Sirolimus and Everolimus Pathway: Reviewing Candidate Genes Influencing Their Intracellular Effects

Simona Granata1, Alessandra Dalla Gassa2, Amedeo Carraro3

  • 1Renal Unit, Department of Medicine, University/Hospital of Verona, 37126 Verona, Italy. simona.granata@univr.it.

Insights

Sirolimus (SRL) and everolimus (EVR) are mTOR inhibitors impacting cellular functions. This review defines the genetic pathways influencing their effects, aiding future research in transplantation and oncology.

Area of Science:

  • Pharmacology
  • Genetics
  • Cell Biology

Background:

  • Sirolimus (SRL) and everolimus (EVR) are mTOR inhibitors used in transplantation and oncology.
  • EVR, a derivative of SRL, offers improved hydrophilicity and oral bioavailability.
  • Their mechanism involves inhibiting mTOR complex 1, affecting key cellular processes like protein synthesis, angiogenesis, and autophagy.

Purpose of the Study:

  • To review existing literature on the genetic influence on mammalian target of rapamycin inhibitor (mTOR-I) biology and pharmacology.
  • To construct a comprehensive "SRL/EVR genes-focused pathway" for future research.

Main Methods:

  • Literature review of major evidence on genetic influence on mTOR-I pharmacology.
  • Compilation and organization of genetic data related to SRL and EVR cellular effects.

Main Results:

  • The polygenic influence on SRL/EVR cellular effects is not fully understood.
  • A novel "SRL/EVR genes-focused pathway" has been developed.

Conclusions:

  • Understanding the genetic basis of SRL/EVR action is crucial for optimizing their therapeutic use.
  • The developed pathway serves as a foundation for further investigation into mTOR-I pharmacology and personalized medicine.

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