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TIM23-mediated insertion of transmembrane alpha-helices into the mitochondrial inner membrane
(2011)
While overall hydrophobicity is generally recognized as the main characteristic of transmembrane (TM) alpha-helices, the only membrane system for which there are detailed quantitative data on how different amino acids contribute to the overall efficiency of membrane insertion is the endoplasmic reticulum (ER) of eukaryotic cells. Here, we provide comparable data for TIM23-mediated membrane protein insertion into the inner mitochondrial membrane of yeast cells. We find that hydrophobicity and the location of polar and aromatic residues are strong determinants of membrane insertion. These results parallel what has been found previously for the ER. However, we see striking differences between the effects elicited by charged residues flanking the TM segments when comparing the mitochondrial inner membrane and the ER, pointing to an unanticipated difference between the two insertion systems. Keywords: CoxVa , membrane protein , Mgm1p , mitochondria , TIM23
G-quadruplex topologies of telomeric repeat sequences from vertebrates were investigated in the presence of molecular crowding (MC) mimetics, namely polyethylene glycol 200 (PEG), Ficoll 70 as well as Xenopus laevis egg extract by CD and NMR spectroscopy and native PAGE. Here, we show that the conformational behavior of the telomeric repeats in X. laevis egg extract or in Ficoll is notably different from that observed in the presence of PEG. While the behavior of the telomeric repeat in X. laevis egg extract or in Ficoll resembles results obtained under dilute conditions, PEG promotes the formation of high-order parallel topologies. Our data suggest that PEG should not be used as a MC mimetic.
In dieser Arbeit wurden zwei Schlüsselenzyme des Energiestoffwechsels in Archaeen im Hinblick auf ihre funktionellen, spektroskopischen und strukturellen Eigenschaften untersucht. Die Heterodisulfid-Reduktase (Hdr) katalysiert die Reduktion des terminalen Elektronenakzeptors CoM-S-S-CoB zu CoM-SH (Coenzym M) und CoB-SH (Coenzym B) und spielt eine Schlüsselrolle im zentralen Energie-konservierenden Prozess von methanogenen Archaeen. Hdr existiert in Form von zwei unterschiedlichen Enzymen: HdrDE und HdrABC. Beide weisen ein charakteristisches Cystein-reiches Sequenzmotiv (CCG-Domäne) auf, welches als Bindestelle für ein ungewöhliches [4Fe-4S]-Zentrum dient. Frühere Studien zeigten, dass das [4Fe-4S]-Zentrum in der Untereinheit HdrB lokalisiert ist und als zentraler Bestandteil des aktiven Zentrums die Fähigkeit besitzt, ein Thiyl-Radikal zu binden. Darauf aufbauend wurden genetische, spektroskopische und strukturelle Untersuchungen überwiegend am H2:Heterodisulfid-Oxidoreduktase-Komplex (Mvh:Hdr) aus Methanothermobacter marburgensis oder an der heterolog produzierten Untereinheit HdrB durchgeführt. Das Reinigungsprotokoll des Mvh:Hdr-Komplexes wurde für Kristallisationsexperimente und für ENDOR- und Mössbauer-spektroskopische Studien optimiert. Eine Kristallisation des Mvh:Hdr-Komplexes gelang nicht; doch konnten Kristalle der Heterodisulfid-Reduktase-assoziierten Hydrogenase (Mvh) bis zu einer Auflösung von 3.34 Å vermessen und mit Hilfe der anomalen Information der Elektronentransferweg zwischen den [Fe-S]-Clustern definiert werden. Ergänzende elektronenmikroskopische Studien zeigten einen unsymmetrischen Aufbau des Komplexes. DesWeiteren wurde die Untereinheit HdrB aus M. marburgensis in Methanosarcina acetivorans heterolog produziert und seine Funktionalität kinetisch und spektroskopisch nachgewiesen. Ferner wurde HdrB in Escherichia coli heterolog produziert und gereinigt, um Kristallisationsexperimente durchzuführen und es für ENDOR- und Mössbauer-Studien verfügbar zu machen. Um HdrB spektroskopisch zu vergleichen, wurde eine Untereinheit der Succinat:Chinon Oxidoreduktase (SdhE) aus Sulfolobus solfataricus ebenfalls heterolog in E. coli produziert und mittels