Prof. Dr.

Carina de Oliveira Mann

A3
Principal Investigator

Prof. Dr.

Carina de Oliveira Mann

Professor of Biomolecular Cryo-Electron Microscopy, Center for Functional Protein Assemblies, TUM School of Natural Sciences

Technische Universität München

Research background

The innate immune system relies on germline-encoded receptors to distinguish self from non-self and to detect pathogenic nucleic acids such as DNA and RNA. Because nucleic acids serve as genetic material in both host and pathogen, immune sensors must accurately discriminate foreign molecules from endogenous ones to prevent autoimmunity. How nucleic acid–sensing pathways are activated, how their enzymatic products transmit signals, and how these mechanisms evolved to balance host defense with self-tolerance remain central questions in immunology.

The research of Carina Baer de Oliveira Mann focuses on nucleotidyltransferases (NTases), a diverse enzyme superfamily that includes key innate immune sensors such as cGAS and OAS proteins. These enzymes catalyze the transfer of nucleoside monophosphates to generate nucleotide-based second messengers, including cyclic GMP–AMP and 2′–5′-oligoadenylates, which activate downstream signaling pathways such as STING or RNase L. Her work aims to characterize unrecognized human NTases, identify their ligands and products, and elucidate their molecular mechanisms. Using protein–nucleic acid biochemistry, structural biology, cellular assays, and mass spectrometry, this research advances understanding of nucleic acid sensing and informs strategies to target nucleotide signaling in immune-related diseases.

Research fields
Publications

Structural basis for OAS2 regulation and its antiviral function.

Merold, V.; Bekere, I.; Kretschmer, S.; Schnell, AF.; Kmiec, D.; Sivarajan, R.; Lammens, K.; Liu, R.; Mergner, J.; Teppert, J.; Hirschenberger, M.; Henrici, A.; Hammes, S.; Buder, K.; Weitz, M.; Hackmann, K.; Koenig, LM.; Pichlmair, A.; Schwierz, N.; Sparrer, KMJ.; Lee-Kirsch, MA.; de Oliveira Mann, CC.

Mol Cell. · 2025

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Oligoadenylate synthetase (OAS) proteins are immune sensors for double-stranded RNA and are critical for restricting viruses. OAS2 comprises two OAS domains, only one of which can synthesize 2'-5'-oligoadenylates for RNase L activation. Existing structures of OAS1 provide a model for enzyme activation, but they do not explain how multiple OAS domains discriminate RNA length. Here, we discover that human OAS2 exists in an auto-inhibited state as a zinc-mediated dimer and present a mechanism for RNA length discrimination: the catalytically deficient domain acts as a molecular ruler that prevents autoreactivity to short RNAs. We demonstrate that dimerization and myristoylation localize OAS2 to Golgi membranes and that this is required for OAS2 activation and the restriction of viruses that exploit the endomembrane system for replication, e.g., coronaviruses. Finally, our results highlight the non-redundant role of OAS proteins and emphasize the clinical relevance of OAS2 by identifying a patient with a loss-of-function mutation associated with autoimmune disease.

Structural basis for sequestration and autoinhibition of cGAS by chromatin.

Michalski, S.; de Oliveira Mann, CC.; Stafford, CA.; Witte, G.; Bartho, J.; Lammens, K.; Hornung, V.; Hopfner, KP.

Nature. · 2020

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Cyclic GMP-AMP synthase (cGAS) is an innate immune sensor for cytosolic microbial DNA. After binding DNA, cGAS synthesizes the messenger 2'3'-cyclic GMP-AMP (cGAMP), which triggers cell-autonomous defence and the production of type I interferons and pro-inflammatory cytokines via the activation of STING. In addition to responding to cytosolic microbial DNA, cGAS also recognizes mislocalized cytosolic self-DNA and has been implicated in autoimmunity and sterile inflammation. Specificity towards pathogen- or damage-associated DNA was thought to be caused by cytosolic confinement. However, recent findings place cGAS robustly in the nucleus, where tight tethering of chromatin is important to prevent autoreactivity to self-DNA. Here we show how cGAS is sequestered and inhibited by chromatin. We provide a cryo-electron microscopy structure of the cGAS catalytic domain bound to a nucleosome, which shows that cGAS does not interact with the nucleosomal DNA, but instead interacts with histone 2A-histone 2B, and is tightly anchored to the 'acidic patch'. The interaction buries the cGAS DNA-binding site B, and blocks the formation of active cGAS dimers. The acidic patch robustly outcompetes agonistic DNA for binding to cGAS, which suggests that nucleosome sequestration can efficiently inhibit cGAS, even when accessible DNA is nearby, such as in actively transcribed genomic regions. Our results show how nuclear cGAS is sequestered by chromatin and provides a mechanism for preventing autoreactivity to nuclear self-DNA.

