4.6 Article

New Alkyne and Amine Linkers for Versatile Multiple Conjugation of Oligonucleotides

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ACS OMEGA
卷 6, 期 1, 页码 579-593

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsomega.0c05075

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资金

  1. Swedish Research Council [2016-03283]
  2. Duchenne Parent Project NL [17.013]
  3. Muscular Dystrophy Association [MDA602835]
  4. European Commission: H2020 Marie Sklodowska-Curie Actions, MMBIO [721613]
  5. Swedish Research Council [2016-03283] Funding Source: Swedish Research Council
  6. Marie Curie Actions (MSCA) [721613] Funding Source: Marie Curie Actions (MSCA)

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The report describes a simplified methodology for multiple labeling of oligonucleotides on a solid support, utilizing novel linkers with orthogonal functionalities to allow for attachment of varied moieties. The versatility of the approach is demonstrated through synthesis of oligonucleotide multiconjugates with different functional entities.
Oligonucleotide (ON) conjugates are increasingly important tools for various molecular diagnostics, nanotechnological applications, and for the development of nucleic acid-based therapies. Multiple labeling of ONs can further equip ON-conjugates and provide improved or additional tailored properties. Typically, the preparation of ON multiconjugates involves additional synthetic steps and/or manipulations in post-ON assembly. This report describes the simplified methodology allowing for multiple labeling of ONs on a solid support and is compatible with phosphodiester as well as phosphorothioate (PS) ONs. The current approach utilizes two novel alkyne-and amino-functionalized linker phosphoramidites that can be readily synthesized from a common aminodiol intermediate in three steps. The combination of new linkers provides orthogonal functionalities, which allow for multiple attachments of similar or varied moieties. The linkers are incorporated into ONs during automated solid-phase ON synthesis, and the conjugation with functional entities is achieved by either amide bond formation or by copper(I)-catalyzed azide-alkyne cycloaddition (CuAAC). The versatility of the approach is demonstrated by the synthesis of 5'-site ON multiconjugates with small molecules, peptides, and fatty acids as well as in the preparation of an internal peptide-ON conjugate.

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