A role for CCN3 (NOV) in calcium signalling

C L Li1, V Martinez, B He

  • 1Laboratoire d'Oncologie Virale et Moléculaire (LOVM), UFR de Biochimie, Université Paris 7-D. Diderot, 2 Place Jussieu, 75005 Paris, France.

Abstract

Insights

The CCN3 (NOV) protein interacts with calcium-binding protein S100A4 and influences intracellular calcium levels, impacting cell growth and potentially contributing to carcinogenesis. This study reveals CCN3

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • CCN3 (NOV) expression is elevated in tissues where calcium regulation is critical, including the adrenal gland, CNS, bone, cartilage, heart, and kidney.
  • The structure of CCN proteins suggests they are metalloproteins, prompting investigation into CCN3's role in ion flux and cellular processes.

Purpose of the Study:

  • To investigate the role of CCN3 in ion flux and transport during development.
  • To explore CCN3's involvement in the control of cell proliferation, differentiation, and pathobiology.
  • To identify CCN3's interaction partners and its effect on intracellular calcium concentrations.

Main Methods:

  • Utilized a yeast two-hybrid system to identify CCN3 interaction partners, followed by GST pull-down assays to confirm interactions.
  • Employed dynamic imaging microscopy for fluorometric measurement of intracellular calcium concentration.
  • Tested the effects of CCN3 and CCN2 (CTGF) on calcium flux in glioblastoma and neuroblastoma cell lines.

Main Results:

  • Identified S100A4, a calcium-binding protein, as a binding partner of CCN3.
  • Demonstrated that CCN3 and CCN2 induce a transient increase in intracellular calcium in G59 glioblastoma and SK-N-SH neuroblastoma cells.
  • Observed that calcium originates from both extracellular entry and intracellular stores upon CCN3/CCN2 stimulation.

Conclusions:

  • The interaction between CCN3 and S100A4 may explain CCN3's association with carcinogenesis and its expression patterns.
  • CCN3 and CCN2-induced calcium increases involve voltage-independent calcium channels, suggesting a role in cell growth, motility, and spreading.
  • This study establishes a biological function for CCN3 and highlights the broader role of CCN proteins in calcium signaling.

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