TY - THES A1 - Albers, Christine T1 - Reinigung und Charakterisierung der alpha-Methylacyl-CoA-Racemase aus menschlicher Leber T1 - Purification and characterisation of alpha-Methylacyl-CoA-Racemase from human liver N2 - Im Katabolismus methylverzweigter Fettsäuren spielt die alpha-Methylacyl-CoA-Racemase eine wichtige Rolle, indem sie die (R)- und (S)-Isomere von alpha-methylverzweigten Fettsäuren als Coenzym A Thioester racemisiert. Methylverzweigte Fettsäuren entstehen beim Abbau von Isoprenoiden und werden darüber hinaus auch von vielen Organismen, wie z.B. Mycobakterien, synthetisiert. Die Hauptaufgabe der Racemase ist aber vermutlich in der Biosynthese von Gallensäuren zu sehen. Das Ziel der vorliegenden Arbeit war es, die alpha-Methylacyl-CoA-Racemase aus humanem Gewebe zu reinigen und zu charakterisieren sowie ihre physiologische Rolle im Katabolismus verzweigtkettiger Fettsäuren und der Gallensäurebiosynthese zu untersuchen. Die alpha-Methylacyl-CoA-Racemase wurde aus humanem Gewebe zur Homogenität gereinigt, umfassend biochemisch charakterisiert und zur genauen molekularbiologischen Analyse in E.coli kloniert. Die Aktivität der Racemase wurde anhand der [³H]H2O-Freisetzung aus [alpha-³H]-a-Methylacyl-CoAs bestimmt. Die humane Racemase ist in der aktiven Form ein monomeres Protein und besteht aus 382 Aminosäuren. Als Substrate akzeptiert das Enzym ein breites Spektrum von alpha-Methylacyl-CoAs. Neben den Coenzym A-Thioestern alpha-methylverzweigter Fettsäuren, wie Pristansäure, werden auch CoA-Ester von Steroidderivaten, z.B. des Gallensäureintermediats Trihydroxycoprostansäure, und aromatischen Phenylpropionsäuren, wie dem Analgetikum Ibuprofen, umgesetzt. Freie Fettsäuren, geradkettige oder beta-methylverzweigte Acyl-CoAs werden nicht racemisiert. Die alpha-Methylacyl-CoA-Racemase ist im Menschen zu ca. 80 Prozent auf die Peroxisomen und ca. 20 Prozent auf die Mitochondrien verteilt, wobei entsprechende peroxisomale (PTS 1) und mitochondriale (MTS) Transportsignale die Lokalisation bestimmen. Die vollständige cDNA-Sequenz der humanen a-Methylacyl-CoA-Racemase hat eine Gesamtlänge von 2039 Basenpaaren mit einem offenen Leseraster von 89 - 1237 bp. Das Startcodon ATG ist in eine klassische Kozak-Sequenz zum Translationsstart eingebettet. Die Protein endet am C-Terminus mit dem Sequenzmotiv –KASL, das dem peroxisomalen Transportsignal (PTS I) einiger Säugetierkatalasen entspricht. Aufgrund alternativer Polyadenylierung sind in allen untersuchten menschlichen Geweben Transkripte von 1,6 kb bzw. 2,0 kb zu finden. Es liegt keine gewebsabhängige Polyadenylierung vor, die Racemase wird aber gewebsspezifisch exprimiert (besonders stark in Leber und Niere). Das humane Racemasegen liegt auf dem kurzen Arm des Chromosoms 5 nahe am Centromer (5p1.3), im Intervall von D5S651 (46,6 cM) und D5S634 (59.9 cM). N2 - Racemization is an essential step for bile acid synthesis and it is important for degradation of alpha-methyl branched-chain fatty acids. The (R)- and (S)-isomers of alpha-methyl-branched chain fatty acids were shown to be interconverted as coenzyme A thioesters by an alpha-methylacyl-CoA racemase. Various branched-chain fatty acids arise in the catabolism of isoprenoids and are also synthesized by a variety of organisms, particularly mycobacteria. The aim of this work was to purify and to characterize the racemase from human tissue and to analyse the physiological role in the degradation of branched-chain fatty acids and the bile acid synthesis. The alpha-methylacyl-CoA racemase was purified from human liver to apparent homogeneity. The enzyme was exhaustively characterized by methods of biochemistry and protein chemistry. The cDNA coding for human racemase was cloned in E. coli and sequenced. A radiometric assay with 2-methyl[2-³H]acyl-CoAs as substrates was used routinely for monitoring purification procedure. The active form of the enzyme is a monomeric protein comprising 382 amino acids. The enzyme accepts a wide range of alpha-methylacyl-CoAs, including pristanoyl-CoA, trihydroxycoprostanoyl-CoA (an intermediate in bile acid synthesis) as substrates. Also arylpropionyl-CoAs such as the anti-inflammatory drug ibuprofen are accepted, but neither free fatty acids, beta-methyl-branched nor linear-chain acyl-CoAs. In human tissues 80 - 90 Prozent of the racemase activity is found in peroxisomes and 10 - 20 Prozent in mitochondria. Degradation of branched chain fatty acids is located in both compartments, so the enzyme has to be distributed between peroxisomes and mitochondria. No evidence was found for the existence of isoenzymes or different transcription products. It appears that only one mRNA is transcribed from one gene and that also only one protein is synthesized. The different recognition of peroxisomal (PTS 1) and mitochondrial targeting signals (MTS) may determine the subcellular distribution. The complete cDNA sequence has an