| Literature DB >> 35424152 |
Katarzyna Debiec1, Elzbieta Sochacka1.
Abstract
An efficient method of ureido linkage formation during epimerization-free one-pot synthesis of protected hypermodified N 6-threonylcarbamoyladenosine (t6A) and its 2-SMe analog (ms2t6A) was developed. The method is based on a Tf2O-mediated direct conversion of the N-Boc-protecting group of N-Boc-threonine into the isocyanate derivative, followed by reaction with the N 6 exo-amine function of the sugar protected nucleoside (yield 86-94%). Starting from 2',3',5'-tri-O-acetyl protected adenosine or 2-methylthioadenosine, the corresponding 3'-O-phosphoramidite monomers were obtained in 48% and 42% overall yield (5 step synthesis). In an analogous synthesis, using the 2'-O-(tert-butyldimethylsilyl)-3',5'-O-(di-tert-butylsilylene) protection system at the adenosine ribose moiety, the t6A-phosphoramidite monomer was obtained in a less laborious manner and in a remarkably better yield of 74%. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35424152 PMCID: PMC8693639 DOI: 10.1039/d0ra09803e
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Fig. 1Abbreviations and structures of l-threonylcarbamoyl modified adenosines (the t6A37 family) located in tRNAs at the position 37.
Scheme 1Approaches for the formation of the ureido linkage in t6A modified nucleoside.
Optimization of the reaction conditions for the synthesis of t6A from Boc-Thr derivative 1 and the sugar-protected adenosine 3aa
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| Entry | Boc-Thr 1 | Tf2O/base | Solvent, time, temp. (°C) | Yield of 4a |
| 1 | 1.0 | Tf2O (1.5)/2-Cl-Py (3.0) | CH2Cl2, rt, 15 min | 19% |
| 2 | 1.0 | Tf2O (1.5)/2-Cl-Py (3.0) | CH2Cl2, 0 °C, 5 min | 46% |
| 3 | 1.0 | Tf2O (2.0)/2-Cl-Py (4.0) | CH2Cl2, 0 °C, 5 min | 42% |
| 4 | 1.0 | Tf2O (1.5)/Py (3.0) | CH2Cl2, rt | — |
| 5 | 1.0 | Tf2O (1.5)/DMAP (3.0) | CH2Cl2, rt | — |
| 6 | 1.0 | Tf2O (1.5)/Et3N (3.0) | CH2Cl2, rt | — |
| 7 | 1.0 | Tf2O (1.5)/2,6-lutidine (3.0) | CH2Cl2, rt | 16% |
| 8 | 1.5 | Tf2O (2.25)/2-Cl-Py (4.5) | CH2Cl2, 0 °C, 5 min | 71% |
| 9 | 2.0 | Tf2O (3.0)/2-Cl-Py (6.0) | CH2Cl2, 0 °C, 5 min | 80% |
| 10 | 2.5 | Tf2O (3.75)/2-Cl-Py (7.5) | CH2Cl2, 0 °C, 5 min | 92% |
| 11 | 2.5 | Tf2O (3.75)/2-Cl-Py (7.5) | Toluene, rt, 15 min | 92% |
All reactions were performed in a 0.2 mmol scale in 6 mL of the corresponding solvent.
The number of equivalents was calculated in respect to the nucleoside reagent 3a.
The ratios of 1/Tf2O = 1.5 and Tf2O/base = 2 were applied.
Isolated yield after column chromatography.
The reaction was carried out also in 0 °C and after stirring for 3 h no consumption of 1 was observed according to TLC analysis.
Scheme 2Preparation of t6A and ms2t6A 3′-O-phosphoramidities and samples of modified nucleosides t6A and ms2t6A.
Fig. 2HPLC profiles recorded for l-t6A and l-ms2t6A nucleosides and the corresponding d-allo nucleoside standards (d-allo-t6A, d-allo-ms2t6A).
Scheme 3Synthesis of t6A phosphoramidite (6a) using 2′-O-(tert-butyldimethylsilyl)-3′,5′-O-(di-tert-butylsilylene)adenosine as the nucleoside substrate.