DNA functionalization by dynamic chemistry

Dynamic combinatorial chemistry (DCC) is an attractive method to efficiently generate libraries of molecules from simpler building blocks by reversible reactions under thermodynamic control. Here we focus on the chemical modification of DNA oligonucleotides with acyclic diol linkers and demonstrate...

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Main Authors: Zeynep Kanlidere, Oleg Jochim, Marta Cal, Ulf Diederichsen
Format: Article
Language:English
Published: Beilstein-Institut 2016-10-01
Series:Beilstein Journal of Organic Chemistry
Subjects:
Online Access:https://doi.org/10.3762/bjoc.12.203
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spelling doaj-b33c1cbaea32401799209e139a0f6c9e2021-02-02T06:48:55ZengBeilstein-InstitutBeilstein Journal of Organic Chemistry1860-53972016-10-011212136214410.3762/bjoc.12.2031860-5397-12-203DNA functionalization by dynamic chemistryZeynep Kanlidere0Oleg Jochim1Marta Cal2Ulf Diederichsen3Institute of Organic and Biomolecular Chemistry, Georg-August University Göttingen, Tammannstrasse 2, D-37077 Göttingen, GermanyInstitute of Organic and Biomolecular Chemistry, Georg-August University Göttingen, Tammannstrasse 2, D-37077 Göttingen, GermanyInstitute of Organic and Biomolecular Chemistry, Georg-August University Göttingen, Tammannstrasse 2, D-37077 Göttingen, GermanyInstitute of Organic and Biomolecular Chemistry, Georg-August University Göttingen, Tammannstrasse 2, D-37077 Göttingen, GermanyDynamic combinatorial chemistry (DCC) is an attractive method to efficiently generate libraries of molecules from simpler building blocks by reversible reactions under thermodynamic control. Here we focus on the chemical modification of DNA oligonucleotides with acyclic diol linkers and demonstrate their potential for the deoxyribonucleic acid functionalization and generation of libraries of reversibly interconverting building blocks. The syntheses of phosphoramidite building blocks derived from D-threoninol are presented in two variants with protected amino or thiol groups. The threoninol building blocks were successfully incorporated via automated solid-phase synthesis into 13mer oligonucleotides. The amino group containing phosphoramidite was used together with complementary single-strand DNA templates that influenced the Watson–Crick base-pairing equilibrium in the mixture with a set of aldehyde modified nucleobases. A significant fraction of all possible base-pair mismatches was obtained, whereas, the highest selectivity (over 80%) was found for the guanine aldehyde templated by the complementary cytosine containing DNA. The elevated occurrence of mismatches can be explained by increased backbone plasticity derived from the linear threoninol building block as a cyclic deoxyribose analogue.https://doi.org/10.3762/bjoc.12.203base-pairingbase-pair mismatchDNA functionalizationDNA templatesdynamic combinatorial chemistryD-threoninol based scaffolds
collection DOAJ
language English
format Article
sources DOAJ
author Zeynep Kanlidere
Oleg Jochim
Marta Cal
Ulf Diederichsen
spellingShingle Zeynep Kanlidere
Oleg Jochim
Marta Cal
Ulf Diederichsen
DNA functionalization by dynamic chemistry
Beilstein Journal of Organic Chemistry
base-pairing
base-pair mismatch
DNA functionalization
DNA templates
dynamic combinatorial chemistry
D-threoninol based scaffolds
author_facet Zeynep Kanlidere
Oleg Jochim
Marta Cal
Ulf Diederichsen
author_sort Zeynep Kanlidere
title DNA functionalization by dynamic chemistry
title_short DNA functionalization by dynamic chemistry
title_full DNA functionalization by dynamic chemistry
title_fullStr DNA functionalization by dynamic chemistry
title_full_unstemmed DNA functionalization by dynamic chemistry
title_sort dna functionalization by dynamic chemistry
publisher Beilstein-Institut
series Beilstein Journal of Organic Chemistry
issn 1860-5397
publishDate 2016-10-01
description Dynamic combinatorial chemistry (DCC) is an attractive method to efficiently generate libraries of molecules from simpler building blocks by reversible reactions under thermodynamic control. Here we focus on the chemical modification of DNA oligonucleotides with acyclic diol linkers and demonstrate their potential for the deoxyribonucleic acid functionalization and generation of libraries of reversibly interconverting building blocks. The syntheses of phosphoramidite building blocks derived from D-threoninol are presented in two variants with protected amino or thiol groups. The threoninol building blocks were successfully incorporated via automated solid-phase synthesis into 13mer oligonucleotides. The amino group containing phosphoramidite was used together with complementary single-strand DNA templates that influenced the Watson–Crick base-pairing equilibrium in the mixture with a set of aldehyde modified nucleobases. A significant fraction of all possible base-pair mismatches was obtained, whereas, the highest selectivity (over 80%) was found for the guanine aldehyde templated by the complementary cytosine containing DNA. The elevated occurrence of mismatches can be explained by increased backbone plasticity derived from the linear threoninol building block as a cyclic deoxyribose analogue.
topic base-pairing
base-pair mismatch
DNA functionalization
DNA templates
dynamic combinatorial chemistry
D-threoninol based scaffolds
url https://doi.org/10.3762/bjoc.12.203
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AT olegjochim dnafunctionalizationbydynamicchemistry
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AT ulfdiederichsen dnafunctionalizationbydynamicchemistry
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