| Literature DB >> 25025665 |
Vasudevan Aparna1, Kesavan Dineshkumar1, Narasumani Mohanalakshmi1, Devadasan Velmurugan2, Waheeta Hopper1.
Abstract
Pseudomonas aeruginosa and Escherichia coli are resistant to wide range of antibiotics rendering the treatment of infections very difficult. A main mechanism attributed to the resistance is the function of efflux pumps. MexAB-OprM and AcrAB-TolC are the tripartite efflux pump assemblies, responsible for multidrug resistance in P. aeruginosa and E. coli respectively. Substrates that are more susceptible for efflux are predicted to have a common pharmacophore feature map. In this study, a new criterion of excluding compounds with efflux substrate-like features was used, thereby refining the selection process and enriching the inhibitor identification process. An in-house database of phytochemicals was created and screened using high-throughput virtual screening against AcrB and MexB proteins and filtered by matching with the common pharmacophore models (AADHR, ADHNR, AAHNR, AADHN, AADNR, AAADN, AAADR, AAANR, AAAHN, AAADD and AAADH) generated using known efflux substrates. Phytochemical hits that matched with any one or more of the efflux substrate models were excluded from the study. Hits that do not have features similar to the efflux substrate models were docked using XP docking against the AcrB and MexB proteins. The best hits of the XP docking were validated by checkerboard synergy assay and ethidium bromide accumulation assay for their efflux inhibition potency. Lanatoside C and diadzein were filtered based on the synergistic potential and validated for their efflux inhibition potency using ethidium bromide accumulation study. These compounds exhibited the ability to increase the accumulation of ethidium bromide inside the bacterial cell as evidenced by these increase in fluorescence in the presence of the compounds. With this good correlation between in silico screening and positive efflux inhibitory activity in vitro, the two compounds, lanatoside C and diadzein could be promising efflux pump inhibitors and effective to use in combination therapy against drug resistant strains of P. aeruginosa and E. coli.Entities:
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Year: 2014 PMID: 25025665 PMCID: PMC4099075 DOI: 10.1371/journal.pone.0101840
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Flow chart of Virtual screening, pharmacophore-based filtering and experimental screening strategy for identifying efflux inhibitors.
Figure 2Alignment of protein sequences of MexB and AcrB.
Sequences in box are the conserved residues in the binding site of MC-207110 in AcrB and MexB.
Molecular interactions of phytochemicals with the active site residues in the binding site 1 of the target proteins, MexB of P. aeruginosa and AcrB of E. coli.
| Phytochemical (Pubchem ID) | H-bond | Hydrophobic contacts | Glide XP Gscore (Kcal/mol) | Glide energy (Kcal/mol) | MM-GBSA (Kcal/mol) | |
|
| MC-207,110 | N—H—O(Gly387) N—H—O(Ty35) N—H—O(Asn135) | Ser389, Gly296, Ala384, Pro31, Pro36, Ala37, Gly97, Arg468, Phe388, Gln469 | −5.57 | −56.26 | −34.67 |
| Lanatoside-C (3879) | (Thr295)N—H—O (Leu293)O—H—O O—H—O(Gly387) | Pro30,Pro36, Gln469, Ala384, Phe388, Gly296, Ala385, Thr295, Gly381 | −8.70 | −65.61 | −102.55 | |
| Protocatechuic-acid (72) | O—H—O (Gln469) (Ser389)N—H—O | Asn391, Pro36,Phe388, Asn33, Ala37 | −5.65 | −21.28 | −24.24 | |
| Gentisic-acid (3469) | O—H—O (Gln469) (Gln469)N—H—O | Arg468,Ser389, Asn391, Ala37, Pro36,Phe388, Val465 | −4.38 | −19.89 | −22.12 | |
| Diadzein (5281708) | (Ser389)N—H—O (Gly296)N—H—O | Ser389, Gly387, Gln469, Arg468, Thr295, Asn391, Ala37 | −4.37 | −32.36 | −36.14 | |
|
| MC-207,110 | N—H—O (Gln469) (Ala297)N—H—O O—H—N(Ala297) N—H—O(Gly387) N—H—O(Tyr35) | Ser389, Asn391, Thr37, Gly296, Phe388, Ala465, Asn298 | −6.72 | −56.59 | −54.78 |
| Lanatoside-C (3879) | O—H—O(Ala385) (Arg468)N—H—O (Ser389)N—H—O O—H—O (Gly296) (Asn298)N—H—O | Phe386,Gly2387, Phe388, Gln469, Asn391, Ala384, Leu30 | −6.76 | −56.62 | −62.91 | |
| Gentisic-acid (3469) | O—H—O (Gln469) (Arg468)N—H—O (Arg468)N—H—O | Phe388, Thr37, Ser389, Ala465, Pro36 | −4.68 | −21.00 | −24.39 | |
| Diadzein (5281708) | O—H—O(Ala457) | Val454,Phe386,Phe388, Ile472, Phe459, Arg468 | −3.76 | −26.37 | −38.71 |
Molecular interactions of phytochemicals with the active site residues in the binding site 2 of target proteins, MexB of P. aeruginosa and AcrB of E. coli.
