Prof. Dr.

Claudia Höbartner

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Principal Investigator

Prof. Dr.

Claudia Höbartner

Chair of Organic Chemistry I, Institute of Organic Chemistry, Faculty of Chemistry and Pharmacy

Julius-Maximilians-Universität Würzburg

Research background

Nucleic acids such as DNA and RNA are not only carriers of genetic information but also versatile chemical polymers whose structure and modification profoundly influence biological function. Chemical alterations of nucleobases, sugars, or the phosphate backbone can modulate stability, recognition, and catalytic activity, thereby expanding the functional repertoire of nucleic acids beyond canonical gene expression. How natural and synthetic modifications alter molecular properties, and how functional nucleic acids with tailored activities can be generated and understood at a mechanistic level, remain central questions at the interface of chemistry and biology.

The research of Claudia Höbartner focuses on the biomolecular chemistry of natural and chemically modified DNA and RNA, as well as on the development and characterization of functional nucleic acids. Her work includes the in vitro selection, structural analysis, and mechanistic investigation of catalytic RNA molecules (ribozymes), catalytic DNA (deoxyribozymes), and RNA aptamers. Using synthetic chemistry combined with biochemical and structural approaches, she explores how nucleic acid modifications shape structure and reactivity. By advancing the design and understanding of catalytic and functional nucleic acids, this research contributes to fundamental molecular science and the development of innovative applications in biotechnology.

Research fields
Publications

Structure and catalytic activity of the SAM-utilizing ribozyme SAMURI.

Chen, HA.; Okuda, T.; Lenz, AK.; Scheitl, CPM.; Schindelin, H.; Höbartner, C.

Nat Chem Biol. · 2026

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Ribozymes that catalyze site-specific RNA modification have recently gained increasing interest for their ability to mimic methyltransferase enzymes and for their application to install molecular tags. Recently, we reported SAMURI as a site-specific alkyltransferase ribozyme using S-adenosylmethionine (SAM) or a stabilized analog to transfer a methyl or propargyl group to N of an adenosine. Here, we report the crystal structures of SAMURI in the postcatalytic state. The structures reveal a three-helix junction with the catalytic core folded into four stacked layers, harboring the cofactor and the modified nucleotide. Detailed structure-activity analyses explain the cofactor scope and the structural basis for site selectivity. A structural comparison of SAMURI with SAM riboswitches sheds light on how the synthetic ribozyme overcomes the strategies of natural riboswitches to avoid self-methylation. Our results suggest that SAM and its analogs may serve as substrates for various RNA-catalyzed reactions, for which the corresponding ribozymes remain to be identified.

Ribozyme-Catalyzed Site-Specific Labeling of RNA Using O-alkylguanine SNAP-Tag Substrates.

Walunj, MB.; Scheitl, CPM.; Jungnickel, T.; Höbartner, C.

Angew Chem Int Ed Engl. · 2025

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Site-specific modification of RNAs with functional handles enables studies of RNA structure, fate, function, and interactions. Ribozymes provide an elegant way to covalently modify RNA of interest (ROI). Here, we report that the methyltransferase ribozyme MTR1 can be employed as a versatile tool for RNA modification and labeling. Using O-alkylguanine cofactors, designed in analogy to SNAP-tag substrates for protein labeling, MTR1 installs various bioorthogonal functional groups at N of a specific adenosine in the RNA target. In this application of ribozyme-catalyzed RNA labeling, MTR1 is now called SNAPR. In contrast to the self-labeling SNAP-tag, which is appended to the protein of interest, SNAPR is a truly intermolecular RNA catalyst (active in trans). SNAPR assembles with the ROI to the active ribozyme, allowing for the transfer of clickable tags, such as azide and alkyne moieties, as well as photolabile groups or cross-linkers from the guanine cofactor to the ROI. Moreover, we demonstrate a two-step approach to attach labels at N of the target adenosine: first, SNAPR generates NA-modified RNA, followed by preparative Dimroth rearrangement to produce NA-modified RNA. We demonstrate this strategy with p-azidobenzyl groups as photocrosslinker to generate covalent RNA-protein conjugates. Overall, this work expands the toolbox for site-specific RNA modification.

