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Search for "deprotection" in Full Text gives 613 result(s) in Beilstein Journal of Organic Chemistry. Showing first 200.

A photochemical C=C cleavage process: toward access to backbone N-formyl peptides

  • Haopei Wang and
  • Zachary T. Ball

Beilstein J. Org. Chem. 2021, 17, 2932–2938, doi:10.3762/bjoc.17.202

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  • contrast, photorelease systems based on C–C or C=C bond photocleavage are quite rare [14][15]. We recently reported a vinylogous analogue of this photo-deprotection process, which allowed photocleavage of alkenyl sp2 C–X bonds, rather than benzylic sp3 C–X cleavage [16][17]. We now report that further
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Published 15 Dec 2021

First total synthesis of hoshinoamide A

  • Haipin Zhou,
  • Zihan Rui,
  • Yiming Yang,
  • Shengtao Xu,
  • Yutian Shao and
  • Long Liu

Beilstein J. Org. Chem. 2021, 17, 2924–2931, doi:10.3762/bjoc.17.201

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  • -OH (4 equiv), HATU/coupling reagent (4 equiv) and DIPEA (8 equiv) in DMF (20 mL). The coupling mixture was filtered and the resin was washed with CH2Cl2 (10 mL × 5) and CH3OH (10 mL × 5). General procedures for deprotection of Fmoc: The loaded resin was treated with a solution of 20 vol % piperidine
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Published 15 Dec 2021

The ethoxycarbonyl group as both activating and protective group in N-acyl-Pictet–Spengler reactions using methoxystyrenes. A short approach to racemic 1-benzyltetrahydroisoquinoline alkaloids

  • Marco Keller,
  • Karl Sauvageot-Witzku,
  • Franz Geisslinger,
  • Nicole Urban,
  • Michael Schaefer,
  • Karin Bartel and
  • Franz Bracher

Beilstein J. Org. Chem. 2021, 17, 2716–2725, doi:10.3762/bjoc.17.183

Graphical Abstract
  • control) gave the desired racemic N-ethoxycarbonyl-1-benzyltetrahydroisoquinolines 5a–h with intact ethoxycarbonyl protection of the phenolic groups (Table 2). Simultaneous phenol deprotection and reduction of the carbamate group (route A) to an N-methyl group was accomplished by lithium alanate reduction
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Published 05 Nov 2021

Synthetic strategies toward 1,3-oxathiolane nucleoside analogues

  • Umesh P. Aher,
  • Dhananjai Srivastava,
  • Girij P. Singh and
  • Jayashree B. S

Beilstein J. Org. Chem. 2021, 17, 2680–2715, doi:10.3762/bjoc.17.182

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  • into a primary alcohol with sodium borohydride affords compound 23. The protection of the hydroxy group of compound 23 was carried out by TBDPSCl in the presence of imidazole and N,N-dimethylformamide (DMF) as solvent, and deprotection of the benzoyl group by ammonolysis provides silylated compound 24
  • oxathiolane derivative 4 with silylated cytosine, which afforded 79 as a mixture of the cis- and trans-nucleosides. The process used N-protected cytosine and further chromatographic separation. The deprotection with a methanolic ammonia solution provided racemic (±)-BCH-189 (1c). In vitro studies of (±)-BCH
  • ) catalyst to obtain nucleoside derivative 79a, followed by deprotection using methanolic ammonia (Scheme 27). Cousins et al. [49] carried out the coupling of enantiomerically enriched oxathiolane propionate 44 with silylated cytosine in the presence of the Lewis acid trimethylsilyl iodide (TMSI), which gave
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Published 04 Nov 2021

Synthesis of highly substituted fluorenones via metal-free TBHP-promoted oxidative cyclization of 2-(aminomethyl)biphenyls. Application to the total synthesis of nobilone

