Visualisation of macropinosome maturation by the recruitment of sorting nexins

Markus C Kerr1, Margaret R Lindsay, Robert Luetterforst

  • 1Institute for Molecular Bioscience and ARC Centre in Bioinformatics, University of Queensland, St. Lucia, QLD 4072, Australia.

Journal of Cell Science
|September 14, 2006
PubMed

Insights

Sorting nexin 5 (SNX5) tubules rapidly recycle components from macropinosomes, promoting maturation. This process, dependent on microtubules, involves SNX5-SNX1 heterodimers and facilitates endosome trafficking.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Endocytosis and Trafficking

Background:

  • Macropinocytosis is a cellular process for internalizing large volumes of extracellular fluid.
  • The maturation of macropinosomes involves complex molecular trafficking and sorting events.
  • Sorting nexins (SNXs) are known to play roles in membrane trafficking and endosome sorting.

Purpose of the Study:

  • To investigate the role of sorting nexin 5 (SNX5) in macropinosome maturation.
  • To characterize the dynamic behavior of SNX5 during macropinosome trafficking.
  • To elucidate the molecular mechanisms underlying macropinosome maturation and recycling.

Main Methods:

  • Utilized GFP-tagged SNX5 to visualize its recruitment and dynamics on macropinosomes.
  • Employed time-lapse videomicroscopy to track the extension and departure of SNX5-labeled tubules.
  • Investigated the dependence of tubule formation on microtubules and protein interactions (SNX1).

Main Results:

  • SNX5 rapidly associates with newly formed macropinosomes and forms dynamic tubular structures.
  • These SNX5-positive tubules extend, detach from macropinosomes, and traffic towards the perinuclear region.
  • Macropinosome maturation involves SNX5-SNX1 heterodimerization and microtubule-dependent tubule departure, leading to Rab7 recruitment.

Conclusions:

  • The departure of SNX5-positive tubules represents a rapid recycling mechanism from macropinosomes.
  • This process is crucial for the maturation of macropinosomes into Rab7-positive endosomes.
  • Provides a real-time characterization of macropinocytic endosome maturation dynamics.

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