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Updated: Apr 30, 2026

Stable DNA Motifs, 1D and 2D Nanostructures Constructed from Small Circular DNA Molecules
Published on: April 12, 2019
Synthesis of structurally diverse major groove DNA interstrand crosslinks using three different aldehyde precursors
Shivam Mukherjee1, Angelo Guainazzi2, Orlando D Schärer3
1Department of Chemistry, Stony Brook University, Stony Brook, NY 11794-3400, USA.
Abstract:
DNA interstrand crosslinks (ICLs) are extremely cytotoxic lesions that block essential cellular processes, such as replication and transcription. Crosslinking agents are widely used in cancer chemotherapy and form an array of structurally diverse ICLs. Despite the clinical success of these agents, resistance of tumors to crosslinking agents, for example, through repair of these lesions by the cellular machinery remains a problem. We have previously reported the synthesis of site-specific ICLs mimicking those formed by nitrogen mustards to facilitate the studies of cellular responses to ICL formation. Here we extend these efforts and report the synthesis of structurally diverse major groove ICLs that induce severe, little or no distortion in the DNA. Our approach employs the incorporation of aldehyde precursors of different lengths into complementary strands and ICL formation using a double reductive amination with a variety of amines. Our studies provide insight into the structure and reactivity parameters of ICL formation by double reductive amination and yield a set of diverse ICLs that will be invaluable for exploring structure-activity relationships in ICL repair.
Insights
Researchers synthesized diverse DNA interstrand crosslinks (ICLs) to study cancer chemotherapy resistance. These new ICLs will help understand how cells repair these DNA lesions, potentially improving cancer treatments.
Area of Science:
- Molecular Biology
- Medicinal Chemistry
Background:
- DNA interstrand crosslinks (ICLs) are cytotoxic DNA lesions that impede replication and transcription.
- ICLs are formed by chemotherapy drugs, but tumor resistance due to ICL repair is a significant clinical challenge.
Purpose of the Study:
- To synthesize structurally diverse major groove ICLs that cause varying degrees of DNA distortion.
- To provide novel tools for investigating the structure-activity relationships in ICL repair.
Main Methods:
- Incorporation of aldehyde precursors of varying lengths into DNA strands.
- Formation of ICLs via double reductive amination with diverse amines.
Main Results:
- Successful synthesis of structurally diverse major groove ICLs.
- Demonstration of ICL formation with tunable DNA distortion levels.
- Gained insights into the structure and reactivity of ICL formation via double reductive amination.
Conclusions:
- The developed method yields a versatile set of ICLs for structure-activity relationship studies.
- These ICLs will be valuable for understanding cellular responses to DNA damage and improving cancer therapy.
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