Prof. Dr.

Caroline Kisker

B3
Principal Investigator
Steering Committee

Prof. Dr.

Caroline Kisker

Chair of Structural Biology, Rudolf-Virchow-Zentrum, Center for Integrative and Translational Bioimaging and Faculty of Medicine

Julius-Maximilians-Universität Würzburg

Research background

The integrity of the genome depends on efficient mechanisms that detect and repair DNA damage arising from endogenous and exogenous sources. Among the pathways safeguarding chromatin, nucleotide excision repair (NER) is uniquely capable of recognizing structurally diverse DNA lesions. How the sequential steps of NER are coordinated at sites of DNA damage and how dysregulation of these processes contributes to cancer development remain central questions in the fields of genome maintenance, tumorigenesis, and ageing. 

The research of Caroline Kisker focuses on the structural and mechanistic basis of DNA repair and genome stability, with particular emphasis on nucleotide excision repair (NER) and its relevance to cancer. Her work investigates the architecture and functional dynamics of the general transcription factor TFIIH, including the helicase subunits responsible for DNA damage verification. By combining structural biology with biochemical and functional analyses, her research elucidates how disease-associated mutations compromise DNA repair and contribute to human pathology. In addition, her group studies deubiquitylases such as USP25 and USP28, to uncover mechanisms of ubiquitin signaling relevant to cancer biology. By defining structure–function relationships within genome maintenance and ubiquitin-regulated pathways, this research provides a foundation for the development of targeted therapeutic strategies.

Research fields
Publications

XPD stalled on cross-linked DNA provides insight into damage verification.

Kuper, J.; Hove, T.; Maidl, S.; Neitz, H.; Sauer, F.; Kempf, M.; Schroeder, T.; Greiter, E.; Höbartner, C.; Kisker, C.

Nat Struct Mol Biol. · 2024

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The superfamily 2 helicase XPD is a central component of the general transcription factor II H (TFIIH), which is essential for transcription and nucleotide excision DNA repair (NER). Within these two processes, the helicase function of XPD is vital for NER but not for transcription initiation, where XPD acts only as a scaffold for other factors. Using cryo-EM, we deciphered one of the most enigmatic steps in XPD helicase action: the active separation of double-stranded DNA (dsDNA) and its stalling upon approaching a DNA interstrand cross-link, a highly toxic form of DNA damage. The structure shows how dsDNA is separated and reveals a highly unusual involvement of the Arch domain in active dsDNA separation. Combined with mutagenesis and biochemical analyses, we identified distinct functional regions important for helicase activity. Surprisingly, those areas also affect core TFIIH translocase activity, revealing a yet unencountered function of XPD within the TFIIH scaffold. In summary, our data provide a universal basis for NER bubble formation, XPD damage verification and XPG incision.

G-quadruplex-mediated genomic instability drives SNVs in cancer.

Richl, T.; Kuper, J.; Kisker, C.

Nucleic Acids Res. · 2024

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G-quadruplex (G4s) DNA structures have been implicated in inducing genomic instability and contributing to cancer development. However, the relationship between G4s and cancer-related single nucleotide variants (cSNVs) in clinical settings remains unclear. In this large-scale study, we integrated experimentally validated G4s with genomic cSNVs from 13480 cancer patients to investigate the spatial association of G4s with the cellular cSNV landscape. Our findings demonstrate an increase in local genomic instability with increasing local G4 content in cancer patients, suggesting a potential role for G4s in driving cSNVs. Notably, we observed distinct spatial patterns of cSNVs and common single nucleotide variants (dbSNVs) in relation to G4s, implying different mechanisms for their generation and accumulation. We further demonstrate large, cancer-specific differences in the relationship of G4s and cSNVs, which could have important implications for a new class of G4-stabilizing cancer therapeutics. Moreover, we show that high G4-content can serve as a prognostic marker for local cSNV density and patient survival rates. Our findings underscore the importance of considering G4s in cancer research and highlight the need for further investigation into the underlying molecular mechanisms of G4-mediated genomic instability, especially in the context of cancer.

How to limit the speed of a motor: the intricate regulation of the XPB ATPase and translocase in TFIIH.

Kappenberger, J.; Koelmel, W.; Schoenwetter, E.; Scheuer, T.; Woerner, J.; Kuper, J.; Kisker, C.

Nucleic Acids Res. · 2020

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The superfamily 2 helicase XPB is an integral part of the general transcription factor TFIIH and assumes essential catalytic functions in transcription initiation and nucleotide excision repair. The ATPase activity of XPB is required in both processes. We investigated the interaction network that regulates XPB via the p52 and p8 subunits with functional mutagenesis based on our crystal structure of the p52/p8 complex and current cryo-EM structures. Importantly, we show that XPB's ATPase can be activated either by DNA or by the interaction with the p52/p8 proteins. Intriguingly, we observe that the ATPase activation by p52/p8 is significantly weaker than the activation by DNA and when both p52/p8 and DNA are present, p52/p8 dominates the maximum activation. We therefore define p52/p8 as the master regulator of XPB acting as an activator and speed limiter at the same time. A correlative analysis of the ATPase and translocase activities of XPB shows that XPB only acts as a translocase within the context of complete core TFIIH and that XPA increases the processivity of the translocase complex without altering XPB's ATPase activity. Our data define an intricate network that tightly controls the activity of XPB during transcription and nucleotide excision repair.

In TFIIH the Arch domain of XPD is mechanistically essential for transcription and DNA repair.

Peissert, S.; Sauer, F.; Grabarczyk, DB.; Braun, C.; Sander, G.; Poterszman, A.; Egly, JM.; Kuper, J.; Kisker, C.

Nat Commun. · 2020

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The XPD helicase is a central component of the general transcription factor TFIIH which plays major roles in transcription and nucleotide excision repair (NER). Here we present the high-resolution crystal structure of the Arch domain of XPD with its interaction partner MAT1, a central component of the CDK activating kinase complex. The analysis of the interface led to the identification of amino acid residues that are crucial for the MAT1-XPD interaction. More importantly, mutagenesis of the Arch domain revealed that these residues are essential for the regulation of (i) NER activity by either impairing XPD helicase activity or the interaction of XPD with XPG; (ii) the phosphorylation of the RNA polymerase II and RNA synthesis. Our results reveal how MAT1 shields these functionally important residues thereby providing insights into how XPD is regulated by MAT1 and defining the Arch domain as a major mechanistic player within the XPD scaffold.

Differential Oligomerization of the Deubiquitinases USP25 and USP28 Regulates Their Activities.

Sauer, F.; Klemm, T.; Kollampally, RB.; Tessmer, I.; Nair, RK.; Popov, N.; Kisker, C.

Mol Cell. · 2019

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Deubiquitinases have emerged as promising drug targets for cancer therapy. The two DUBs USP25 and USP28 share high similarity but vary in their cellular functions. USP28 is known for its tumor-promoting role, whereas USP25 is a regulator of the innate immune system and, recently, a role in tumorigenesis was proposed. We solved the structures of the catalytic domains of both proteins and established substantial differences in their activities. While USP28 is a constitutively active dimer, USP25 presents an auto-inhibited tetramer. Our data indicate that the activation of USP25 is not achieved through substrate or ubiquitin binding. USP25 cancer-associated mutations lead to activation in vitro and in vivo, thereby providing a functional link between auto-inhibition and the cancer-promoting role of the enzyme. Our work led to the identification of significant differences between USP25 and USP28 and provided the molecular basis for the development of new and highly specific anti-cancer drugs.