» Articles » PMID: 38650112

Engineering Photothermal Catalytic CO Nanoreactor for Osteomyelitis Treatment by In Situ CO Generation

Overview
Journal Adv Sci (Weinh)
Date 2024 Apr 23
PMID 38650112
Authors
Affiliations
Soon will be listed here.
Abstract

Photocatalytic carbon dioxide (CO) reduction is an effective method for in vivo carbon monoxide (CO) generation for antibacterial use. However, the available strategies mainly focus on utilizing visible-light-responsive photocatalysts to achieve CO generation. The limited penetration capability of visible light hinders CO generation in deep-seated tissues. Herein, a photothermal CO catalyst (abbreviated as NNBCs) to achieve an efficient hyperthermic effect and in situ CO generation is rationally developed, to simultaneously suppress bacterial proliferation and relieve inflammatory responses. The NNBCs are modified with a special polyethylene glycol and further embellished by bicarbonate (BC) decoration via ferric ion-mediated coordination. Upon exposure to 1064 nm laser irradiation, the NNBCs facilitated efficient photothermal conversion and in situ CO generation through photothermal CO catalysis. Specifically, the photothermal effect accelerated the decomposition of BC to produce CO for photothermal catalytic CO production. Benefiting from the hyperthermic effect and in situ CO production, in vivo assessments using an osteomyelitis model confirmed that NNBCs can simultaneously inhibit bacterial proliferation and attenuate the photothermal effect-associated pro-inflammatory response. This study represents the first attempt to develop high-performance photothermal CO nanocatalysts to achieve in situ CO generation for the concurrent inhibition of bacterial growth and attenuation of inflammatory responses.

Citing Articles

Engineering Photothermal Catalytic CO Nanoreactor for Osteomyelitis Treatment by In Situ CO Generation.

Zhuang F, Jing L, Xiang H, Li C, Lu B, Yan L Adv Sci (Weinh). 2024; 11(25):e2402256.

PMID: 38650112 PMC: 11220635. DOI: 10.1002/advs.202402256.

References
1.
Wang X, Xu X, Zhang S, Chen N, Sun Y, Ma K . TPGS-based and S-thanatin functionalized nanorods for overcoming drug resistance in Klebsiella pneumonia. Nat Commun. 2022; 13(1):3731. PMC: 9243133. DOI: 10.1038/s41467-022-31500-3. View

2.
Kuwasaki Y, Suzuki K, Yu G, Yamamoto S, Otabe T, Kakihara Y . A red light-responsive photoswitch for deep tissue optogenetics. Nat Biotechnol. 2022; 40(11):1672-1679. DOI: 10.1038/s41587-022-01351-w. View

3.
Hu R, Dai C, Dong C, Ding L, Huang H, Chen Y . Living Macrophage-Delivered Tetrapod PdH Nanoenzyme for Targeted Atherosclerosis Management by ROS Scavenging, Hydrogen Anti-inflammation, and Autophagy Activation. ACS Nano. 2022; 16(10):15959-15976. DOI: 10.1021/acsnano.2c03422. View

4.
Garcia-Gallego S, Bernardes G . Carbon-monoxide-releasing molecules for the delivery of therapeutic CO in vivo. Angew Chem Int Ed Engl. 2014; 53(37):9712-21. DOI: 10.1002/anie.201311225. View

5.
Xuan J, Wang Z, Chen Y, Liang D, Cheng L, Yang X . Organic-Base-Driven Intercalation and Delamination for the Production of Functionalized Titanium Carbide Nanosheets with Superior Photothermal Therapeutic Performance. Angew Chem Int Ed Engl. 2016; 55(47):14569-14574. DOI: 10.1002/anie.201606643. View