Comparative pharmacokinetics of seven propargyl-linked antifolate antibiotics in the mouse

John Hoody1, Jeremy B Alverson1, Santosh Keshipeddy2

  • 1Department of Chemistry and Biochemistry, The University of Montana, Missoula, MT 59812, United States.

Insights

Novel antifolate compounds show potent activity against resistant bacteria like MRSA and VISA. Compound 38C1 exhibits promising pharmacokinetics and oral bioavailability, making it a lead candidate for further development against drug-resistant infections.

Area of Science:

  • Pharmacology and Medicinal Chemistry
  • Infectious Diseases
  • Drug Discovery

Background:

  • Antimicrobial resistance (AMR) is a major global health threat, driven by pathogens like Methicillin-resistant Staphylococcus aureus (MRSA) and vancomycin-resistant strains (VISA).
  • Existing antibiotics are becoming less effective, necessitating the development of novel therapeutic agents to combat resistant bacterial infections.

Purpose of the Study:

  • To evaluate the pharmacokinetic properties of novel propargyl-linked diaminopyrimidine dihydrofolate reductase (DHFR) inhibitors.
  • To identify lead candidates with potent activity against drug-resistant bacteria, including MRSA and VISA strains.

Main Methods:

  • Development and validation of an LC-QQQ bioanalytical method for seven diaminopyrimidine analogues.
  • Pharmacokinetic studies in a murine model via intravenous (IV), intraperitoneal (IP), and oral (PO) administration.
  • Analysis of pharmacokinetic parameters including half-life, AUC, Cmax, and oral bioavailability.

Main Results:

  • Compound 38C1 displayed favorable solubility, a high maximum tolerated dose, and 20% oral bioavailability.
  • Pharmacokinetic-to-MIC ratio analysis confirmed that 38C1 maintained plasma concentrations above MIC values for MRSA and VISA strains.
  • Significant variability was observed in pharmacokinetic parameters across different administration routes.

Conclusions:

  • Compound 38C1 is a promising antifolate candidate for treating infections caused by drug-resistant bacteria.
  • Further studies are warranted to assess 38C1's efficacy in infection models and optimize delivery strategies.

Related Concept Videos

Direct-Acting Cholinergic Agonists: Chemistry and Structure-Activity Relationship01:22

Direct-Acting Cholinergic Agonists: Chemistry and Structure-Activity Relationship

Cholinergic agonists or cholinomimetics mimic the action of acetylcholine to stimulate the parasympathetic nervous system. They are categorized into direct-acting and indirect-acting agents. The direct-acting cholinergic drugs induce the parasympathetic response by directly binding to the muscarinic or nicotine receptors. In comparison, the indirect-acting cholinergic drugs prevent acetylcholine hydrolysis, indirectly contributing to the extended parasympathetic response.
The direct-acting...
Indirect-Acting Cholinergic Agonists: Chemistry and Structure-Activity Relationship01:29

Indirect-Acting Cholinergic Agonists: Chemistry and Structure-Activity Relationship

Indirect-acting cholinergic agonists are agents that interact with the acetylcholinesterase enzyme in the synaptic cleft, preventing the breakdown of acetylcholine into choline and acetate. Consequently, the concentration of acetylcholine in the synaptic cleft increases. These agonists can be classified into reversible and irreversible inhibitors based on their duration of action.
Reversible inhibitors display short to medium durations of action. Short-acting agents include simple alcohols with...
Indirect-Acting Cholinergic Agonists: Mechanism of Action01:18

Indirect-Acting Cholinergic Agonists: Mechanism of Action

Indirect-acting cholinergic agonists work by interacting with an enzyme called acetylcholinesterase (AChE) in the synaptic cleft. They can be reversible or irreversible inhibitors and have different effects on the enzyme.
Reversible inhibitors like edrophonium bind to a specific part of the enzyme called the anionic catalytic site. They form noncovalent bonds, which means they are not strongly attached to the enzyme. This creates a temporary and less stable enzyme–inhibitor complex, leading to...
Cholinergic Antagonists: Chemistry and Structure-Activity Relationship01:29

Cholinergic Antagonists: Chemistry and Structure-Activity Relationship

Cholinergic antagonists bind to cholinergic receptors and limit the effects of acetylcholine and other cholinergic agonists. Based on the specific cholinergic receptor affinity, these antagonists are classified as muscarinic or nicotinic. Anticholinergics interrupt parasympathetic innervations while sympathetic innervations remain uninterrupted. Muscarinic antagonists are also called 'muscarinic antagonists', 'antimuscarinics', or 'parasympatholytics'. Nicotinic antagonists are called...
Inhibitors of Gram-positive Cell Wall Synthesis01:23

Inhibitors of Gram-positive Cell Wall Synthesis

Bacterial cell walls are typically rigid structures composed mainly of peptidoglycan, a mesh-like polymer that provides mechanical strength and maintains cell shape. The synthesis of peptidoglycan is a crucial process in bacterial growth and serves as a primary target for many antibiotics.Mechanism of Action of Beta-Lactam AntibioticsBeta-lactam antibiotics, such as penicillin, inhibit peptidoglycan synthesis in actively growing cells. These antibiotics share a characteristic four-membered...
Anthelminthic Agents01:15

Anthelminthic Agents

Anthelmintic drugs differ significantly from antiparasitic therapies targeting protozoa, primarily due to differences in parasite biology. Whereas most protozoal treatments act on proliferating cells, anthelmintics are typically directed against mature, nonproliferative helminths. The therapeutic approach considers the helminth's reliance on neuromuscular coordination, glucose metabolism, and microtubular integrity for survival, reproduction, and localization within the host. Most anthelmintics...