Showing posts with label instrument. Show all posts
Showing posts with label instrument. Show all posts

Wednesday, December 21, 2011

On the road to creating an affordable master instrument

What talented young violinist has not dreamt of playing on a Stradivarius, that non plus ultra of the violin-maker's art? Unfortunately, of course, these instruments are rare, and well beyond the budget of most musicians. "Imitations" of similar tonal quality are therefore very sought-after, and the Empa researcher Francis Schwarze has managed to achieve this feat with the help of a Swiss violin maker. By treating the with Physisporinus vitreus, a white-rot fungus which attacks and destroys certain structures in spruce, he was able to create a material with extraordinarily good tonal qualities. So good in fact that the new "fungus violin" put its own role model in the shade. At a specialist conference in 2009 two of the new instruments were compared in a blind test to a Stradivarius and both the jury of experts and the conference audience judged their sound to better than that of the violin made by the Italian Master of Cremona.

Schwarze now intends to develop a standardized biotechnological process so that sufficient fungally-treated wood can be produced to make instruments in respectable numbers. This is the only way that would allow an industrial partner interested in the technology to manufacture the violins on a quasi-"mass-produced" basis. In order to create the necessary bridge between science and industry it is vital to develop technologies which offer significant commercial advantages. In this case this means standardizing the wood treatment parameters to such an extent that a specific tonal quality can be guaranteed. This is not an easy task to accomplish with a material such as wood which is subject to natural fluctuations in quality.

Generous support from the Walter Fischli Foundation

In the Walter Fischli Foundation the Empa scientist has found financial support which will enable the "fungal violin" project continue. Explaining why he decided to provide funding for Schwarze's work, Walter Fischli, who is co-founder of the biomedical company Actelion and an enthusiastic hobby violinist, says "In my opinion it would have been unforgivable to allow such an interesting project – one that so ideally links science and the art of violin making – to wither for lack of funding." Fischli hopes that the Empa specialists will finally uncover the secret of why violin makers such as and Guarnerius managed to make instruments of such fantastic quality around 1700. Their craftsmanship is, of course, one decisive and undisputed factor but it seems that the wood they used also played a vital role. "Using modern science to explain the technical details of the material properties is something I find enormously interesting," says Fischli.

Developing a standard wood treatment process in an interdisciplinary way

The project, which commenced at the beginning of September and will run for three years, is led by Iris Brémaud, a specialist in the field of tonal woods. The French scientist is responsible for ensuring that the treatment with the white rot fungi P. vitreus and Xylaria longipes optimally "ennobles" samples of spruce and maple woods. In addition she is already in contact with Michael Baumgartner, the renowned instrument maker from Basel. Under his guidance the "fungus violins" using the treated wood will be created.

Before Empa can take delivery of the first , however, numerous tests on both treated and untreated wood samples must be carried out. Experts are currently systematically measuring the density of the wood, the speed of sound in it and its acoustic attenuation. Specialists in the field of ultrasonics are developing methods to determine where the fungus was active and where not. Other scientists expert in optical measurement techniques are using their specialist methods to create images showing how sound is radiated by the different woods and also complete instruments. The final steps should involve collaborations with specialists of psychoacoustics to understand how musicians and listeners perceive these "mushroom violins."

Provided by EMPA

Friday, May 6, 2011

Advanced instrument used to read cells' minds

Researchers at the Stanford University School of Medicine have taken a machine already in use for the measurement of impurities in semiconductors and used it to analyze immune cells in far more detail than has been possible before. The new technology lets scientists take simultaneous measurements of dozens of features located on and in cells, whereas the existing technology typically begins to encounter technical limitations at about a half-dozen.


The investigators were able not only to simultaneously categorize more immune cell types than ever before seen at once but, at the same time, to peer inside those and learn how various internal processes differed from one cell type to the next.


"We can tell not only what kind of cell it is, but essentially what it's thinking, what it's been doing, and what it may soon do or become," said Garry Nolan, PhD, professor of microbiology and immunology and the senior author of the study detailing the advance, to be published May 6 in Science.


