Search PubMedSearch

PubMed · 40454547

A Versatile Disulfide-Containing Solid-Support Strategy for 3'-Modifiers in Oligonucleotides: Introducing Modular Tandem Oligonucleotide Synthesis.

Abstract

Chemical modifications of oligonucleotides are routinely employed to enhance their functional properties. Amino-modifiers serve as versatile chemical handles for postsynthetic (bio)conjugation, nucleic acid immobilization on solid supports, and investigations into nonenzymatic genome replication relevant to the origins of life, to name a few. Here, we report a cost-effective, disulfide-containing solid-support linkage that enables the on-column synthesis of nucleic acids with 3'-amino or 3'-phosphate modifications. The orthogonality of this solid-support linker facilitates an on-column protecting group strategy, enabling the synthesis of DNA and RNA containing 3'-amino-2',3'-dideoxyribosides from commercial unprotected mononucleosides. Additionally, we present an on-column deprotection protocol for DNA and RNA, prior to cleavage from the solid support, eliminating the precipitation step typically required in conventional RNA workflows, leading to higher recovery for certain strands. Expanding on our previous work, we introduce a versatile modular tandem oligonucleotide synthesis (mTOS) approach, allowing selective release of downstream strands from the one directly bound to the solid-support via the disulfide-containing linker. Together, these advances in solid-support design and oligonucleotide synthesis unlock new opportunities in bioconjugation, biotechnology, and the study of prebiotic replication mechanisms, broadening the utility of chemically modified nucleic acids across research disciplines.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Jagandeep S Saraya, Nicholas G Horton, Michael J Capperauld, Evan Zakaria, Derek K O'Flaherty. 2025-06-02. A Versatile Disulfide-Containing Solid-Support Strategy for 3'-Modifiers in Oligonucleotides: Introducing Modular Tandem Oligonucleotide Synthesis.. https://doi.org/10.1002/asia.202500537

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Properties of flavins where the 8-methyl group is replaced by mercapto- residues.

Sulfur functions in position 8 of the flavin nucleus give rise to new modified flavin derivatives, which should prove useful as probes of the flavin binding domains of flavoproteins. Here, we report on some properties of 8-nor-8-alkylmercaptoflavins and 8-nor-8-mercaptoflavin which are readily formed by nucleophilic displacement by alkylmercaptides or sulfide, with 8-nor-8-chloroflavins as starting material. The new flavins are characterized by extensive shifts in spectral properties, with very high extinction coefficients. 8-nor-8-mercaptoriboflavin is easily and reversibly converted to its (-S-S-) dimer. Oxidation of the sulfur group by peracids forms first sulfoxides and then sulfones, in which the characteristic usual flavin spectrum is regained. A comparison of 8-SR-8-nor-flavins with 8-OR-8-nor-flavins (Ghisla, S., and Mayhew, S.G. (1976) Eur. J. Biochem 63, 373-390) indicates that in both classes of compounds, optical properties, ionization constants, and oxidation-reduction potentials follow similar patterns.

Disulfides

Folding pathways of immunoglobulin domains. The folding kinetics of the Cgamma3 domain of human IgG1.

The in vitro folding kinetics of a fragment corresponding to an intact dimer of the Cgamma3 domain of human IgG1 (pFc') were monitored via the large changes in tryptophan fluorescence which accompany these processes. In going from the guanidine hydrochloride (Gdn.HCl) induced unfolded state (4.0 M Gdn.HCl) to the native state (0.5 M Gdn.HCl), three well-separated first-order processes were observed having time constants of 5, 50, and 350 s and roughly equal amplitudes. These values were concentration independent, a fact consistent with there being no fluorescence change accompanying dimerization. These time constants are one to two orders of magnitude slower than those observed for proteins of similar size such as ribonuclease or cytochrome c, most probably reflecting the complex processes involved in forming the correct beta-sheet arrangement of immunoglobulin domains. The corresponding unfolding transition is biphasic having time constant values of 50 and 500 s, the latter comprising 80% of the fluorescence change. These data indicate the presence of at least one species with intermediate fluorescence along the unfolding pathway. Gdn.HCl concentration jumps were also performed over various intervals within the transition zone. The results are not consistent with a fully reversible mechanism. In the absence of the intrachain disulfide bond, pFc' exists in an unfolded state even at 0.5 M Gdn.HCl. In a concomitant refolding and reoxidation experiment (at 0.5 M Gdn.HCl and using an optimal disulfide interchange catalytic system), the time constant for disulfide formation was in the range of 80--200 s and the fluorescence change revealed a lag phase analyzable in terms of rate-limiting reoxidation and refolding times consistent with those observed for the initially disulfide bonded species. Under similar conditions but a 4 M Gdn.HCl, reoxidation was more than two orders of magnitude slower, suggesting that reoxidation is directed by a refolding nucleation event.

Disulfides