@misc{MaliGrohmeWełniczetal.2008, author = {Mali, Brahim and Grohme, Markus and Wełnicz, Weronika and Dandekar, Thomas and Schn{\"o}lzer, Martina and Reuter, Dirk and Schill, Ralph O. and Frohme, Marcus}, title = {Genomic Analyses of Cryptobiotic Tardigrades}, series = {Wissenschaftliche Beitr{\"a}ge 2008}, volume = {13}, journal = {Wissenschaftliche Beitr{\"a}ge 2008}, issn = {0949-8214}, doi = {10.15771/0949-8214_2008_1_5}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:526-opus-672}, pages = {35 -- 39}, year = {2008}, abstract = {Genomics technologies, especially transcriptional profiling, allows comparisons of gene expression within and across different organisms. By the use of the model group Tardigrada, also known as water bear, we try to understand the phenomenon of cryptobiosis. The dry organisms can survive for years without water. When re-exposed to water, the animals rehydrate and come back to life. The expression of genes in response to dehydratation and rehydratation is being examined in our laboratory through the generation of expressed sequence tags (ESTs), representational difference analysis (RDA) and subsequent microarray analysis. Molecular dissection of this complex phenomenom, including gene regulation, will allow the development of techniques for preservation and stabilisation of biological materials in a dried state.}, language = {en} } @article{SchokraieWarnkenHotzWagenblattetal.2012, author = {Schokraie, Elham and Warnken, Uwe and Hotz-Wagenblatt, Agnes and Grohme, Markus and Hengherr, Steffen and F{\"o}rster, Frank and Schill, Ralph O. and Frohme, Marcus and Dandekar, Thomas and Schn{\"o}lzer, Martina}, title = {Comparative proteome analysis of Milnesium tardigradum in early embryonic state versus adults in active and anhydrobiotic state}, series = {PLoS ONE}, volume = {7}, journal = {PLoS ONE}, number = {9}, issn = {1932-6203}, doi = {10.1371/journal.pone.0045682}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:526-opus4-6392}, pages = {25}, year = {2012}, abstract = {Tardigrades have fascinated researchers for more than 300 years because of their extraordinary capability to undergo cryptobiosis and survive extreme environmental conditions. However, the survival mechanisms of tardigrades are still poorly understood mainly due to the absence of detailed knowledge about the proteome and genome of these organisms. Our study was intended to provide a basis for the functional characterization of expressed proteins in different states of tardigrades. High-throughput, high-accuracy proteomics in combination with a newly developed tardigrade specific protein database resulted in the identification of more than 3000 proteins in three different states: early embryonic state and adult animals in active and anhydrobiotic state. This comprehensive proteome resource includes protein families such as chaperones, antioxidants, ribosomal proteins, cytoskeletal proteins, transporters, protein channels, nutrient reservoirs, and developmental proteins. A comparative analysis of protein families in the different states was performed by calculating the exponentially modified protein abundance index which classifies proteins in major and minor components. This is the first step to analyzing the proteins involved in early embryonic development, and furthermore proteins which might play an important role in the transition into the anhydrobiotic state.}, language = {en} } @article{FoersterLiangShkumatovetal.2009, author = {F{\"o}rster, Frank and Liang, Chunguang and Shkumatov, Alexander and Beisser, Daniela and Engelmann, Julia C. and Schn{\"o}lzer, Martina and Frohme, Marcus and M{\"u}ller, Tobias and Schill, Ralph O. and Dandekar, Thomas}, title = {Tardigrade workbench: comparing stress-related proteins, sequence-similar and functional protein clusters as well as RNA elements in tardigrades}, series = {BMC Genomics}, volume = {10}, journal = {BMC Genomics}, number = {469}, issn = {1471-2164}, doi = {10.1186/1471-2164-10-469}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:526-opus4-6461}, pages = {10}, year = {2009}, abstract = {Background Tardigrades represent an animal phylum with extraordinary resistance to