Close Menu
    Facebook X (Twitter) Instagram
    SciTechDaily
    • Biology
    • Chemistry
    • Earth
    • Health
    • Physics
    • Science
    • Space
    • Technology
    Facebook X (Twitter) Pinterest YouTube RSS
    SciTechDaily
    Home»Technology»Amplifier Chip Measures Nanopores With High Speed Precision
    Technology

    Amplifier Chip Measures Nanopores With High Speed Precision

    By Holly Evarts, Columbia UniversityMarch 19, 20121 Comment4 Mins Read
    Facebook Twitter Pinterest Telegram LinkedIn WhatsApp Email Reddit
    Share
    Facebook Twitter LinkedIn Pinterest Telegram Email Reddit
    Optical micrograph of the 8-channel CMOS voltage-clamp current preamplifier
    Optical micrograph of the 8-channel CMOS voltage-clamp current preamplifier. Credit: Michael Quinn

    Scientists continue to improve upon nanotechnology and find new uses for it. By designing a custom integrated circuit using commercial semiconductor technology, researchers have developed a device that can measure nanopores with less error than commercial instruments and can see single molecules passing through the pore in only one microsecond.

    As nanotechnology becomes ever more ubiquitous, researchers are using it to make medical diagnostics smaller, faster, and cheaper, in order to better diagnose diseases, learn more about inherited traits, and more. But as sensors get smaller, measuring them becomes more difficult—there is always a tradeoff between how long any measurement takes to make and how precise it is. And when a signal is very weak, the tradeoff is especially big.

    A team of researchers at Columbia Engineering, led by Electrical Engineering Professor Ken Shepard, together with colleagues at the University of Pennsylvania, has figured out a way to measure nanopores—tiny holes in a thin membrane that can detect single biological molecules such as DNA and proteins—with less error than can be achieved with commercial instruments. They have miniaturized the measurement by designing a custom integrated circuit using commercial semiconductor technology, building the nanopore measurement around the new amplifier chip. Their research is available in the Advance Online Publication of Nature Methods.

    Nanopores are exciting scientists because they may lead to extremely low-cost and fast DNA sequencing. But the signals from nanopores are very weak, so it is critically important to measure them as cleanly as possible.

    “We put a tiny amplifier chip directly into the liquid chamber next to the nanopore, and the signals are so clean that we can see single molecules passing through the pore in only one microsecond,” says Jacob Rosenstein, a Ph.D. candidate in electrical engineering at Columbia Engineering and lead author of the paper. “Previously, scientists could only see molecules that stay in the pore for more than 10 microseconds.”

    Many single-molecule measurements are currently made using optical techniques, which use fluorescent molecules that emit photons at a particular wavelength. But, while fluorescence is very powerful, its major limitation is that each molecule usually produces only a few thousand photons per second. “This means you can’t see anything that happens faster than a few milliseconds, because any image you could take would be too dim,” explains Shepard, who is Rosenstein’s advisor. “On the other hand, if you can use techniques that measure electrons or ions, you can get billions of signals per second. The problem is that for electronic measurements there is no equivalent to a fluorescent wavelength filter, so even though the signal comes through, it is often buried in background noise.”

    Shepard’s group has been interested in single-molecule measurements for several years looking at a variety of novel transduction platforms. They began working with nanopore sensors after Marija Drndic, a professor of physics at the University of Pennsylvania, gave a seminar at Columbia Engineering in 2009. “We saw that nearly everybody else measures nanopores using classical electrophysiology amplifiers, which are mostly optimized for slower measurements,” notes Shepard. “So we designed our own integrated circuit instead.”

    Rosenstein designed the new electronics and did much of the lab work. Drndic’s group at the University of Pennsylvania fabricated the nanopores that the team then measured in their new system.

    “While most groups are trying to slow down DNA, our approach is to build faster electronics,” says Drndic. “We combined the most sensitive electronics with the most sensitive solid-state nanopores.”

