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Linker design principles for the precision targeting of oncogenic G-quadruplex DNA with G4-ligand-conjugated oligonucleotides
Umeå University, Faculty of Science and Technology, Department of Chemistry.ORCID iD: 0009-0004-3292-1637
Umeå University, Faculty of Medicine, Department of Medical Biochemistry and Biophysics.ORCID iD: 0000-0001-7864-8403
Umeå University, Faculty of Science and Technology, Department of Chemistry. Institute of Bioorganic Chemistry, Polish Academy of Sciences, Poznan, Poland.
Umeå University, Faculty of Medicine, Department of Medical Biochemistry and Biophysics.
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2025 (English)In: Bioconjugate chemistry, ISSN 1043-1802, E-ISSN 1520-4812Article in journal (Refereed) Epub ahead of print
Abstract [en]

G-quadruplex (G4) DNA structures are noncanonical secondary structures found in key regulatory regions of the genome, including oncogenic promoters and telomeres. Small molecules, known as G4 ligands, capable of stabilizing G4s hold promise as chemical probes and therapeutic agents. Nevertheless, achieving precise specificity for individual G4 structures within the human genome remains a significant challenge. To address this, we expand upon G4-ligand-conjugated oligonucleotides (GL-Os), a modular platform combining the stabilizing properties of G4-ligands with the sequence specificity of guide DNA oligonucleotides. Central to this strategy is the linker that bridges the G4 ligand and the guide oligonucleotide. In this study, we develop multiple conjugation strategies for the GL-Os that enabled a systematic investigation of the linker in both chemical composition and length, enabling a thorough assessment of their impact on targeting oncogenic G4 DNA. Biophysical, biochemical, and computational evaluations revealed GL-Os with optimized linkers that exhibited enhanced binding to target G4s, even under thermal or structural stress. Notably, longer linkers broadened the range of targetable sequences without introducing steric hindrance, thereby enhancing the platform’s applicability across diverse genomic contexts. These findings establish GL-Os as a robust and versatile tool for the selective targeting of individual G4s. By facilitating precise investigations of G4 biology, this work provides a foundation for advancing G4-targeted therapeutic strategies and exploring their role in disease contexts.

Place, publisher, year, edition, pages
American Chemical Society (ACS), 2025.
National Category
Biochemistry
Identifiers
URN: urn:nbn:se:umu:diva-237287DOI: 10.1021/acs.bioconjchem.5c00008ISI: 001448909600001PubMedID: 40112195Scopus ID: 2-s2.0-105000394779OAI: oai:DiVA.org:umu-237287DiVA, id: diva2:1950312
Funder
Swedish Research Council, VR-MH 2023-02160Swedish Research Council, VR-NT 2021-04805The Kempe Foundations, JCK-3159The Kempe Foundations, SMK21-0059Knut and Alice Wallenberg FoundationSwedish Cancer Society, 23 2793 PjSwedish Research Council, VR-MH 2023-02160Swedish Research Council, VR-NT 2021-04805The Kempe Foundations, JCK-3159The Kempe Foundations, SMK21-0059Knut and Alice Wallenberg FoundationSwedish Cancer Society, 23 2793 PjAvailable from: 2025-04-07 Created: 2025-04-07 Last updated: 2025-04-07
In thesis
1. Investigating the biology and specific targeting of individual G-quadruplex structures
Open this publication in new window or tab >>Investigating the biology and specific targeting of individual G-quadruplex structures
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Alternative title[sv]
Granskning av biologin hos G-quadruplex-strukturer och enskilt målinrikta dessa
Abstract [en]

G-quadruplex (G4) structures are non-canonical DNA and RNA conformations formed in guanine-rich regions that play roles in gene regulation, genome stability, and RNA processing. However, targeting the approximately 700,000 G4s in the human genome with high specificity remains challenging due to their structural similarities. Despite their biological significance, this inability to selectively study or manipulate individual G4s presents a significant barrier to understanding their distinct roles in human cells and complicates efforts to dissect their contributions to cellular processes.

To address this limitation, we developed a strategy based on click chemistry to covalently link short single-stranded oligonucleotides (Os) to G4 ligands (GLs). This approach combines the stabilising properties of G4 ligands with the sequence specificity of guide oligonucleotides to create G4-ligand-oligonucleotide (GL-O) conjugates. The oligonucleotide forms double-stranded DNA (dsDNA) with the flanking region of the target G4, ensuring selective binding and stabilisation of the desired G4 structure. Through biophysical and biochemical assays, we demonstrated that this approach enables the selective stabilisation of individual target G4s, highlighting its utility for studying specific G4 structures.

In refining the GL-O platform, we systematically evaluated various linker configurations. This work demonstrated that longer and more flexible linkers enhance the adaptability of GL-O conjugates, allowing efficient targeting of G4s with varying distances between the G4-forming region and the complementary oligonucleotide binding sequence. This insight is particularly valuable for addressing steric hindrances and expanding the range of targetable G4 structures.

Additionally, we explored the broader principles of G4 ligand design by focusing on dispersion forces and electrostatic interactions. Synthesising heterocyclic G4 ligands and studying their interactions with G4s showed that dispersion components in arene-arene interactions and electron-deficient electrostatics are central to achieving high-affinity binding and stabilisation. These findings enhance the GL-O approach by providing a framework to fine-tune the stabilisation effect of the GL-Os, potentially reducing off-target effects.

In parallel, we pursued a separate project that examined G4 structures within human mitochondrial DNA (mtDNA), aiming to elucidate their roles in cellular function. Human mtDNA contains regions that have been predicted to form G4 structures in silico. We mapped these mtDNA G4s using high-resolution techniques and demonstrated their formation in vivo. Stabilisation or replication stalling increases their formation, potentially contributing to mitochondrial dysfunction and genomic instability in disease. 

Together, these findings advance our understanding of G4 biology, from selective targeting strategies to the unique dynamics of mitochondrial G4s, offering valuable insights into the biological roles of G4s in maintaining genome stability and regulating cellular processes.

Place, publisher, year, edition, pages
Umeå: Umeå University, 2025. p. 45
Series
Umeå University medical dissertations, ISSN 0346-6612 ; 2353
Keywords
G-quadruplex, G4-Ligand, Selective targeting, Ligand design, mitochondrial DNA
National Category
Biochemistry Medical Biotechnology (Focus on Cell Biology, (incl. Stem Cell Biology), Molecular Biology, Microbiology, Biochemistry or Biopharmacy)
Identifiers
urn:nbn:se:umu:diva-237289 (URN)978-91-8070-669-8 (ISBN)978-91-8070-670-4 (ISBN)
Public defence
2025-05-09, Lilla Hörsalen (KBE301), KBC huset, Linnaeus väg 6, 90736, Umeå, 09:00 (English)
Opponent
Supervisors
Available from: 2025-04-16 Created: 2025-04-07 Last updated: 2025-04-07Bibliographically approved

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Abrahamsson, AlvaBerner, AndreasGolebiewska-Pikula, JustynaChaudhari, NamrataKeskitalo, EmelieLindgren, CeciliaWanrooij, SjoerdChorell, Erik

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Abrahamsson, AlvaBerner, AndreasGolebiewska-Pikula, JustynaChaudhari, NamrataKeskitalo, EmelieLindgren, CeciliaChmielewski, Marcin K.Wanrooij, SjoerdChorell, Erik
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