The Mitochondrial HSP90 Paralog TRAP1: Structural Dynamics, Interactome, Role in Metabolic Regulation, and Inhibitors

Biomolecules. 2022 Jun 24;12(7):880. doi: 10.3390/biom12070880.

Abstract

The HSP90 paralog TRAP1 was discovered more than 20 years ago; yet, a detailed understanding of the function of this mitochondrial molecular chaperone remains elusive. The dispensable nature of TRAP1 in vitro and in vivo further complicates an understanding of its role in mitochondrial biology. TRAP1 is more homologous to the bacterial HSP90, HtpG, than to eukaryotic HSP90. Lacking co-chaperones, the unique structural features of TRAP1 likely regulate its temperature-sensitive ATPase activity and shed light on the alternative mechanisms driving the chaperone's nucleotide-dependent cycle in a defined environment whose physiological temperature approaches 50 °C. TRAP1 appears to be an important bioregulator of mitochondrial respiration, mediating the balance between oxidative phosphorylation and glycolysis, while at the same time promoting mitochondrial homeostasis and displaying cytoprotective activity. Inactivation/loss of TRAP1 has been observed in several neurodegenerative diseases while TRAP1 expression is reported to be elevated in multiple cancers and, as with HSP90, evidence of addiction to TRAP1 has been observed. In this review, we summarize what is currently known about this unique HSP90 paralog and why a better understanding of TRAP1 structure, function, and regulation is likely to enhance our understanding of the mechanistic basis of mitochondrial homeostasis.

Keywords: HSP90; OxPhos; TRAP1; metabolism; mitochondria; molecular chaperone; tetramers.

Publication types

  • Review
  • Research Support, N.I.H., Intramural

MeSH terms

  • Glycolysis
  • HSP90 Heat-Shock Proteins* / metabolism
  • Homeostasis
  • Mitochondria* / metabolism
  • Molecular Chaperones / metabolism
  • Oxidative Phosphorylation

Substances

  • HSP90 Heat-Shock Proteins
  • Molecular Chaperones