@article{ZhaoZhangBhuripanyoetal.2013, author = {Zhao, Bo and Zhang, Keya and Bhuripanyo, Karan and Choi, Chan Hee J. and Villhauer, Eric B. and Li, Heng and Zheng, Ning and Kiyokawa, Hiroaki and Schindelin, Hermann and Yin, Jun}, title = {Profiling the Cross Reactivity of Ubiquitin with the Nedd8 Activating Enzyme by Phage Display}, series = {PLoS ONE}, volume = {8}, journal = {PLoS ONE}, number = {e70312}, issn = {1932-6203}, doi = {10.1371/journal.pone.0070312}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-128479}, year = {2013}, abstract = {The C-terminal peptides of ubiquitin (UB) and UB-like proteins (UBLs) play a key role in their recognition by the specific activating enzymes (E1s) to launch their transfer through the respective enzymatic cascades thus modifying cellular proteins. UB and Nedd8, a UBL regulating the activity of cullin-RING UB ligases, only differ by one residue at their C-termini; yet each has its specific E1 for the activation reaction. It has been reported recently that UAE can cross react with Nedd8 to enable its passage through the UB transfer cascade for protein neddylation. To elucidate differences in UB recognition by UAE and NAE, we carried out phage selection of a UB library with randomized C-terminal sequences based on the catalytic formation of UB similar to NAE thioester conjugates. Our results confirmed the previous finding that residue 72 of UB plays a "gate-keeping" role in E1 selectivity. We also found that diverse sequences flanking residue 72 at the UB C-terminus can be accommodated by NAE for activation. Furthermore heptameric peptides derived from the C-terminal sequences of UB variants selected for NAE activation can function as mimics of Nedd8 to form thioester conjugates with NAE and the downstream E2 enzyme Ubc12 in the Nedd8 transfer cascade. Once the peptides are charged onto the cascade enzymes, the full-length Nedd8 protein is effectively blocked from passing through the cascade for the critical modification of cullin. We have thus identified a new class of inhibitors of protein neddylation based on the profiles of the UB C-terminal sequences recognized by NAE.}, language = {en} } @article{KochCappelNockeretal.2013, author = {Koch, Oliver and Cappel, Daniel and Nocker, Monika and J{\"a}ger, Timo and Floh{\´e}, Leopold and Sotriffer, Christoph A. and Selzer, Paul M.}, title = {Molecular Dynamics Reveal Binding Mode of Glutathionylspermidine by Trypanothione Synthetase}, series = {PLoS ONE}, volume = {8}, journal = {PLoS ONE}, number = {2}, doi = {10.1371/journal.pone.0056788}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-131070}, pages = {e56788}, year = {2013}, abstract = {The trypanothione synthetase (TryS) catalyses the two-step biosynthesis of trypanothione from spermidine and glutathione and is an attractive new drug target for the development of trypanocidal and antileishmanial drugs, especially since the structural information of TryS from Leishmania major has become available. Unfortunately, the TryS structure was solved without any of the substrates and lacks loop regions that are mechanistically important. This contribution describes docking and molecular dynamics simulations that led to further insights into trypanothione biosynthesis and, in particular, explains the binding modes of substrates for the second catalytic step. The structural model essentially confirm previously proposed binding sites for glutathione, ATP and two \(Mg^{2+}\) ions, which appear identical for both catalytic steps. The analysis of an unsolved loop region near the proposed spermidine binding site revealed a new pocket that was demonstrated to bind glutathionylspermidine in an inverted orientation. For the second step of trypanothione synthesis glutathionylspermidine is bound in a way that preferentially allows \(N^1\)-glutathionylation of \(N^8\)-glutathionylspermidine, classifying \(N^8\)-glutathionylspermidine as the favoured substrate. By inhibitor docking, the binding site for \(N^8\)-glutathionylspermidine was characterised as druggable.