
A new laboratory method for quickly detecting active anthrax proteins within an infected blood sample at extremely low levels has been developed by researchers at the National Institute of Standards and Technology (NIST), the U.S. Army Medical Research Institute of Infectious Diseases and the National Cancer Institute.
Current detection methods rely on injecting live animals or cell cultures with samples for analysis and require up to several days before results are available. Described* in an upcoming issue of the Journal of Biological Chemistry, the new method produces unambiguous results in about an hour. The researchers hope the system will ultimately be useful in developing fast, reliable ways to diagnose anthrax infections or to quickly screen large numbers of drugs as possible therapies for blocking the bacterias toxic effects.
The method works by detecting changes in current flow when anthrax proteins are present in a solution. An anthrax protein ironically called "protective antigen" spontaneously forms nanometer-scale pores that penetrate the surface of an organic membrane. When a voltage is applied across the membrane, positively and negatively charged ions flow freely in both directions through the pore. When additional anthrax proteins called lethal factor (LF) or edema factor (EF) are present, however, the proteins bind to the outside of the pore and shut down the flow of ions in one direction. This change in current flow depends on the concentration of the proteins in the solution and can detect amounts as low as 10 picomolar (trillionths of a mole).
"We hope this system will lead to a method for rapidly screening agents that inhibit the binding of LF or EF to these pores," says NISTs lead investigator John Kasianowicz.
Live anthrax antibodies seem to do exactly that. When antibodies were present in the test solution and then LF was added, the current flow remained unchanged, indicating that the anthrax proteins were unable to bind properly. The long-term goal would be to find drugs with few side effects that also interfere with this binding process.
Michael Baum | Source: EurekAlert!
Further information: www.nist.gov
More articles from Life Sciences:
Scientists Unravel Evolution of Highly Toxic Box Jellyfish
20.11.2009 | NOAA Fisheries Northeast Fisheries Science Center
Texas A&M Researchers Examine How Viruses Destroy Bacteria
20.11.2009 | Texas A&M University
Scientists Unravel Evolution of Highly Toxic Box Jellyfish
20.11.2009 | Life Sciences
When good companies do bad things: Examining illegal corporate behavior
20.11.2009 | Business and Finance
UCR plant scientist's research spawns new discoveries showing how crops survive drought
20.11.2009 | Agricultural and Forestry Science
Multidisciplinary meeting on Urological Cancers aims to benefit cancer patients
20.11.2009 | Event News
'Golden Age' for clinical psychology in Northern Ireland
20.11.2009 | Event News
New Perspectives in Marine Anti-Fouling Research
11.11.2009 | Event News