Mostrando postagens com marcador Novel medical technology. Mostrar todas as postagens
Mostrando postagens com marcador Novel medical technology. Mostrar todas as postagens

domingo, 7 de junho de 2015

Your viral infection history in a single drop of blood

 

 

VS-B (21)


From a single drop of blood, researchers can now simultaneously test for more than 1,000 different strains of viruses that currently or have previously infected a person.

New technology developed by Howard Hughes Medical Institute (HHMI) researchers makes it possible to test for current and past infections with any known human virus by analyzing a single drop of a person's blood. The method, called VirScan, is an efficient alternative to existing diagnostics that test for specific viruses one at a time.

With VirScan, scientists can run a single test to determine which viruses have infected an individual, rather than limiting their analysis to particular viruses. That unbiased approach could uncover unexpected factors affecting individual patients' health, and also expands opportunities to analyze and compare viral infections in large populations. The comprehensive analysis can be performed for about $25 per blood sample.

Stephen Elledge, an HHMI investigator at Brigham and Women's Hospital, led the development of VirScan. "We've developed a screening methodology to basically look back in time in people's [blood] sera and see what viruses they have experienced," he says. "Instead of testing for one individual virus at a time, which is labor intensive, we can assay all of these at once. It's one-stop shopping."

Elledge and his colleagues have already used VirScan to screen the blood of 569 people in the United States, South Africa, Thailand, and Peru. The scientists described the new technology and reported their findings in the June 5, 2015, issue of the journal Science.

VirScan works by screening the blood for antibodies against any of the 206 species of viruses known to infect humans. The immune system ramps up production of pathogen-specific antibodies when it encounters a virus for the first time, and it can continue to produce those antibodies for years or decades after it clears an infection. That means VirScan not only identifies viral infections that the immune system is actively fighting, but also provides a history of an individual's past infections.

To develop the new test, Elledge and his colleagues synthesized more than 93,000 short pieces of DNA encoding different segments of viral proteins. They introduced those pieces of DNA into bacteria-infecting viruses called bacteriophage. Each bacteriophage manufactured one of the protein segments -- known as a peptide -- and displayed the peptide on its surface. As a group, the bacteriophage displayed all of the protein sequences found in the more than 1,000 known strains of human viruses.

Antibodies in the blood find their viral targets by recognizing unique features known as epitopes that are embedded in proteins on the virus surface. To perform the VirScan analysis, all of the peptide-displaying bacteriophage are allowed to mingle with a blood sample. Antiviral antibodies in the blood find and bind to their target epitopes within the displayed peptides. The scientists then retrieve the antibodies and wash away everything except for the few bacteriophage that cling to them. By sequencing the DNA of those bacteriophage, they can identify which viral protein pieces were grabbed onto by antibodies in the blood sample. That tells the scientists which viruses a person's immune system has previously encountered, either through infection or through vaccination. Elledge estimates it would take about 2-3 days to process 100 samples, assuming sequencing is working optimally. He is optimistic the speed of the assay will increase with further development.

To test the method, the team used it to analyze blood samples from patients known to be infected with particular viruses, including HIV and hepatitis C. "It turns out that it works really well," Elledge says. "We were in the sensitivity range of 95 to 100 percent for those, and the specificity was good -- we didn't falsely identify people who were negative. That gave us confidence that we could detect other viruses, and when we did see them we would know they were real."

Elledge and his colleagues used VirScan to analyze the antibodies in 569 people from four countries, examining about 100 million potential antibody/epitope interactions. They found that on average, each person had antibodies to ten different species of viruses. As expected, antibodies against certain viruses were common among adults but not in children, suggesting that children had not yet been exposed to those viruses. Individuals residing South Africa, Peru, and Thailand, tended to have antibodies against more viruses than people in the United States. The researchers also found that people infected with HIV had antibodies against many more viruses than did people without HIV.

Elledge says the team was surprised to find that antibody responses against specific viruses were surprisingly similar between individuals, with different people's antibodies recognizing identical amino acids in the viral peptides. "In this paper alone we identified more antibody/peptide interactions to viral proteins than had been identified in the previous history of all viral exploration," he says. The surprising reproducibility of those interactions allowed the team to refine their analysis and improve the sensitivity of VirScan, and Elledge says the method will continue to improve as his team analyzes more samples. Their findings on viral epitopes may also have important implications for vaccine design.

Elledge says the approach his team has developed is not limited to antiviral antibodies. His own lab is also using it to look for antibodies that attack a body's own tissue in certain autoimmune diseases that are associated with cancer. A similar approach could also be used to screen for antibodies against other types of pathogens.


