Liposomal formulation of a new antifungal hybrid compound provides protection against Candida auris in the ex vivo skin colonization model

Author:

Jaromin Anna1ORCID,Zarnowski Robert23ORCID,Markowski Adam1,Zagórska Agnieszka4,Johnson Chad J.5,Etezadi Haniyeh6,Kihara Shinji6,Mota-Santiago Pablo7,Nett Jeniel E.58ORCID,Boyd Ben J.69ORCID,Andes David R.23ORCID

Affiliation:

1. Department of Lipids and Liposomes, Faculty of Biotechnology, University of Wrocław , Wrocław, Poland

2. Department of Medicine, School of Medicine & Public Health, University of Wisconsin-Madison , Madison, Wisconsin, USA

3. Department of Medical Microbiology, School of Medicine & Public Health, University of Wisconsin-Madison , Madison, Wisconsin, USA

4. Department of Medicinal Chemistry, Jagiellonian University Medical College , Cracow, Poland

5. Department of Medicine, University of Wisconsin , Madison, Wisconsin, USA

6. Department of Pharmacy, University of Copenhagen , Copenhagen, Denmark

7. MAX IV Laboratory, Lund University , Lund, Sweden

8. Department of Medical Microbiology and Immunology, University of Wisconsin , Madison, Wisconsin, USA

9. Drug Delivery, Disposition and Dynamics, Monash Institute of Pharmaceutical Sciences, Monash University (Parkville Campus) , Victoria, Australia

Abstract

ABSTRACT The newly emerged pathogen, Candida auris , presents a serious threat to public health worldwide. This multidrug-resistant yeast often colonizes and persists on the skin of patients, can easily spread from person to person, and can cause life-threatening systemic infections. New antifungal therapies are therefore urgently needed to limit and control both superficial and systemic C. auris infections. In this study, we designed a novel antifungal agent, PQA-Az-13, that contains a combination of indazole, pyrrolidine, and arylpiperazine scaffolds substituted with a trifluoromethyl moiety. PQA-Az-13 demonstrated antifungal activity against biofilms of a set of 10 different C. auris clinical isolates, representing all four geographical clades distinguished within this species. This compound showed strong activity, with MIC values between 0.67 and 1.25 µg/mL. Cellular proteomics indicated that PQA-Az-13 partially or completely inhibited numerous enzymatic proteins in C. auris biofilms, particularly those involved in both amino acid biosynthesis and metabolism processes, as well as in general energy-producing processes. Due to its hydrophobic nature and limited aqueous solubility, PQA-Az-13 was encapsulated in cationic liposomes composed of soybean phosphatidylcholine (SPC), 1,2-dioleoyloxy-3-trimethylammonium-propane chloride (DOTAP), and N -(carbonyl-methoxypolyethylene glycol-2000)-1,2-distearoyl- sn -glycero-3-phosphoethanolamine, sodium salt (DSPE-PEG 2000), and characterized by biophysical and spectral techniques. These PQA-Az-13-loaded liposomes displayed a mean size of 76.4 nm, a positive charge of +45.0 mV, a high encapsulation efficiency of 97.2%, excellent stability, and no toxicity to normal human dermal fibroblasts. PQA-Az-13 liposomes demonstrated enhanced antifungal activity levels against both C. auris in in vitro biofilms and ex vivo skin colonization models. These initial results suggest that molecules like PQA-Az-13 warrant further study and development.

Funder

The Excellence Initiative - Research University program for the University of Wrocław

Polish National Agency for Academic Exchange

Italian Ministry of Foreign Affairs and International Cooperation

HHS | NIH | National Institute of Allergy and Infectious Diseases

Novo Nordisk Foundation

Publisher

American Society for Microbiology

Subject

Infectious Diseases,Pharmacology (medical),Pharmacology

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