  • Ilya A. P. Jourjine,
  • Lukas Zeisel,
  • Jürgen Krauß and
  • Franz Bracher

Beilstein J. Org. Chem. 2021, 17, 2668–2679, doi:10.3762/bjoc.17.181

Graphical Abstract
  • of biaryl aldehyde intermediates 8, reduction [60] in the case of nitriles 14, or Boc deprotection [61] for 14k, m, o according to standard protocols (Schemes 4–7; for details, see Supporting Information File 1). Although it may seem counterintuitive to first convert aldehydes 8 and nitriles 14 into
  • obtained via TBHP-mediated cyclization of 23 and subsequent TBS-deprotection of intermediate 24 with pyridine and HF·pyridine complex [66] in a total yield of 26% over the two steps. The longest linear sequence was 7 steps, with an overall yield of 5%. Finally, the reaction mechanism of the oxidative
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Published 02 Nov 2021

Synthesis of new bile acid-fused tetrazoles using the Schmidt reaction

  • Dušan Đ. Škorić,
  • Olivera R. Klisurić,
  • Dimitar S. Jakimov,
  • Marija N. Sakač and
  • János J. Csanádi

Beilstein J. Org. Chem. 2021, 17, 2611–2620, doi:10.3762/bjoc.17.174

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  • NaHCO3 solution and water. After drying and evaporation of the solvent in vacuo, crude products were obtained and were purified by column chromatography. General procedure for deprotection In a round-bottom flask, the protected bile acid tetrazole (0.20 mmol) was dissolved in an ethanolic KOH solution
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Published 20 Oct 2021

Strategies for the synthesis of brevipolides

  • Yudhi D. Kurniawan and
  • A'liyatur Rosyidah

Beilstein J. Org. Chem. 2021, 17, 2399–2416, doi:10.3762/bjoc.17.157

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  • esterification step. In the retrosynthesis, compound 107 is conceived as the branching intermediate to access both brevipolides M and N (Scheme 13). The 5,6-dihydro-α-pyrone moiety can be derived from alkyne 108 via the sequential deprotection, Lindlar reduction, and oxidation. The propargylic alcohol moiety is
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Published 14 Sep 2021

Chemical syntheses and salient features of azulene-containing homo- and copolymers

  • Vijayendra S. Shetti

Beilstein J. Org. Chem. 2021, 17, 2164–2185, doi:10.3762/bjoc.17.139

Graphical Abstract
  • by using [Pd(allyl)Cl]2 and JackiePhos as a ligand to obtain the polymer 30 in 52% yield. The deprotection of the N-Boc functionality led to the formation of poly[2,6-aminoazulene] 31 in excellent yields (Scheme 7C). The N-Boc-protected polymer 30 possessed good solubility in organic solvents and its
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Published 24 Aug 2021

Recent advances in the syntheses of anthracene derivatives

  • Giovanni S. Baviera and
  • Paulo M. Donate

Beilstein J. Org. Chem. 2021, 17, 2028–2050, doi:10.3762/bjoc.17.131

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  • methodology, they synthesized 2,3,6,7-anthracenetetracarbonitrile (90) in a good yield (84%) by double intermolecular Wittig reaction of the protected benzenetetracarbaldehyde 87 with reagent 88, followed by deprotection and double ring-closing reaction of intermediate 89; they used a mixture of triflic acid
  • -anthracenetetracarbonitrile (90) by double Wittig reaction followed by deprotection and intramolecular double ring-closing reaction. Homo-elongation protocol for the synthesis of substituted acene diesters/dinitriles. Synthesis of two new parental BN anthracenes via borylative cyclization. Synthesis of substituted
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Published 10 Aug 2021

Progress and challenges in the synthesis of sequence controlled polysaccharides

  • Giulio Fittolani,
  • Theodore Tyrikos-Ergas,
  • Denisa Vargová,
  • Manishkumar A. Chaube and
  • Martina Delbianco

