Distinct biogenesis mechanisms for the water channels MIWC and CHIP28 at the endoplasmic reticulum

L B Shi1, W R Skach, T Ma

  • 1Department of Medicine, University of California, San Francisco 94143-0521, USA.

Biochemistry
|July 4, 1995
PubMed

Insights

This study determined the transmembrane topology of the MIWC water channel, revealing six membrane-spanning domains with both N- and C-termini located in the cytoplasm. These findings clarify MIWC

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Biochemistry

Background:

  • The mercurial-insensitive water channel (MIWC) is a 32 kDa protein expressed in various tissues, including kidney collecting ducts.
  • Previous studies established that the homologous water channel CHIP28 spans the endoplasmic reticulum (ER) membrane four times.
  • Hydropathy analysis suggested MIWC possesses up to eight hydrophobic regions (HRs) with potential membrane-spanning capabilities.

Purpose of the Study:

  • To determine the transmembrane topology of the MIWC water channel within the ER membrane.
  • To elucidate the orientation of MIWC's N- and C-termini relative to the cytoplasm.

Main Methods:

  • Construction of 10 cDNA chimeras encoding increasing lengths of MIWC fused to a prolactin P-domain reporter epitope.
  • Cell-free translation in rabbit reticulocyte lysate with ER-derived microsomes and translation in Xenopus oocytes.
  • Analysis of protease accessibility of the P-reporter to determine transmembrane topology, confirmed by N-linked glycosylation assays and pH 11.5 extractability.

Main Results:

  • Protease accessibility studies indicated that MIWC spans the ER membrane six times.
  • Both the N- and C-termini of MIWC were found to be located in the cytoplasm.
  • N-linked glycosylation at native (N131) and engineered (N197) sites confirmed the topology; membrane integration initiated after the first HR (1-46).

Conclusions:

  • The MIWC water channel exhibits a six-transmembrane domain topology with cytoplasmic N- and C-termini.
  • The second hydrophobic region (HR2) contains a stop-transfer sequence that likely mediates membrane integration and topology.
  • These findings provide critical insights into the structural organization and membrane topology of MIWC.

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