Rapamycin and Torin2 inhibit Candida auris TOR: Insights through growth profiling, docking, and MD simulations

Biswambhar Biswas1, Garima Gangwar2, Vikrant Nain2

  • 1Regional Centre for Biotechnology, 3rd Milestone Gurgaon-Faridabad Expressway, Faridabad, Haryana, India.

Insights

The Target of rapamycin (TOR) pathway is conserved in Candida auris and its inhibition affects fungal growth and biofilm formation. Rapamycin and Torin2 show potential as specific inhibitors for C. auris Tor kinase.

Area of Science:

  • Mycology and Infectious Diseases
  • Molecular Biology and Biochemistry

Background:

  • Candida auris is a global health concern due to its antifungal resistance, thermotolerance, and persistence in healthcare settings.
  • Understanding C. auris pathobiology and drug tolerance is crucial, especially with co-infections in hospitalized patients.
  • The Target of rapamycin (TOR) signaling pathway regulates eukaryotic growth and is implicated in fungal pathogenesis.

Purpose of the Study:

  • To investigate the role of the TOR signaling pathway in Candida auris growth and pathobiology.
  • To identify potential therapeutic targets within the TOR pathway for C. auris.

Main Methods:

  • In silico analysis to identify conserved TOR pathway components in C. auris.
  • Treatment of C. auris with specific TOR inhibitors (rapamycin and Torin2) to assess growth inhibition.
  • Flow cytometry to analyze cell cycle progression and cytokinesis defects.
  • In silico docking and simulations to confirm inhibitor specificity for C. auris Tor kinase (CauTor kinase).

Main Results:

  • The TOR signaling pathway is highly conserved in C. auris, with key components identified.
  • Rapamycin and Torin2 significantly inhibit C. auris growth, causing G1 cell cycle arrest and cytokinesis defects.
  • C. auris exhibits a heterogeneous response to Torin2 at different temperatures, with reduced efficacy at 37°C.
  • TOR inhibition suppresses biofilm formation in C. auris.
  • Rapamycin and Torin2 specifically inhibit CauTor kinase, validated by in silico studies.

Conclusions:

  • The TOR signaling pathway is essential for C. auris growth, cell cycle progression, and biofilm formation.
  • Rapamycin and Torin2 are effective inhibitors of C. auris Tor kinase and can be valuable tools for studying C. auris pathobiology and drug tolerance.
  • The temperature-dependent efficacy of Torin2 highlights the need for physiology-based approaches in antifungal drug development.