A SAM analogue-utilizing ribozyme for site-specific RNA alkylation in living cells.

Okuda, T.; Lenz, AK.; Seitz, F.; Vogel, J.; Höbartner, C.

Nat Chem. · 2023

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Post-transcriptional RNA modification methods are in high demand for site-specific RNA labelling and analysis of RNA functions. In vitro-selected ribozymes are attractive tools for RNA research and have the potential to overcome some of the limitations of chemoenzymatic approaches with repurposed methyltransferases. Here we report an alkyltransferase ribozyme that uses a synthetic, stabilized S-adenosylmethionine (SAM) analogue and catalyses the transfer of a propargyl group to a specific adenosine in the target RNA. Almost quantitative conversion was achieved within 1 h under a wide range of reaction conditions in vitro, including physiological magnesium ion concentrations. A genetically encoded version of the SAM analogue-utilizing ribozyme (SAMURI) was expressed in HEK293T cells, and intracellular propargylation of the target adenosine was confirmed by specific fluorescent labelling. SAMURI is a general tool for the site-specific installation of the smallest tag for azide-alkyne click chemistry, which can be further functionalized with fluorophores, affinity tags or other functional probes.

Structure and mechanism of the methyltransferase ribozyme MTR1.

Scheitl, CPM.; Mieczkowski, M.; Schindelin, H.; Höbartner, C.

Nat Chem Biol. · 2022

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RNA-catalyzed RNA methylation was recently shown to be part of the catalytic repertoire of ribozymes. The methyltransferase ribozyme MTR1 catalyzes the site-specific synthesis of 1-methyladenosine (mA) in RNA, using O-methylguanine (mG) as a methyl group donor. Here, we report the crystal structure of MTR1 at a resolution of 2.8 Å, which reveals a guanine-binding site reminiscent of natural guanine riboswitches. The structure represents the postcatalytic state of a split ribozyme in complex with the mA-containing RNA product and the demethylated cofactor guanine. The structural data suggest the mechanistic involvement of a protonated cytidine in the methyl transfer reaction. A synergistic effect of two 2'-O-methylated ribose residues in the active site results in accelerated methyl group transfer. Supported by these results, it seems plausible that modified nucleotides may have enhanced early RNA catalysis and that metabolite-binding riboswitches may resemble inactivated ribozymes that have lost their catalytic activity during evolution.

Site-specific RNA methylation by a methyltransferase ribozyme.

Scheitl, CPM.; Ghaem Maghami, M.; Lenz, AK.; Höbartner, C.

Nature. · 2020

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Nearly all classes of coding and non-coding RNA undergo post-transcriptional modification, including RNA methylation. Methylated nucleotides are among the evolutionarily most-conserved features of transfer (t)RNA and ribosomal (r)RNA. Many contemporary methyltransferases use the universal cofactor S-adenosylmethionine (SAM) as a methyl-group donor. SAM and other nucleotide-derived cofactors are considered to be evolutionary leftovers from an RNA world, in which ribozymes may have catalysed essential metabolic reactions beyond self-replication. Chemically diverse ribozymes seem to have been lost in nature, but may be reconstructed in the laboratory by in vitro selection. Here we report a methyltransferase ribozyme that catalyses the site-specific installation of 1-methyladenosine in a substrate RNA, using O-methylguanine as a small-molecule cofactor. The ribozyme shows a broad RNA-sequence scope, as exemplified by site-specific adenosine methylation in various RNAs. This finding provides fundamental insights into the catalytic abilities of RNA, serves a synthetic tool to install 1-methyladenosine in RNA and may pave the way to in vitro evolution of other methyltransferase and demethylase ribozymes.