Microbial gas vesicles as nanotechnology tools: exploiting intracellular organelles for translational utility in biotechnology, medicine and the environment.

IF 3.5 4区 生物学 Q3 MICROBIOLOGY Microbiology-Sgm Pub Date : 2020-06-01 DOI:10.1099/mic.0.000912
Amy M Hill, George P C Salmond
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Abstract

A range of bacteria and archaea produce gas vesicles as a means to facilitate flotation. These gas vesicles have been purified from a number of species and their applications in biotechnology and medicine are reviewed here. Halobacterium sp. NRC-1 gas vesicles have been engineered to display antigens from eukaryotic, bacterial and viral pathogens. The ability of these recombinant nanoparticles to generate an immune response has been quantified both in vitro and in vivo. These gas vesicles, along with those purified from Anabaena flos-aquae and Bacillus megaterium, have been developed as an acoustic reporter system. This system utilizes the ability of gas vesicles to retain gas within a stable, rigid structure to produce contrast upon exposure to ultrasound. The susceptibility of gas vesicles to collapse when exposed to excess pressure has also been proposed as a biocontrol mechanism to disperse cyanobacterial blooms, providing an environmental function for these structures.

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作为纳米技术工具的微生物气囊:利用细胞内细胞器在生物技术、医学和环境中的转化用途。
一系列细菌和古细菌会产生气泡,作为促进浮游的一种手段。这些气泡是从许多物种中纯化出来的,本文对它们在生物技术和医学中的应用进行了综述。卤杆菌 NRC-1 气囊经改造后可显示真核生物、细菌和病毒病原体的抗原。这些重组纳米粒子产生免疫反应的能力已在体外和体内进行了量化。这些气体囊泡以及从水蚤(Anabaena flos-aquae)和巨型芽孢杆菌(Bacillus megaterium)中纯化的气体囊泡已被开发为一种声学报告系统。该系统利用气体囊泡在稳定的刚性结构中保留气体的能力,在暴露于超声波时产生对比。气泡在受到过大压力时容易崩溃,这也被认为是驱散蓝藻藻华的一种生物控制机制,为这些结构提供了一种环境功能。
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来源期刊
Microbiology-Sgm
Microbiology-Sgm 生物-微生物学
CiteScore
4.60
自引率
7.10%
发文量
132
审稿时长
3.0 months
期刊介绍: We publish high-quality original research on bacteria, fungi, protists, archaea, algae, parasites and other microscopic life forms. Topics include but are not limited to: Antimicrobials and antimicrobial resistance Bacteriology and parasitology Biochemistry and biophysics Biofilms and biological systems Biotechnology and bioremediation Cell biology and signalling Chemical biology Cross-disciplinary work Ecology and environmental microbiology Food microbiology Genetics Host–microbe interactions Microbial methods and techniques Microscopy and imaging Omics, including genomics, proteomics and metabolomics Physiology and metabolism Systems biology and synthetic biology The microbiome.
期刊最新文献
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