Total synthesis and biological evaluation of the nakijiquinones

P Stahl1, L Kissau, R Mazitschek

  • 1Department of Chemical Biology, Max-Planck-Institut für molekulare Physiologie, Otto-Hahn-Strasse 11, 44227 Dortmund, Germany.

Insights

Researchers developed the first enantioselective synthesis for nakijiquinones, natural inhibitors of the Her-2/Neu oncogene. A synthesized analogue selectively inhibits KDR receptor tyrosine kinase, crucial for tumor angiogenesis.

Area of Science:

  • Organic Synthesis
  • Medicinal Chemistry
  • Molecular Biology

Background:

  • Her-2/Neu receptor tyrosine kinase overexpression is common in breast, ovarian, and gastric cancers.
  • Nakijiquinones are the sole natural inhibitors of Her-2/Neu.
  • Structural analogues may inhibit other receptor tyrosine kinases involved in cancer proliferation.

Purpose of the Study:

  • To achieve the first enantioselective synthesis of nakijiquinones.
  • To explore the synthesis of nakijiquinone analogues with modified structures.
  • To investigate the kinase-inhibiting properties of synthesized compounds.

Main Methods:

  • Enantioselective synthesis involving reductive alkylation, oxidative conversion to a p-quinoid system, and regioselective saponification.
  • Introduction of amino acids via vinylogous ester to vinylogous amide conversion.
  • Stereochemistry and substitution pattern completion via olefination/reduction and olefination/isomerization sequences.
  • Kinase inhibition assays and molecular modeling studies.

Main Results:

  • Successful enantioselective synthesis of nakijiquinones.
  • Access to analogues of nakijiquinone C with variations in stereochemistry and double bond position.
  • The C-2 epimer of nakijiquinone C (compound 30) demonstrated potent and selective inhibition of the KDR receptor tyrosine kinase.
  • Molecular modeling provided insights into the structural basis for differential activity.

Conclusions:

  • The developed synthetic route enables access to novel nakijiquinone analogues.
  • Compound 30 represents a promising selective inhibitor of KDR, a key target in tumor angiogenesis.
  • Structural modifications can significantly impact kinase inhibitory activity, guiding future drug design.

Related Concept Videos

Overview of Nitrogen Metabolism01:20

Overview of Nitrogen Metabolism

Nitrogen is a very important element for life because it is a major constituent of proteins and nucleic acids. It is a macronutrient, and in nature, it is recycled from organic compounds and stored in the form of  ammonia, ammonium ions, nitrate, nitrite, or  nitrogen gas by many metabolic processes. Many of these metabolic processes are carried out only by prokaryotes.
The largest pool of nitrogen available in the terrestrial ecosystem is gaseous nitrogen (N2) from the air, but this nitrogen...
Bioequivalence: Overview01:16

Bioequivalence: Overview

Pharmaceutical equivalents, by definition, are drug products with the same active ingredient in the same quantities, encapsulated in identical dosage forms, and intended for the same administration routes. These pharmaceutical equivalents are deemed bioequivalent if the bioavailability of the active entity in the drug preparations is similar. Moreover, pharmaceutical equivalents demonstrating bioequivalence are also regarded as therapeutically equivalent. This means that when used as directed,...
Equivalence: In Vitro and In Vivo Bioequivalence01:17

Equivalence: In Vitro and In Vivo Bioequivalence

Bioequivalence studies are crucial in evaluating whether new drugs can match an approved one regarding pharmacological effects and clinical performance. These studies test if drugs, despite different dosage forms, share identical plasma concentration-time profiles. Three types of equivalence are central to these studies: chemical, pharmaceutical, and therapeutic. Chemical equivalence indicates that two or more drug products contain identical active ingredients in equal amounts. Pharmaceutical...
Toxicity Testing in Animals01:23

Toxicity Testing in Animals

Toxicity tests in animals are grounded on two main assumptions: first, the effects observed in laboratory animals can be extrapolated to humans, especially when adjusted for body surface area; second, high-dose exposure in animals is essential to identify potential human hazards from lower doses. This is based on the quantal dose-response concept, which faces the challenge of extrapolating results from relatively few test animals to much larger human populations. For example, a 0.01% incidence...