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    Home»Technology»Mesolens Simultaneously Shows Inside an Individual Cell and Full Organism
    Technology

    Mesolens Simultaneously Shows Inside an Individual Cell and Full Organism

    By University of StrathclydeFebruary 13, 2012No Comments3 Mins Read
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    human flea, captured by the Mesolens being developed at the University of Strathclyde
    This is an image of a human flea, captured by the Mesolens being developed at the University of Strathclyde. Credit: Medical Research Council

    Scientists are set to discuss the Mesolens at today’s prestigious Leewenhoek Lecture. The Mesolens is the only microscope of its kind in the world that can show three-dimensional images within cells and tissues at the same time as showing the whole organism.

    A new form of microscope that can produce results in seconds rather than hours — dramatically speeding up the process of drug development — is being developed at Strathclyde.

    Scientists are creating a lens that will be capable of showing three-dimensional images within cells and tissues at the same time as showing the whole organism, something which is currently not possible with any single imaging device.

    The innovative Mesolens — the only device of its kind in the world — will be able to capture detail in organisms that are too big to be examined satisfactorily by existing microscopes and will offer a deeper insight into areas such as cancerous tissues and the cortex of the brain.

    Dr. Brad Amos, a Visiting Scientist at the Strathclyde Institute of Pharmacy and Biomedical Sciences, will discuss the device at the prestigious Leewenhoek Lecture, which is given every three years and recognizes excellence in the life sciences, at the Royal Society in London tomorrow (Monday, February 13).

    Dr. Amos, who is also Emeritus Research Group Leader in the Medical Research Council (MRC) Laboratory of Molecular Biology and a Fellow of the Royal Society, said: “The global health challenges of the 21st century demand new and powerful treatments but the process of drug discovery and delivery is often time-consuming and costly.

    “The information provided by microscopes is vital to this process but can take hours at a time to emerge. The confocal lens can be trained simultaneously on or inside an individual cell and the full organism, with strong resolution, and will have the capacity to deliver 3D images which go far beyond the limitations of 2D representations.

    “This level of detail can open up vast possibilities for discoveries which can contribute to the fight against disease worldwide.”

    Dr. Gail McConnell, a Reader at the Strathclyde Institute of Pharmacy and Biomedical Sciences, is a partner in the research. She said: “Our research fits with Strathclyde’s ethos of technical innovation with universal impact. We already have the two-dimensional technology for the lens in place, but a third dimension will allow us to take the revolutionary step of presenting images with a range and versatility which no single imaging platform can currently offer.”

    Dr. Amos’ secondment to the University of Strathclyde is being funded through a Knowledge Transfer Account from the Engineering and Physical Sciences Research Council. The research has also received funding from the MRC. Dr. Amos and Dr. McConnell are working closely with the University’s Research & Knowledge Exchange Services to commercialize the output of this research.

    The research forms part of Advanced Science & Technology — one of the principal themes of the University’s Technology and Innovation Center (TIC), a world-leading research and technology center transforming the way universities, business, and industry collaborate.

    Leading academics are working with industry and the health sector to find technologies for earlier, more accurate disease detection and better treatments, as well as life-long disease prevention.

    Dr. Amos’ lecture will take place at the Royal Society, Carlton House Terrace, London SW1Y, on Monday, 13 February at 6:30 p.m. The event will be open to the public and will be broadcast live via the Royal Society website, at http://royalsociety.org/live/

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    3d Microscope University of Strathclyde
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