Crosstalk of Ras and Rho: activation of RhoA abates Kras-induced liver tumorigenesis in transgenic zebrafish models

T W Chew1, X J Liu2, L Liu3

  • 11] Cell Signaling and Developmental Biology Laboratory, Department of Biological Sciences, National University of Singapore, Singapore, Singapore [2] Mechanobiology Institute, National University of Singapore, Singapore, Singapore.

Oncogene
|July 2, 2013
PubMed

Insights

RAS and Rho GTPases crosstalk in zebrafish liver development and cancer. Dominant-negative RhoA enhanced Kras-induced liver overgrowth and mortality, suggesting RhoA activation may suppress liver tumors.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Developmental Biology

Background:

  • RAS and Rho GTPases are crucial for cell signaling, but their crosstalk in vivo, particularly in liver development and cancer, is poorly understood.
  • Zebrafish models exhibit molecular and histopathological similarities to human liver cancer, making them valuable for studying tumorigenesis.

Purpose of the Study:

  • To investigate the signaling crosstalk between oncogenic Kras and RhoA in liver development and tumorigenesis using a zebrafish model.
  • To determine the in vivo consequences of manipulating RhoA activity in the context of Kras-driven liver cancer.

Main Methods:

  • Generation of liver-specific, Tet-on-inducible transgenic zebrafish lines expressing oncogenic Kras(G12V), RhoA variants (constitutively active RhoA(G14V), dominant-negative RhoA(T19N)), and double-transgenic combinations.
  • Quantitative bioimaging and analysis of molecular markers to assess liver size, hepatocyte proliferation, and signaling pathway activation (Erk, Akt2, p21Cip, S6 kinase).
  • Survival studies to evaluate the impact of Kras and RhoA co-expression on mortality rates in hepatocellular carcinoma development.

Main Results:

  • Induced oncogenic Kras expression led to liver enlargement, hepatocyte proliferation, and activation of Erk and Akt2 pathways.
  • Dominant-negative RhoA(T19N) augmented Kras-induced liver growth and Akt2 activation, while constitutively active RhoA(G14V) abrogated these effects.
  • Co-expression of dominant-negative RhoA(T19N) with oncogenic Kras significantly increased mortality, indicating a role in promoting liver tumorigenesis.

Conclusions:

  • This study reveals significant, previously unappreciated signaling crosstalk between Kras and RhoA in regulating liver overgrowth and tumorigenesis.
  • The findings suggest that activating RhoA could potentially suppress Kras-induced liver malignancies, offering a therapeutic avenue.

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