    “It’s very exciting to be able to make purely electronic measurements of single molecules,” says Rosenstein. “The setup for nanopore measurements is very simple and portable. It doesn’t require a complicated microscope or high-powered instruments; it just requires attention to detail. You can easily imagine nanopore technology having a major impact on DNA sequencing and other medical applications within the next few years.”

    Shepard’s group is continuing to improve these techniques. “With a next-generation design,” he says, “we may be able to get a further 10X improvement, and measure things that last only 100 nanoseconds. Our lab is also working with other electronic single-molecule techniques based on carbon nanotube transistors, which can leverage similar electronic circuits. This is an exciting time!”

    Reference: “Integrated nanopore sensing platform with sub-microsecond temporal resolution” by Jacob K Rosenstein, Meni Wanunu, Christopher A Merchant, Marija Drndic and Kenneth L Shepard, 18 March 2012, Nature Methods.
    DOI: 10.1038/nmeth.1932

    This research has been funded by the National Institutes of Health, the Semiconductor Research Corporation, and the Office of Naval Research.

    Never miss a breakthrough: Join the SciTechDaily newsletter.
    Follow us on Google and Google News.

    Columbia University Disease DNA Medicine Nanopores Nanotechnology Protein
    Share. Facebook Twitter Pinterest LinkedIn Email Reddit

    Related Articles

    This Tiny Tech Breakthrough Builds 3D Structures Using Nothing But DNA and Water

    Columbia Engineers Use DNA Nanotechnology to Build Tough 3D Nanomaterials

    Fully Autonomous Cancer-Fighting Nanorobots Seek and Destroy Tumors

    New Detection System Could Dramatically Improve Early Disease Diagnosis

    MIT Develops Nanosensors That Can Profile Tumors

    Bringing Microfluidics to the Marketplace

    Complete Structure of the “Salvia Receptor” Revealed

    Using RNA Import to Repair Mutations in Human Mitochondria

    Researchers Develop DNA Nanorobot to Seek Specific Cell Targets

    Leave A Reply Cancel Reply

    • Facebook
    • Twitter
    • Pinterest
    • YouTube

    Don't Miss a Discovery

    Subscribe for the Latest in Science & Tech!

    Trending News

    The Strange “Spacetime Crystal” That Can Suddenly Turn Into a Black Hole

    The Surprising Way Asteroids May Have Helped Life Begin on Earth

    Vast Hidden Structure Discovered Under Miles of Ice in East Antarctica

    A Surprising Discovery Suggests Autism Is Not One Condition

    New Alzheimer’s Discovery Could Change How Scientists Fight the Disease

    Yale Discovery Overturns Long-Held “Evolutionary Dead End” Theory

    UCLA Scientists Uncover a “Hidden Weakness” in Some of the World’s Deadliest Cancers

    Humpback Whale Stuns Scientists With 15,000 Kilometer Journey Across Oceans

    Follow SciTechDaily
    • Facebook
    • Twitter
    • YouTube
    • Pinterest
    • Newsletter
    • RSS
    SciTech News
    • Biology News
    • Chemistry News
    • Earth News
    • Health News
    • Physics News
    • Science News
    • Space News
    • Technology News
    Recent Posts
    • Scientists Discover a Biological Clock Unlike Anything Seen Before
    • This “Zombie” Sea Creature Keeps Growing After Being Cut Apart
    • The Brain May Not Need Full Sleep To Recover, New Research Finds
    • Scientists Reveal the Hidden Way Caffeine Sabotages Sleep
    • Your Gut Microbes May Decide How Many Calories You Really Absorb
    Copyright © 1998 - 2026 SciTechDaily. All Rights Reserved.
    • Science News
    • About
    • Contact
    • Editorial Board
    • Privacy Policy
    • Terms of Use

    Type above and press Enter to search. Press Esc to cancel.