Beilstein J. Org. Chem. 2021, 17, 1981–2025, doi:10.3762/bjoc.17.129

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  • be quite challenging to prepare. Moreover, problems can occur during the removal of the PGs, since partially deprotected compounds can generate insoluble aggregates [24]. Incomplete deprotection and residual PGs can largely affect the properties of the obtained polymer. Chemical synthesis provides
  • synthetic steps. In general, BBs are equipped with a reactive anomeric LG to allow for glycosylation and suitable PGs to ensure regio- and stereocontrol [25]. Even though, in most cases, BB preparation follows straightforward protection/deprotection strategies, the low selectivity and yield of certain
  • a solid support following a linear approach (Figure 1D). Cycles of glycosylation and selective deprotection are iteratively performed to access the desired polysaccharide with full control over the length and the monosaccharide sequence [32]. Upon completion of the assembly, the desired product is
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Published 05 Aug 2021

On the application of 3d metals for C–H activation toward bioactive compounds: The key step for the synthesis of silver bullets

  • Renato L. Carvalho,
  • Amanda S. de Miranda,
  • Mateus P. Nunes,
  • Roberto S. Gomes,
  • Guilherme A. M. Jardim and
  • Eufrânio N. da Silva Júnior

Beilstein J. Org. Chem. 2021, 17, 1849–1938, doi:10.3762/bjoc.17.126

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  • highly site-selective and wide functional-group tolerant reaction. To test this protocol versatility over biologically relevant scaffolds, a COCF3-leelamine analogue 48 with two sterically differentiated benzylic sites was selectively aminated at the secondary benzylic site. After Tces deprotection, the
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Published 30 Jul 2021

Cationic oligonucleotide derivatives and conjugates: A favorable approach for enhanced DNA and RNA targeting oligonucleotides

  • Mathias B. Danielsen and
  • Jesper Wengel

Beilstein J. Org. Chem. 2021, 17, 1828–1848, doi:10.3762/bjoc.17.125

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  • synthesis and coupling efficiency on the synthesizer, significant loss of the hydrocarbon-linked group was observed during the alkaline deprotection conditions [115]. After insertion into a 19-mer DNA-ON, modification 79 did not show any significant increase in Tm. This trend was changed when the
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Published 29 Jul 2021

Development of N-F fluorinating agents and their fluorinations: Historical perspective

  • Teruo Umemoto,
  • Yuhao Yang and
  • Gerald B. Hammond

Beilstein J. Org. Chem. 2021, 17, 1752–1813, doi:10.3762/bjoc.17.123

Graphical Abstract
  • . Deprotection followed by fluorination with FClO3 gave (R)- and (S)-28-3 in good yields. X-ray crystallography was used to determine the structure and confirm the absolute stereochemistry of (S)-28-3. The optically active reagents (R)- and (S)-28-3 were effective in the enantioselective fluorination of cyclic
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Published 27 Jul 2021

Chemical synthesis of C6-tetrazole ᴅ-mannose building blocks and access to a bioisostere of mannuronic acid 1-phosphate

  • Eleni Dimitriou and
  • Gavin J. Miller

Beilstein J. Org. Chem. 2021, 17, 1527–1532, doi:10.3762/bjoc.17.110

Graphical Abstract
  • afforded N1-Bn and N2-Bn tetrazoles 13 and 14 in low yield (31%) and again with little regiodiscrimination (N1-Bn/N2-Bn = 1:1.2). The synthesis of appropriately protected C6-tetrazole donors 11–14 was accomplished to allow for regioselective deprotection and unveil C4-acceptor capability within a broader
  • -phosphate 21. Deprotection utilised 0.6 equiv of Pd/C (0.1 equiv per benzyl group) and 0.6 equiv of Pd(OH)2/C to afford 21 in 72% yield after 24 h. NMR analysis of 21 confirmed the presence of a C6-tetrazole (δC = 160.8 ppm), alongside an anomeric phosphate (δP = −2.15 ppm), and 1H coupling constant data (δ
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Published 05 Jul 2021

