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1.
Kempa S Rozhon W Samaj J Erban A Baluska F Becker T Haselmayer J Schleiff E Kopka J Hirt H Jonak C 《The Plant journal : for cell and molecular biology》2007,49(6):1076-1090
Glycogen synthase kinase 3 (GSK-3) was originally identified as a regulator of glycogen synthesis in mammals. Like starch in plants, glycogen is a polymer of glucose, and serves as an energy and carbon store. Starch is the main carbohydrate store in plants. Regulation of starch metabolism, in particular in response to environmental cues, is of primary importance for carbon and energy flow in plants but is still obscure. Here, we provide evidence that MsK4, a novel Medicago sativa GSK-3-like kinase, connects stress signalling with carbon metabolism. MsK4 was found to be a plastid-localized protein kinase that is associated with starch granules. High-salt stress rapidly induced the in vivo kinase activity of MsK4. Metabolic profiling of MsK4 over-expressor lines revealed changes in sugar metabolism, including increased amounts of maltose, the main degradation product of starch in leaves. Plants over-expressing MsK4 showed improved tolerance to salt stress. Moreover, under high-salinity conditions, MsK4-over-expressing plants accumulated significantly more starch and showed modified carbohydrate content compared with wild-type plants. Overall, these data indicate that MsK4 is an important regulator that adjusts carbohydrate metabolism to environmental stress. 相似文献
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MOTIVATION: Typical GC-MS-based metabolite profiling experiments may comprise hundreds of chromatogram files, which each contain up to 1000 mass spectral tags (MSTs). MSTs are the characteristic patterns of approximately 25-250 fragment ions and respective isotopomers, which are generated after gas chromatography (GC) by electron impact ionization (EI) of the separated chemical molecules. These fragment ions are subsequently detected by time-of-flight (TOF) mass spectrometry (MS). MSTs of profiling experiments are typically reported as a list of ions, which are characterized by mass, chromatographic retention index (RI) or retention time (RT), and arbitrary abundance. The first two parameters allow the identification, the later the quantification of the represented chemical compounds. Many software tools have been reported for the pre-processing, the so-called curve resolution and deconvolution, of GC-(EI-TOF)-MS files. Pre-processing tools generate numerical data matrices, which contain all aligned MSTs and samples of an experiment. This process, however, is error prone mainly due to (i) the imprecise RI or RT alignment of MSTs and (ii) the high complexity of biological samples. This complexity causes co-elution of compounds and as a consequence non-selective, in other words impure MSTs. The selection and validation of optimal fragment ions for the specific and selective quantification of simultaneously eluting compounds is, therefore, mandatory. Currently validation is performed in most laboratories under human supervision. So far no software tool supports the non-targeted and user-independent quality assessment of the data matrices prior to statistical analysis. TagFinder may fill this gap. Strategy: TagFinder facilitates the analysis of all fragment ions, which are observed in GC-(EI-TOF)-MS profiling experiments. The non-targeted approach allows the discovery of novel and unexpected compounds. In addition, mass isotopomer resolution is maintained by TagFinder processing. This feature is essential for metabolic flux analyses and highly useful, but not required for metabolite profiling. Whenever possible, TagFinder gives precedence to chemical means of standardization, for example, the use of internal reference compounds for retention time calibration or quantitative standardization. In addition, external standardization is supported for both compound identification and calibration. The workflow of TagFinder comprises, (i) the import of fragment ion data, namely mass, time and arbitrary abundance (intensity), from a chromatography file interchange format or from peak lists provided by other chromatogram pre-processing software, (ii) the annotation of sample information and grouping of samples into classes, (iii) the RI calculation, (iv) the binning of observed fragment ions of equal mass from different chromatograms into RI windows, (v) the combination of these bins, so-called mass tags, into time groups of co-eluting fragment ions, (vi) the test of time groups for intensity correlated mass tags, (vii) the data matrix generation and (viii) the extraction of selective mass tags supported by compound identification. Thus, TagFinder supports both non-targeted fingerprinting analyses and metabolite targeted profiling. AVAILABILITY: Exemplary TagFinder workspaces and test data sets are made available upon request to the contact authors. TagFinder is made freely available for academic use from http://www-en.mpimp-golm.mpg.de/03-research/researchGroups/01-dept1/Root_Metabolism/smp/TagFinder/index.html. 相似文献
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Transgenic Arabidopsis plants can accumulate polyhydroxybutyrate to up to 4% of their fresh weight 总被引:7,自引:0,他引:7
Bohmert K Balbo I Kopka J Mittendorf V Nawrath C Poirier Y Tischendorf G Trethewey RN Willmitzer L 《Planta》2000,211(6):841-845
Transgenic Arabidopsis thaliana (L.) Heynh. plants expressing the three enzymes encoding the biosynthetic route to polyhydroxybutyrate (PHB) are described.
