Showing posts with label among. Show all posts
Showing posts with label among. Show all posts

Thursday, April 12, 2012

Forces among molecules: Tiny but important

 Forces are not only associated with machines or muscles. You can also find them elsewhere, for instance between molecules. Theoretical chemists like Dr. Łukasz Tomasz Rajchel (University of Warsaw) are familiar with that. However, they -- or rather their computers -- are not capable of calculating them with high accuracy and efficiency at the same time.


The scholarship holder of the Alexander von Humboldt Foundation wants to get to the bottom of the computational problem while working in Prof. Dr. Georg Jansen's Theoretical Organic Chemistry team at the University Duisburg-Essen (UDE).


Since intermolecular forces are very small, the computational technique must be very precise. Furthermore, getting significant results by experiment is difficult. For solving the task Łukasz Rajchel refers to various approximations of quantum chemistry. "They form my theoretical basis and shall help me develop new approaches for calculating intermolecular energies." The 30-year-old chemist solves the underlying equations with the help of self-developed computer codes.


The more Łukasz Rajchel and his colleagues get to know about the interactions between chemical compounds, the better they can understand matter and predict its characteristics. The significance of those tiny forces cannot be stressed enough. "They are substantial in nature," says Dr. Rajchel. For example: they are responsible for DNA and RNA's stability in genetic information or for the existence of molecular crystals and the proteins' structure. Interestingly, they also let the gecko walk on vertical glass surfaces.


Story Source:



The above story is reprinted from materials provided by Universität Duisburg-Essen, via AlphaGalileo.


Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Monday, March 26, 2012

Scientists discover a surprising new way that protons can move among molecules

Hydrogen bonds are found everywhere in chemistry and biology and are critical in DNA and RNA, where they bond the base pairs that encode genes and map protein structures. Recently a team of researchers using the Advanced Light Source (ALS) at the U.S. Department of Energy's Lawrence Berkeley National Laboratory (Berkeley Lab) discovered to their surprise that in special cases protons can find ways to transfer even when hydrogen bonds are blocked. The team's results appear in .

Stacking the odd molecules

A group led by Musahid Ahmed, a senior scientists in Berkeley Lab's Chemical Sciences Division (CSD), has long collaborated with a theoretical research group at the University of Southern California (USC) headed by Anna Krylov. In recent work to understand how bases are bonded in staircase-like molecules like DNA and RNA, Krylov's group made computer models of paired, ring-shaped uracil molecules, and investigated what might happen to these doubled forms (dimers) when they were subjected to ionization – the removal of one or more electrons with resulting net positive charge.

Uracil is one of the four nucleobases of RNA, whose structure is similar to DNA except that, while both use the bases adenine, cytosine, and guanine, in DNA the fourth base is thymine and in RNA it's uracil. The USC group used a uracil dimer labeled 1,3-dimethyluracil – "a strange creature that doesn't necessarily exist in nature," says CSD's Amir Golan, who led the Berkeley Lab team at the ALS. The purpose of this strange creature, Golan says, is to block hydrogen bonding of the two identical monomers of the uracil dimer by attaching a methyl group to each, "because methyl groups are poison to hydrogen bonds."

The uracils could still bond in the vertical direction by means of pi bonds, which are perpendicular to the usual plane of bonding among the flat rings of uracil and other nucleobases. "Pi stacking" is important in the configuration of DNA and RNA, in protein folding, and in other chemical structures as well, and pi stacking was what interested the USC researchers. They brought their theoretical calculations to Berkeley Lab for experimental testing at the ALS's Chemical Dynamics beamline 9.0.2.

To examine how the were bonded, Golan and his colleagues first created a gaseous molecular beam of real methylated uracil monomers and dimers, then ionized them with a beam of energetic ultraviolet light from the ALS synchrotron. The resulting species were weighed in a mass spectrometer to see how the uracil had responded to the extra boost of energy.

"Uracils could be joined by hydrogen bonds or by pi bonds, but these uracils had been methylated to block hydrogen bonds. So what we expected to see when we ionized them was that if they were bonded, they would have to be stacked on top of each other," Golan says. Instead of holding together by pi bonds, however, when ionized some uracil dimers had fallen apart into monomers that carried an extra proton.

Where the protons come from

"What we did not expect to see was proton transfer," Golan says. "Surprising as this was, we needed to find where the protons were coming from. The methyl groups consist of a single carbon atom and three hydrogen atoms, but methylated uracil has other hydrogens too. Still, the methyl groups were the natural suspects."

