08 July 2013

Improved interpretation of volcanic traces in ice

GEOMAR researchers are modeling the global distribution of sulfur particles following large eruptions


The crater of the Indonesian volcano Tombora (diameter about 7 km).
 It's eruption turned 1815 into a "year without a summer" in Europe.
The sulfate traces it left behind in the Greenland and Antarctic ice,
served as a comparison for the current model study. Photo: NASA
05 July 2013/Kiel. How severely have volcanoes contaminated the atmosphere with sulfur particles in past millennia? To answer this question, scientists use ice cores, among others, as climate archives. But the results differ, particularly in some major volcanicmajor events of the past, depending on whether the cores come from Antarctica or Greenland. Atmospheric scientists from the GEOMAR Helmholtz Centre for Ocean Research Kiel and the Max Planck Institute for Meteorology in Hamburg have now found an explanation that could significantly improve the interpretation of ice cores. Their study was just published in the current issue of the internationally renowned "Journal of Geophysical Research Atmosphere".


Storms, cold, poor harvests – the year 1816 was a “year without a summer” in 
The caldera of the Guatemalan volcano Atitlan.
Past eruptions of this volcano and other
Central American volcanoes had been reconstructed
within the Collaborative Research Project 574.
They served as the basis for the
current model calculations.
Photo: S. Kutterolf, GEOMAR
European history. The reason was the eruption of the Indonesian volcano Tambora a year earlier. It had thrown huge amounts of sulfur compounds into the stratosphere (at altitudes of 15-50 km) where they spread around the entire globe and significantly weakened solar radiation for several years afterwards. Such intense volcanic eruptions are quite common in Earth's history. To better understand their impact on the climate and the atmosphere, scientists try to reconstruct those eruptions accurately. Important archives of information are ice cores from Greenland and Antarctica because the sulfur particles ejected from the volcano fall back to the surface. A portion of that fallout is trapped in the ice of the polar regions and can be analyzed even thousands of years afterwards. The former aerosol contamination of the atmosphere is derived from it using a simple ratio calculation.

But this method has its limitations. “Volcanic aerosols in the stratosphere absorb infrared radiation, thereby heating up the stratosphere, and changing the wind conditions subsequently,” said Dr. Matthew Toohey, atmospheric scientist at GEOMAR Helmholtz Centre for Ocean Research Kiel. Using an atmospheric model, he has now tested the effects of this phenomenon. “We have found that the deposition of sulfur compounds in the Antarctic after very large volcanic eruptions in the tropics may be lower than previously thought,” the atmospheric researcher summarizes the findings of the study which has just been published in the current issue of the international “Journal of Geophysical Research – Atmosphere”.

For the study, Dr. Toohey and his colleagues from GEOMAR and the Max Planck Institute for Meteorology in Hamburg have used an aerosol-climate model to track 70 different eruption scenarios while analyzing the distribution of the sulfur particles. It was based on real volcanic eruptions during the past 200,000 years in Central America, which had been investigated in the framework of the Collaborative Research Project 574. “In our calculations, we could clearly see the differences in distribution and deposition between the northern and southern hemispheres,” explains co-author and director of the working group, Dr. Kirstin Krüger. The spatial deposition of sulfur particles in the bipolar ice cores, as calculated in the model, agrees well with the actually measured deposits of large volcanic eruptions, such as Pinatubo in 1991 or even of Tambora of 1815.

“If we know how volcanic sulfur particles affect the atmospheric winds, we can have a much improved interpretation of the traces of volcanic activities in the ice cores,” says Dr. Toohey. For one, there are better estimates of the strength of an outbreak. And secondly, the previously undetermined traces of volcanic eruptions that could not be assigned to any particular event or volcano eruption, can now be clearly traced to their origin.

“In any case, the results of our model study give a clear indication that the bipolar variability of sulfate deposits must be taken into consideration if the traces of large volcanic eruptions are to be deduced from ice cores,” says Dr. Krüger, “Several research groups that deal with this issue have already contacted us to verify their data through our model results.”

