Fibroblast activation protein (FAP) as a novel metabolic target

Research output: Contribution to journalJournal articleResearchpeer-review

  • Miguel Angel Sánchez-Garrido
  • Kirk M Habegger
  • Clemmensen, Christoffer
  • Cassie Holleman
  • Timo D Müller
  • Diego Perez-Tilve
  • Pengyun Li
  • Archita S Agrawal
  • Brian Finan
  • Daniel J Drucker
  • Matthias H Tschöp
  • Richard D DiMarchi
  • Alexei Kharitonenkov

OBJECTIVE: Fibroblast activation protein (FAP) is a serine protease belonging to a S9B prolyl oligopeptidase subfamily. This enzyme has been implicated in cancer development and recently reported to regulate degradation of FGF21, a potent metabolic hormone. Using a known FAP inhibitor, talabostat (TB), we explored the impact of FAP inhibition on metabolic regulation in mice.

METHODS: To address this question we evaluated the pharmacology of TB in various mouse models including those deficient in FGF21, GLP1 and GIP signaling. We also studied the ability of FAP to process FGF21 in vitro and TB to block FAP enzymatic activity.

RESULTS: TB administration to diet-induced obese (DIO) animals led to profound decreases in body weight, reduced food consumption and adiposity, increased energy expenditure, improved glucose tolerance and insulin sensitivity, and lowered cholesterol levels. Total and intact plasma FGF21 were observed to be elevated in TB-treated DIO mice but not lean animals where the metabolic impact of TB was significantly attenuated. Furthermore, and in stark contrast to naïve DIO mice, the administration of TB to obese FGF21 knockout animals demonstrated no appreciable effect on body weight or any other measures of metabolism. In support of these results we observed no enzymatic degradation of human FGF21 at either end of the protein when FAP was inhibited in vitro by TB.

CONCLUSIONS: We conclude that pharmacological inhibition of FAP enhances levels of FGF21 in obese mice to provide robust metabolic benefits not observed in lean animals, thus validating this enzyme as a novel drug target for the treatment of obesity and diabetes.

Original languageEnglish
JournalMolecular Metabolism
Volume5
Issue number10
Pages (from-to)1015-24
Number of pages10
ISSN2212-8778
DOIs
Publication statusPublished - Oct 2016
Externally publishedYes

    Research areas

  • Journal Article

ID: 186639857