Design and synthesis of (ant)-agonists that alter appetite and adiposity

Lex H T Van der Ploeg1, Akio Kanatani, Douglas MacNeil

  • 1Merck Research Laboratories, Boston, MA, USA. lex_van_der_ploeg@merck.com

Insights

Developing new obesity drugs requires understanding how rodent studies translate to humans. Focusing on specific receptors like melanocortin 4 and neuropeptide Y1/Y5 shows promise for metabolic syndrome treatments.

Area of Science:

  • Neuroendocrinology
  • Pharmacology
  • Metabolic Diseases

Background:

  • Hypothalamic circuits regulate energy homeostasis in rodents and humans.
  • Drug development for obesity and metabolic syndrome targets validated pathways.
  • Translating rodent findings to human therapeutics is crucial for clinical success.

Purpose of the Study:

  • To review drug development efforts for obesity treatment, focusing on specific receptor pathways.
  • To discuss the importance of understanding cell-based observations and structure-activity relationships.
  • To outline diverse approaches for developing safe and effective anti-obesity drugs.

Main Methods:

  • Investigating pathways involving ghrelin, melanin-concentrating hormone, melanocortin, cannabinoid, and neuropeptide Y receptors.
  • Focusing on selective melanocortin 4 receptor agonists and neuropeptide Y1/Y5 receptor antagonists.
  • Utilizing cell-based assays and in vivo models to validate ex vivo observations.

Main Results:

  • Drug development requires understanding receptor function in specific cell backgrounds.
  • Early evaluation and validation in vivo are essential for compound development.
  • Structure-activity relationships are driven by in-depth cell-based observations.

Conclusions:

  • Developing selective and safe anti-obesity drugs necessitates a multi-faceted approach.
  • Understanding the predictive value of rodent pathways for human disease is critical.
  • Knowledge of receptor location, occupancy, and safety parameters is key for clinical success.

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