Prof. Dr.
Utz Fischer
Prof. Dr.
Utz Fischer
Research background
The generation of mature messenger RNAs (mRNAs) and their translation into proteins require the coordinated action of numerous trans-acting factors that assemble into macromolecular machines. These dynamic RNA–protein complexes catalyze sequential steps in mRNA metabolism, including processing, ribonucleoprotein (RNP) assembly, and translation, thereby ensuring accurate gene expression. How these complexes are assembled within cells, how they achieve functional specificity on diverse RNA substrates, and how their malfunction leads to human disease remain fundamental questions in RNA biology.
The research of Utz Fischer investigates the structural and mechanistic principles of key macromolecular machines generating and acting on mRNA. His work analyzes the biogenesis of small nuclear ribonucleoproteins (snRNPs) of the spliceosome, the regulation of translation by RNA-binding proteins, and the molecular basis of diseases caused by defects in mRNA metabolism. Using biochemistry, single-particle cryo-electron microscopy, X-ray crystallography, and genome-wide approaches, he studies the structure and functional dynamics of protein and protein–RNA complexes. By elucidating how RNA metabolic pathways are coordinated and how their disruption results in tissue-specific pathologies, this research advances understanding of gene expression control and its relevance to human disease.
Research fields
The Fischer group investigates RNA-focused macromolecular machines, combining biochemical, structural, and systems biology approaches with biomedical research to understand their functions and disease-related alterations.
Prof. Dr. Utz Fischer
Publications
tRNA as an assembly chaperone for a macromolecular transcription-processing complex.
Nat Struct Mol Biol. · 2025
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Transfer RNAs (tRNAs) are widely recognized for their role in translation. Here, we describe a previously unidentified function of tRNA as an assembly chaperone. During poxviral infection, tRNA lacking the anticodon mcmsU34 modification is specifically sequestered from the cellular tRNA pool to promote formation of a multisubunit poxviral RNA polymerase complex (vRNAP). Cryo-electron microscopy analysis of assembly intermediates illustrates how tRNA orchestrates the recruitment of transcription and mRNA processing factors to vRNAP where it controls the transition to the preinitiation complex. This is achieved by an induced fit mechanism that internalizes anticodon base G36 into the anticodon stem, creating a noncanonical tRNA structure and selecting a defined tRNA modification pattern. The role of tRNA as an assembly chaperone extends to the pathogenic Mpox virus, which features a similar vRNAP.
Structural basis of the complete poxvirus transcription initiation process.
Nat Struct Mol Biol. · 2021
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Poxviruses express their genes in the cytoplasm of infected cells using a virus-encoded multi-subunit polymerase (vRNAP) and unique transcription factors. We present cryo-EM structures that uncover the complete transcription initiation phase of the poxvirus vaccinia. In the pre-initiation complex, the heterodimeric early transcription factor VETFs/l adopts an arc-like shape spanning the polymerase cleft and anchoring upstream and downstream promoter elements. VETFI emerges as a TBP-like protein that inserts asymmetrically into the DNA major groove, triggers DNA melting, ensures promoter recognition and enforces transcription directionality. The helicase VETFs fosters promoter melting and the phospho-peptide domain (PPD) of vRNAP subunit Rpo30 enables transcription initiation. An unprecedented upstream promoter scrunching mechanism assisted by the helicase NPH-I probably fosters promoter escape and transition into elongation. Our structures shed light on unique mechanisms of poxviral gene expression and aid the understanding of thus far unexplained universal principles in transcription.
Structural Basis of Poxvirus Transcription: Vaccinia RNA Polymerase Complexes.
Cell. · 2019
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Poxviruses encode a multisubunit DNA-dependent RNA polymerase (vRNAP) that carries out viral gene expression in the host cytoplasm. We report cryo-EM structures of core and complete vRNAP enzymes from Vaccinia virus at 2.8 Å resolution. The vRNAP core enzyme resembles eukaryotic RNA polymerase II (Pol II) but also reveals many virus-specific features, including the transcription factor Rap94. The complete enzyme additionally contains the transcription factor VETF, the mRNA processing factors VTF/CE and NPH-I, the viral core protein E11, and host tRNA. This complex can carry out the entire early transcription cycle. The structures show that Rap94 partially resembles the Pol II initiation factor TFIIB, that the vRNAP subunit Rpo30 resembles the Pol II elongation factor TFIIS, and that NPH-I resembles chromatin remodeling enzymes. Together with the accompanying paper (Hillen et al., 2019), these results provide the basis for unraveling the mechanisms of poxvirus transcription and RNA processing.
Structural basis of assembly chaperone- mediated snRNP formation.
Mol Cell. · 2013
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Small nuclear ribonucleoproteins (snRNPs) represent key constituents of major and minor spliceosomes. snRNPs contain a common core, composed of seven Sm proteins bound to snRNA, which forms in a step-wise and factor-mediated reaction. The assembly chaperone pICln initially mediates the formation of an otherwise unstable pentameric Sm protein unit. This so-called 6S complex docks subsequently onto the SMN complex, which removes pICln and enables the transfer of pre-assembled Sm proteins onto snRNA. X-ray crystallography and electron microscopy was used to investigate the structural basis of snRNP assembly. The 6S complex structure identifies pICln as an Sm protein mimic, which enables the topological organization of the Sm pentamer in a closed ring. A second structure of 6S bound to the SMN complex components SMN and Gemin2 uncovers a plausible mechanism of pICln elimination and Sm protein activation for snRNA binding. Our studies reveal how assembly factors facilitate formation of RNA-protein complexes in vivo.
An assembly chaperone collaborates with the SMN complex to generate spliceosomal SnRNPs.
Cell. · 2008
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Spliceosomal small nuclear ribonucleoproteins (snRNPs) are essential components of the nuclear pre-mRNA processing machinery. A hallmark of these particles is a ring-shaped core domain generated by the binding of Sm proteins onto snRNA. PRMT5 and SMN complexes mediate the formation of the core domain in vivo. Here, we have elucidated the mechanism of this reaction by both biochemical and structural studies. We show that pICln, a component of the PRMT5 complex, induces the formation of an otherwise unstable higher-order Sm protein unit. In this state, the Sm proteins are kinetically trapped, preventing their association with snRNA. The SMN complex subsequently binds to these Sm protein units, dissociates pICln, and catalyzes ring closure on snRNA. Our data identify pICln as an assembly chaperone and the SMN complex as a catalyst of spliceosomal snRNP formation. The mode of action of this combined chaperone/catalyst system is reminiscent of the mechanism employed by DNA clamp loaders.