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Institute
Nitrate is an abundant nutrient and electron acceptor throughout Earth’s biosphere. Virtually all nitrate in nature is produced by the oxidation of nitrite by the nitrite oxidoreductase (NXR) multiprotein complex. NXR is a crucial enzyme in the global biological nitrogen cycle, and is found in nitrite-oxidizing bacteria (including comammox organisms), which generate the bulk of the nitrate in the environment, and in anaerobic ammonium-oxidizing (anammox) bacteria which produce half of the dinitrogen gas in our atmosphere. However, despite its central role in biology and decades of intense study, no structural information on NXR is available. Here, we present a structural and biochemical analysis of the NXR from the anammox bacterium Kuenenia stuttgartiensis, integrating X-ray crystallography, cryo-electron tomography, helical reconstruction cryo-electron microscopy, interaction and reconstitution studies and enzyme kinetics. We find that NXR catalyses both nitrite oxidation and nitrate reduction, and show that in the cell, NXR is arranged in tubules several hundred nanometres long. We reveal the tubule architecture and show that tubule formation is induced by a previously unidentified, haem-containing subunit, NXR-T. The results also reveal unexpected features in the active site of the enzyme, an unusual cofactor coordination in the protein’s electron transport chain, and elucidate the electron transfer pathways within the complex.
Background: Breast cancer is the leading cause of cancer-related deaths in women, demanding new treatment options. With the advent of immune checkpoint blockade, immunotherapy emerged as a treatment option. In addition to lymphocytes, tumor-associated macrophages exert a significant, albeit controversial, impact on tumor development. Pro-inflammatory macrophages are thought to hinder, whereas anti-inflammatory macrophages promote tumor growth. However, molecular markers to identify prognostic macrophage populations remain elusive. Methods: We isolated two macrophage subsets, from 48 primary human breast tumors, distinguished by the expression of CD206. Their transcriptomes were analyzed via RNA-Seq, and potential prognostic macrophage markers were validated by PhenOptics in tissue microarrays of patients with invasive breast cancer. Results: Normal human breast tissue contained mainly CD206+ macrophages, while increased relative amounts of CD206− macrophages were observed in tumors. The presence of CD206+ macrophages correlated with a pronounced lymphocyte infiltrate and subsets of CD206+ macrophages, expressing SERPINH1 and collagen 1, or MORC4, were unexpectedly associated with improved survival of breast cancer patients. In contrast, MHCIIhi CD206− macrophages were linked with a poor survival prognosis. Conclusion: Our data highlight the heterogeneity of tumor-infiltrating macrophages and suggest the use of multiple phenotypic markers to predict the impact of macrophage subpopulations on cancer prognosis. We identified novel macrophage markers that correlate with the survival of patients with invasive mammary carcinoma.
Redirection of miRNA‐argonaute complexes to specific target sites by synthetic adaptor molecules
(2020)
Dysregulation of miRNAs is connected with a multitude of diseases for which antagomirs and miRNA replacement are discussed as therapeutic options. Here, we suggest an alternative concept based on the redirection of RISCs to non‐native target sites. Metabolically stable DNA‐LNA mixmers are used to mediate the binding of RISCs to mRNAs without any direct base complementarity to the presented guide RNA strand. Physical redirection of a dye‐labeled miRNA model and of specific miRNA‐programmed RISC fractions present in HeLa extracts is demonstrated by pull‐down experiments with biotinylated capture oligonucleotides.
Der Erfolg einer nationalen Forschungsdateninfrastruktur hängt von der Einbindung der gesamten Wissenschaftsgemeinschaft und -infrastruktur ab. In zahlreichen Bundesländern existieren Landesinitiativen für Forschungsdatenmanagement oder ähnliche Einrichtungen, die dazu beitragen können, diese Einbindung zu erreichen. Das gemeinsame Papier von Vertretern aus verschiedenen Bundesländern argumentiert, dass eine enge Verknüpfung der Landesinitiativen mit dem NFDI e.V. erfolgen sollte, um die Potentiale der Zusammenarbeit zu nutzen.
Der NFDI e. V. wird einen bedeutsamen Beitrag für einen besseren Umgang mit Forschungsdaten leisten, doch der Erfolg der nationalen Forschungsdateninfrastruktur ist letztlich von einer Einbindung der gesamten Wissenschaftsgemeinschaft und -infrastruktur abhängig. Die vielfältigen Forschungseinrichtungen einzubinden, erfordert Koordination auf vielen Ebenen. Speziell Hochschulen haben eine tragende Rolle für sowohl disziplinäre und interdisziplinäre Forschung als auch wissenschaftliche Ausbildung in Deutschland und sind damit zentrale Akteure für die fachübergreifende Forschungsdateninfrastruktur. Durch die Förderung von Kooperationen und Koordination auf Ebene von Ländern oder Länderverbünden lässt sich die Entwicklung der nationalen Forschungsdateninfrastruktur unterstützen. Landesinitiativen für Forschungsdatenmanagement (FDM) oder ähnliche koordinierende Einrichtungen können die digitale Transformation in der Forschung durch Information, den Aufbau von Kooperationen und die Qualifikation von Personal unterstützen. Ihre Einrichtung, dauerhafte Etablierung und Einbeziehung in die Arbeit des NFDI e. V. ist ein wichtiger Beitrag zur Schaffung einer nationalen Forschungsdateninfrastruktur.
To compare the development of the auditory system in hearing and completely acoustically deprived animals, naive congenitally deaf white cats (CDCs) and hearing controls (HCs) were investigated at different developmental stages from birth till adulthood. The CDCs had no hearing experience before the acute experiment. In both groups of animals, responses to cochlear implant stimulation were acutely assessed. Electrically evoked auditory brainstem responses (E-ABRs) were recorded with monopolar stimulation at different current levels. CDCs demonstrated extensive development of E-ABRs, from first signs of responses at postnatal (p.n.) day 3 through appearance of all waves of brainstem response at day 8 p.n. to mature responses around day 90 p.n.. Wave I of E-ABRs could not be distinguished from the artifact in majority of CDCs, whereas in HCs, it was clearly separated from the stimulus artifact. Waves II, III, and IV demonstrated higher thresholds in CDCs, whereas this difference was not found for wave V. Amplitudes of wave III were significantly higher in HCs, whereas wave V amplitudes were significantly higher in CDCs. No differences in latencies were observed between the animal groups. These data demonstrate significant postnatal subcortical development in absence of hearing, and also divergent effects of deafness on early waves II–IV and wave V of the E-ABR.
The caption of Figure 1 in the paper at doi:10.1155/2012/182767 has to be corrected as shown here. Also, should be corrected as follows: J. Tillein, S. Heid, E. Lang, R. Hartmann, and A. kral, “Development of brainstem-evoked responses in congenital auditory deprivation,” Neural Plasticity, vol. 2012, Article ID 182767, 11 Pages, 2012. s.a. urn:nbn:de:hebis:30:3-267673