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Utilising DNA Modifying Enzymes for Method Development in Molecular Biology
Uppsala University, Disciplinary Domain of Medicine and Pharmacy, Faculty of Pharmacy, Department of Pharmaceutical Biosciences.ORCID iD: 0000-0002-1864-1258
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Description
Abstract [en]

Method development plays a critical role in advancing molecular biology by enabling the detection, visualization, and interpretation of complex cellular processes. This dissertation focused on the development and optimization of methods based on DNA modifying enzymes to investigate DNA damage and protein–protein interactions—key mechanisms in genomic integrity, stress response, and gene regulation.

The first part of the work involved the development of Polymerase-Assisted DNA Damage Analysis (PADDA), a method combining the comet assay with enzymatic labelling to distinctively detect DNA single-strand breaks (SSBs) and double-strand breaks (DSBs) with fluorescence microscopy.

For a genome-wide detection of SSBs, a novel sequencing-based method—Sequence-Templated Erroneous End-Labelling sequencing (STEEL-seq) was developed. The method is based on an engineered, artificial DNA polymerase, Sloppymerase. Its highly error-prone activity allows for DNA synthesis in absence of a specific nucleotide (e.g. dATP), creating unique patterns of mismatches directly downstream of an SSB. These mismatches can be detected after DNA sequencing analysis and give information about bona fide SSBs. The method was validated using multiple sequencing platforms, revealing enrichment of SSBs at promoter regions of actively transcribed genes.

The final part of the work covers a new antibody-based proximity assay for the detection of endogenous protein-protein interactions - Enzyme-Activated Proximity of Oligonucleotides Sensing (EPOS). Across multiple cellular models, EPOS could produce robust results for the detection of PPIs with higher resolution, improved dynamic range and increased sensitivity compared with in situ proximity ligation assay.

Collectively, the methods developed during this project demonstrate the transformative potential of enzymatic tools in molecular biology. By enabling more precise and accessible analysis of DNA damage and protein interactions, these approaches provide valuable platforms for future research in genomics, cell biology, and biomedical science.

Place, publisher, year, edition, pages
Uppsala: Acta Universitatis Upsaliensis, 2025. , p. 60
Series
Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Pharmacy, ISSN 1651-6192 ; 388
Keywords [en]
Method development, molecular biology, DNA damage, protein-protein interactions
National Category
Pharmaceutical Sciences
Research subject
Molecular Life Sciences
Identifiers
URN: urn:nbn:se:uu:diva-570057ISBN: 978-91-513-2645-0 (print)OAI: oai:DiVA.org:uu-570057DiVA, id: diva2:2007770
Public defence
2025-12-11, B22, BMC, Husargatan 3, Uppsala, 09:00 (English)
Opponent
Supervisors
Available from: 2025-11-18 Created: 2025-10-21 Last updated: 2025-11-18
List of papers
1. Visualizing DNA single- and double-strand breaks in the Flash comet assay by DNA polymerase-assisted end-labelling
Open this publication in new window or tab >>Visualizing DNA single- and double-strand breaks in the Flash comet assay by DNA polymerase-assisted end-labelling
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2024 (English)In: Nucleic Acids Research, ISSN 0305-1048, E-ISSN 1362-4962, Vol. 52, no 4Article in journal (Refereed) Published
Abstract [en]

In the comet assay, tails are formed after single-cell gel electrophoresis if the cells have been exposed to genotoxic agents. These tails include a mixture of both DNA single-strand breaks (SSBs) and double-strand breaks (DSBs). However, these two types of strand breaks cannot be distinguished using comet assay protocols with conventional DNA stains. Since DSBs are more problematic for the cells, it would be useful if the SSBs and DSBs could be differentially identified in the same comet. In order to be able to distinguish between SSBs and DSBs, we designed a protocol for polymerase-assisted DNA damage analysis (PADDA) to be used in combination with the Flash comet protocol, or on fixed cells. By using DNA polymerase I to label SSBs and terminal deoxynucleotidyl transferase to label DSBs with fluorophore-labelled nucleotides. Herein, TK6-cells or HaCat cells were exposed to either hydrogen peroxide (H2O2), ionising radiation (X-rays) or DNA cutting enzymes, and then subjected to a comet protocol followed by PADDA. PADDA offers a wider detection range, unveiling previously undetected DNA strand breaks. Graphical Abstract

Place, publisher, year, edition, pages
Oxford University Press, 2024
National Category
Pharmaceutical Sciences
Identifiers
urn:nbn:se:uu:diva-528077 (URN)10.1093/nar/gkae009 (DOI)001146868600001 ()38261985 (PubMedID)
Funder
Swedish Cancer Society
Available from: 2024-05-15 Created: 2024-05-15 Last updated: 2025-10-21Bibliographically approved
2. Precise mapping of single-stranded DNA breaks by sequence-templated erroneous DNA polymerase end-labelling
Open this publication in new window or tab >>Precise mapping of single-stranded DNA breaks by sequence-templated erroneous DNA polymerase end-labelling
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2025 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 16, no 1, article id 7130Article in journal (Refereed) Published
Abstract [en]

The ability to analyze whether DNA contains lesions is essential in identifying mutagenic substances. Currently, the detection of single-stranded DNA breaks (SSBs) lacks precision. To address this limitation, we develop a method for sequence-templated erroneous end-labelling sequencing (STEEL-seq), which enables the mapping of SSBs. The method requires a highly error-prone DNA polymerase, so we engineer a chimeric DNA polymerase, Sloppymerase, capable of replicating DNA in the absence of one nucleotide. Following the omission of a specific nucleotide (e.g., dATP) from the reaction mixture, Sloppymerase introduces mismatches directly downstream of SSBs at positions where deoxyadenosine should occur. This mismatch pattern, coupled with the retention of sequence information flanking these sites, ensures that the identified hits are bona fide SSBs. STEEL-seq is compatible with a variety of sequencing technologies, as demonstrated using Sanger, Illumina, PacBio, and Nanopore systems. Using STEEL-seq, we determine the SSB/base pair frequency in the human genome to range between 0.7 and 3.8 x 10-6 with an enrichment in active promoter regions.

Place, publisher, year, edition, pages
Springer Nature, 2025
National Category
Molecular Biology
Identifiers
urn:nbn:se:uu:diva-565592 (URN)10.1038/s41467-025-62512-4 (DOI)001548574700015 ()40759655 (PubMedID)2-s2.0-105012487075 (Scopus ID)
Funder
Swedish Cancer Society, 22 2306 PjSwedish Research CouncilKnut and Alice Wallenberg Foundation, KAW 2020.0239Knut and Alice Wallenberg Foundation, KAW 2017.0003
Available from: 2025-09-01 Created: 2025-09-01 Last updated: 2025-10-21Bibliographically approved
3. Enzyme-activated Proximity of Oligonucleotides Sensing (EPOS), for precise monitoring of protein interactions
Open this publication in new window or tab >>Enzyme-activated Proximity of Oligonucleotides Sensing (EPOS), for precise monitoring of protein interactions
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(English)Manuscript (preprint) (Other academic)
National Category
Cell Biology
Identifiers
urn:nbn:se:uu:diva-570031 (URN)
Available from: 2025-10-20 Created: 2025-10-20 Last updated: 2025-10-21

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Wenson, Leonie

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