RLIP: A necessary transporter protein for translating oxidative stress into pro-obesity and pro-carcinogenic

Sharad S Singhal1, Rachana Garg2, David Horne3

  • 1Departments of Medical Oncology & Therapeutics Research, Beckman Research Institute of City of Hope, Comprehensive Cancer Center and National Medical Center, Duarte, CA 91010, United States of America.

Insights

Targeting the RLIP transporter protein can prevent obesity and cancer. Depleting RLIP blocks signaling pathways essential for cancer growth and insulin resistance, offering a novel therapeutic strategy.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Oncology

Background:

  • The mercapturic acid pathway (MAP) transporter protein, RLIP, is crucial for cellular processes.
  • RLIP deficiency in mice (RLIP-/-) confers resistance to chemical carcinogenesis, inflammation, metabolic syndrome (MetS), and obesity induced by high-fat diets (HFD).
  • RLIP-/- mice exhibit blocked obesity-related signaling despite increased oxidative stress, attributed to deficient clathrin-dependent endocytosis (CDE).

Purpose of the Study:

  • To investigate the role of RLIP in carcinogenesis and its potential as a therapeutic target.
  • To determine if RLIP depletion could induce cancer regression in human cancer xenografts.
  • To evaluate the effect of RLIP depletion on lymphomagenesis in p53-/- mice.

Main Methods:

  • Studies utilizing RLIP knockout mice (RLIP-/-) and human cancer xenografts.
  • Antisense-mediated depletion of RLIP in xenograft models and p53-/- mice.
  • Analysis of signaling pathways including kinase, cytokine, adipokine, EGF, WNT, and TGFβ.
  • Assessment of lymphomagenesis in p53-/- mice treated with anti-RLIP antisense.

Main Results:

  • RLIP depletion via antisense approach caused regression of xenografts from lung, kidney, prostate, breast, pancreatic cancers, and melanoma.
  • Lymphomagenesis was completely suppressed in p53-/- mice treated with anti-RLIP antisense until 8 months of age, unlike control mice.
  • A model was proposed where increased oxidative stress elevates MAP metabolite flux, increasing CDE and promoting insulin resistance and cancer predisposition.

Conclusions:

  • RLIP plays an essential role in carcinogenesis and lymphomagenesis.
  • Targeted depletion or inhibition of RLIP presents a novel therapeutic strategy for treating obesity and cancer.
  • RLIP inhibition demonstrates potential for antagonizing malignant cell growth and improving insulin sensitivity.

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