The original publication:

Toohey, M., K. Krüger and C. Timmreck (2013), Volcanic sulfate deposition to Greenland and Antarctica: A modeling sensitivity study, J. Geophys. Res. Atmos., 118, 4788–4800, http://dx.doi.org/10.1002/jgrd.50428

Links:                                                                                              www.geomar.de GEOMAR Helmholtz Centre for Ocean Research Kiel
www.mpimet.mpg.de the Max Planck Institute for Meteorology
http://sfb574.geomar.de
 the Collaborative Research Project 574

Contact:

GEOMAR 
Helmholtz Centre for Ocean Research Kiel 
Wischhofstr. 1-3, Geb. 4
24148 Kiel
GERMANY

Suspicions confirmed: brain tumors in children have a common cause

8 July, 2013

An overactive signaling pathway is a common cause in cases of pilocytic astrocytoma, the most frequent type of brain cancer in children. This was discovered by a network of scientists coordinated by the German Cancer Research Center (as part of the International Cancer Genome Consortium, ICGC). In all 96 cases studied, the researchers found defects in genes involved in a particular pathway. Hence, drugs can be used to help affected children by blocking components of the signaling cascade. The project is funded by the German Cancer Aid (Deutsche Krebshilfe) and the Federal Ministry of Education and Research (BMBF). The findings are published in the latest issue of the journal "Nature Genetics".

Brain cancer is the primary cause of cancer mortality in children. Even in cases when the cancer is cured, young patients suffer from the stress of a treatment that can be harmful to the developing brain. In a search for new target structures that would create more gentle treatments, cancer researchers are systematically analyzing all alterations in the genetic material of these tumors. This is the mission of the PedBrain consortium, which was launched in 2010. Led by Professor Stefan Pfister from the German Cancer Research Center (Deutsches Krebsforschungszentrum, DKFZ), the PedBrain researchers have now published the results of the first 96 genome analyses of pilocytic astrocytomas.

Pilocytic astrocytomas are the most common childhood brain tumors. These tumors usually grow very slowly. However, they are often difficult to access by surgery and cannot be completely removed, which means that they can recur. The disease may thus become chronic and have debilitating effects for affected children.

In previous work, teams of researchers led by Professor Dr. Stefan Pfister and Dr. David Jones had already discovered characteristic mutations in a major proportion of pilocytic astrocytomas. All of the changes involved a key cellular signaling pathway known as the MAPK signaling cascade. MAPK is an abbreviation for for "mitogen-activated protein kinase." This signaling pathway comprises a cascade of phosphate group additions (phosphorylation) from one protein to the next - a universal method used by cells to transfer messages to the nucleus. MAPK signaling regulates numerous basic biological processes such as embryonic development and differentiation and the growth and death of cells.

"A couple of years ago, we had already hypothesized that pilocytic astrocytomas generally arise from a defective activation of MAPK signaling," says David Jones, first author of the publication. "However, in about one fifth of the cases we had not initially discovered these mutations. In a whole-genome analysis of 96 tumors we have now discovered activating defects in three other genes involved in the MAPK signaling pathway that have not previously been described in astrocytoma."

"Aside from MAPK mutations, we do not find any other frequent mutations that could promote cancer growth in the tumors. This is a very clear indication that overactive MAPK signals are necessary for a pilocytic astrocytoma to develop," says study director Stefan Pfister. The disease thus is a prototype for rare cancers that are based on defects in a single biological signaling process.

In total, the genomes of pilocytic astrocytomas contain far fewer mutations than are found, for example, in medulloblastomas, a much more malignant pediatric brain tumor. This finding is in accordance with the more benign growth behavior of astrocytomas. The number of mutations increases with the age of the affected individuals.

About one half of pilocytic astrocytomas develop in the cerebellum, the other 50 percent in various other brain regions. Cerebellar astrocytomas are genetically even more homogenous than other cases of the disease: In 48 out of 49 cases that were studied, the researchers found fusions between the BRAF gene, a central component of the MAPK signaling pathway, and various other fusion partners.

"The most important conclusion from our results," says study director Stefan Pfister, "is that targeted agents for all pilocytic astrocytomas are potentially available to block an overactive MAPK signaling cascade at various points. We might thus in the future be able to also help children whose tumors are difficult to access by surgery."


International collaboration in tumor genome analysis

The International Cancer Genome Consortium (ICGC), a network of scientists from currently 15 countries, aims to obtain a comprehensive description of genomic and epigenomic changes in all significant types of cancer. Germany takes part with the PedBrain Tumor Project to analyze pediatric brain tumors (medulloblastoma, which in Germany affects approximately 100 children each year; and pilocytic astrocytoma, which is diagnosed in approximately 200 children each year). Within the PedBrain Tumor Project, 300 samples of each tumor type will be analyzed, along with the same number of samples of healthy tissue from the same patients, to identify changes that are cancer-specific.

The PedBrain Tumor network consists of researchers from seven institutes led by project coordinator Peter Lichter of DKFZ. Alongside the DKFZ, participating project partners in Heidelberg are: the National Center for Tumor Diseases (NCT), Heidelberg University and the University Hospital, and the European Molecular Biology Laboratory (EMBL). In addition, scientists from Düsseldorf University Hospital and the Max Planck Institute for Molecular Genetics in Berlin have taken on tasks in the network project.

The German Cancer Aid (Deutsche Krebshilfe) provided funds of eight million Euros for PedBrain Tumor. Since July 1, 2012, the project has received another seven million Euros from the Federal Ministry of Education and Research (BMBF).


David T.W. Jones. Barbara Hutter, Natalie Jäger, Andrey Korshunov, Marcel Kool, Hans-Jörg Warnatz, Thomas Zichner, Sally R. Lambert, Marina Ryzhova, Dong Anh Khuong Quang, Adam M. Fontebasso, Adrian M. Stütz, Sonja Hutter, Marc Zuckermann, Dominik Sturm, Jan Gronych, Bärbel Lasitschka, Sabine Schmidt, Huriye Şeker-Ci1, Hendrik Witt, Marc Sultan, Meryem Ralser, Paul A. Northcott, Volker Hovestadt, Sebastian Bender, Elke Pfaff, Sebastian Stark, Damien Faury, Jeremy Schwartzentruber, Jacek Majewski, Ursula D. Weber, Marc Zapatka, Benjamin Raeder, Matthias Schlesner, Catherine L. Worth, Cynthia C. Bartholomae, Christof von Kalle, Charles D. Imbusch, Sylwester Radomski, Chris Lawerenz, Peter van Sluis, Jan Koster, Richard Volckmann, Rogier Versteeg, Hans Lehrach, Camelia Monoranu, Beate Winkler, Andreas Unterberg, Christel Herold-Mende, Till Milde, Andreas E. Kulozik, Martin Ebinger, Martin U. Schuhmann, Yoon-Jae Cho, Scott L. Pomeroy, Andreas von Deimling, Olaf Witt, Michael D. Taylor, Stephan Wolf, Matthias A. Karajannis, Charles G. Eberhart, Wolfram Scheurlen, Martin Hasselblatt, Keith L. Ligon, Mark W. Kieran, Jan O. Korbel, Marie-Laure Yaspo, Benedikt Brors, Jörg Felsberg, Guido Reifenberger, V. Peter Collins, Nada Jabado, Roland Eils, Peter Lichter and Stefan M. Pfister on behalf of the ICGC PedBrain Tumor Project: Recurrent alterations in FGFR1 and NTRK2 represent novel therapeutic targets in childhood astrocytoma.
Nature Genetics (2013) DOI:10.1038/ng.2682


The German Cancer Research Center (Deutsches Krebsforschungszentrum, DKFZ) with its more than 2,500 employees is the largest biomedical research institute in Germany. At DKFZ, more than 1,000 scientists investigate how cancer develops, identify cancer risk factors and endeavor to find new strategies to prevent people from getting cancer. They develop novel approaches to make tumor diagnosis more precise and treatment of cancer patients more successful. The staff of the Cancer Information Service (KID) offers information about the widespread disease of cancer for patients, their families, and the general public. Jointly with Heidelberg University Hospital, DKFZ has established the National Center for Tumor Diseases (NCT) Heidelberg, where promising approaches from cancer research are translated into the clinic. In the German Consortium for Translational Cancer Research (DKTK), one of six German Centers for Health Research, DKFZ maintains translational centers at seven university partnering sites. Combining excellent university hospitals with high-profile research at a Helmholtz Center is an important contribution to improving the chances of cancer patients. DKFZ is a member of the Helmholtz Association of National Research Centers, with ninety percent of its funding coming from the German Federal Ministry of Education and Research and the remaining ten percent from the State of Baden-Württemberg.

