Related Experiment Video
Updated: Jul 15, 2026

Antibiotic Dereplication Using the Antibiotic Resistance Platform
Published on: October 17, 2019
Reversal of resistance in microorganisms by help of non-antibiotics
Jette E Kristiansen1, Oliver Hendricks, Thomas Delvin
1International Non-Antibiotic Research Group, Department of Research and Department of Microbiology, University of Southern Denmark, Sønderborg, Denmark. malthe@dadlnet.dk
Abstract:
Intracellular efflux pumps have been largely the research focus in multidrug-resistant (MDR) Gram-positive and Gram-negative microorganisms and parasites including cancers. However, drug efflux mechanisms other than pumps per se have been observed, supported by the effects of isomeric, non-antibiotic depressant (DPR), phenothiazines and thixenes, and antidepressant (ADPR) phenylpiperidine neurotropic drugs, alone or in combination with classical antimicrobials on MDR Staphylococcus aureus, Staphylococcus epidermidis, Enterococcus faecalis, Streptococcus pyogenes and Streptococcus pneumoniae. Of the non-antibiotics we investigated, the DPR l-thioridazine, trans-clopenthixol and isomers of phenylpiperidines NNC 20-4962 (isomer of femoxetine) and NNC 20-7052 (isomer of paroxetine) were potent antimicrobials with the least neurotropic activity, pointing to a possible general isomeric structure-activity relationship. These compounds may be regarded as new efflux inhibitors. Moreover, these isomers have considerably reduced, in some cases absent, neurotropism and reduced mammalian toxicity. This may alleviate concerns about adverse effects and therapeutic safety for infected patients in life-threatening situations where the non-antibiotic dosage would be in the lower, non-chronic dosage ranges generally prescribed for individuals with mild mental health problems. The results point to the prokaryotic and eukaryotic microorganisms' phospholipid/protein domain involvement of the cationic, amphiphilic, non-antibiotic DPR and ADPR, with the phospholipids being the initial sites attracting and concentrating the neurotropes to induce a form of suspended animation, followed by gross changes of cell wall and membrane structure, and thereby potentiating their destructive or immobilizing effects on various as yet only hinted at resistance and efflux mechanisms. Combination of appropriate isomeric non-antibiotic DPR and ADPR of low neurotropism and toxicity with conventional and classical antimicrobials promises early, new therapeutic strategies salutary against microbial resistance, resistance development, pathogenicity and virulence.
Insights
New non-antibiotic drugs, including depressant (DPR) and antidepressant (ADPR) isomers, show potent antimicrobial activity by inhibiting drug efflux mechanisms. These compounds offer reduced neurotropism and toxicity, presenting novel therapeutic strategies against multidrug-resistant microbes.
Area of Science:
- Microbiology
- Pharmacology
- Biochemistry
Background:
- Multidrug resistance (MDR) in microorganisms is a significant global health threat, with intracellular efflux pumps being a primary research focus.
- Alternative drug efflux mechanisms beyond pumps have been observed, necessitating exploration of novel inhibitory strategies.
Purpose of the Study:
- To investigate the antimicrobial potential of non-antibiotic depressant (DPR) and antidepressant (ADPR) neurotropic drugs, particularly their isomers, as efflux inhibitors.
- To evaluate the structure-activity relationship of these compounds concerning their antimicrobial efficacy and neurotropic/toxicological profiles.
Main Methods:
- Tested isomeric DPR (l-thioridazine, trans-clopenthixol) and ADPR (phenylpiperidine isomers NNC 20-4962, NNC 20-7052) alone and with classical antimicrobials against MDR Gram-positive bacteria.
- Assessed antimicrobial activity, neurotropism, and mammalian toxicity of the investigated compounds.
Main Results:
- Specific DPR and ADPR isomers demonstrated potent antimicrobial activity against MDR strains of Staphylococcus, Enterococcus, and Streptococcus.
- These isomers exhibited significantly reduced neurotropism and mammalian toxicity compared to parent compounds.
- The mechanism involves interaction with microbial phospholipid/protein domains, leading to cell wall and membrane alterations.
Conclusions:
- Isomeric DPR and ADPR compounds represent promising efflux inhibitors with potential as novel antimicrobial agents.
- Their low neurotropism and toxicity profile enhance therapeutic safety, especially in life-threatening infections.
- Combination therapy with conventional antimicrobials offers a new strategy against microbial resistance, pathogenicity, and virulence.
Related Concept Videos
Microbiota Modulation by Antibiotics
Development of Antibiotic Resistance
Clinical Significance of Antibiotic Resistance
Mechanism of Antibiotic Resistance in MRSA
Biological Methods for Microbial Control
Antibiotic Selection