environmental stress. Results To gain insights into their stress-specific adaptation potential, major clusters of related and similar proteins are identified, as well as specific functional clusters delineated comparing all tardigrades and individual species (Milnesium tardigradum, Hypsibius dujardini, Echiniscus testudo, Tulinus stephaniae, Richtersius coronifer) and functional elements in tardigrade mRNAs are analysed. We find that 39.3\% of the total sequences clustered in 58 clusters of more than 20 proteins. Among these are ten tardigrade specific as well as a number of stress-specific protein clusters. Tardigrade-specific functional adaptations include strong protein, DNA- and redox protection, maintenance and protein recycling. Specific regulatory elements regulate tardigrade mRNA stability such as lox P DICE elements whereas 14 other RNA elements of higher eukaryotes are not found. Further features of tardigrade specific adaption are rapidly identified by sequence and/or pattern search on the web-tool tardigrade analyzer http://waterbear.bioapps.biozentrum.uni-wuerzburg.de. The work-bench offers nucleotide pattern analysis for promotor and regulatory element detection (tardigrade specific; nrdb) as well as rapid COG search for function assignments including species-specific repositories of all analysed data. Conclusion Different protein clusters and regulatory elements implicated in tardigrade stress adaptations are analysed including unpublished tardigrade sequences.}, language = {en} } @article{SchulzeTillichDandekaretal.2013, author = {Schulze, Katja and Tillich, Ulrich M. and Dandekar, Thomas and Frohme, Marcus}, title = {PlanktoVision - an automated analysis system for the identification of phytoplankton}, series = {BMC Bioinformatics}, volume = {14}, journal = {BMC Bioinformatics}, number = {115}, issn = {1471-2105}, doi = {10.1186/1471-2105-14-115}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:526-opus4-6364}, pages = {10}, year = {2013}, abstract = {Phytoplankton communities are often used as a marker for the determination of fresh water quality. The routine analysis, however, is very time consuming and expensive as it is carried out manually by trained personnel. The goal of this work is to develop a system for an automated analysis.}, language = {en} } @article{MaliGrohmeFoersteretal.2010, author = {Mali, Brahim and Grohme, Markus and F{\"o}rster, Frank and Dandekar, Thomas and Schn{\"o}lzer, Martina and Reuter, Dirk and Wełnicz, Weronika and Schill, Ralph O. and Frohme, Marcus}, title = {Transcriptome survey of the anhydrobiotic tardigrade Milnesium tardigradum in comparison with Hypsibius dujardini and Richtersius coronifer}, series = {BMC Genomics}, volume = {11}, journal = {BMC Genomics}, number = {168}, issn = {1471-2164}, doi = {10.1186/1471-2164-11-168}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:526-opus4-6207}, pages = {11}, year = {2010}, abstract = {The phenomenon of desiccation tolerance, also called anhydrobiosis, involves the ability of an organism to survive the loss of almost all cellular water without sustaining irreversible damage. Although there are several physiological, morphological and ecological studies on tardigrades, only limited DNA sequence information is available. Therefore, we explored the transcriptome in the active and anhydrobiotic state of the tardigrade Milnesium tardigradum which has extraordinary tolerance to desiccation and freezing. In this study, we present the first overview of the transcriptome of M. tardigradum and its response to desiccation and discuss potential parallels to stress responses in other organisms.}, language = {en} } @article{SchokraieHotzWagenblattWarnkenetal.2010, author = {Schokraie, Elham and Hotz-Wagenblatt, Agnes and Warnken, Uwe and Mali, Brahim and Frohme, Marcus and F{\"o}rster, Frank and Dandekar, Thomas and Hengherr, Steffen and Schill, Ralph O. and Schn{\"o}lzer, Martina}, title = {Proteomic Analysis of Tardigrades: Towards a Better Understanding of Molecular Mechanisms by Anhydrobiotic Organisms}, series = {PLoS ONE}, volume = {5}, journal = {PLoS ONE}, number = {3}, issn = {1932-6203}, doi = {10.1371/journal.pone.0009502}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:526-opus4-6214}, pages = {37}, year = {2010}, abstract = {Tardigrades are small, multicellular invertebrates which are able to survive times of unfavourable environmental conditions using their well-known capability to undergo cryptobiosis at any stage of their life cycle. Milnesium tardigradum has become a powerful model system for the analysis of cryptobiosis. While some genetic information is already available for Milnesium tardigradum the proteome is still to be discovered.