Deutsches Krebsforschungszentrum
Im Neuenheimer Feld 280
D-69120 Heidelberg
www.dkfz.de

05 July 2013

Artificial gravity, stress and a controlled environment - DLR opens globally unique :envihab research facility

The short-arm human centrifuge rotates,
generating artificial gravity for the test subjects
(Image: DLR)
A short-arm centrifuge spins test subjects at six times Earth's gravity; a hypobaric chamber simulates an altitude of 5500 metres; and in the Psychology Laboratory a shuttle has to be docked with the International Space Station under stressful conditions. The focus of the new :envihab research facility, operated by the German Aerospace Center (Deutsches Zentrum fuer Luft- und Raumfahrt; DLR), and its eight modules, spread over 3500 square metres, is on people, their health and their performance levels. ":envihab is the only facility in the world with this configuration and these capabilities," says Rupert Gerzer, head of the DLR Institute of Aerospace Medicine. Here, researchers will not only focus on astronauts, but on people on Earth as well. "Something that makes an astronaut more efficient can also help a patient here on Earth – and vice versa."

Rotating at 6-G

You can guess from outside what the centre of the facility contains. It is a circular area, and inside, the short-arm human centrifuge rotates, generating artificial gravity for the test subjects. During space missions, as astronauts work and conduct research, their bones and muscles deteriorate, the efficiency of their circulatory system is reduced (as a result of microgravity) and their immune system becomes weaker – the gravity generated in a session in the centrifuge might counteract these physical changes. "Using the centrifuge, we want to conduct research to discover how and to what extent this might happen," says Gerzer. During the session, the test subjects might be subjected to artificial gravity six times that of Earth's. They are also expected to carry out other tasks as part of this experiment: for example, they might have to do exercises on a static bicycle or a springboard, which can sometimes further reinforce the effect of the centrifuge session. Multiple cameras monitor the sequences of movements as they do so. One globally unique feature is the option of using a robotic arm to perform an ultrasound screening on the test subject during the centrifuge session and observe the heart. "First, we will carry out studies in which we can understand and use these research options very specifically." The aim in future is to deliver a custom-made centrifuge to space for astronaut training. Scientists will develop countermeasures for bone and muscle deterioration following a lengthy confinement to bed or in old age here on Earth.

Resting for science

The other modules are in the immediate vicinity of the centrifuge. In future the Sleep and Physiology Laboratory will be used to conduct bed confinement studies lasting several weeks or months. Up to twelve test subjects can be placed there under precisely controlled environmental conditions. Humidity, oxygen, nitrogen and carbon dioxide levels, ambient light and temperature can all be precisely set and adjusted according to the research being conducted. Special light covers also enable experiments using different wavelengths. "Astronauts are shift workers just as much as factory workers or nurses and doctors on night shifts," says Gerzer. Research into which wavelengths favourably affect the rhythm of shift workers will benefit workers in space and on Earth. Additional areas of research will be bone and muscle deterioration, the circadian rhythm and the effects of nutritional variation.

Looking at the body and brain

One of the installations in the :envihab research facility is a magnetic resonance imaging (MRI) device with positron emission tomography (PET) capabilities. With this instrument, researchers will be able to investigate – right on site, just a few metres from the various modules, such as the Sleep and Physiology laboratory or the centrifuge – for example, where the human body stores sodium, water and fat content levels, and how the body is supplied with blood. It is also possible to make neuroreceptors in the brain and processes associated with them visible. "The shortness of the trip from the test subject room to the MRI guarantees that the selected environmental conditions and the position of the test subject are not altered during the trip."

In the Prevention and Rehabilitation Laboratory, scientists are investigating the cardio-pulmonary system and the human musculoskeletal system, as well as the effects of atmospheric conditions on the body. In the hypobaric chamber, conditions are created to simulate altitudes of up to 5500 metres. The Physiology Laboratory will be used to study ways to counter the negative effects of zero gravity. Various types of equipment are available to, for example, measure muscle strength and performance. The adjacent Biology Laboratory contains multiple laboratories for analysing microbial load and preparing biological experiments for space.