Free-radical cyclization approach to polyheterocycles containing pyrrole and pyridine rings

  • Ivan P. Mosiagin,
  • Olesya A. Tomashenko,
  • Dar’ya V. Spiridonova,
  • Mikhail S. Novikov,
  • Sergey P. Tunik and
  • Alexander F. Khlebnikov

Beilstein J. Org. Chem. 2021, 17, 1490–1498, doi:10.3762/bjoc.17.105

Graphical Abstract
  • methodology for the preparation of pyrido[2,1-a]pyrrolo[3,2-c]isoquinoline derivatives A (Scheme 1). The previously developed Pd-catalyzed protocol for the preparation of these compounds could be used only for arylation of pyrrole N-benzyl protected starting materials C [17]. The deprotection of the product
  • ]isoquinoline backbone from N-unprotected pyrrolylpyridinium salts and, unlike the Pd-catalyzed version cyclization, avoids the deprotection step that is accompanied by isomerization. Molecular structure of compound 3a, displacement parameters are drawn at 50%. Molecular structure of compound 13, displacement
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Published 23 Jun 2021

Total synthesis of ent-pavettamine

  • Memory Zimuwandeyi,
  • Manuel A. Fernandes,
  • Amanda L. Rousseau and
  • Moira L. Bode

Beilstein J. Org. Chem. 2021, 17, 1440–1446, doi:10.3762/bjoc.17.99

Graphical Abstract
  • functional groups as they were unveiled. The functionalized C5 fragments were coupled via reductive amination revealing the C10 carbon backbone. Deprotection of the alcohol and amine functional groups successfully provided ent-pavettamine as a TFA salt. Keywords: chiral sulfoxide; ent-pavettamine
  • addition of the chiral auxiliary. Our attention then turned to the stereoselective reduction of 8. Chelation-controlled reduction of 8 using ZnCl2 and DIBALH allowed for the successful formation of 16 as a single diastereomer (Scheme 4), as evidenced by 1H NMR spectroscopy [18]. TBS deprotection furnished
  • the 1,3-diol motif [19]. The group is also associated with ease of deprotection, which is well documented in carbohydrate and sugar chemistry [20]. Comparison of our new route involving trityl and TBS protections with our previously published acetonide protection route for the synthesis of 4, showed
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Published 10 Jun 2021

Double-headed nucleosides: Synthesis and applications

  • Vineet Verma,
  • Jyotirmoy Maity,
  • Vipin K. Maikhuri,
  • Ritika Sharma,
  • Himal K. Ganguly and
  • Ashok K. Prasad

Beilstein J. Org. Chem. 2021, 17, 1392–1439, doi:10.3762/bjoc.17.98

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  • deprotection with TBAF and aqueous methanolic ammonia resulted in the formation of 2′-deoxy-2′-(thymine-1-yl)ethyluridine (11) in 37% yield. When the same procedure was repeated with N3-benzoyluridine (10) the double-headed nucleoside 11 was obtained in 67% yield (Scheme 3) [35]. The double-headed nucleoside
  • . Global deprotection of 32 using palladium-catalyzed hydrogenation conditions resulted in the formation of the targeted double-headed nucleoside 33 (Scheme 8) [33]. The double-headed nucleoside 33 was dimethoxytritylated, phosphitylated, and incorporated into duplex and its ability to recognize
  • (Scheme 17) [54]. The tert-butyldimethylsilyl-protected (TBDMS) nucleoside 76 was first hydrolyzed using NaOH, which was followed by TBDMS deprotection using tetra-n-butylammonium fluoride (TBAF) in tetrahydrofuran (THF) to afford the double-headed nucleoside 77. The TBDMS-protected nucleoside 73 was
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Published 08 Jun 2021