overall length of 2039 base pairs, with a open reading frame between 89 - 1237 bp. The ATG start codon is embedded in a classical Kozak sequence for translation start. The C-Terminus of the protein is –KASL, which is very similar to the peroxisomal targeting signals (PTS 1) of many mammalian catalases. In all human tissues analysed in this work two different transcripts of racemase with sizes of 1,6 kb and 2,0 kb have been found and show alternate polyadenylation. Polyadenylation of racemase is not tissue-dependent but its expression is tissue-specific (strong activity is found in liver and kidney). The human racemase gene is localized on the short arm of chromosome 5, near the centromer (region 5p1.3) and between the markers D5S651 (46,6 cM) and D5S634 (59.9 cM). KW - Alpha-Methylacyl-CoA racemase KW - Mensch KW - Leber KW - Molekularbiologie KW - Racemase KW - human KW - Enzym KW - Reinigung KW - Charakterisierung KW - Peroxisom KW - alpha-Methylacyl-CoA KW - Racemase KW - human KW - enzyme KW - purification KW - characterisation KW - peroxisome KW - alpha-Methylacyl-CoA Y1 - 2000 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-770 ER - TY - JOUR A1 - Lorenzin, Francesca A1 - Benary, Uwe A1 - Baluapuri, Apoorva A1 - Walz, Susanne A1 - Jung, Lisa Anna A1 - von Eyss, Björn A1 - Kisker, Caroline A1 - Wolf, Jana A1 - Eilers, Martin A1 - Wolf, Elmar T1 - Different promoter affinities account for specificity in MYC-dependent gene regulation JF - eLife N2 - Enhanced expression of the MYC transcription factor is observed in the majority of tumors. Two seemingly conflicting models have been proposed for its function: one proposes that MYC enhances expression of all genes, while the other model suggests gene-specific regulation. Here, we have explored the hypothesis that specific gene expression profiles arise since promoters differ in affinity for MYC and high-affinity promoters are fully occupied by physiological levels of MYC. We determined cellular MYC levels and used RNA- and ChIP-sequencing to correlate promoter occupancy with gene expression at different concentrations of MYC. Mathematical modeling showed that binding affinities for interactions of MYC with DNA and with core promoter-bound factors, such as WDR5, are sufficient to explain promoter occupancies observed in vivo. Importantly, promoter affinity stratifies different biological processes that are regulated by MYC, explaining why tumor-specific MYC levels induce specific gene expression programs and alter defined biological properties of cells. KW - MYC KW - promoter affinity KW - human KW - mathematical modeling KW - mouse KW - ChIP-sequencing KW - MIZ1 KW - cancer biology KW - cell biology KW - WDR5 Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-162913 VL - 5 ER - TY - JOUR A1 - Balkenhol, Johannes A1 - Kaltdorf, Kristin V. A1 - Mammadova-Bach, Elmina A1 - Braun, Attila A1 - Nieswandt, Bernhard A1 - Dittrich, Marcus A1 - Dandekar, Thomas T1 - Comparison of the central human and mouse platelet signaling cascade by systems biological analysis JF - BMC Genomics N2 - Background Understanding the molecular mechanisms of platelet activation and aggregation is of high interest for basic and clinical hemostasis and thrombosis research. The central platelet protein interaction network is involved in major responses to exogenous factors. This is defined by systemsbiological pathway analysis as the central regulating signaling cascade of platelets (CC). Results The CC is systematically compared here between mouse and human and major differences were found. Genetic differences were analysed comparing orthologous human and mouse genes. We next analyzed different expression levels of mRNAs. Considering 4 mouse and 7 human high-quality proteome data sets, we identified then those major mRNA expression differences (81%) which were supported by proteome data. CC is conserved regarding genetic completeness, but we observed major differences in mRNA and protein levels between both species. Looking at central interactors, human PLCB2, MMP9, BDNF, ITPR3 and SLC25A6 (always Entrez notation) show absence in all murine datasets. CC interactors GNG12, PRKCE and ADCY9 occur only in mice. Looking at the common proteins, TLN1, CALM3, PRKCB, APP, SOD2 and TIMP1 are higher abundant in human, whereas RASGRP2, ITGB2, MYL9, EIF4EBP1, ADAM17, ARRB2, CD9 and ZYX are higher abundant in mouse. Pivotal kinase SRC shows different regulation on mRNA and protein level as well as ADP receptor P2RY12. Conclusions Our results highlight species-specific differences in platelet signaling and points of specific fine-tuning in human platelets as well as murine-specific signaling differences. KW - interspecies comparison KW - transcriptome KW - proteome KW - platelet KW - network KW - signaling KW - mouse KW - human KW - interactome KW - cascade Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230377 VL - 21 ER -