Work under stress

The human psyche is the subject of studies in the Psychology Laboratory. How do people react when they need to complete complex tasks under stress? What effects, for example, does a long-term mission in space have on the astronauts, who live and work with one another in very limited space and with little contact with the outside world? Here again the research results will be important for both astronauts and people on Earth. "Certain tasks require teamwork under extreme stress – no different to the work of astronauts on the Space Station," adds the head of the Institute.

The initial studies will be used to become acquainted with the equipment and facilities in :envihab. Then, a two-month bed rest study will begin. "The potential users of our facility are not just DLR scientists, but also international space agencies or universities." In future, European astronauts will come to the Cologne-based research facility after returning from space to undergo the first studies. "In :envihab, research for space flight and applications on Earth will be carried out, and both will profit from it."


Contact:

German Aerospace Center (DLR)
DLR Institute of Aerospace Medicine
Linder Hoehe

51147 Koeln
Germany
http://www.DLR.de/en/

04 July 2013

Exercise rescues mutated neural stem cells

Newborn neuron in the brain
of an adult mouse.
Haikun Liu,
German Cancer Research Center
The genetic mutation leading to the developmental disorder "CHARGE syndrome" blocks the maturation of neural stem cells. This finding explains why CHARGE patients suffer from mental retardation and learning disabilities. Strikingly, exercise by running can completely rescue the CHARGE phenotype. Scientists at the German Cancer Research Center have published this finding in the most recent issue of Cell Stem Cell.

CHARGE syndrome* is a severe developmental disorder affecting multiple organs. It affects 1 in 8500 newborns worldwide. The majority of patients carry a mutation in a gene called CHD7. How this single mutation leads to the broad spectrum of characteristic CHARGE symptoms has been a mystery.

CHD7 encodes a so-called chromatin remodeler, an important class of epigenetic regulators. DNA is wound around bead-like nucleosomes consisting of histone proteins. The string of beads is then twisted into a structure called chromatin. The more nucleosomes that occupy a gene, the less active it is. Chromatin remodelers like CHD7 are essential for the regulation of gene activity because they create nucleosome-free regions in the regulatory sequences of genes. Thus, a mutation in a gene coding for a chromatin remodeler may lead to a wide pattern of misregulated genes.

Dr. Haikun Liu's lab at the German Cancer Research Center (Deutsches Krebsforschungszentrum, DKFZ) is interested in the regulation of adult neural stem cells. The scientists have a particular focus on the role adult neural stem cells play in human diseases, including mental retardation and brain tumors. CHARGE patients suffer from mental retardation and learning disabilities, strongly suggesting that a central nervous defect underlies the disease.

To understand the molecular role of the CHD7 mutation in the CHARGE phenotype, the researchers created a model using genetically modified mice. These animals permit the scientists to switch off the CHD7 gene uniquely in neural stem cells at specific developmental stages. This permitted the scientists to follow how CHD7-deficient cells proliferate, differentiate and mature over the entire lifespan of the animal.

The work led to an exciting finding: by switching off CHD7 in either fetal or adult neural stem cells, the scientists observed that the mutant cells behaved in a common way: They could not efficiently differentiate into mature neurons, which are the basic functional unit in the brains of humans and other animals. Mature neurons normally have a very complex morphology, allowing them to create networks in the brain which are important for processing information. Neurons with the mutant form of CHD7, however, seem to be incapable of forming networks.

Most strikingly, Liu and colleagues found that exercise fully rescued this phenotype in the hippocampus, the core region of the brain responsible for learning and memory. They allowed the CHD7 deficient animals to exercise on a running wheel, which rodents love to do. After the running exercise the CHD7 mutant neurons were fully rescued: They were able to create functioning networks.

That running causes a dramatic increase in neurogenesis in adults has been confirmed in animals and humans. "We were extremely excited to see that the CHD7 deficiency in a cell can be bypassed via an unknown mechanism provoked by exercise involving running. Now, we are eagerly working to find the underlying mechanism," says Haikun Liu. The neuroscientist believes this discovery will lead to a better understanding of the disease, possibly even pointing to a way to reactivate the CHD7 pathway and thus to attenuate CHARGE symptoms in human patients.

