midgut bacterial community structure and metabolic function in Aedes albopictus
The transmission of mosquito-borne diseases is intrinsically linked to mosquito blood-feeding behavior, yet the metabolic adaptations of the midgut microbiota in response to blood meals remain poorly understood. This study aimed to characterize the structural and functional changes in the midgut microbiota of Aedes albopictus following blood feeding and to elucidate their potential physiological implications. In this study, we employed 16S rRNA gene amplification coupled with PacBio Sequel II sequencing to characterize shifts in the midgut microbiota of Aedes albopictus before and after blood feeding on mice. Following blood feeding, we observed a significant restructuring of the microbial composition. This shift was characterized by a marked enrichment of Acinetobacter and Wolbachia, with Wolbachia displacing Flavisolibacter as the dominant taxon. Functionally, blood feeding promoted the upregulation of pathways related to mobile genetic elements and stress tolerance, largely driven by Lactobacillaceae. Furthermore, we presented the first comprehensive analysis of blood meal-induced metabolic network remodeling in the mosquito midgut microbiota. Post-prandial microbiota exhibited enhanced metabolic capacity for pyruvate and glycine catabolism. These findings reveal that blood meals induce rapid microbial metabolic adaptation aimed at nutrient utilization and oxidative management. This study provides insight into how microbiota dynamics support mosquito host adaptation under nutritional stress and offers potential targets for microbiome-based strategies to interfere with vector competence.
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来源期刊
CiteScore
5.10
自引率
3.30%
发文量
69
审稿时长
33 days
期刊介绍: Comparative Biochemistry & Physiology (CBP) publishes papers in comparative, environmental and evolutionary physiology. Part D: Genomics and Proteomics (CBPD), focuses on “omics” approaches to physiology, including comparative and functional genomics, metagenomics, transcriptomics, proteomics, metabolomics, and lipidomics. Most studies employ “omics” and/or system biology to test specific hypotheses about molecular and biochemical mechanisms underlying physiological responses to the environment. We encourage papers that address fundamental questions in comparative physiology and biochemistry rather than studies with a focus that is purely technical, methodological or descriptive in nature.
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