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Lightning Bolts within Cells

A new nanoscale tool reveals strong electric fields inside cells.

By Katherine Bourzac

Monday, December 10, 2007

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Using novel voltage-sensitive nanoparticles, researchers have found electric fields inside cells as strong as those produced in lightning bolts. Previously, it has only been possible to measure electric fields across cell membranes, not within the main bulk of cells. It's not clear what causes these strong fields or what they might mean. But now that it's possible to measure them, researchers hope to learn about disease states such as cancer by studying these electric fields.

The cell electric: Encapsulated in a polymer shell just 30 nanometers across, voltage-sensitive dyes (red) emit red and green light when illuminated with blue light. These encapsulated dyes make it possible to measure electric fields inside cells.
Credit: Raoul Kopelman, University of Michigan

University of Michigan researchers led by chemistry professor Raoul Kopelman encapsulated voltage-sensitive dyes in polymer spheres just 30 nanometers in diameter. When illuminated with blue light, the voltage-sensitive dyes emit a mixture of red and green light; the exact frequency of light emitted is influenced by the strength of local electric fields, allowing the researchers to measure those fields. Testing these nanoparticles in the internal fluid of brain-cancer cells, Kopelman found electric fields as strong as 15 million volts per meter, perhaps five times stronger than the field found in a lightning bolt.

"They have developed a tool that allows you to look at cellular changes on a very local level," says Piotr Grodzinski, director of the National Cancer Institute Alliance for Nanotechnology in Cancer. Traditional techniques for studying disease at the level of tissues average out differences between cells. Grodzinski says that many developments in cancer research over the past few years have been "more reactive," working toward developing diagnostics for catching the disease in its earlier stages and for better predicting to which drugs patients will respond. Despite how far cancer treatments have come, the way that cancer progresses at the cellular level is still not very well understood. With a better understanding, researchers hope to further improve diagnostics and personalized care. "This development represents an attempt to start using nanoscale tools to understand how disease develops," says Grodzinski.

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Jerry S.H. Lee, a nanotechnology project manager also at the National Cancer Institute, says that Kopelman's research bolsters the set of nanoscale tools that scientists are developing to probe cells' physical properties, such as special microscopic probes for measuring cell stiffness. (See "The Feel of Cancer Cells.") In the past decade, researchers have improved cancer diagnosis by examining protein markers and genetic signatures. Now they're "thinking of how nanotechnology can make tools to look at additional signatures" like electric fields, says Lee.

Voltage-sensitive dyes are not new. For decades, neuroscientists have used them to measure voltages across cell membranes in studies of how nerve cells generate and respond to electrical charges. But Kopelman says that it's not possible to control the placement of these dyes in cells. They are hydrophobic and aggregate in cell membranes, so it has not been possible to use them to study the cytosol, the bulk of the interior of the cell. Kopelman also says that these dyes might be reacting with enzymes and other molecules in cells. His encapsulated dyes aren't hydrophobic and can operate anywhere in the cell, not just in membranes. Because it's possible to place his encapsulated dyes in a cell with a greater degree of control, Kopelman likens them to voltmeters. "Nano voltmeters do not perturb [the cellular] environment, and you can control where you put them," he says.

Comments

  • shocking
    first I apologize for my weak attempt at humor but it is early monday morning and i haven't had my coffee yet so please forgive.

    definitely interesting.  too bad we can't harness this to power electric vehicles but that would be good sci-fi stuff.
    Rate this comment: 12345

    jaggspb
    12/10/2007
    Posts:9
    Avg Rating:
    3/5
  • SQUID?
    how come this type of measurement hasn't been performed with a Josephson junction? i've heard they are extremely accurate...
    Rate this comment: 12345

    unxzst
    12/11/2007
    Posts:1
  • compared to ???
    the author fails to mention the voltage measured in a 'normal' cell so we have no idea if 15 million is actually high cellular voltage for our life form or not. As well, without knowing the correlating 'pressure' measurement, do we know just how much of a 'charge' we can get out of this one piece of information?
    Rate this comment: 12345

    Possibill
    12/11/2007
    Posts:1
  • Lightning Bolts within Cells
    Not only have many Energy Healers known about these subatomic energy fields for centuries; they also understand their relationship to health and disease.

    However more importantly they know how to change these important Human Life Energy Fields quickly and simply to invoke a cure or to prevent a disease manifesting in the physical body.

    It is good that modern science; with new methods, are beginning to recognize the truth that we are mostly sub atomic energy. They will discover that this energy is organized in patterns and layers and is essential for human life. Some of theses energy fields namely the Aura is responsible for the signals sent to the brain which in turn communicates to the body to create and release all the proteins and chemical needed for our bodies to grow and function.

    They will also eventually discover a lot more and these will be the greatest discoveries to change human behaviour and health ever.

    With Love for I Love You
    Ian Stone – Metaphysician & Founder of HEART Energy Healing System,
    Human Energy Assessment Release Treatments
    Simple ways to Heal Your Human Life Energy Fields
    Metaphysical Institute
    Metaphysical Institute Blog
    Rate this comment: 12345

    metaguru
    02/01/2009
    Posts:1

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