Covalently Functionalized DNA Duplexes and Quadruplexes as Hybrid Catalysts in an Enantioselective Friedel–Crafts Reaction

The precise site-specific positioning of metal–ligand complexes on various DNA structures through covalent linkages has gained importance in the development of hybrid catalysts for aqueous-phase homogeneous catalysis. Covalently modified double-stranded and G-quadruplex DNA-based hybrid catalysts ha...

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Main Authors: Surjendu Dey, Andres Jäschke
Format: Article
Language:English
Published: MDPI AG 2020-07-01
Series:Molecules
Subjects:
DNA
Online Access:https://www.mdpi.com/1420-3049/25/14/3121
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spelling doaj-9cd726e8ba454d5a97d9ae6a94cf798d2020-11-25T02:44:53ZengMDPI AGMolecules1420-30492020-07-01253121312110.3390/molecules25143121Covalently Functionalized DNA Duplexes and Quadruplexes as Hybrid Catalysts in an Enantioselective Friedel–Crafts ReactionSurjendu Dey0Andres Jäschke1Institute of Pharmacy and Molecular Biotechnology, Heidelberg University, 69120 Heidelberg, GermanyInstitute of Pharmacy and Molecular Biotechnology, Heidelberg University, 69120 Heidelberg, GermanyThe precise site-specific positioning of metal–ligand complexes on various DNA structures through covalent linkages has gained importance in the development of hybrid catalysts for aqueous-phase homogeneous catalysis. Covalently modified double-stranded and G-quadruplex DNA-based hybrid catalysts have been investigated separately. To understand the role of different DNA secondary structures in enantioselective Friedel–Crafts alkylation, a well-known G-quadruplex-forming sequence was covalently modified at different positions. The catalytic performance of this modified DNA strand was studied in the presence and absence of a complementary DNA sequence, resulting in the formation of two different secondary structures, namely duplex and G-quadruplex. Indeed, the secondary structures had a tremendous effect on both the yield and stereoselectivity of the catalyzed reaction. In addition, the position of the modification, the topology of the DNA, the nature of the ligand, and the length of the linker between ligand and DNA were found to modulate the catalytic performance of the hybrid catalysts. Using the optimal linker length, the quadruplexes formed the (−)-enantiomer with up to 65% <i>ee</i>, while the duplex yielded the (+)-enantiomer with up to 62% <i>ee</i>. This study unveils a new and simple way to control the stereochemical outcome of a Friedel–Crafts reaction.https://www.mdpi.com/1420-3049/25/14/3121asymmetric catalysisFriedel–Crafts reactionhybrid catalysiscovalent modificationDNA
collection DOAJ
language English
format Article
sources DOAJ
author Surjendu Dey
Andres Jäschke
spellingShingle Surjendu Dey
Andres Jäschke
Covalently Functionalized DNA Duplexes and Quadruplexes as Hybrid Catalysts in an Enantioselective Friedel–Crafts Reaction
Molecules
asymmetric catalysis
Friedel–Crafts reaction
hybrid catalysis
covalent modification
DNA
author_facet Surjendu Dey
Andres Jäschke
author_sort Surjendu Dey
title Covalently Functionalized DNA Duplexes and Quadruplexes as Hybrid Catalysts in an Enantioselective Friedel–Crafts Reaction
title_short Covalently Functionalized DNA Duplexes and Quadruplexes as Hybrid Catalysts in an Enantioselective Friedel–Crafts Reaction
title_full Covalently Functionalized DNA Duplexes and Quadruplexes as Hybrid Catalysts in an Enantioselective Friedel–Crafts Reaction
title_fullStr Covalently Functionalized DNA Duplexes and Quadruplexes as Hybrid Catalysts in an Enantioselective Friedel–Crafts Reaction
title_full_unstemmed Covalently Functionalized DNA Duplexes and Quadruplexes as Hybrid Catalysts in an Enantioselective Friedel–Crafts Reaction
title_sort covalently functionalized dna duplexes and quadruplexes as hybrid catalysts in an enantioselective friedel–crafts reaction
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2020-07-01
description The precise site-specific positioning of metal–ligand complexes on various DNA structures through covalent linkages has gained importance in the development of hybrid catalysts for aqueous-phase homogeneous catalysis. Covalently modified double-stranded and G-quadruplex DNA-based hybrid catalysts have been investigated separately. To understand the role of different DNA secondary structures in enantioselective Friedel–Crafts alkylation, a well-known G-quadruplex-forming sequence was covalently modified at different positions. The catalytic performance of this modified DNA strand was studied in the presence and absence of a complementary DNA sequence, resulting in the formation of two different secondary structures, namely duplex and G-quadruplex. Indeed, the secondary structures had a tremendous effect on both the yield and stereoselectivity of the catalyzed reaction. In addition, the position of the modification, the topology of the DNA, the nature of the ligand, and the length of the linker between ligand and DNA were found to modulate the catalytic performance of the hybrid catalysts. Using the optimal linker length, the quadruplexes formed the (−)-enantiomer with up to 65% <i>ee</i>, while the duplex yielded the (+)-enantiomer with up to 62% <i>ee</i>. This study unveils a new and simple way to control the stereochemical outcome of a Friedel–Crafts reaction.
topic asymmetric catalysis
Friedel–Crafts reaction
hybrid catalysis
covalent modification
DNA
url https://www.mdpi.com/1420-3049/25/14/3121
work_keys_str_mv AT surjendudey covalentlyfunctionalizeddnaduplexesandquadruplexesashybridcatalystsinanenantioselectivefriedelcraftsreaction
AT andresjaschke covalentlyfunctionalizeddnaduplexesandquadruplexesashybridcatalystsinanenantioselectivefriedelcraftsreaction
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