ENDOR-Spektroskopie charakterisiert. Ein grundlegender Prozess des biogeochemischen Schwefelkreislaufes ist die dissimilatorische Sulfat-Reduktion, in der Sulfat (SO4 2􀀀) zu Schwefelwasserstoff (H2S) umgewandelt wird. Die dissimilatorische Sulfit-Reduktase (dSir), das Schlüsselenzym im Energiestoffwechsel der Sulfat-Reduzierer, besitzt einen einzigartigen Sirohäm-[4Fe-4S]-Cofaktor, der die Reduktion von Sulfit (SO3 2􀀀) zu H2S in einem 6-Elektronen-Schritt katalysiert. Um diesen Mechanismus zu untersuchen, wurden kinetische, spektroskopische und röntxi Zusammenfassung genkristallographische Methoden angewandt. Die Kristallstrukturen von dSir aus Archaeoglobus fulgidus wurden im Komplex mit Sulfit, Sulfid (S2􀀀), Kohlenmonoxid (CO), Cyanid (CN􀀀), Nitrit (NO2􀀀), Nitrat (NO3 􀀀) und Phosphat (PO4 3􀀀) gelöst. Aktivitätstest und analytische Studien zeigten, dass dSir von A. fulgidus neben Sulfit und Nitrit auch Thiosulfat und Trithionat reduziert und Letztere auch als Intermediate entstehen. Auf dieser Basis wurde ein 3-Stufen-Mechanismus postuliert, wobei jede Stufe aus einem 2-Elektronentransfer, einer Aufnahme von zwei Protonen und einer Dehydrationsreaktion besteht. Im Vergleich zur assimilatorischen Sulfit-Reduktase (aSir) aus E. coli zeigt die dSir-Struktur einen veränderten Substratkanal, eine Rotation des Sulfits um 60° und beträchtliche Konformationsänderungen der katalytischen Reste Arga170 und Lysa211. Aufgrund dieser Änderungen kann ausschließlich in dSir ein weiteres Sulfit-Molekül in van-der-Waals-Kontakt zum an das Sirohäm-gebundene Sulfit oder Schwefel-Sauerstoff-Zwischenprodukt platziert werden, das nötig ist, um Thiosulfat und Trithionat zu synthetisieren.
Background: The interferon-inducible immunity-related GTPases (IRG proteins/p47 GTPases) are a distinctive family of GTPases that function as powerful cell-autonomous resistance factors. The IRG protein, Irga6 (IIGP1), participates in the disruption of the vacuolar membrane surrounding the intracellular parasite, Toxoplasma gondii, through which it communicates with its cellular hosts. Some aspects of the protein's behaviour have suggested a dynamin-like molecular mode of action, in that the energy released by GTP hydrolysis is transduced into mechanical work that results in deformation and ultimately rupture of the vacuolar membrane. Results: Irga6 forms GTP-dependent oligomers in vitro and thereby activates hydrolysis of the GTP substrate. In this study we define the catalytic G-domain interface by mutagenesis and present a structural model, of how GTP hydrolysis is activated in Irga6 complexes, based on the substrate-twinning reaction mechanism of the signal recognition particle (SRP) and its receptor (SRalpha). In conformity with this model, we show that the bound nucleotide is part of the catalytic interface and that the 3'hydroxyl of the GTP ribose bound to each subunit is essential for trans-activation of hydrolysis of the GTP bound to the other subunit. We show that both positive and negative regulatory interactions between IRG proteins occur via the catalytic interface. Furthermore, mutations that disrupt the catalytic interface also prevent Irga6 from accumulating on the parasitophorous vacuole membrane of T. gondii, showing that GTP-dependent Irga6 activation is an essential component of the resistance mechanism. Conclusions: The catalytic interface of Irga6 defined in the present experiments can probably be used as a paradigm for the nucleotide-dependent interactions of all members of the large family of IRG GTPases, both activating and regulatory. Understanding the activation mechanism of Irga6 will help to explain the mechanism by which IRG proteins exercise their resistance function. We find no support from sequence or G-domain structure for the idea that IRG proteins and the SRP GTPases have a common phylogenetic origin. It therefore seems probable, if surprising, that the substrate-assisted catalytic mechanism has been independently evolved in the two protein families.