}, language = {en} } @article{BeissSpiegelBoesetal.2015, author = {Beiss, Veronique and Spiegel, Holger and Boes, Alexander and Scheuermayer, Matthias and Reimann, Andreas and Schillberg, Stefan and Fischer, Rainer}, title = {Plant expression and characterization of the transmission-blocking vaccine candidate PfGAP50}, series = {BMC Biotechnology}, volume = {15}, journal = {BMC Biotechnology}, number = {108}, doi = {10.1186/s12896-015-0225-x}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-137327}, year = {2015}, abstract = {Background: Despite the limited success after decades of intensive research and development efforts, vaccination still represents the most promising strategy to significantly reduce the disease burden in malaria endemic regions. Besides the ultimate goal of inducing sterile protection in vaccinated individuals, the prevention of transmission by so-called transmission blocking vaccines (TBVs) is being regarded as an important feature of an efficient malaria eradication strategy. Recently, Plasmodium falciparum GAP50 (PfGAP50), a 44.6 kDa transmembrane protein that forms an essential part of the invasion machinery (glideosome) multi-protein complex, has been proposed as novel potential transmission-blocking candidate. Plant-based expression systems combine the advantages of eukaryotic expression with a up-scaling potential and a good product safety profile suitable for vaccine production. In this study we investigated the feasibility to use the transient plant expression to produce PfGAP50 suitable for the induction of parasite specific inhibitory antibodies. Results: We performed the transient expression of recombinant PfGAP50 in Nicotiana benthamiana leaves using endoplasmatic reticulum (ER) and plastid targeting. After IMAC-purification the protein yield and integrity was investigated by SDS-PAGE and Western Blot. Rabbit immune IgG derived by the immunization with the plastidtargeted variant of PfGAP50 was analyzed by immune fluorescence assay (IFA) and zygote inhibition assay (ZIA). PfGAP50 could be produced in both subcellular compartments at different yields IMAC (Immobilized Metal Affinity Chromatography) purification from extract yielded up to 4.1 mu g/g recombinant protein per fresh leaf material for ER-retarded and 16.2 mu g/g recombinant protein per fresh leave material for plasmid targeted PfGAP50, respectively. IgG from rabbit sera generated by immunization with the recombinant protein specifically recognized different parasite stages in immunofluorescence assay. Furthermore up to 55 \% inhibition in an in vitro zygote inhibition assay could be achieved using PfGAP50-specific rabbit immune IgG. Conclusions: The results of this study demonstrate that the plant-produced PfGAP50 is functional regarding the presentation of inhibitory epitopes and could be considered as component of a transmission-blocking malaria vaccine formulation.}, language = {en} } @phdthesis{Albers2000, author = {Albers, Christine}, title = {Reinigung und Charakterisierung der alpha-Methylacyl-CoA-Racemase aus menschlicher Leber}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-770}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2000}, abstract = {Im Katabolismus methylverzweigter Fetts{\"a}uren spielt die alpha-Methylacyl-CoA-Racemase eine wichtige Rolle, indem sie die (R)- und (S)-Isomere von alpha-methylverzweigten Fetts{\"a}uren als Coenzym A Thioester racemisiert. Methylverzweigte Fetts{\"a}uren entstehen beim Abbau von Isoprenoiden und werden dar{\"u}ber hinaus auch von vielen Organismen, wie z.B. Mycobakterien, synthetisiert. Die Hauptaufgabe der Racemase ist aber vermutlich in der Biosynthese von Gallens{\"a}uren 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 Fetts{\"a}uren und der Gallens{\"a}urebiosynthese zu untersuchen. Die alpha-Methylacyl-CoA-Racemase wurde aus humanem Gewebe zur Homogenit{\"a}t gereinigt, umfassend biochemisch charakterisiert und zur genauen molekularbiologischen Analyse in E.coli kloniert. Die Aktivit{\"a}t 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 Aminos{\"a}uren. Als Substrate akzeptiert das Enzym ein breites Spektrum von alpha-Methylacyl-CoAs. Neben den Coenzym A-Thioestern alpha-methylverzweigter Fetts{\"a}uren, wie Pristans{\"a}ure, werden auch CoA-Ester von Steroidderivaten, z.B. des Gallens{\"a}ureintermediats Trihydroxycoprostans{\"a}ure, und aromatischen Phenylpropions{\"a}uren, wie dem Analgetikum Ibuprofen, umgesetzt. Freie Fetts{\"a}uren, 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 vollst{\"a}ndige cDNA-Sequenz der humanen a-Methylacyl-CoA-Racemase hat eine Gesamtl{\"a}nge 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 S{\"a}ugetierkatalasen entspricht. Aufgrund alternativer Polyadenylierung sind in allen untersuchten menschlichen Geweben Transkripte von 1,6 kb bzw. 2,0 kb zu finden. Es liegt keine gewebsabh{\"a}ngige 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).}, subject = {Alpha-Methylacyl-CoA racemase}, language = {de} }