CHD7 is also an important cancer-related gene; many different types of human cancers, including lung cancer, colon cancer and brain tumors exhibit mutations in the molecule. The mechanism identified here provides a clear explanation: A mutation in CHD7 leads to a blockage of differentiation in stem cells, which is a major cause of tumorigenesis.

In addition, CHD7 has been identified as a high-risk gene in human autism, and many CHARGE patients are autistic. It seems that the gene is important in the regulation of many more physiological processes in the body. By analogy to the neural stem cell study, the DKFZ researchers will now use their advanced mouse model to investigate CHD7's role in other types of cells.


*CHARGE: Coloboma of the eye, Heart defects, Atresia of the choanae, severe Retardation of growth and development, Genital abnormalities, and Ear abnormalities

Weijung Feng, Muhammad Amir Khan, Pablo Bellvis, Zhe Zhu, Olga Bernhardt, Christel Herold-Mende und Haikun Liu: The Chromatin Remodeller CHD7 regulates Neurogenesis via Activation of SoxC Transcription Factors. Cell Stem Cell 2013, DOI: 10.1016/j.stem.2013.05.002


The German Cancer Research Center (Deutsches Krebsforschungszentrum, DKFZ) with its more than 2,500 employees is the largest biomedical research institute in Germany. At DKFZ, more than 1,000 scientists investigate how cancer develops, identify cancer risk factors and endeavor to find new strategies to prevent people from getting cancer. They develop novel approaches to make tumor diagnosis more precise and treatment of cancer patients more successful. The staff of the Cancer Information Service (KID) offers information about the widespread disease of cancer for patients, their families, and the general public. Jointly with Heidelberg University Hospital, DKFZ has established the National Center for Tumor Diseases (NCT) Heidelberg, where promising approaches from cancer research are translated into the clinic. In the German Consortium for Translational Cancer Research (DKTK), one of six German Centers for Health Research, DKFZ maintains translational centers at seven university partnering sites. Combining excellent university hospitals with high-profile research at a Helmholtz Center is an important contribution to improving the chances of cancer patients. DKFZ is a member of the Helmholtz Association of National Research Centers, with ninety percent of its funding coming from the German Federal Ministry of Education and Research and the remaining ten percent from the State of Baden-Württemberg. 

03 July 2013

How important is Biodiversity? - GEOMAR coordinates large scale EU project on biodiversity research in the Baltic -

Cod larvae from the Baltic Sea. The Atlantic Cod is
a keystone species for the food web and for fisheries
in the Baltic Sea.
Photo: C. Clemmesen, GEOMAR
03 July 2013/Kiel. The importance of species variety for the ecosystem at land has long been acknowledged. How important, however, is biological variety for marine biocoenoses? From now on marine ecologists from eight different European countries will study this question in the new research project BIO-C3 which the EU is financing for three years with four million Euros. Project coordination will be carried out by GEOMAR Helmholtz Centre for Ocean Research Kiel.


There is no exact data; however estimations assume that up to 130 animal and plant species die out daily. In 1992 the United Nations tried countering this process with the “Biodiversity Convention”. It labeled biodiversity as worthy of preservation – at land as well as at sea. Biological variety should not only be preserved for ethical reasons: It also fulfils a key function in the ecosystem. At sea this means healthy and fertile fish stocks, clear water without algal bloom but also the absorption of nutrients from agriculture. The interactions on land have been much more researched. How important is biodiversity for the functioning of the ocean exactly?

Answering this question is the aim of BIO-C3, a new research project, financed by the EU. It includes a consortium of marine researchers from eight Baltic countries and a total of 13 participating institutes and universities. The scientists receive 4 million Euros as part of the EU BONUS program (Science for a better future of the Baltic Seas region). The project is coordinated by Professor Thorsten Reusch from GEOMAR Helmholtz Centre for Ocean Research Kiel in close cooperation with Professor Fritz Köster from the Danish Technical University (DTU Aqua) in Copenhagen.

BIO-3C stands for “Biodiversity changes – causes, consequences and management implications”. To discover how crucial biodiversity is for marine ecosystems, the scientists are using a natural laboratory: the Baltic. “It is the perfect test object. The species composition is very young, as the Baltic has had its current salt level for only a few thousand years. Simultaneously it has relatively few species which means that a loss in species or an invasion of new residents has a much clearer effect,” explains project coordinator Professor Reusch. Thus such changes can be examined more easily than in waters with many species.

