INAME · Imaging nucleic acid metabolism in cells
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2016-01-04 → 2018-01-03
- EU contribution
- €195,455
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Imaging nucleic acid metabolism in cells
Problem addressed: Oligonucleotide based therapeutics have emerged as a new drug discovery platform. A range of oligonucleotide based drug candidates are being evaluated in late stage clinical trials. Chemical modifications of natural unmodified oligonucleotides are required to increase their half-life in serum, improving their binding affinity for targets and for delivering them to tissues of interest. Despite recent success these hurdles are far from fully solved and it is of utmost importance to develop new chemically modified oligonucleotides with better pharmacokinetic profile. We in this funding period developed a new class of chemically modified oligonucleotides termed as triazole-linked Locked Nucleic Acids. We replaced natural phosphodiester backbone with unnatural triazole inter-nucleotide linkages. Whilst triazole linkage increases the stability of a given oligonucleotides against nuclease degradation, these are not beneficial for binding to RNA targets. Locked nucleic acids (LNA) is a bi-cyclic nucleoside that contains an oxymethylene bridge between 2′- and 4′-carbons in the ribose ring. Oligonucleotide carrying LNAs bind to their complementary RNA targets high affinity and selectivity. We envisioned that oligonucleotides incorporating LNA and triazole-linkage should be highly resistant to degradation in vivo (triazole linkages) and will bind strongly to complementary RNA targets (LNA component). Thus, new dinucleosides with LNA on either side of the triazole linkages were prepared and incorporated into oligonucleotides. The resulting modified oligonucleotides are strikingly stable in biological media and showed enhanced binding to RNA targets. Importance for Society: Oligonucleotide based therapeutics provide an opportunity to treat any disease of genetic disorder. In particular, this new platform is gathering momentum for treating rare diseases where small molecule drugs have failed to provide desired results. With more than 100 candidates in clinical trials and few recent FDA approvals, this platform has generated mew hopes for people diagnosed with rare diseases. The molecules we have developed during last two years are promising and may find applications as therapeutic/diagnostic oligonucleotides. Thus, this project and area of therapeutic oligonucleotides is of high importance for society. Future perspective: Triazole-linked LNAs constitute a promising class of potential therapeutic oligonucleotides with excellent stability against nucleases and high RNA-binding affinity and RNA target specificity. The other advantage of t-LNAs is their reduced anionic charge (triazole-linkage being neutral). It will be of interest to see how the reduced anioninc charge will affect the cellular uptake of triazole-linked LNAs. Potential of this new class as splice switching oligonucleotides and siRNA is remains to be seen. Furthermore, this study showed that by combining two existing classed of modified nucleosides, new more potent nucleosides can be obtained. This strategy will potentially lead to novel chemical modification in coming years.
Data: CORDIS, © European Union
Project objective
In this project I, Pawan Kumar, a Nucleic Acid Chemist seek to team up with a pioneer in Nucleic Acid Chemistry and Biology (Professor Tom Brown) to carry out a highly interdisciplinary study at the University of Oxford to obtain deeper insights into DNA and RNA synthesis and metabolism in living cells and its application to cancer research. I propose to detect and quantify nucleic acid synthesis in proliferating cells by fluorescence without the requirement for toxic metal ions or antibodies. Earlier known methods such as [3H]thymidine and 5-bromo-2'-deoxyuridine labelling are either slow and labour intensive or require the use of harsh conditions. Incorporation of 5-ethynyl-2'-deoxyuridine into newly synthesized DNA and its subsequent detection with an azide derivative of a fluorescent dye under copper catalyzed alkyne azide cycloaddition (CuAAC) reaction conditions presents a better alternative. However, cytotoxicity of copper salts restricts its use for living cells. I will use the strain promoted alkyne azide cycloaddition reaction, Diels-Alder reaction, and inverse electron demand Diels-Alder reaction to study cellular DNA and RNA. None of these reactions require the use of toxic metal salts. I will develop the conditions under which both DNA and RNA will be stable, so that it will be possible to isolate intact fluorescent nucleic acids from cells for detailed analysis. I will prepare the modified nucleosides and use them to label newly synthesized DNA and RNA in cells enabling their detection by reaction with fluorophores by using metal free click ligation reactions. The study will provide a better understanding of the mechanisms regulating DNA replication and the interplay between transcription and DNA replication. In the project I will develop techniques to provide information on the toxic effect of antimetabolites used commonly in anti-cancer therapies, and for identifying the mechanisms of viral replication and understanding the viral life cycle.
Original text from CORDIS.
Participants
- THE CHANCELLOR, MASTERS AND SCHOLARS OF THE UNIVERSITY OF OXFORD · OxfordCoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