Bacterial cGAS-like enzymes synthesize diverse nucleotide signals.

Whiteley, AT.; Eaglesham, JB.; de Oliveira Mann, CC.; Morehouse, BR.; Lowey, B.; Nieminen, EA.; Danilchanka, O.; King, DS.; Lee, ASY.; Mekalanos, JJ.; Kranzusch, PJ.

Nature. · 2019

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Cyclic dinucleotides (CDNs) have central roles in bacterial homeostasis and virulence by acting as nucleotide second messengers. Bacterial CDNs also elicit immune responses during infection when they are detected by pattern-recognition receptors in animal cells. Here we perform a systematic biochemical screen for bacterial signalling nucleotides and discover a large family of cGAS/DncV-like nucleotidyltransferases (CD-NTases) that use both purine and pyrimidine nucleotides to synthesize a diverse range of CDNs. A series of crystal structures establish CD-NTases as a structurally conserved family and reveal key contacts in the enzyme active-site lid that direct purine or pyrimidine selection. CD-NTase products are not restricted to CDNs and also include an unexpected class of cyclic trinucleotide compounds. Biochemical and cellular analyses of CD-NTase signalling nucleotides demonstrate that these cyclic di- and trinucleotides activate distinct host receptors and thus may modulate the interaction of both pathogens and commensal microbiota with their animal and plant hosts.

Modular Architecture of the STING C-Terminal Tail Allows Interferon and NF-κB Signaling Adaptation.

de Oliveira Mann, CC.; Orzalli, MH.; King, DS.; Kagan, JC.; Lee, ASY.; Kranzusch, PJ.

Cell Rep. · 2019

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Stimulator of interferon genes (STING) is a key regulator of type I interferon and pro-inflammatory responses during infection, cellular stress, and cancer. Here, we reveal a mechanism for how STING balances activation of IRF3- and NF-κB-dependent transcription and discover that acquisition of discrete signaling modules in the vertebrate STING C-terminal tail (CTT) shapes downstream immunity. As a defining example, we identify a motif appended to the CTT of zebrafish STING that inverts the typical vertebrate signaling response and results in dramatic NF-κB activation and weak IRF3-interferon signaling. We determine a co-crystal structure that explains how this CTT sequence recruits TRAF6 as a new binding partner and demonstrate that the minimal motif is sufficient to reprogram human STING and immune activation in macrophage cells. Together, our results define the STING CTT as a linear signaling hub that can acquire modular motifs to readily adapt downstream immunity.

Structural and biochemical characterization of the cell fate determining nucleotidyltransferase fold protein MAB21L1.

de Oliveira Mann, CC.; Kiefersauer, R.; Witte, G.; Hopfner, KP.

Sci Rep. · 2016

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The exceptionally conserved metazoan MAB21 proteins are implicated in cell fate decisions and share considerable sequence homology with the cyclic GMP-AMP synthase. cGAS is the major innate immune sensor for cytosolic DNA and produces the second messenger 2'-5', 3'-5' cyclic GMP-AMP. Little is known about the structure and biochemical function of other proteins of the cGAS-MAB21 subfamily, such as MAB21L1, MAB21L2 and MAB21L3. We have determined the crystal structure of human full-length MAB21L1. Our analysis reveals high structural conservation between MAB21L1 and cGAS but also uncovers important differences. Although monomeric in solution, MAB21L1 forms a highly symmetric double-pentameric oligomer in the crystal, raising the possibility that oligomerization could be a feature of MAB21L1. In the crystal, MAB21L1 is in an inactive conformation requiring a conformational change - similar to cGAS - to develop any nucleotidyltransferase activity. Co-crystallization with NTP identified a putative ligand binding site of MAB21 proteins that corresponds to the DNA binding site of cGAS. Finally, we offer a structure-based explanation for the effects of MAB21L2 mutations in patients with eye malformations. The underlying residues participate in fold-stabilizing interaction networks and mutations destabilize the protein. In summary, we provide a first structural framework for MAB21 proteins.