A further advantage of the Baltic: The participating scientists can use numerous preliminary and long term studies of the participating institutes and universities such as studies on fish stock, plankton organisms and environmental conditions that are conducted several times a year with the help of Kiel’s research vessel ALKOR or studies on the North American comb jellyfish (Mnemiosis leidyi) that has entered the Baltic, for example.

Moreover human influence on the Baltic ecosystem is larger than in most other sea regions as this marginal sea is surrounded by densely populated areas, especially in the south and east. “A further BIO-C3 focus will hence be to weight and predict human interference such as fishing, over fertilization but also climate change using appropriate models,” says Professor Reusch.

The biological variety which will be examined also includes genetic diversity. This could become important when the Baltic continues to sweeten, become warmer and suffer decreasing oxygen levels as predicted. “A central question is whether important organisms such as zooplankton and fish can adapt to the different environmental conditions,” continues the Kiel ecologist. Using the increased understanding of the processes gained during the course of the project, the scientists will formulate recommendations on improving the management of Baltic biodiversity in a synthetic subproject.

Concerning adaptation to the expected climate change, the BIO-C3 researchers will cooperate closely with the BONUS project BAMBI (Baltic Sea marine biodiversity – addressing the potential of adaptation to climate change) at Gothenburg University. Within this framework GEOMAR marine ecologists were also able to initiate another subproject. “We are particularly pleased with this double success as only approximately ten percent of the submitted projects to the BONUS program obtained a funding recommendation,” emphasizes Professor Reusch, head of the GEOMAR research field Marine Ecology.

Links:
www.geomar.de GEOMAR Helmholtz Centre for Ocean Research Kiel

Contact:
Prof. Dr. Thorsten Reusch (GEOMAR, Head of Marine Ecology), treusch@geomar.de
Jan Steffen (GEOMAR, Communication & Media), Tel.: (+49) 0431 600-2811, jsteffen@geomar.de 


GEOMAR
Helmholtz Centre for Ocean Research Kiel

Wischhofstr. 1-3, Geb. 4
24148 Kiel
GERMANY

Climate researchers receive 2013 Erwin Schrödinger Prize


Until now, scientists have assumed that keeping livestock on large steppe grassland contributes to the constantly growing nitrous oxide concentration in the atmosphere and thus to global warming. But now the opposite has been proved: Klaus Butterbach-Bahl’s team of five from the Karlsruher Institute of Technology (KIT) have shown that animals grazing on steppe and prairie areas can actually reduce greenhouse gas emissions. In recognition of their long-term study, the ecosystem specialists have now received the 2013 Erwin Schrödinger Prize, which is endowed with €50,000. The prize is awarded each year by the Stifterverband für die Deutsche Wissenschaft and the Helmholtz Association.

After carbon dioxide and methane, nitrous oxide is the third-biggest contributing gas to the greenhouse effect and climate change. Around 60 percent of nitrous oxide emissions caused by human activity come from agriculture – for example, microbial decomposition of nitrogen-containing excrement from grazing sheep or cattle. Because of this, scientists around the world assumed that keeping animals on steppes and prairies must also contribute to the production of nitrous oxide. However, in a study conducted in Inner Mongolia, China, KIT’s international team of scientists proved that the situation is more complicated than that. Project leader Butterbach-Bahl found that “areas not used for livestock breeding emit much larger amounts of nitrous oxide over the year than steppe areas on which animals are grazing.” The team’s investigations were funded by the German Research Foundation. The other members of the team alongside Butterbach-Bahl were Xunhua Zheng of the Chinese Academy of Sciences, Nicolas Brüggemann, now of Forschungszentrum Jülich, Michael Dannenmann of KIT, and Benjamin Wolf, who is now at Swiss research institute EMPA.

The Stifterverband’s new president Andreas Barner will confer the prize during the annual meeting of the Helmholtz Association in Berlin on 19 September 2013. Jürgen Mlynek, President of the Helmholtz Association, congratulated the prize-winners: “The study makes an impressive contribution to our understanding of the effects of agriculture on global warming. Its focus on a current hot topic means it is sure to have a major impact on ongoing scientific debate about climate change.”