With this new approach, the scientists were further able to show the unexpected effects of a drug recently approved for treating certain leukemias — dasatinib — on biochemical activities taking place inside various types of cells, offering a possible explanation for some of dasatinib's side effects as well as suggesting potential new uses for the drug.


In the study, Nolan and his colleagues simultaneously monitored 34 different substances found inside and on the surface of different cell types produced in human bone marrow, the place where all immune and blood cells, as well as blood disorders such as leukemia, originate.


By measuring large numbers of cell features all at once with the — called mass cytometry — the team could capture subtle transitions between cell states in, essentially, a high-resolution snapshot of the entire blood-forming system, he said. Scientists normally think of the blood and as differentiating in a series of discrete steps. However, the authors showed that the transitions from one cell state to another are marked by gradually shifting levels of cell-surface markers and varying amounts and activation states of several intercellular molecules.


Mass cytometry builds on an established technology known as fluorescence-activated cell sorting, or FACS, which is in widespread use throughout the world. FACS was developed in the laboratory of Leonard Herzenberg, PhD, professor emeritus of genetics, under whose direction Nolan did his PhD work in the 1980s.


Both FACS and mass cytometry employ antibodies to specifically tag particular surface features on cells.


With traditional FACS, antibodies are designed to tag diverse cell features. Then the antibodies are affixed to differently fluorescent dyes that color-code these antibodies according to which cell feature they target. After being bathed in these antibody-dye preparations, cells are passed single-file through a tube and stimulated by laser pulses, which cause the dye molecules to give off bursts of light. Different wavelengths of light emitted by the dyes correspond to the cellular features the dyes have tagged. FACS technology, though over 30 years old, is a mainstay of immune studies, as well as cancer and vaccine research.


But researchers are eager to squeeze ever more information out of each cell they examine. This requires examining ever more cell features at once, and there are only so many colors in the rainbow. The ability of FACS to distinguish between any more than a half-dozen dyes is constrained by those dyes' overlapping fluorescence patterns.


Three years ago, Nolan was approached by Scott Tanner, a physical chemist now at the University of Toronto.


"He buttonholed me at a meeting," said Nolan, laughing. "I was trying to get away from him, but after he'd been talking for a few minutes I realized this was something I'd better start paying attention to. He clearly had something that, if true, was revolutionary in its potential."


Tanner's team was adapting for biological purposes an existing instrument that is typically used for gauging precise levels of added rare-earth in and for geological purposes. The new instrument, called a mass cytometer, promised to more than double the number of molecular features that could be measured simultaneously in each cell. Nolan, realizing that such an instrument could be used to learn much more about the immune system and cancer stem cells, was eager to bring his group's expertise to bear on its development. The Stanford team has worked in close collaboration with the new instrument's developers ever since.


Instead of dyes, mass cytometry joins rare-earth metals to antibodies, which in turn detect cellular features and processes. "The rare earths are a series of 17 elements, mostly at the bottom of periodic table, that nobody wanted to learn about in chemistry class, myself included," said Sean Bendall, PhD, a postdoctoral researcher in Nolan's lab. However, these elements turn out to particularly useful for biological applications, said Bendall, who shared first authorship of the Science paper with Erin Simonds, a graduate student in Nolan's lab.


"They're not all that rare in nature, but they're normally never found in the body," Bendall said. "If I looked at a sample of your blood and found some europium or ytterbium or neodymium in it, I'd say you were in deep trouble." So rare-earth elements stand out in a crowd.


What's more, these elements can be subdivided into as many as 100 variants with distinct atomic weights. Mass cytometry can easily detect those differences. "We need relatively few rare-earth atoms per cell for our instrument to see them," said Bendall.


In mass cytometry, cells are paraded one by one through a tube and sprayed into a tiny chamber in which they are heated to about 13,000 degrees Fahrenheit and vaporized into successive clouds of atomic nuclei and loose electrons. Next, the contents of each cloud that was once a cell are essentially flung against a wall with equal force. The lightest atoms arrive first, then the next-lightest and so forth. A detector counts the atoms as they land, and from this the instrument can determine their mass. The mass tallies how many copies of each metal-tagged antibody were stuck to the cell and, therefore, how many copies of each molecular feature were present on, or in, the cell in the first place.


