Publikationen
Zeitschriftenartikel (31)
1.
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Dominant-negative NARS1 R534* mutation causes wild-type subunit poisoning and heterodimer predominance in cells. Journal of Biological Chemistry, 110690 (2025)
2.
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FASTKD5 processes mitochondrial pre-mRNAs at noncanonical cleavage sites. Nucleic Acids Research 53 (13), gkaf665 (2025)
3.
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Molecular basis for the interactions of eIF2β with eIF5, eIF2B, and 5MP1 and their regulation by CK2. RNA 31, S. 1419 - 1435 (2025)
4.
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The plastid-encoded RNA polymerase of plant chloroplasts. Trends in Plant Science 30 (7), S. 712 - 723 (2025)
5.
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Coupling of ribosome biogenesis and translation initiation in human mitochondria. Nature Communications 16, 3641 (2025)
6.
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Molecular basis of human nuclear and mitochondrial tRNA 3′ processing. Nature Structural & Molecular Biology 32, S. 613 - 624 (2025)
7.
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Structural basis of Nipah virus RNA synthesis. Nature Communications 16, 2261 (2025)
8.
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The molecular machinery for maturation of primary mtDNA transcripts. Human Molecular Genetics 33 (R1), S. R19 - R25 (2024)
9.
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Structure of the multi-subunit chloroplast RNA polymerase. Molecular Cell 84 (5), S. 910 - 925.e5 (2024)
10.
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Identification of TMEM126A as OXA1L-interacting protein reveals cotranslational quality control in mitochondria. Molecular Cell 84 (2), S. 345 - 358.e5 (2024)
11.
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ost in promiscuity? An evolutionary and biochemical evaluation of HSD10 function in cardiolipin metabolism. Cellular and Molecular Life Sciences 79 (11), 562 (2022)
12.
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Hierarchical folding of the catalytic core during mitochondrial ribosome biogenesis. Trends in Cell Biology 32 (3), S. 182 - 185 (2022)
13.
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Mitochondrien: wie die Gene im Kraftwerk der Zelle aktiviert werden. BIOspektrum 28 (1), S. 18 - 22 (2022)
14.
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Structural and mechanistic basis of RNA processing by protein-only ribonuclease P enzymes. Trends in Biochemical Sciences 47 (11), S. 965 - 977 (2022)
15.
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WARS1 and SARS1: Two tRNA synthetases implicated in autosomal recessive microcephaly. Human Mutations 43 (10), S. 1454 - 1471 (2022)
16.
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Structural basis of RNA processing by human mitochondrial RNase P. Nature Structural and Molecular Biology 28 (9), S. 713 - 723 (2021)
17.
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Mechanism of molnupiravir-induced SARS-CoV-2 mutagenesis. Nature Structural and Molecular Biology 28 (9), S. 740 - 746 (2021)
18.
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The structure of a dimeric form of SARS-CoV-2 polymerase. Communications Biology 4, 999 (2021)
19.
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Structural basis of GTPase-mediated mitochondrial ribosome biogenesis and recycling. Nature Communications 12, 3672 (2021)
20.
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Structure and function of SARS-CoV-2 polymerase. Current Opinion in Virology 48, S. 82 - 90 (2021)
21.
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The pentatricopeptide repeat protein Rmd9 recognizes the dodecameric element in the 3′-UTRs of yeast mitochondrial mRNAs. Proceedings of the National Academy of Sciences of the USA 118 (15), e2009329118 (2021)
22.
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Mechanism of SARS-CoV-2 polymerase stalling by remdesivir. Nature Communications 12, 279 (2021)
23.
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Mechanism of SARS-CoV-2 polymerase stalling by remdesivir. Nature Communications 12, 279 (2021)
24.
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Coronavirus-Replikation: Mechanismus und Inhibition durch Remdesivir. Biospektrum 27 (1), S. 49 - 53 (2021)
25.
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Small-molecule inhibitors of human mitochondrial DNA transcription. Nature 588 (7839), S. 712 - 716 (2020)
26.
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Structure of replicating SARS-CoV-2 polymerase. Nature 584 (7819), S. 154 - 156 (2020)
27.
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Structural basis of poxvirus transcription: Vaccinia RNA polymerase complexes. Cell 179 (7), S. 1537 - 1550 (2019)
28.
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Structural basis of poxvirus transcription: Transcribing and capping vaccinia complexes. Cell 179 (7), S. 1525 - 1536 (2019)
29.
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Structural basis of mitochondrial transcription. Nature Structural and Molecular Biology 25 (9), S. 754 - 765 (2018)
30.
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Structural basis of mitochondrial transcription initiation. Cell 171 (5), S. 1072 - 1081 (2017)
31.
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Mechanism of transcription anti-termination in human mitochondria. Cell 171 (5), S. 1082 - 1093 (2017)