N-tert-Butanesulfinyl imines in the asymmetric synthesis of nitrogen-containing heterocycles

  • Joseane A. Mendes,
  • Paulo R. R. Costa,
  • Miguel Yus,
  • Francisco Foubelo and
  • Camilla D. Buarque

Beilstein J. Org. Chem. 2021, 17, 1096–1140, doi:10.3762/bjoc.17.86

Graphical Abstract
  • organometallic compounds to the iminic carbon [1][2][3]. The ready availability of both enantiomers of tert-butanesulfinamide in large-scale processes, the easy deprotection of the amine under mild acidic conditions, and a practical procedure for recycling the chiral auxiliary [4][5] have contributed to the
  • reaction intermediate that was not isolated. Treatment of 115 with potassium hexamethyldisilazide (KHMDS) led to the sulfinyl piperidine derivative 116, and final deprotection under acidic conditions produced enantioenriched 2-allylpiperidine (117) as its hydrochloride (Scheme 32) [121]. Compound 117 has
  • co-workers described the diastereoselective synthesis of 1-substituted isoquinolones using one-pot addition–cyclization–deprotection of the imine with Grignard reagents [130]. In this work, the addition to chiral imines 146, 148 and 150 was performed using 2,2’-dipyridyl- or 4-methylmorpholine (NMM
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Published 12 May 2021

Synthesis of multiply fluorinated N-acetyl-D-glucosamine and D-galactosamine analogs via the corresponding deoxyfluorinated glucosazide and galactosazide phenyl thioglycosides

  • Vojtěch Hamala,
  • Lucie Červenková Šťastná,
  • Martin Kurfiřt,
  • Petra Cuřínová,
  • Martin Dračínský and
  • Jindřich Karban

Beilstein J. Org. Chem. 2021, 17, 1086–1095, doi:10.3762/bjoc.17.85

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  • a robust protecting group and to conduct final deprotection under neutral conditions. After initial experimentation with benzyl glycosides (Scheme 1, PG = OBn), phenyl thioglycosides (Scheme 1, PG = SPh), readily available from 1,6-anhydropyranoses [39] as we described earlier [40] were found to
  • -catalyzed hydrogenolysis in ethanol/acetic anhydride appeared to be a logical deprotection step [26], the desired fluoro sugars were contaminated with varying quantities of unidentified byproducts. However, clean debenzylation was achieved by first converting the azide to an acetamide on reaction with
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Published 11 May 2021

Synthetic accesses to biguanide compounds

  • Oleksandr Grytsai,
  • Cyril Ronco and
  • Rachid Benhida

Beilstein J. Org. Chem. 2021, 17, 1001–1040, doi:10.3762/bjoc.17.82

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Published 05 May 2021

Beyond ribose and phosphate: Selected nucleic acid modifications for structure–function investigations and therapeutic applications

  • Christopher Liczner,
  • Kieran Duke,
  • Gabrielle Juneau,
  • Martin Egli and
  • Christopher J. Wilds

Beilstein J. Org. Chem. 2021, 17, 908–931, doi:10.3762/bjoc.17.76

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  • kinetics and higher solubility in organic solvents, useful for automated synthesis, such as the Beaucage reagent [86]. Conveniently, during deprotection of the support-bound oligonucleotide, aminolysis removes the β-thiobenzoylethyl group from the backbone to generate the free PS2-modified oligonucleotide
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Published 28 Apr 2021

Enhanced target cell specificity and uptake of lipid nanoparticles using RNA aptamers and peptides

  • Roslyn M. Ray,
  • Anders Højgaard Hansen,
  • Maria Taskova,
  • Bernhard Jandl,
  • Jonas Hansen,
  • Citra Soemardy,
  • Kevin V. Morris and
  • Kira Astakhova