Story Source:

The above story is based on materials provided by Howard Hughes Medical Institute (HHMI). Note: Materials may be edited for content and length.


Journal Reference:

  1. G. J. Xu, T. Kula, Q. Xu, M. Z. Li, S. D. Vernon, T. Ndung'u, K. Ruxrungtham, J. Sanchez, C. Brander, R. T. Chung, K. C. O'Connor, B. Walker, H. B. Larman, S. J. Elledge. Comprehensive serological profiling of human populations using a synthetic human virome. Science, 2015; 348 (6239): aaa0698 DOI: 10.1126/science.aaa0698

sexta-feira, 1 de maio de 2015

Compact synchrotron makes tumors visible

 

Thu, 04/30/2015 - 11:39am

Technische Universität München

The accelerator of the compact light source. Courtesy of Klaus Achterhold / TUM

Soft tissue disorders like tumors are very difficult to recognize using normal X-ray machines. There is hardly any distinction between healthy tissue and tumors. Researchers at the Technische Universität München (TUM) have now developed a technology using a compact synchrotron source that measures not only X-ray absorption, but also phase shifts and scattering. Tissue that is hardly recognizable using traditional X-ray machines is now visible.

X-ray images have become an integral part of daily medical practice. Bones, for example, absorb large amounts of X-rays because of their high calcium content. This allows them to be differentiated from air-filled cavities like the lungs and surrounding soft tissue. However, because of their very similar absorption coefficients, soft tissue, organs and structures inside organs, like tumors, are hardly discernable from one another using the medical devices deployed in medicine today.

Now, a group of scientists headed by Franz Pfeiffer, Professor of Biomedical Physics in the Physics Department Department and the Faculty of Medicine at TU München, have for the first time succeeded in making such soft tissue visible. The scientists used a new kind of X-ray source that was developed only a few years ago.

Compact synchrotron source

Unlike classical X-ray tubes, a synchrotron generates highly focused, monochromatic X-rays. The individual rays all have the same energy and wavelength. In the past, X-rays with these properties could only be generated in large particle accelerators, which have a circumference of at least one kilometer. The compact synchrotron, in contrast, has merely the size of a car and fits into a normal laboratory.

“Monochromatic radiation is much better suited for measuring other parameters, in addition to absorption,” explains Elena Eggl, doctoral candidate at the Chair of Biomedical Physics. “This is because it does not lead to artifacts that deteriorate the image quality.”

The scientists inserted an optical grating into the focused X-ray beam, allowing them to detect even tiniest phase shifts and scattering of the radiation in addition to the absorption of X-rays. The first phase contrast tomography image from a compact synchrotron source was successfully acquired.

Complementary information

The phase contrast, dark field and absorption images made using the new technology have complementary properties. Liquid in tissue that remains indiscernible and, thus, invisible using conventional X-ray tubes, suddenly comes to life. The greatly improved soft tissue contrast of the new X-ray technology could also help make tumors detectable earlier on and enable quick diagnoses—in medical emergencies, for example.

The clarity of the new technology becomes apparent when comparing white and brown fatty tissue. “In a mouse we were able to recognize not only heart, liver and other organs much better, but could even differentiate between brown and white body fat,” says Eggl.

Brown fatty tissue, which occurs mainly in newborns, can support the burning of normal white fatty tissue. It is a relatively new discovery that adults, too, still have brown fatty tissue. Tissue that—as some researchers hope—can be reactivated to help obese people lose weight.

While these experiments were performed using an initial prototype setup of Lyncean Technologies Inc. in California, a significantly improved compact synchrotron source is under construction at the Garching Research Campus. It is part of the “Center for Advanced Laser Applications” (CALA), a joint project of the TU München and the Ludwig-Maximillians Universität (LMU). Eggl and Pfeiffer, in collaboration with colleagues in laser physics at the LMU and the Max Planck Institute of Quantum Optics, hope to further improve the new X-ray technology.

The research was funded by the German Research Foundation via the Cluster of Excellence Munich-Centre for Advanced Photonics (MAP), the European Research Council (ERC, Starting Grant Nr. 240142), the National Institute of General Medical Sciences (USA, Grant R44-GM074437) and the National Center for Research Resources (USA, Grant R43-RR025730). Further cooperation partners included the Helmholz Center NanoMikro at the Karlsruhe Institute of Technology (KIT), the University of Lund (Sweden) and Lyncean Technologies Inc. (USA).

SOURCE: Technische Universität München