The intracellular hyaluronan receptor RHAMM/IHABP interacts with microtubules and actin filaments

V Assmann1, D Jenkinson, J F Marshall

  • 1Richard Dimbleby Department of Cancer Research/ICRF Laboratory, St Thomas' Hospital, Lambeth Palace Road, London SE1 7EH, UK. V.Assmann@icrf.icnet.uk

Journal of Cell Science
|November 5, 1999
PubMed

Insights

The hyaluronan receptor RHAMM/IHABP interacts with microtubules and actin filaments, functioning as a filamentous protein, not a cell surface receptor. This suggests RHAMM/IHABP is a novel microtubule-associated protein (MAP).

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Previous studies identified RHAMM/IHABP as a hyaluronan receptor on human cancer cells.
  • The intracellular localization and function of RHAMM/IHABP were not fully understood.

Purpose of the Study:

  • To investigate the intracellular localization and protein interactions of RHAMM/IHABP.
  • To determine if RHAMM/IHABP functions as a microtubule-associated protein (MAP).

Main Methods:

  • Colocalization studies using GFP-tagged RHAMM/IHABP variants in HeLa cells.
  • Microtubule-binding assays with RHAMM/IHABP deletion mutants.
  • In vivo and in vitro interaction studies with actin filaments and calmodulin.

Main Results:

  • RHAMM/IHABP colocalizes with microtubules in interphase and dividing cells.
  • A specific N-terminal region of RHAMM/IHABP mediates microtubule binding.
  • RHAMM/IHABP interacts with both microtubules and actin filaments, and binds calmodulin in a calcium-dependent manner.
  • Sequence analysis predicts RHAMM/IHABP to be a filamentous protein.

Conclusions:

  • RHAMM/IHABP is a ubiquitously expressed filamentous protein that interacts with microtubules and microfilaments.
  • RHAMM/IHABP represents a novel microtubule-associated protein (MAP).
  • The findings challenge the established role of RHAMM/IHABP as solely a hyaluronan receptor.

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