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Analytical study of phosphorothioate analogues of oligodeoxynucleotides using high-performance liquid chromatography

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    In addition to their sequence-specific functionality, single-stranded oligonucleotides are polymers with polyanionic characteristics that are largely conserved, regardless of their nucleotide sequence. Phosphorothioation of oligonucleotides confers increased hydrophobicity and has been shown to specifically mediate antiviral activity in a manner independent of the increased nuclease stability present with this modification.70,71 Phosphorothioates with broad-spectrum activity against viral and other infectious diseases are also called “nucleic acid polymers” (NAPs).72

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    However, in addition to this sequence specific functionality, single stranded oligonucleotides are also polymers with polyanionic characteristics which are largely conserved regardless of their nucleotide sequence. Similar to sulfation in other antiviral polymers, the hydrophobic (and amphipathic) characteristic of oligonucleotides is enhanced by phosphorothioation of the phosphodiester linkages (Agrawal et al., 1990), rendering phosphorothioated oligonucleotides heparin sulfate-like in their chemical properties (Guvakova et al., 1995; Fennewald and Rando, 1995) similar to other antiviral polymers (Fig 1). Numerous clinical trials have been conducted with single stranded phosphorothioated oligonucleotides (PS-ONs, used as antisense oligonucleotides) over the past two decades from which conserved class behaviours have been established: after administration by intravenous infusion or subcutaneous injection, PS-ONs are rapidly cleared from the blood (1/2 life < 1 h) concomitant with accumulation in peripheral organs, the most significant of which are the liver and kidney (Bennett and Swazye, 2010), ultimately leading to the upake of PS-ONs into hepatocytes by mechanism not yet fully elucidated (Geary et al., 2015).

  • Toll-like receptor 9 ligand D-type oligodeoxynucleotide D35 as a broad inhibitor for influenza A virus replication that is associated with suppression of neuraminidase activity

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    However, the antiviral activity of PS-ONs is dependent on the length and hydrophobicity of the ONs. It has been known that phosphorothioation increases the hydrophobicity of ONs (Agrawal et al., 1990). The increased hydrophobicity of PS-ONs contributes to their inhibitory activity against HIV-1 fusion and entry, because longer PS-ONs (≥30 bases) which have a greater hydrophobicity are more potent in blocking the hydrophobic interactions involved in the gp41 six-helix bundle formation and inhibiting the HIV-1-mediated cell–cell fusion than shorter PS-ONs (<30 bases) (Vaillant et al., 2006).

  • Amphipathic DNA Polymers Inhibit Hepatitis C Virus Infection by Blocking Viral Entry

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    Phosphorothiate modification of oligonucleotides was initially designed to reduce enzymatic degradation. This modification also increases the hydrophobicity of the phosphodiester backbone and thus imparts an amphipathic character to the oligonucleotide polymer.28 Recent studies showed that the amphipathic PS-ONs have a sequence-independent antiviral activity against HIV-1 and other viruses,14,29 suggesting that these compounds may exhibit a broad-spectrum antiviral activity.

  • Sequence confirmation of synthetic phosphorothioate oligodeoxynucleotides using Sanger sequencing reactions in combination with mass spectrometry

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    In synthetic processes of phosphorothioate oligodeoxynucleotides, the impurities constitute primarily deletion and thiation failures [22]. In general, the phosphodiester impurities can be analyzed by anion exchange high-performance liquid chromatography (HPLC) or 31P nuclear magnetic resonance (NMR) analysis [23–26] in the structure confirmation process, which can efficiently analyze whether or not phosphorothioate modification is complete. The sequencing analysis aims to confirm the sequence accuracy rather then impurity analysis in quality control of synthetic phosphorothioate oligodeoxynucleotides.

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