To test this hypothesis, the researchers invited colleagues from Berkeley Lab's Molecular Foundry to join the collaboration. They created methyl groups in which the hydrogen atoms – which like most hydrogen had single protons as their nuclei – were replaced by deuterium atoms, "heavy hydrogen" atoms with nuclei consisting of a proton and a neutron of virtually the same mass.

The molecular beam experiment was repeated at the ALS, and once again some of the methylated uracil dimers fell apart into monomers upon ionization. This time, however, the tell-tale monomers were not simply protonated, they were deuterated.

Says Golan, "By looking at the mass of the fragments we could see that instead of uracil plus one" – the mass of a single proton – "they were uracil plus two" – a proton and neutron, or deuteron. "This proved that indeed the transferred protons came from the methyl groups."

The experiment showed that proton transfer in this case followed a very different route from the usual process of hydrogen bonding. Here the transfer involved not just an attraction between molecular arrangements that were slightly positively charged and others that were slightly negatively charged, as in a hydrogen bond. Instead it required significant rearrangements of the two uracil dimer fragments, to allow protons of hydrogen atoms in the methyl group on one monomer to move closer to an oxygen atom in the other. Theoretical calculations of the new pathway were led by USC's Krylov and Ksenia Bravaya.

The moral of the story, says Golan, is that methyl groups do not always kill proton transfer. "Granted, this was a model system – what we did was ionize the uracil systems in the gas phase instead of in solution, as would be the case in a living organism," he says. "Nevertheless, we showed that proton transfer is possible without hydrogen-bonding networks. Which means there could be unsuspected pathways for proton transfer in RNA and DNA and other biological processes – especially those that involve pi-stacking – as well as in environmental chemistry and in purely chemical processes like catalysis."

The next step: a range of new experiments to directly map rates and gain structural insight into the transfer mechanism, with the goal of visualizing these unexpected new pathways for transfer.

More information: "Ionization of dimethyluracil dimers leads to facile proton transfer in the absence of H-bonds," by Amir Golan, Ksenia B. Bravaya, Romas Kudirka, Oleg Kostko, Stephen R. Leone, Anna I. Krylov, and Musahid Ahmed, is published by Nature Chemistry and appears in advance online publication at http://www.nature. … m/index.html .

Provided by Lawrence Berkeley National Laboratory (news : web)

Wednesday, August 24, 2011

Bayer among favorites for German Sustainability Award

A novel process for the production of plastics using carbon dioxide has made Bayer AG a favorite for this year’s German Sustainability Award. The company is among the top three candidates in the category “Germany’s Most Sustainable Initiatives.” Bayer was nominated for the Dream Production research project, which aims to turn the greenhouse gas CO2 into a useful raw material. This could ultimately provide the chemical industry with an alternative to increasingly scarce resources such as petroleum.


The winners in the various categories will be announced in Düsseldorf on November 4 as part of the celebration of German Sustainability Day. The jury’s nomination of Bayer acknowledges the company’s commitment to the “energy efficient, conservational and environmentally compatible use of CO2.” The use of CO2, a waste product that is harmful to the climate, in a production process is a “dream” that Bayer is pursuing with a “viable prospect of success” according to the citation.


“We are pleased and proud to be among the leading candidates for this important award,” says Prof. Dr. Wolfgang Plischke, the member of the Bayer Board of Management responsible for Technology, Innovation and Environment. “At the same time, we see this as a confirmation of our comprehensive sustainability strategy that is reflected in numerous processes, products and solutions in the fields of health care, nutrition and high-quality materials.”


According to Patrick Thomas, CEO of the Bayer MaterialScience subgroup which has overall responsibility for the project, “Dream Production has the potential of triggering a significant change in the raw material base of the chemical industry thanks to the exemplary combination of intercompany collaboration and applied research.”


The new process is currently undergoing thorough testing with the objective of beginning industrial production in 2015. A pilot plant brought on stream by Bayer in Leverkusen in February is using carbon dioxide from the power generation industry to produce a chemical precursor for the production of polyurethanes. Polyurethanes are used in many aspects of everyday life and help to save energy and protect the climate. When used to insulate buildings against heat or cold, they can save around 70 times more energy than is used in their production.


The CO2 used is sourced from a power plant operated by RWE Power, which in addition to Bayer Technology Services, the CAT Catalytic Center in Aachen and RWTH Aachen University, is among the partners participating in the project. The university’s responsibilities include subjecting the new process to comprehensive ecological and economic scrutiny while also comparing it with conventional processes and products.


The German Sustainability Award has been each year since 2008 and is under the patronage of German Federal Chancellor Dr. Angela Merkel. The award recognizes companies that are exemplary in their efforts to combine economic success with social responsibility and conservation of the environment.