In the Science study, Nolan and his colleagues used the instrument to simultaneously monitor 13 separate molecular features on the surfaces of cells in samples taken from two healthy humans' bone marrow, and classified the cells into numerous distinct categories. The investigators simultaneously monitored activation states of 18 different intracellular protein targets. Protein activation levels give important clues about particular cellular decisions that have been or can be made, such as whether a cell is about to divide.


"As a prelude to looking at leukemic bone-marrow samples down the road, we wanted to first characterize the cells in normal bone marrow to see how their behaviors change as they mature," said Simonds.


The Nolan group perturbed cells by exposing them to various substances, including signaling molecules that sometimes circulate in our own blood, as well as foreign materials such as fragments of bacterial cell walls that are known to excite immune responses. "In essence," said Nolan, "we are interviewing or interrogating the cells, forcing them to reveal their inner thought processes." Some of these stimulatory tests were done in the presence of dasatinib, a drug used to treat chronic myelogenous leukemia and certain cases of acute lymphoblastic . Dasatinib is in clinical trials for several other indications, including some solid cancers.


When the Nolan group used a chemical, pervanadate, to "release the brakes" on a universal pro-cell-survival behavior, dasatinib blocked action in every cell type except one, the immune sentinels called dendritic cells. Simonds said this new finding demonstrates mass cytometry's capacity to ferret out tiny differences in cellular behavior that may help explain drugs' side effects as well as to indicate potential new uses for existing drugs.


The more measurements your tailor makes, the better the fit. It's the same with cell biology. "Our entire lab has already shifted from fluorescence-based measurements of cell features to this new MS-based method, because we get a much more complete picture," said Bendall.


Nolan has reported that he owns stock in the company Tanner created to develop and market the new system.


Provided by Stanford University Medical Center (news : web)

Thursday, March 17, 2011

New instrument for analyzing viruses

Scientists in Israel and California have developed an instrument for rapidly analyzing molecular interactions that take place viruses and the cells they infect. By helping to identify interactions between proteins made by viruses like HIV and hepatitis and proteins made by the human cells these viruses infect, the device may help scientists develop new ways of disrupting these interactions and find new drugs for treating those infections.

According to Doron Gerber, a professor at Bar Ilan University in Ramat Gan, the PING system (Protein Interaction Network Generator) can be used to examine thousands of potential interactions at a time, and it detects them at a sensitivity 100- to 1,000-time greater than current methods. Gerber developed PING with collaborators at Stanford University, and he will describe the technology today at the 55th Annual Biophysical Society Meeting in Baltimore.

When a infects a human cell, it hijacks the machinery of that cell, recruiting certain host proteins and subverting them to the task of manufacturing new . This feature of viral biology has made notoriously difficult to treat, as therapies must specifically target the virus without harming the cell.

One approach that has been successful is to identify key interactions between viral and host proteins, which can then serve as targets for . For example, the HIV drug Fuzeon works by blocking a from attaching to proteins on the surface of immune system cells, barring entry to the cell.
Like many antivirals, Fuzeon is used in combination with other drugs in a "cocktail." This is because, like most viruses, HIV mutates rapidly, acquiring resistance to individual drugs. Therefore, the need for new antiviral drugs is constant and ongoing.

Using PING, the Israeli and California scientists identified novel cellular partners for proteins from and hepatitis D. "And we can now use the same system to screen for inhibitors," says Gerber, who adds that new treatments are urgently needed for hepatitis C, for which only one treatment exists that works in only half the patient population.

Because PING employs microfluidics, very small samples can be used; gathering enough material has been a particular challenge with existing methods.

More information: The presentation, "Mapping Virus-Host Protein Interactions Using the PING Microfluidics Platform," is at 5:00 p.m. on Tuesday, March 8, 2011 in Room 307 of the Baltimore Convention Center. ABSTRACT: http://tinyurl.com/67lnomy

Provided by American Institute of Physics