| Phytochemical (Pubchem ID) | H-bond | Hydrophobic contacts | Glide XP Gscore (Kcal/mol) | Glide energy (Kcal/mol) | MM-GBSA (Kcal/mol) | |
|
| MC-207,110 | N—H—(Asn718) N—H—(Glu816) N—H—(Glu825) N—H—(Phe617) | Lys134, Arg716, Phe666, Gly828, Pro717, Phe136, Phe573, Lys814, Gly719 | −8.39 | −48.74 | −57.23 |
| Lanatoside-C (3879) | (Arg714)N—H—O O—H—O (Asn676) (Gln575)N—H—O O—H—O (Asn718) (Ser721)O—H—O | Phe664,Arg716, Gly719, Ser721, Phe617, Asn718, Pro717, Leu827 | −8.74 | −58.12 | −30.76 | |
| Scopolamine (5184) | O—H—O (Asn676) | Gln575, Asn718, Leu827, Lys134, Phe617 | −6.19 | −31.524 | −29.53 | |
| Umbelliferone (5281426) | (Gly719)O—H—O (Gln575)N—H—O | Phe664, Ala618, Met720, Arg716, Asn718 | −3.20 | −23.95 | −53.46 | |
|
| MC-207,110 | N—H—O(Ser134) N—H—O(Glu826) N—H—O(Glu826) N—H—O(Asp681) N—H—O(Glu673) N—H—O(Glu673) | Leu828, Phe664, Phe666, Phe617, Val672, Asn719 | −7.48 | −58.68 | −42.67 |
| Lanatoside-C (3879) | O—H—O (Ala831) O—H—O (Gln830) (Gln657) | Phe617, Phe664, Arg716, Pro717, Leu827 | −9.12 | −60.744 | −88.50 | |
| Scopolamine (5184) | O—H—O(Ala665) | Lys134, Gln575, Ala618, Phe617, Arg716, Asn718, Leu827 | −4.19 | −34.05 | −38.64 | |
| Umbelliferone (5281426) | (Gln675)N—H—O O—H—O(Gly789) | Ala618, Phe664, Arg716, Pro717, Asn718 | −3.72 | −19.279 | −40.80 |
Figure 3Interaction of selected phytochemicals with the active site residues in the binding site 1 of the integral membrane proteins MexB of P. aeruginosa and AcrB of E. coli.
Interaction with MexB of P. aeruginosa: 3a - lanatoside C, 3c - protocatechuic acid, 3e - gentisic acid, 3g – diadzein; Interaction with AcrB of E. coli: 3b - lanatoside C, 3d - Protocatechuic acid, 3f - gentisic acid, 3h - diadzein.
Figure 4Interaction of selected phytochemicals with the active site residues in the binding site 2 of the integral membrane proteins MexB of P. aeruginosa and AcrB of E. coli.
Interaction with MexB of P. aeruginosa: 4a - lanatoside C, 4c – scopolamine, 4e – umbelliferone; Interaction with AcrB of E. coli: 4b – lanatoside C, 4d – scopolamine, 4f - umbelliferone.
Effect of phytochemicals and known EPI on the MIC of antibiotics using checkerboard synergy assay in P. aeruginosa and E. coli.
| Antibiotics + phytochemicals | FIC index | Interpretation |
|
| ||
| C+ MC-207110 | 0.04 | Synergy |
| L+ MC-207110 | 0.05 | Synergy |
| C+ Lanatoside C | 0.14 | Synergy |
| L+ Lanatoside C | 0.08 | Synergy |
| C+ Diadzein | 0.26 | Synergy |
| L+ Diadzein | 0.27 | Synergy |
| C+ Gentisic acid | 0.51 | Indifferent |
| L+ Gentisic acid | 1.02 | Indifferent |
| C+ Protocatechuic acid | 0.51 | Indifferent |
| L+ Protocatechuic acid | 0.27 | Synergy |
| C+ Scopolamine | 0.52 | Indifferent |
| L+ Scopolamine | 1.01 | Indifferent |
| C+ Umbelliferone | 0.51 | Indifferent |
| L+ Umbelliferone | 0.52 | Indifferent |
|
| ||
| C+ MC-207110 | 0.03 | Synergy |
| L+ MC-207110 | 0.04 | Synergy |
| C+ Lanatoside C | 0.25 | Synergy |
| L+ Lanatoside C | 0.13 | Synergy |
| C+ Diadzein | 0.25 | Synergy |
| L+ Diadzein | 0.13 | Synergy |
| C+ Gentisic acid | 1 | Indifferent |
| L+ Gentisic acid | 0.51 | Indifferent |
| C+ Protocatechuic acid | 0.25 | Synergy |
| L+ Protocatechuic acid | 0.51 | Indifferent |
| C+ Scopolamine | 0.5 | Synergy |
| L+ Scopolamine | 1.01 | Indifferent |
| C+ Umbelliferone | 1 | Indifferent |
| L+ Umbelliferone | 0.51 | Indifferent |
FIC index - ≤0.5: synergistic, >0.5–4: indifferent and >4: antagonistic.
Sub-MIC concentrations: MC-207110 - 8 mg/L; Lanatoside C 16 mg/L; Diadzein 16 mg/L; Gentisic acid 16 mg/L; Protocatechuic acid 16 mg/L; Scopolamine 16 mg/L; Umbelliferone 16 mg/L.
Figure 5Effect of efflux inhibitor, CCCP and phytochemicals in accumulation of ethidium bromide in P. aeruginosa strain.
Figure 6Effect of efflux inhibitor, CCCP and phytochemicals in accumulation of ethidium bromide in E. coli strain.