| Literature DB >> 32212366 |
Feng Li1, Shuai Li1, Xiaocui Guo1, Yuhang Dong1, Chi Yao1, Yangping Liu2, Yuguang Song2, Xiaoli Tan2, Lizeng Gao3, Dayong Yang1.
Abstract
Nanomaterials with enzyme-mimetic activities are possible alternatives to natural enzymes. Mimicking enzymatic enantioselectivity remains a great challenge. Herein, we report that cysteine-derived chiral carbon dots (CDs) can mimic topoisomerase I to mediate topological rearrangement of supercoiled DNA enantioselectively. d-CDs can more effectively catalyze the topological transition of plasmid DNA from supercoiled to nicked open-circular configuration than l-CDs. Experiments suggest the underlying mechanism: d-CDs intercalatively bind with DNA double helix more strongly than l-CDs; the intercalative CDs can catalyze the production of hydroxyl radicals to cleave phosphate backbone in one strand of the double helix, leading to topological rearrangement of supercoiled DNA. Molecular dynamics (MD) simulation show that the stronger affinity for hydrogen-bond formation and hydrophobic interaction between d-cysteine and DNA than that of l-cysteine is the origin of enantioselectivity.Entities:
Keywords: DNA; carbon dots; chiral nanomaterials; nanozymes; topoisomerase I
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Year: 2020 PMID: 32212366 DOI: 10.1002/anie.202002904
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336