Cell-surface G-protein-coupled receptors for tumor-associated metabolites: A direct link to mitochondrial dysfunction

Bojana Ristic1, Yangzom D Bhutia1, Vadivel Ganapathy1

  • 1Department of Cell Biology and Biochemistry, Texas Tech University Health Sciences Center, Lubbock, TX 79430, USA.

Insights

Mitochondrial dysfunction in cancer inactivates key enzymes, altering metabolites like lactate and succinate. Targeting related G-protein-coupled receptors (GPRs) offers new cancer treatment and prevention strategies.

Area of Science:

  • Mitochondrial biology and cancer metabolism.
  • Enzyme regulation and epigenetic modifications in oncogenesis.
  • G-protein-coupled receptor (GPCR) signaling in tumorigenesis.

Background:

  • Mitochondrial dysfunction is a hallmark of cancer, linked to oncogenesis, angiogenesis, the Warburg effect, and epigenetics.
  • Key mitochondrial enzymes like pyruvate dehydrogenase (PDH), succinate dehydrogenase (SDH), and HMGCS2 are inactivated in cancer cells.
  • SIRT3, a mitochondrial deacetylase, regulates these enzymes, acting as a tumor suppressor.

Purpose of the Study:

  • To investigate the role of mitochondrial enzyme inactivation and subsequent metabolite changes in cancer.
  • To explore the signaling pathways of lactate, succinate, and β-hydroxybutyrate via their respective GPCRs (GPR81, GPR91, GPR109A).
  • To identify these metabolite-GPCR axes as potential therapeutic targets for cancer treatment and prevention.

Main Methods:

  • Analysis of mitochondrial enzyme activity (PDH, SDH, HMGCS2) in cancer cells.
  • Measurement of metabolite levels (lactate, succinate, β-hydroxybutyrate) and their impact on GPCR signaling.
  • Investigation of GPCR expression (GPR81, GPR91, GPR109A) in tumor cells.
  • Evaluation of potential therapeutic strategies targeting these GPCRs.

Main Results:

  • Inactivated PDH, SDH, and HMGCS2 lead to altered cellular energetics and metabolite accumulation (lactate, succinate) or depletion (β-hydroxybutyrate).
  • Lactate and succinate act as agonists for tumor-promoting GPR81 and GPR91, respectively, driving tumorigenesis.
  • Decreased β-hydroxybutyrate production suppresses signaling via tumor-suppressive GPR109A, promoting cancer.
  • Tumor cells upregulate GPR81/GPR91 and downregulate GPR109A, correlating with metabolic shifts.

Conclusions:

  • The interplay between mitochondrial enzymes, metabolites, and GPCRs is critical in cancer progression.
  • Targeting GPR81 and GPR91 with antagonists could inhibit tumor growth.
  • Activating GPR109A with agonists may offer a strategy for cancer prevention.

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