Cargando…

Towards superior mRNA caps accessible by click chemistry: synthesis and translational properties of triazole-bearing oligonucleotide cap analogs

Messenger RNA (mRNA)-based gene delivery is a powerful strategy for the development of vaccines and therapeutics. Consequently, approaches that enable efficient synthesis of mRNAs with high purity and biological activity are in demand. Chemically modified 7-methylguanosine (m(7)G) 5′ caps can augmen...

Descripción completa

Detalles Bibliográficos
Autores principales: Kozarski, Mateusz, Drazkowska, Karolina, Bednarczyk, Marcelina, Warminski, Marcin, Jemielity, Jacek, Kowalska, Joanna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10126820/
https://www.ncbi.nlm.nih.gov/pubmed/37114020
http://dx.doi.org/10.1039/d3ra00026e
_version_ 1785030342075219968
author Kozarski, Mateusz
Drazkowska, Karolina
Bednarczyk, Marcelina
Warminski, Marcin
Jemielity, Jacek
Kowalska, Joanna
author_facet Kozarski, Mateusz
Drazkowska, Karolina
Bednarczyk, Marcelina
Warminski, Marcin
Jemielity, Jacek
Kowalska, Joanna
author_sort Kozarski, Mateusz
collection PubMed
description Messenger RNA (mRNA)-based gene delivery is a powerful strategy for the development of vaccines and therapeutics. Consequently, approaches that enable efficient synthesis of mRNAs with high purity and biological activity are in demand. Chemically modified 7-methylguanosine (m(7)G) 5′ caps can augment the translational properties of mRNA; however, efficient synthesis of structurally complex caps, especially on a large scale, is challenging. Previously, we proposed a new strategy to assemble dinucleotide mRNA caps by replacing the traditional pyrophosphate bond formation by copper-catalyzed azide–alkyne cycloaddition (CuAAC). Here, we used CuAAC to synthesize 12 novel triazole-containing tri- and tetranucleotide cap analogs with the aim of exploring the chemical space around the first transcribed nucleotide in mRNA and overcoming some of the limitations previously reported for the triazole-containing dinucleotide analogs. We evaluated the efficiency of incorporation into RNA for these analogs and their influence on the translational properties of in vitro transcribed (IVT) mRNAs in rabbit reticulocyte lysate and JAWS II cultured cells. The incorporation of the triazole moiety within the 5′,5′-oligophosphate of trinucleotide cap produced compounds that were well incorporated into RNA by T7 polymerase while replacing the 5′,3′-phosphodiester bond with triazole impaired incorporation and translation efficiency, despite a neutral effect on the interaction with the translation initiation factor eIF4E. One of the compounds (m(7)Gppp-tr-C(2)H(4)pA(m)pG), had translational activity and other biochemical properties comparable to natural cap 1 structure, thus being a promising mRNA capping reagent for potential in cellulo and in vivo applications in the field of mRNA-based therapeutics.
format Online
Article
Text
id pubmed-10126820
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-101268202023-04-26 Towards superior mRNA caps accessible by click chemistry: synthesis and translational properties of triazole-bearing oligonucleotide cap analogs Kozarski, Mateusz Drazkowska, Karolina Bednarczyk, Marcelina Warminski, Marcin Jemielity, Jacek Kowalska, Joanna RSC Adv Chemistry Messenger RNA (mRNA)-based gene delivery is a powerful strategy for the development of vaccines and therapeutics. Consequently, approaches that enable efficient synthesis of mRNAs with high purity and biological activity are in demand. Chemically modified 7-methylguanosine (m(7)G) 5′ caps can augment the translational properties of mRNA; however, efficient synthesis of structurally complex caps, especially on a large scale, is challenging. Previously, we proposed a new strategy to assemble dinucleotide mRNA caps by replacing the traditional pyrophosphate bond formation by copper-catalyzed azide–alkyne cycloaddition (CuAAC). Here, we used CuAAC to synthesize 12 novel triazole-containing tri- and tetranucleotide cap analogs with the aim of exploring the chemical space around the first transcribed nucleotide in mRNA and overcoming some of the limitations previously reported for the triazole-containing dinucleotide analogs. We evaluated the efficiency of incorporation into RNA for these analogs and their influence on the translational properties of in vitro transcribed (IVT) mRNAs in rabbit reticulocyte lysate and JAWS II cultured cells. The incorporation of the triazole moiety within the 5′,5′-oligophosphate of trinucleotide cap produced compounds that were well incorporated into RNA by T7 polymerase while replacing the 5′,3′-phosphodiester bond with triazole impaired incorporation and translation efficiency, despite a neutral effect on the interaction with the translation initiation factor eIF4E. One of the compounds (m(7)Gppp-tr-C(2)H(4)pA(m)pG), had translational activity and other biochemical properties comparable to natural cap 1 structure, thus being a promising mRNA capping reagent for potential in cellulo and in vivo applications in the field of mRNA-based therapeutics. The Royal Society of Chemistry 2023-04-25 /pmc/articles/PMC10126820/ /pubmed/37114020 http://dx.doi.org/10.1039/d3ra00026e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Kozarski, Mateusz
Drazkowska, Karolina
Bednarczyk, Marcelina
Warminski, Marcin
Jemielity, Jacek
Kowalska, Joanna
Towards superior mRNA caps accessible by click chemistry: synthesis and translational properties of triazole-bearing oligonucleotide cap analogs
title Towards superior mRNA caps accessible by click chemistry: synthesis and translational properties of triazole-bearing oligonucleotide cap analogs
title_full Towards superior mRNA caps accessible by click chemistry: synthesis and translational properties of triazole-bearing oligonucleotide cap analogs
title_fullStr Towards superior mRNA caps accessible by click chemistry: synthesis and translational properties of triazole-bearing oligonucleotide cap analogs
title_full_unstemmed Towards superior mRNA caps accessible by click chemistry: synthesis and translational properties of triazole-bearing oligonucleotide cap analogs
title_short Towards superior mRNA caps accessible by click chemistry: synthesis and translational properties of triazole-bearing oligonucleotide cap analogs
title_sort towards superior mrna caps accessible by click chemistry: synthesis and translational properties of triazole-bearing oligonucleotide cap analogs
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10126820/
https://www.ncbi.nlm.nih.gov/pubmed/37114020
http://dx.doi.org/10.1039/d3ra00026e
work_keys_str_mv AT kozarskimateusz towardssuperiormrnacapsaccessiblebyclickchemistrysynthesisandtranslationalpropertiesoftriazolebearingoligonucleotidecapanalogs
AT drazkowskakarolina towardssuperiormrnacapsaccessiblebyclickchemistrysynthesisandtranslationalpropertiesoftriazolebearingoligonucleotidecapanalogs
AT bednarczykmarcelina towardssuperiormrnacapsaccessiblebyclickchemistrysynthesisandtranslationalpropertiesoftriazolebearingoligonucleotidecapanalogs
AT warminskimarcin towardssuperiormrnacapsaccessiblebyclickchemistrysynthesisandtranslationalpropertiesoftriazolebearingoligonucleotidecapanalogs
AT jemielityjacek towardssuperiormrnacapsaccessiblebyclickchemistrysynthesisandtranslationalpropertiesoftriazolebearingoligonucleotidecapanalogs
AT kowalskajoanna towardssuperiormrnacapsaccessiblebyclickchemistrysynthesisandtranslationalpropertiesoftriazolebearingoligonucleotidecapanalogs