}, language = {en} } @article{FoersterBeisserGrohmeetal.2012, author = {F{\"o}rster, Frank and Beisser, Daniela and Grohme, Markus and Liang, Chunguang and Mali, Brahim and Siegl, Alexander Matthias and Engelmann, Julia C. and Shkumatov, Alexander and Schokraie, Elham and M{\"u}ller, Tobias and Schn{\"o}lzer, Martina and Schill, Ralph O. and Frohme, Marcus and Dandekar, Thomas}, title = {Transcriptome Analysis in Tardigrade Species Reveals Specific Molecular Pathways for Stress Adaptations}, series = {Bioinformatics and Biology Insights}, volume = {2012}, journal = {Bioinformatics and Biology Insights}, number = {6}, issn = {1177-9322}, doi = {10.4137/BBI.S9150}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:526-opus4-6153}, pages = {69 -- 96}, year = {2012}, abstract = {Tardigrades have unique stress-adaptations that allow them to survive extremes of cold, heat, radiation and vacuum. To study this, encoded protein clusters and pathways from an ongoing transcriptome study on the tardigrade Milnesium tardigradum were analyzed using bioinformatics tools and compared to expressed sequence tags (ESTs) from Hypsibius dujardini, revealing major pathways involved in resistance against extreme environmental conditions. ESTs are available on the Tardigrade Workbench along with software and databank updates. Our analysis reveals that RNA stability motifs for M. tardigradum are different from typical motifs known from higher animals. M. tardigradum and H. dujardini protein clusters and conserved domains imply metabolic storage pathways for glycogen, glycolipids and specific secondary metabolism as well as stress response pathways (including heat shock proteins, bmh2, and specific repair pathways). Redox-, DNA-, stress- and protein protection pathways complement specific repair capabilities to achieve the strong robustness of M. tardigradum. These pathways are partly conserved in other animals and their manipulation could boost stress adaptation even in human cells. However, the unique combination of resistance and repair pathways make tardigrades and M. tardigradum in particular so highly stress resistant.}, language = {en} } @article{BeisserGrohmeKopkaetal.2012, author = {Beisser, Daniela and Grohme, Markus and Kopka, Joachim and Frohme, Marcus and Schill, Ralph O. and Hengherr, Steffen and Dandekar, Thomas and Klau, Gunnar W. and Dittrich, Marcus and M{\"u}ller, Tobias}, title = {Integrated pathway modules using time-course metabolic profiles and EST data from Milnesium tardigradum}, series = {BMC Systems Biology}, volume = {6}, journal = {BMC Systems Biology}, number = {72}, issn = {1752-0509}, doi = {10.1186/1752-0509-6-72}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:526-opus4-6146}, pages = {13}, year = {2012}, abstract = {Tardigrades are multicellular organisms, resistant to extreme environmental changes such as heat, drought, radiation and freezing. They outlast these conditions in an inactive form (tun) to escape damage to cellular structures and cell death. Tardigrades are apparently able to prevent or repair such damage and are therefore a crucial model organism for stress tolerance. Cultures of the tardigrade Milnesium tardigradum were dehydrated by removing the surrounding water to induce tun formation. During this process and the subsequent rehydration, metabolites were measured in a time series by GC-MS. Additionally expressed sequence tags are available, especially libraries generated from the active and inactive state. The aim of this integrated analysis is to trace changes in tardigrade metabolism and identify pathways responsible for their extreme resistance against physical stress.}, language = {en} }