Home > Press > UGA researchers use patented SERS technique to rapidly, accurately detect rotavirus strains
Abstract:
Using nanotechnology and a patented signal enhancing technique developed at the University of Georgia, UGA researchers have discovered a rapid, sensitive and cost-effective method to detect and identify a number of rotavirus strains and genotypes in less than one minute with greater than 96 percent accuracy.
By Kat Gilmore
In their study, Ralph A. Tripp and Jeremy D. Driskell, researchers in the College of Veterinary Medicine's department of infectious diseases, and Yiping Zhao and Richard Dluhy, researchers in the Franklin College of Arts and Sciences departments of physics and chemistry, utilized surface enhanced Raman scattering, or SERS, to detect and quantify Group A rotaviruses.
Group A rotaviruses are the leading cause of severe gastroenteritis in infants and young children, infecting approximately 130 million children annually.Rotavirus infections are responsible for approximately 2 million hospitalizations and more than 500,000 deaths each year, and are particularly burdensome on health care resources in developing countries. Clinical diagnostic tests currently used to detect rotavirus do not provide information on the genotypes, which is essential for aiding public health officials in monitoring epidemics, identifying novel strains and controlling disease.
Tripp and Driskell worked with the most commonly identified strains of rotavirus, provided by Carl D. Kirkwood of the Murdoch Childrens Research Institute, at the Royal Children's Hospital in Parkville, Australia, to show that SERS can detect and identify numerous virus strains and genotypes in less than 30 seconds, without the need to amplify the analyte for detection.Their technique requires no or minimal specimen preparation for analysis and uses minimal volumes of analyte.
"Nanotechnology has provided a considerable advance in diagnostic and prognostic capabilities," noted Tripp."The technology strengthens and expands current diagnostic applications by providing a means to enhance existing technology for novel applications such as SERS detection of viruses.The field of diagnostics and biosensing has been pushed dramatically forward by our ability to now amplify and detect the molecular fingerprints of pathogens as opposed to amplifying the pathogens for detection."
The findings from the UGA research team are important as most enteric viruses produce diseases that are not readily distinct from other pathogens and diagnostics are generally limited to attempts at viral culture, antibody-mediated antigen detection and polymerase chain reaction. These methods are cumbersome, often have limited breadth and sensitivity in detection and/or offer limited information on genotype.
SERS works by measuring the change in frequency of a near-infrared laser as it scatters off viral nucleic acid and protein components. This change in frequency, named the Raman shift for the scientist who discovered it in 1928, is as distinct as a fingerprint.
Funding for the study was provided by the U.S. Army Research Laboratory and the Georgia Research Alliance.The study was published in PLoS ONE on April 19.
####
About University of Georgia, College of Veterinary Medicine
The UGA College of Veterinary Medicine, founded in 1946, is dedicated to training future veterinarians, to conducting research related to animal diseases, and to providing veterinary services for animals and their owners.Research efforts are aimed at enhancing the quality of life for animals and people, improving the productivity of poultry and livestock, and preserving a healthy interface between wildlife and people in the environment they share.The college enrolls 102 students each fall out of more than 550 who apply.For more information, see www.vet.uga.edu.
The current UGA College of Veterinary Medicine Teaching Hospital, built in 1979, serves more than 18,000 patients per year in one of the smallest teaching hospitals in the United States.The college is currently working to raise $15 million toward building a new Veterinary Medical Learning Center, which will include a new teaching hospital as well as classrooms and laboratories that will allow for the education of more veterinarians.The goal is to increase enrollment to 150 when the Veterinary Medical Learning Center is built.Fore more information, see www.vet.uga.edu/giving/campaign.php.
For more information, please click here
Contacts:
Kat Gilmore
706/543-5485
Copyright © University of Georgia
If you have a comment, please Contact us.Issuers of news releases, not 7th Wave, Inc. or Nanotechnology Now, are solely responsible for the accuracy of the content.
Related News Press |
News and information
Beyond wires: Bubble technology powers next-generation electronics:New laser-based bubble printing technique creates ultra-flexible liquid metal circuits November 8th, 2024
Nanoparticle bursts over the Amazon rainforest: Rainfall induces bursts of natural nanoparticles that can form clouds and further precipitation over the Amazon rainforest November 8th, 2024
Nanotechnology: Flexible biosensors with modular design November 8th, 2024
Exosomes: A potential biomarker and therapeutic target in diabetic cardiomyopathy November 8th, 2024
Govt.-Legislation/Regulation/Funding/Policy
New discovery aims to improve the design of microelectronic devices September 13th, 2024
Physicists unlock the secret of elusive quantum negative entanglement entropy using simple classical hardware August 16th, 2024
Single atoms show their true color July 5th, 2024
Possible Futures
Nanotechnology: Flexible biosensors with modular design November 8th, 2024
Exosomes: A potential biomarker and therapeutic target in diabetic cardiomyopathy November 8th, 2024
Turning up the signal November 8th, 2024
Nanofibrous metal oxide semiconductor for sensory face November 8th, 2024
Academic/Education
Rice University launches Rice Synthetic Biology Institute to improve lives January 12th, 2024
Multi-institution, $4.6 million NSF grant to fund nanotechnology training September 9th, 2022
Nanomedicine
Exosomes: A potential biomarker and therapeutic target in diabetic cardiomyopathy November 8th, 2024
Unveiling the power of hot carriers in plasmonic nanostructures August 16th, 2024
Sensors
Beyond wires: Bubble technology powers next-generation electronics:New laser-based bubble printing technique creates ultra-flexible liquid metal circuits November 8th, 2024
Nanotechnology: Flexible biosensors with modular design November 8th, 2024
Nanofibrous metal oxide semiconductor for sensory face November 8th, 2024
Groundbreaking precision in single-molecule optoelectronics August 16th, 2024
Discoveries
Breaking carbon–hydrogen bonds to make complex molecules November 8th, 2024
Exosomes: A potential biomarker and therapeutic target in diabetic cardiomyopathy November 8th, 2024
Turning up the signal November 8th, 2024
Nanofibrous metal oxide semiconductor for sensory face November 8th, 2024
Announcements
Nanotechnology: Flexible biosensors with modular design November 8th, 2024
Exosomes: A potential biomarker and therapeutic target in diabetic cardiomyopathy November 8th, 2024
Turning up the signal November 8th, 2024
Nanofibrous metal oxide semiconductor for sensory face November 8th, 2024
Tools
Turning up the signal November 8th, 2024
Quantum researchers cause controlled ‘wobble’ in the nucleus of a single atom September 13th, 2024
Faster than one pixel at a time – new imaging method for neutral atomic beam microscopes developed by Swansea researchers August 16th, 2024
The latest news from around the world, FREE | ||
Premium Products | ||
Only the news you want to read!
Learn More |
||
Full-service, expert consulting
Learn More |
||