Quorum Sensing Inhibitors: An Alternative Strategy to Win the Battle against Multidrug-Resistant (MDR) Bacteria

被引:22
作者
Hetta, Helal F. [1 ]
Ramadan, Yasmin N. [2 ]
Rashed, Zainab I. [2 ]
Alharbi, Ahmad A. [1 ]
Alsharef, Shomokh [1 ]
Alkindy, Tala T. [1 ]
Alkhamali, Alanoud [3 ]
Albalawi, Abdullah S. [3 ]
Battah, Basem [4 ]
Donadu, Matthew G. [5 ,6 ]
机构
[1] Univ Tabuk, Fac Pharm, Dept Nat Prod & Alternat Med, Div Microbiol Immunol & Biotechnol, Tabuk 71491, Saudi Arabia
[2] Assiut Univ, Fac Pharm, Dept Microbiol & Immunol, Assiut 71515, Egypt
[3] Univ Tabuk, Fac Pharm, Dept Pharmaceut Chem, Tabuk 71491, Saudi Arabia
[4] Antioch Syrian Private Univ, Fac Pharm, Dept Biochem & Microbiol, Maaret Siadnaya 22734, Syria
[5] Hosp Pharm, Giovanni Paolo II Hosp, ASL Gallura, I-07026 Olbia, Italy
[6] Univ Sassari, Scuola Specializzaz Farm Osped, Dept Med Surg & Pharm, I-07100 Sassari, Italy
基金
英国科研创新办公室;
关键词
quorum sensing inhibitors; MDR bacteria; antibiotic resistance; quorum quenching; PSEUDOMONAS-AERUGINOSA VIRULENCE; HOMOSERINE LACTONE ACYLASE; CELL-CELL COMMUNICATION; ANTI-BIOFILM ACTIVITY; ACINETOBACTER-BAUMANNII; IN-VITRO; ANTIBIOTIC-RESISTANCE; ESCHERICHIA-COLI; LACTOBACILLUS-PLANTARUM; SOCIAL INTERACTIONS;
D O I
10.3390/molecules29153466
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
Antibiotic resistance is a major problem and a major global health concern. In total, there are 16 million deaths yearly from infectious diseases, and at least 65% of infectious diseases are caused by microbial communities that proliferate through the formation of biofilms. Antibiotic overuse has resulted in the evolution of multidrug-resistant (MDR) microbial strains. As a result, there is now much more interest in non-antibiotic therapies for bacterial infections. Among these revolutionary, non-traditional medications is quorum sensing inhibitors (QSIs). Bacterial cell-to-cell communication is known as quorum sensing (QS), and it is mediated by tiny diffusible signaling molecules known as autoinducers (AIs). QS is dependent on the density of the bacterial population. QS is used by Gram-negative and Gram-positive bacteria to control a wide range of processes; in both scenarios, QS entails the synthesis, identification, and reaction to signaling chemicals, also known as auto-inducers. Since the usual processes regulated by QS are the expression of virulence factors and the creation of biofilms, QS is being investigated as an alternative solution to antibiotic resistance. Consequently, the use of QS-inhibiting agents, such as QSIs and quorum quenching (QQ) enzymes, to interfere with QS seems like a good strategy to prevent bacterial infections. This review sheds light on QS inhibition strategy and mechanisms and discusses how using this approach can aid in winning the battle against resistant bacteria.
引用
收藏
页数:30
相关论文
共 50 条
[41]   Rational Framework for the Design of Trp- and Arg-Rich Peptide Antibiotics Against Multidrug-Resistant Bacteria [J].
Xiang, Wenyu ;
Clemenza, Patrice ;
Klousnitzer, Jessie ;
Chen, Jespar ;
Qin, Weiheng ;
Tristram-Nagle, Stephanie ;
Doi, Yohei ;
Di, Y. Peter ;
Deslouches, Berthony .
FRONTIERS IN MICROBIOLOGY, 2022, 13
[42]   Antibacterial Activity of River Water Bacteriophage against Multidrug-resistant Gram-negative Bacteria, An In vitro Study [J].
Mohaisen, Mohammed R. ;
Lafi, Shehab A. ;
Al-Quhli, Sawasan Q. T. .
JOURNAL OF PURE AND APPLIED MICROBIOLOGY, 2023, 17 (04) :2344-2351
[43]   Silver nanoparticles as next-generation antimicrobial agents: mechanisms, challenges, and innovations against multidrug-resistant bacteria [J].
Khalifa, Hazim O. ;
Oreiby, Atef ;
Mohammed, Temesgen ;
Abdelhamid, Mohamed A. A. ;
Sholkamy, Essam Nageh ;
Hashem, Hamada ;
Fereig, Ragab M. .
FRONTIERS IN CELLULAR AND INFECTION MICROBIOLOGY, 2025, 15
[44]   Medical Device Sterilization and Reprocessing in the Era of Multidrug-Resistant (MDR) Bacteria: Issues and Regulatory Concepts [J].
Josephs-Spaulding, Jonathan ;
Singh, Om V. V. .
FRONTIERS IN MEDICAL TECHNOLOGY, 2021, 2
[45]   Quantitative Assessment of Combination Antimicrobial Therapy against Multidrug-Resistant Bacteria in a Murine Pneumonia Model [J].
Yuan, Zhe ;
Ledesma, Kimberly R. ;
Singh, Renu ;
Hou, JingGuo ;
Prince, Randall A. ;
Tam, Vincent H. .
JOURNAL OF INFECTIOUS DISEASES, 2010, 201 (06) :889-897
[46]   Activity of topical antimicrobial agents against multidrug-resistant bacteria recovered from burn patients [J].
Glasser, Jessie S. ;
Guymon, Charles H. ;
Mende, Katrin ;
Wolf, Steven E. ;
Hospenthal, Duane R. ;
Murray, Clinton K. .
BURNS, 2010, 36 (08) :1172-1184
[47]   Antibacterial Effect of Myco-synthesized Nano-silver against Multidrug-resistant Bacteria [J].
Ghazala, Nada H. ;
Mohamedin, Attiya H. ;
Abdel-Monem, Mohamed O. ;
Elsayed, Ashraf .
EGYPTIAN JOURNAL OF CHEMISTRY, 2024, 67 (02) :587-600
[48]   Antibacterial activity of bacteria isolated from Phragmites australis against multidrug-resistant human pathogens [J].
Delfino, Vania ;
Calonico, Carmela ;
Nostro, Antonella Lo ;
Castronovo, Lara Mitia ;
Duca, Sara Del ;
Chioccioli, Sofia ;
Coppini, Ester ;
Fibbi, Donatella ;
Vassallo, Alberto ;
Fani, Renato .
FUTURE MICROBIOLOGY, 2021, 16 (05) :291-303
[49]   Marine Antimicrobial Peptides: Emerging Strategies Against Multidrug-Resistant and Biofilm-Forming Bacteria [J].
Magalhaes, Rita ;
Mil-Homens, Dalila ;
Cruz, Sonia ;
Oliveira, Manuela .
ANTIBIOTICS-BASEL, 2025, 14 (08)
[50]   Potent Broad-Spectrum Antibacterial Activity of Amphiphilic Peptides against Multidrug-Resistant Bacteria [J].
Liu, Yuan ;
Shi, Jingru ;
Tong, Ziwen ;
Jia, Yuqian ;
Yang, Kangni ;
Wang, Zhiqiang .
MICROORGANISMS, 2020, 8 (09) :1-15