Background: The combination of high-throughput transcript profiling and next-generation sequencing technologies is a prerequisite for genome-wide comprehensive transcriptome analysis. Our recent innovation of deepSuperSAGE is based on an advanced SuperSAGE protocol and its combination with massively parallel pyrosequencing on Roche's 454 sequencing platform. As a demonstration of the power of this combination, we have chosen the salt stress transcriptomes of roots and nodules of the third most important legume crop chickpea (Cicer arietinum L.). While our report is more technology-oriented, it nevertheless addresses a major world-wide problem for crops generally: high salinity. Together with low temperatures and water stress, high salinity is responsible for crop losses of millions of tons of various legume (and other) crops. Continuously deteriorating environmental conditions will combine with salinity stress to further compromise crop yields. As a good example for such stress-exposed crop plants, we started to characterize salt stress responses of chickpeas on the transcriptome level. Results: We used deepSuperSAGE to detect early global transcriptome changes in salt-stressed chickpea. The salt stress responses of 86,919 transcripts representing 17,918 unique 26bp deepSuperSAGE tags (UniTags) from roots of the salt-tolerant variety INRAT-93 two hours after treatment with 25 mM NaCl were characterized. Additionally, the expression of 57,281 transcripts representing 13,115 UniTags was monitored in nodules of the same plants. From a total of 144,200 analyzed 26bp tags in roots and nodules together, 21,401 unique transcripts were identified. Of these, only 363 and 106 specific transcripts, respectively, were commonly up- or down-regulated (>3.0-fold) under salt stress in both organs, witnessing a differential organ-specific response to stress. Profiting from recent pioneer works on massive cDNA sequencing in chickpea, more than 9,400 UniTags were able to be linked to UniProt entries. Additionally, gene ontology (GO) categories over-representation analysis enabled to filter out enriched biological processes among the differentially expressed UniTags. Subsequently, the gathered information was further cross-checked with stress-related pathways. From several filtered pathways, here we focus exemplarily on transcripts associated with the generation and scavenging of reactive oxygen species (ROS), as well as on transcripts involved in Na+ homeostasis. Although both processes are already very well characterized in other plants, the information generated in the present work is of high value. Information on expression profiles and sequence similarity for several hundreds of transcripts of potential interest is now available. Conclusions: This report demonstrates, that the combination of the high-throughput transcriptome profiling technology SuperSAGE with one of the next-generation sequencing platforms allows deep insights into the first molecular reactions of a plant exposed to salinity. Cross validation with recent reports enriched the information about the salt stress dynamics of more than 9,000 chickpea ESTs, and enlarged their pool of alternative transcripts isoforms. As an example for the high resolution of the employed technology that we coin deepSuperSAGE, we demonstrate that ROS-scavenging and -generating pathways undergo strong global transcriptome changes in chickpea roots and nodules already 2 hours after onset of moderate salt stress (25mM NaCl). Additionally, a set of more than 15 candidate transcripts are proposed to be potential components of the salt overly sensitive (SOS) pathway in chickpea. Newly identified transcript isoforms are potential targets for breeding novel cultivars with high salinity tolerance. We demonstrate that these targets can be integrated into breeding schemes by micro-arrays and RT-PCR assays downstream of the generation of 26bp tags by SuperSAGE.