Design, Synthesis, and Structure–Activity Relationship Studies of New Quinone Derivatives as Antibacterial Agents

Author:

Andrades-Lagos Juan12ORCID,Campanini-Salinas Javier23ORCID,Pedreros-Riquelme América2,Mella Jaime45ORCID,Choquesillo-Lazarte Duane6ORCID,Zamora P. P.7ORCID,Pessoa-Mahana Hernán8,Burbulis Ian9,Vásquez-Velásquez David2ORCID

Affiliation:

1. Facultad de Medicina y Ciencia, Universidad San Sebastián, Santiago 7510157, Chile

2. Drug Development Laboratory, Faculty of Chemical and Pharmaceutical, Sciences, Universidad de Chile, Santiago 8380492, Chile

3. Facultad de Medicina y Ciencia, Universidad San Sebastián, Puerto Montt 5501842, Chile

4. Instituto de Química y Bioquímica, Facultad de Ciencias, Universidad de Valparaíso, Playa Ancha, Valparaíso 2360102, Chile

5. Centro de Investigación Farmacopea Chilena (CIFAR), Facultad de Farmacia, Universidad de Valparaíso, Playa Ancha, Valparaíso 2360102, Chile

6. Laboratorio de Estudios Cristalográficos, IACT (CSIC-UGR), Av. de las Palmeras 4, 18100 Armilla, Spain

7. Departamento de Química y Biología, Facultad de Ciencias Naturales, Universidad de Atacama, Copiapó 1530000, Chile

8. Departamento de Química Orgánica y Fisicoquímica, Facultad de Ciencias Químicas y Farmacéuticas, Universidad de Chile, Santiago 8380492, Chile

9. Centro de Investigación Biomédica, Facultad de Medicina y Ciencias, Universidad San Sebastián, Sede de la Patagonia, Puerto Montt 5501842, Chile

Abstract

Resistance to antibacterial agents is a growing global public health problem that reduces the efficacy of available antibacterial agents, leading to increased patient mortality and morbidity. Unfortunately, only 16 antibacterial drugs have been approved by the FDA in the last 10 years, so it is necessary to develop new agents with novel chemical structures and/or mechanisms of action. In response to this, our group takes up the challenge of designing a new family of pyrimidoisoquinolinquinones displaying antimicrobial activities against multidrug-resistant Gram-positive bacteria. Accordingly, the objective of this study was to establish the necessary structural requirements to obtain compounds with high antibacterial activity, along with the parameters controlling antibacterial activity. To achieve this goal, we designed a family of compounds using different strategies for drug design. Forty structural candidates were synthesized and characterized, and antibacterial assays were carried out against high-priority bacterial pathogens. A variety of structural properties were modified, such as hydrophobicity and chain length of functional groups attached to specific carbon positions of the quinone core. All the synthesized compounds inhibited Gram-positive pathogens in concentrations ranging from 0.5 to 64 µg/mL. Two derivatives exhibited minimum inhibitory concentrations of 64 µg/mL against Klebsiella pneumoniae, while compound 28 demonstrated higher potency against MRSA than vancomycin.

Funder

FONDECYT

CONICYT Beca Doctorado Nacional, J.C.S.

Publisher

MDPI AG

Subject

Pharmacology (medical),Infectious Diseases,Microbiology (medical),General Pharmacology, Toxicology and Pharmaceutics,Biochemistry,Microbiology

Reference26 articles.

1. World Health Organization (2014). Antimicrobial Resistance: Global Report on Surveillance, World Health Organization. Available online: https://apps.who.int/iris/handle/10665/112642.

2. O’Neill, J.I.M. (2014). Review on Antimicrobial Resistance, HM Government.

3. Antibiotic resistance threats in the United States: Stepping back from the brink;Solomon;Am. Fam. Physician,2014

4. What are the economic barriers of antibiotic R&D and how can we overcome them?;Renwick;Expert Opin. Drug Discov.,2018

5. The Epidemic of Antibiotic-Resistant Infections: A Call to Action for the Medical Community from the Infectious Diseases Society of America;Spellberg;Clin. Infect. Dis.,2008

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