These plants accumulated more than 4% of their fresh weight (≈40% of their dry weight) in the form of PHB in leaf chloroplasts.
These very high producers were obtained and identified following a novel strategy consisting of a rapid GC-MS analysis of
a large number of transgenic Arabidopsis plants generated using a triple construct, thus allowing the parallel transfer of all three genes necessary for PHB synthesis
in a single transformation event. The level of PHB produced was 4-fold greater than previously published values, thus demonstrating
the large potential of plants to produce this renewable resource. However, the high levels of the polymer produced had severe
effects on both plant development and metabolism. Stunted growth and a loss of fertility were observed in the high-producing
lines. Analysis of the metabolite composition of these lines using a GC-MS method that we have newly developed showed that
the accumulation of high levels of PHB was not accompanied by an appreciable change in either the composition or the amount
of fatty acids. Substantial changes were, however, observed in the levels of various organic acids, amino acids, sugars and
sugar alcohols.
Received: 2 February 2000 / Accepted: 31 March 2000 相似文献
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Kopka J 《Journal of biotechnology》2006,124(1):312-322
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Proposed minimum reporting standards for chemical analysis 总被引:4,自引:0,他引:4
Lloyd W. Sumner Alexander Amberg Dave Barrett Michael H. Beale Richard Beger Clare A. Daykin Teresa W.-M. Fan Oliver Fiehn Royston Goodacre Julian L. Griffin Thomas Hankemeier Nigel Hardy James Harnly Richard Higashi Joachim Kopka Andrew N. Lane John C. Lindon Philip Marriott Andrew W. Nicholls Michael D. Reily John J. Thaden Mark R. Viant 《Metabolomics : Official journal of the Metabolomic Society》2007,3(3):211-221
There is a general consensus that supports the need for standardized reporting of metadata or information describing large-scale
metabolomics and other functional genomics data sets. Reporting of standard metadata provides a biological and empirical context
for the data, facilitates experimental replication, and enables the re-interrogation and comparison of data by others. Accordingly,
the Metabolomics Standards Initiative is building a general consensus concerning the minimum reporting standards for metabolomics
experiments of which the Chemical Analysis Working Group (CAWG) is a member of this community effort. This article proposes
the minimum reporting standards related to the chemical analysis aspects of metabolomics experiments including: sample preparation,
experimental analysis, quality control, metabolite identification, and data pre-processing. These minimum standards currently
focus mostly upon mass spectrometry and nuclear magnetic resonance spectroscopy due to the popularity of these techniques
in metabolomics. However, additional input concerning other techniques is welcomed and can be provided via the CAWG on-line
discussion forum at or . Further, community input related to this document can also be provided via this electronic forum.
The contents of this paper do not necessarily reflect any position of the Government or the opinion of the Food and Drug Administration
Sponsor: Metabolomics Society http://www.metabolomicssociety.org/
Reference: http://msi-workgroups.sourceforge.net/bio-metadata/reporting/pbc/
http://msi-workgroups.sourceforge.net/chemical-analysis/
Version: Revision: 5.1
Date: 09 January, 2007 相似文献
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Hoehenwarter W van Dongen JT Wienkoop S Steinfath M Hummel J Erban A Sulpice R Regierer B Kopka J Geigenberger P Weckwerth W 《Proteomics》2008,8(20):4214-4225
The dynamics of a proteome can only be addressed with large-scale, high-throughput methods. To cope with the inherent complexity, techniques based on targeted quantification using proteotypic peptides are arising. This is an essential systems biology approach; however, for the exploratory discovery of unexpected markers, nontargeted detection of proteins, and protein modifications is indispensable. We present a rapid label-free shotgun proteomics approach that extracts relevant phenotype-specific peptide product ion spectra in an automated workflow without prior identification. These product ion spectra are subsequently sequenced with database search and de novo prediction algorithms. We analyzed six potato tuber cultivars grown on three plots of two geographically separated fields in Germany. For data mining about 1.5 million spectra from 107 analyses were aligned and statistically examined in approximately 1 day. Several cultivar-specific protein markers were detected. Based on de novo-sequencing a dominant protein polymorphism not detectable in the available EST-databases was assigned exclusively to a specific potato cultivar. The approach is applicable to organisms with unsequenced or incomplete genomes and to the automated extraction of relevant mass spectra that potentially cannot be identified by genome/EST-based search algorithms. 相似文献