Synergistic Antibacterial and Antibiofilm Activity of the MreB Inhibitor A22 Hydrochloride in Combination with Conventional Antibiotics against Pseudomonas aeruginosa and Escherichia coli Clinical Isolates

被引:6
作者
Kotzialampou, Anastasia [1 ]
Protonotariou, Efthymia [2 ]
Skoura, Lemonia [2 ]
Sivropoulou, Afroditi [1 ]
机构
[1] Aristotle Univ Thessaloniki, Sch Biol, Dept Genet Dev & Mol Biol, Thessaloniki 54124, Greece
[2] Ahepa Univ Hosp, Dept Microbiol, S Kiriakidi Str 1, Thessaloniki 54636, Greece
关键词
ACTIN-LIKE PROTEIN; S-BENZYLISOTHIOUREA COMPOUND; SPHERICAL CELLS; TARGETING MREB; BIOFILM; CYTOSKELETON; SEGREGATION; CHEQUERBOARD; INFECTIONS; RESISTANCE;
D O I
10.1155/2021/3057754
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
In the era of antibiotic resistance, the bacterial cytoskeletal protein MreB is presented as a potential target for the development of novel antimicrobials. Combined treatments of clinical antibiotics with anti-MreB compounds may be promising candidates in combating the resistance crisis, but also in preserving the potency of many conventional drugs. This study aimed to evaluate the synergistic antibacterial and antibiofilm activities of the MreB inhibitor A22 hydrochloride in combination with various antibiotics. The minimum inhibitory concentration (MIC) values of the individual compounds were determined by the broth microdilution method against 66 clinical isolates of Gram-negative bacteria. Synergy was assessed by the checkerboard assay. The fractional inhibitory concentration index was calculated for each of the A22-antibiotic combination. Bactericidal activity of the combinations was evaluated by time-kill curve assays. The antibiofilm activity of the most synergistic combinations was determined by crystal violet stain, methyl thiazol tetrazolium assay, and confocal laser scanning microscopy analysis. The combined cytotoxic and hemolytic activity was also evaluated toward human cells. According to our results, Pseudomonas aeruginosa and Escherichia coli isolates were resistant to conventional antibiotics to varying degrees. A22 inhibited the bacterial growth in a dosedependent manner with MIC values ranging between 2 and 64 mu g/mL. In combination studies, synergism occurred most frequently with A22-ceftazidime and A22-meropemen against Pseudomonas aeruginosa and A22-cefoxitin and A22-azithromycin against Escherichia coli. No antagonism was observed. In time-kill studies, synergism was observed with all expected combinations. Synergistic combinations even at the lowest tested concentrations were able to inhibit biofilm formation and eradicate mature biofilms in both strains. Cytotoxic and hemolytic effects of the same combinations toward human cells were not observed. The findings of the present study support previous research regarding the use of MreB as a novel antibiotic target. The obtained data expand the existing knowledge about the antimicrobial and antibiofilm activity of the A22 inhibitor, and they indicate that A22 can serve as a leading compound for studying potential synergism between MreB inhibitors and antibiotics in the future.
引用
收藏
页数:17
相关论文
共 61 条
[1]   Status of Targeting MreB for the Development of Antibiotics [J].
Awuni, Elvis .
FRONTIERS IN CHEMISTRY, 2020, 7
[2]   Effect of A22 on the Conformation of Bacterial Actin MreB [J].
Awuni, Elvis ;
Mu, Yuguang .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2019, 20 (06)
[3]   A22 Disrupts the Bacterial Actin Cytoskeleton by Directly Binding and Inducing a Low-Affinity State in MreB [J].
Bean, G. J. ;
Fllckinger, S. T. ;
Westler, W. M. ;
McCully, M. E. ;
Sept, D. ;
Weibel, D. B. ;
Amann, K. J. .
BIOCHEMISTRY, 2009, 48 (22) :4852-4857
[4]   Antibacterial, cyto and genotoxic activities of A22 compound ((S-3, 4-dichlorobenzyl) isothiourea hydrochloride) [J].
Bonez, Pauline C. ;
Ramos, Andiara P. ;
Nascimento, Katia ;
Copetti, Priscila M. ;
Souza, Marcia E. ;
Rossi, Grazielle G. ;
Agertt, Vanessa A. ;
Sagrillo, Michele R. ;
Santos, Roberto C. V. ;
Campos, Marli Matiko A. .
MICROBIAL PATHOGENESIS, 2016, 99 :14-18
[5]   Anti-biofilm activity of A22 ((S-3,4-dichlorobenzyl) isothiourea hydrochloride) against Pseudomonas aeruginosa: Influence on biofilm formation, motility and bioadhesion [J].
Bonez, Pauline Cordenonsi ;
Rossi, Grazielle Guidolin ;
Bandeira, Jardel Rodrigo ;
Ramos, Andiara Prates ;
Mizdal, Caren Rigon ;
Agertt, Vanessa Albertina ;
Segatto Dalla Nora, Eloisa Salete ;
de Souza, Marcia Ebling ;
dos Santos Alves, Camilla Fillippi ;
dos Santos, Fallon Siqueira ;
Gundel, Andre ;
Vaucher, Rodrigo de Almeida ;
Vianna Santos, Roberto Christ ;
Anraku de Campos, Marli Matiko .
MICROBIAL PATHOGENESIS, 2017, 111 :6-13
[6]   Resistance of Gram-Negative Bacteria to Current Antibacterial Agents and Approaches to Resolve It [J].
Breijyeh, Zeinab ;
Jubeh, Buthaina ;
Karaman, Rafik .
MOLECULES, 2020, 25 (06)
[7]   Carbapenem-Resistant Pseudomonas aeruginosa Bacteremia: Risk Factors for Mortality and Microbiologic Treatment Failure [J].
Buehrle, Deanna J. ;
Shields, Ryan K. ;
Clarke, Lloyd G. ;
Potoski, Brian A. ;
Clancy, Cornelius J. ;
Nguyen, M. Hong .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2017, 61 (01)
[8]   Pathway-Directed Screen for Inhibitors of the Bacterial Cell Elongation Machinery [J].
Buss, Jackson A. ;
Baidin, Vadim ;
Welsh, Michael A. ;
Flores-Kim, Josue ;
Cho, Hongbaek ;
Wood, B. McKay ;
Uehara, Tsuyoshi ;
Walker, Suzanne ;
Kahne, Daniel ;
Bernhardt, Thomas G. .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2019, 63 (01)
[9]  
CLSI, 2020, Performance standards for antimicrobial susceptibility testing[S]. M100, V30th
[10]   Antibiotic combination therapy against resistant bacterial infections: synergy, rejuvenation and resistance reduction [J].
Coates, Anthony R. M. ;
Hu, Yanmin ;
Holt, James ;
Yeh, Pamela .
EXPERT REVIEW OF ANTI-INFECTIVE THERAPY, 2020, 18 (01) :5-15