» Articles » PMID: 38519517

Nucleic-acid-base Photofunctional Cocrystal for Information Security and Antimicrobial Applications

Overview
Journal Nat Commun
Specialty Biology
Date 2024 Mar 23
PMID 38519517
Authors
Affiliations
Soon will be listed here.
Abstract

Cocrystal engineering is an efficient and simple strategy to construct functional materials, especially for the exploitation of novel and multifunctional materials. Herein, we report two kinds of nucleic-acid-base cocrystal systems that imitate the strong hydrogen bond interactions constructed in the form of complementary base pairing. The two cocrystals studied exhibit different colors of phosphorescence from their monomeric counterparts and show the feature of rare high-temperature phosphorescence. Mechanistic studies reveal that the strong hydrogen bond network stabilizes the triplet state and suppresses non-radiative transitions, resulting in phosphorescence even at 425 K. Moreover, the isolation effects of the hydrogen bond network regulate the interactions between the phosphor groups, realizing the manipulation from aggregation to single-molecule phosphorescence. Benefiting from the long-lived triplet state with a high quantum yield, the generation of reactive oxygen species by energy transfer is also available to utilize for some applications such as in photodynamic therapy and broad-spectrum microbicidal effects. In vitro experiments show that the cocrystals efficiently kill bacteria on a tooth surface and significantly help prevent dental caries. This work not only provides deep insight into the relationship of the structure-properties of cocrystal systems, but also facilitates the design of multifunctional cocrystal materials and enriches their potential applications.

Citing Articles

Revealing the excited-state mechanisms of the polymorphs of a hot exciton material.

Deng Z, Huang C, Luo Y, He J, Li L, Pang X Nat Commun. 2025; 16(1):258.

PMID: 39747841 PMC: 11696127. DOI: 10.1038/s41467-024-55569-0.


The interplay between hydrogen bonds and stacking/T-type interactions in molecular cocrystals.

Cruz-Cabeza A, Spackman P, Hall A Commun Chem. 2024; 7(1):284.

PMID: 39623048 PMC: 11612442. DOI: 10.1038/s42004-024-01380-3.


Black Phosphorus Nanosheets-Loaded Mussel-Inspired Hydrogel with Wet Adhesion, Photothermal Antimicrobial, and In Situ Remineralization Capabilities for Caries Prevention.

Ran Y, Shi J, Ding Y, Li L, Lu D, Zeng Y Adv Sci (Weinh). 2024; 11(45):e2409155.

PMID: 39392196 PMC: 11615761. DOI: 10.1002/advs.202409155.


Chemistry and crystal engineering.

Bourne S IUCrJ. 2024; 11(Pt 4):434-435.

PMID: 38958010 PMC: 11220874. DOI: 10.1107/S2052252524006249.

References
1.
Humphrey W, Dalke A, Schulten K . VMD: visual molecular dynamics. J Mol Graph. 1996; 14(1):33-8, 27-8. DOI: 10.1016/0263-7855(96)00018-5. View

2.
Yang X, Zhai Z, Lu X, Ma L, Yan D . Fast Crystallization-Deposition of Orderly Molecule Level Heterojunction Thin Films Showing Tunable Up-Conversion and Ultrahigh Photoelectric Response. ACS Cent Sci. 2020; 6(7):1169-1178. PMC: 7379383. DOI: 10.1021/acscentsci.0c00447. View

3.
Ye W, Ma H, Shi H, Wang H, Lv A, Bian L . Confining isolated chromophores for highly efficient blue phosphorescence. Nat Mater. 2021; 20(11):1539-1544. DOI: 10.1038/s41563-021-01073-5. View

4.
Li Q, Zhou M, Yang M, Yang Q, Zhang Z, Shi J . Induction of long-lived room temperature phosphorescence of carbon dots by water in hydrogen-bonded matrices. Nat Commun. 2018; 9(1):734. PMC: 5821822. DOI: 10.1038/s41467-018-03144-9. View

5.
Joh N, Min A, Faham S, Whitelegge J, Yang D, Woods V . Modest stabilization by most hydrogen-bonded side-chain interactions in membrane proteins. Nature. 2008; 453(7199):1266-70. PMC: 2734483. DOI: 10.1038/nature06977. View