TY - CONF A1 - Raschke, Silvia A1 - Burdziak, D. A1 - Lentzen, G. A1 - Bagyan, I. A1 - Siedler, F. A1 - Scheffer, B. A1 - Pfeiffer, F. A1 - Oesterhelt, D. A1 - Klenk, H.-P. A1 - Schuster, S. A1 - Kunte, Hans-Jörg T1 - Changes of the proteome of Halomonas elongata in response to osmotic stress T2 - Jahrestagung 2009 der Vereinigung für allgemeine und angewandte Mikrobiologie (VAAM) CY - Bochum, Germany DA - 2009-03-08 PY - 2009 N1 - Geburtsname von Raschke, Silvia: Faßbender, S. - Birth name of Raschke, Silvia: Faßbender, S. AN - OPUS4-19078 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Kindzierski, V. A1 - Raschke, Silvia A1 - Knabe, Nicole A1 - Siedler, F. A1 - Scheffer, B. A1 - Pflüger-Grau, K. A1 - Pfeiffer, F. A1 - Oesterhelt, D. A1 - Marin-Sanguino, A. A1 - Kunte, Hans-Jörg T1 - Osmoregulation in the halophilic bacterium halomonas elongata: A case study for integrative systems biology N2 - Halophilic bacteria use a variety of osmoregulatory methods, such as the accumulation of one or more compatible solutes. The wide diversity of compounds that can act as compatible solute complicates the task of understanding the different strategies that halophilic bacteria use to cope with salt. This is specially challenging when attempting to go beyond the pathway that produces a certain compatible solute towards an understanding of how the metabolic network as a whole addresses the problem. Metabolic reconstruction based on genomic data together with Flux Balance Analysis (FBA) is a promising tool to gain insight into this problem. However, as more of these reconstructions become available, it becomes clear that processes predicted by genome annotation may not reflect the processes that are active in vivo. As a case in point, E. coli is unable to grow aerobically on citrate in spite of having all the necessary genes to do it. It has also been shown that the realization of this genetic potential into an actual capability to metabolize citrate is an extremely unlikely event under normal evolutionary conditions. Moreover, many marine bacteria seem to have the same pathways to metabolize glucose but each species uses a different one. In this work, a metabolic network inferred from genomic annotation of the halophilic bacterium Halomonas elongata and proteomic profiling experiments are used as a starting point to motivate targeted experiments in order to find out some of the defining features of the osmoregulatory strategies of this bacterium. This new information is then used to refine the network in order to describe the actual capabilities of H. elongata, rather than its genetic potential. KW - Halomonas elongata KW - Systems biology KW - Flux balance analysis KW - Proteomic analysis PY - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-391172 SN - 1932-6203 VL - 12 IS - 1 SP - Article e0168818, 1 EP - 22 AN - OPUS4-39117 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -