Trends in Photothermal Nanostructures for Antimicrobial Applications

被引:45
作者
Dediu, Violeta [1 ]
Ghitman, Jana [2 ,3 ]
Pircalabioru, Gratiela Gradisteanu [2 ,4 ,5 ]
Chan, Kiat Hwa [6 ,7 ]
Iliescu, Florina Silvia [1 ]
Iliescu, Ciprian [1 ,2 ,4 ]
机构
[1] Natl Res & Dev Inst Microtechnol IMT Bucharest, 126A Erou Iancu Nicolae St, Voluntari 077190, Romania
[2] Univ Politehn Bucuresti, eBio Hub Res Ctr, 6 Iuliu Maniu Blvd,Campus Bldg, Bucharest 061344, Romania
[3] Univ Politehn Bucuresti, Adv Polymer Mat Grp, 1-7 Gh Polizu St, Bucharest 011061, Romania
[4] Acad Romanian Scientists, 54 Splaiul Independentei, Bucharest 050094, Romania
[5] Univ Bucharest, Res Inst, Bucharest 050095, Romania
[6] Yale NUS Coll, Div Sci, 16 Coll Ave West, Singapore 138527, Singapore
[7] Natl Univ Singapore, NUS Coll, 18 Coll Ave East, Singapore 138593, Singapore
关键词
photothermal antimicrobials; antibacterial mechanisms; antibiofilm; wound healing; GOLD NANOPARTICLES; BIOFILM FORMATION; CARBON NANOTUBES; KILLING BACTERIA; ANTIBACTERIAL; GRAPHENE; SILVER; NANOCOMPOSITES; THERAPY; STRATEGIES;
D O I
10.3390/ijms24119375
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The rapid development of antimicrobial resistance due to broad antibiotic utilisation in the healthcare and food industries and the non-availability of novel antibiotics represents one of the most critical public health issues worldwide. Current advances in nanotechnology allow new materials to address drug-resistant bacterial infections in specific, focused, and biologically safe ways. The unique physicochemical properties, biocompatibility, and wide range of adaptability of nanomaterials that exhibit photothermal capability can be employed to develop the next generation of photothermally induced controllable hyperthermia as antibacterial nanoplatforms. Here, we review the current state of the art in different functional classes of photothermal antibacterial nanomaterials and strategies to optimise antimicrobial efficiency. The recent achievements and trends in developing photothermally active nanostructures, including plasmonic metals, semiconductors, and carbon-based and organic photothermal polymers, and antibacterial mechanisms of action, including anti-multidrug-resistant bacteria and biofilm removal, will be discussed. Insights into the mechanisms of the photothermal effect and various factors influencing photothermal antimicrobial performance, emphasising the structure-performance relationship, are discussed. We will examine the photothermal agents' functionalisation for specific bacteria, the effects of the near-infrared light irradiation spectrum, and active photothermal materials for multimodal synergistic-based therapies to minimise side effects and maintain low costs. The most relevant applications are presented, such as antibiofilm formation, biofilm penetration or ablation, and nanomaterial-based infected wound therapy. Practical antibacterial applications employing photothermal antimicrobial agents, alone or in synergistic combination with other nanomaterials, are considered. Existing challenges and limitations in photothermal antimicrobial therapy and future perspectives are presented from the structural, functional, safety, and clinical potential points of view.
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相关论文
共 243 条
[81]   Graphene based metal and metal oxide nanocomposites: synthesis, properties and their applications [J].
Khan, Mujeeb ;
Tahir, Muhammad Nawaz ;
Adil, Syed Farooq ;
Khan, Hadayat Ullah ;
Siddiqui, M. Rafiq H. ;
Al-warthan, Abdulrahman A. ;
Tremel, Wolfgang .
JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (37) :18753-18808
[82]   NIR-driven SnSe particles for rapid and effective bacteria sterilization [J].
Kim, JongGuk ;
Yun, HuiGwang ;
Ri, KukChol ;
Sun, JingYu ;
Kim, HyoYong ;
Liu, Lu .
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2023, 11 (01)
[83]   Antimicrobial effects of silver nanoparticles [J].
Kim, Jun Sung ;
Kuk, Eunye ;
Yu, Kyeong Nam ;
Kim, Jong-Ho ;
Park, Sung Jin ;
Lee, Hu Jang ;
Kim, So Hyun ;
Park, Young Kyung ;
Park, Yong Ho ;
Hwang, Cheol-Yong ;
Kim, Yong-Kwon ;
Lee, Yoon-Sik ;
Jeong, Dae Hong ;
Cho, Myung-Haing .
NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE, 2007, 3 (01) :95-101
[84]   Antibacterial poly (3,4-ethylenedioxythiophene): poly(styrene-sulfonate)/agarose nanocomposite hydrogels with thermo-processability and self-healing [J].
Ko, Youngsang ;
Kim, Jeonghun ;
Jeong, Ho Young ;
Kwon, Goomin ;
Kim, Dabum ;
Ku, Minhee ;
Yang, Jaemoon ;
Yamauchi, Yusuke ;
Kim, Hae-Yeong ;
Lee, Chanhui ;
You, Jungmok .
CARBOHYDRATE POLYMERS, 2019, 203 :26-34
[85]   Acidity-triggered charge-convertible nanoparticles that can cause bacterium-specific aggregation in situ to enhance photothermal ablation of focal infection [J].
Korupalli, Chiranjeevi ;
Huang, Chieh-Cheng ;
Lin, Wei-Chih ;
Pan, Wen-Yu ;
Lin, Po-Yen ;
Wan, Wei-Lin ;
Li, Meng-Ju ;
Chang, Yen ;
Sung, Hsing-Wen .
BIOMATERIALS, 2017, 116 :1-9
[86]   Causing a commotion in the blood: immunotherapy progresses from bacteria to bacterial DNA [J].
Krieg, AM ;
Wagner, H .
IMMUNOLOGY TODAY, 2000, 21 (10) :521-526
[87]   Antimicrobial properties of ZnO nanomaterials: A review [J].
Kumar, Rajesh ;
Umar, Ahmad ;
Kumar, Girish ;
Nalwa, Hari Singh .
CERAMICS INTERNATIONAL, 2017, 43 (05) :3940-3961
[88]  
Kwon H.-Y., 2023, PHARM POLICY IMPACT, VVolume 16648714
[89]  
Lansdown Alan B G, 2006, Curr Probl Dermatol, V33, P17
[90]   Multifunctional AIE Nanosphere-Based "Nanobomb" for Trimodal Imaging-Guided Photothermal/Photodynamic/ Pharmacological Therapy of Drug-Resistant Bacterial Infections [J].
Li, Bin ;
Wang, Wei ;
Zhao, Lu ;
Yan, Dingyuan ;
Li, Xiaoxue ;
Gao, Qiuxia ;
Zheng, Judun ;
Zhou, Sitong ;
Lai, Shanshan ;
Feng, Yi ;
Zhang, Jie ;
Jiang, Hang ;
Long, Chengmin ;
Gan, Wenjun ;
Chen, Xiaodong ;
Wang, Dong ;
Tang, Ben Zhong ;
Liao, Yuhui .
ACS NANO, 2023, 17 (05) :4601-4618