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FINGERPRINT: Fully Integrated Culturomic Platform for Rapid, High-throughput Microbial Identification and Characterisation

FINGERPRINT: Fully Integrated Culturomic Platform for Rapid, High-throughput Microbial Identification and Characterisation
FINGERPRINT:用于快速、高通量微生物鉴定和表征的完全集成的培养组学平台
批准号:
BB/W019531/1
负责人:
Julianne Megaw
金额:
$60.42万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
已结题
起止时间:
2022 至 --

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英文摘要
Traditional microbiology is focused on growing cultures in the lab, but in recent decades this has changed. Developments in DNA sequencing technologies mean that it is possible to explore the genetic potential of a microbe without having to grow it, which has allowed the rapid study of entire communities of microbes in the human digestive system, soil, and oceans. While this has benefits, the traditional culturing of microbial communities ("culturomics") has seen somewhat of a Renaissance in recent years, as it has become clear that DNA sequencing cannot replace all other techniques. For example, while DNA sequencing will tell you which genes a microbe has, it does not tell you if these genes are functional, or when they will be used. It also cannot easily tell you what a new gene does, and many genes remain unstudied which could be important for medical or industrial applications. Finally, DNA sequencing is technically complex, slow, and costly, which restricts the amount of research which can be done. Growing microbes isn't without its own problems, however. Microbial communities can be made of hundreds or thousands of species, and separating and growing all of these in the lab requires enormous amounts of work. To keep these cultures alive or to prepare an experiment they need to be transferred to fresh growth medium, which can be tedious and time-consuming for so many isolates. This creates a serious bottleneck to research and ties up valuable staff time. However, the process is simple: a sterile object is used to pick up the microbe and move it to fresh growth medium. This is a non-skilled and highly repetitive task, and so is ideal for automation using robotic systems. Colony pickers are machines designed with this purpose in mind, and are able to process thousands of microbes per hour, selecting them via computer vision systems based on size, shape, or colour. This allows many different experiments of large and complex formats to be set up using minimal staff time. For example, to find a gene involved in certain functions it is common to culture a "library" of thousands of strains, each with a different mutation. These mutants are then observed for any change in their behaviour which might reveal that they are linked to the function in question. Being able to manage thousands of these mutants automatically with a colony picker maximises the chances of identifying a gene which drives the process, using minimal staff time. While the colony picker will help to separate, culture, and study these microbes, eventually we will need to know their identity. DNA sequencing is a well-established process for achieving this, but it is expensive and requires a lot of manual work for every microbe to be identified. The specialist machines and expertise needed mean it usually cannot be done in-house, and so precious samples must be posted - often abroad - to companies which specialise in this work. As a result, it can take several days for this process to be completed, and the costs often limit researchers to identifying just a few dozen microbes in a study. A new method of identifying microbes has been developed using a MALDI biotyper, which detects the unique fingerprint of proteins associated with different species. This allows much more rapid and inexpensive identification of large numbers of microbes, and so would perfectly complement the large libraries of microbes which would be cultured by the colony picking system. Together, these two systems will enable us to greatly expand our research into how microbes create greenhouse gases in cow and sheep guts, how microbes cause disease in the human body, and how microbes in the natural world are able to survive and control the world around them. These are questions which drive the important societal questions of our time, and this platform will help us to answer them.
期刊论文(1)
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DOI: 10.3389/fmicb.2023.1239189
发表时间: 2023
期刊: Frontiers in microbiology
影响因子: 5.2
作者: []
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