Measuring nitrous oxide emissions is a technically complex procedure, so data are usually only collected over a short period of time during early spring. The Karlsruhe team, however, collected data on nitrous oxide production in the soil over an entire year. “Previous short-term studies ignored the fact that the emission of significant nitrous oxide amounts from steppe soils into the atmosphere is a natural process and most of the natural nitrous oxide emissions take place during the thawing period in spring,” explains Butterbach-Bahl. And it is precisely these emissions that livestock reduce. As the animals graze on the pastureland the grass becomes much shorter. This means that more snow is swept away by the wind, creating a shallower covering of snow. The ground is thus more poorly insulated during the long, cold winter and can therefore be up to 10 °C colder. On top of that, there is less meltwater during the thaw in March, so the ground is dryer. Cold, dry conditions retard microbial activity, and less nitrous oxide is produced. On the basis of their findings, the scientists estimate that previous calculations overestimated nitrous oxide emissions from these areas by around 72 percent. “Our work just shows that much research remains to be done to really understand the sources of atmospheric nitrous oxide,” says Butterbach-Bahl.  More livestock farming is not the answer, however, as this would increase methane production. What’s more, overgrazing leads to soil degradation and increased loss of soil carbon.

About the Stifterverband science prize – the Erwin Schrödinger Prize

The Helmholtz Association and Stifterverband für die Deutsche Wissenschaft have conferred the Erwin Schrödinger Prize since 1999. The prize is awarded in recognition of outstanding scientific and technological achievements in areas of convergence between medicine, the natural sciences and engineering. The scientists in the winning team must represent at least two different disciplines. The prize is awarded alternately by the Stifterverband and the Helmholtz Association each year, and the winners are free to decide how to spend the €50,000 prize money. The prize is formally handed over at the Helmholtz Association’s annual meeting.

About the prizewinners

Prof. Klaus-Butterbach-Bahl was the scientific leader of the project team. He is an expert in the field of modelling global environmental change and in identifying and characterising microbial processes. He heads the Bio-Geo-Chemical Processes department at Karlsruhe Institute of Technology’s Institute of Meteorology and Climate Research – Atmosphere Environmental Research (IMK – IFU). KIT is a member of the Helmholtz Association.
Prof. Xunhua Zheng is a globally renowned researcher in the quantification of greenhouse gases from agricultural ecosystems in China. She is a professor at the Chinese Academy of Sciences (CAS) and a member of its Institute of Atmospheric Physics. Zheng was significantly involved with her group in the quantification of nitrous oxide fluxes.
Prof. Nicolas Brüggemann has co-initiated the project and participated in all activities – also on site. Since 2010 he is Professor for Terrestrial Biogeochemistry at the University of Bonn, and leader of the Plant-Soil-Atmosphere Exchange Processes group in the Agrosphere section of the Institute of Bio- and Geosciences at Forschungszentrum Jülich (also a member of the Helmholtz Association). While the study was taking place he was a group leader at the Karlsruhe Institute of Technology’s Institute of Meteorology and Climate Research – Atmosphere Environmental Research (IMK – IFU).
Dr Michael Dannenmann is an internationally renowned expert in the identification and quantification of microbial processes in nitrogen/carbon production, consumption and emissions. He is acting group leader of the Regionalization of Biogenic Trace Gas Emission group at Karlsruhe Institute of Technology’s Institute of Meteorology and Climate Research – Atmosphere Environmental Research (IMK – IFU).
Dr Benjamin Wolf was the leading scientist on site in Inner Mongolia during the entire observation period. While the study was taking place he was a PhD student at the Karlsruhe Institute of Technology’s Institute of Meteorology and Climate Research – Atmosphere Environmental Research (IMK – IFU). He is currently a postdoc at the Swiss Federal Laboratories for Materials Science and Technology (EMPA).


The Helmholtz Association contributes to solving major challenges facing society, science and the economy with top scientific achievements in six research fields: Energy; Earth and Environment; Health; Key Technologies; Structure of Matter; and Aeronautics, Space and Transport. With just under 34,000 employees in 18 research centres and an annual budget of approximately €3.8 billion, the Helmholtz Association is Germany’s largest scientific organisation. Its work follows in the tradition of the great natural scientist Hermann von Helmholtz (1821-1894).