Beilstein J. Org. Chem. 2021, 17, 891–907, doi:10.3762/bjoc.17.75

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  • deprotection was achieved via 20% piperidine in DMF (1 × 2 min and 1 × 18 min) to prepare the resin for the next coupling step. The resin was washed three times with each solvent in the given order DMF, DCM, and DMF after every reaction step. Peptide sequences T7: H-HAIYPRH-NH2 Modified T7: dipalmitoyl-Dap
  • . Coupling of Fmoc-Dap(Fmoc)-OH and Fmoc deprotection were carried out as described above. To ensure the complete lipidation of the two free amines of Dap, 8 equiv of palmitic acid, 8 equiv of HATU, and 12 equiv of DIPEA in DMF were used. Cleavage of the peptide–lipid conjugates from the solid support and
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Published 26 Apr 2021

β-Lactamase inhibition profile of new amidine-substituted diazabicyclooctanes

  • Zafar Iqbal,
  • Lijuan Zhai,
  • Yuanyu Gao,
  • Dong Tang,
  • Xueqin Ma,
  • Jinbo Ji,
  • Jian Sun,
  • Jingwen Ji,
  • Yuanbai Liu,
  • Rui Jiang,
  • Yangxiu Mu,
  • Lili He,
  • Haikang Yang and
  • Zhixiang Yang

Beilstein J. Org. Chem. 2021, 17, 711–718, doi:10.3762/bjoc.17.60

Graphical Abstract
  • deprotection was achieved by using trifluoroacetic acid (TFA) before the preparative HPLC. The synthesis of compounds A22 and A23 was accomplished by an alternative route elaborated in Scheme 5. Coupling of compound 5 and intermediate 2 was achieved by using HATU and DIPEA in a DMF/CH2Cl2 mixture to form the
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Published 12 Mar 2021

α,γ-Dioxygenated amides via tandem Brook rearrangement/radical oxygenation reactions and their application to syntheses of γ-lactams

  • Mikhail K. Klychnikov,
  • Radek Pohl,
  • Ivana Císařová and
  • Ullrich Jahn

Beilstein J. Org. Chem. 2021, 17, 688–704, doi:10.3762/bjoc.17.58

Graphical Abstract
  • cyclized radicals 22 couple subsequently with TEMPO providing lactams 12a–k after deprotection of the TMS groups. The cyclized tertiary alkoxyamines (R3 = Me) are known to be thermally labile [89][90][91][92] and consequently 4-isopropenylpyrrolidones 12g,k are isolated as the exclusive products. The
  • α-(aminoxy)amides 9. Thermal radical cyclization of compounds 9 and further deprotection (general procedure) The α-(aminoxy)amide 9 (0.65 mmol) was heated in t-BuOH (6 mL) in a microwave reactor at 150 °C for 1 h. The reaction mixture was diluted with diethyl ether (5 mL), transferred into a round
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Published 09 Mar 2021

Synthesis and properties of oligonucleotides modified with an N-methylguanidine-bridged nucleic acid (GuNA[Me]) bearing adenine, guanine, or 5-methylcytosine nucleobases

  • Naohiro Horie,
  • Takao Yamaguchi,
  • Shinji Kumagai and
  • Satoshi Obika

Beilstein J. Org. Chem. 2021, 17, 622–629, doi:10.3762/bjoc.17.54

Graphical Abstract
  • attention to the reactivity of each nucleobase. Finally, the acetyl group was successfully removed by extending the deprotection time to 10 h. The yield range of the designed oligonucleotides ON1–ON3 was 12–25%, as shown in Table 1. Duplex-forming ability of oligonucleotides modified with GuNA[Me]-A, -G, or
  • treated with a 1:1 mixture of 7 N ammonia solution in methanol and 40% aq. methylamine at room temperature for 10 h to remove the solid support, and then the mixture was heated at 60 °C for 10 h (mC) or 15 h (A and G). After deprotection, the oligonucleotides were rapidly purified using a Sep-Pac® Plus
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Published 04 Mar 2021
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