Distinct biogenesis mechanisms for the water channels MIWC and CHIP28 at the endoplasmic reticulum
1Department of Medicine, University of California, San Francisco 94143-0521, USA.
Abstract:
MIWC is a 32 kDa mercurial-insensitive water channel [Hasegawa et al. (1994) J. Biol. Chem. 269, 5497-5500] expressed in kidney collecting duct, brain ependymal cells, airways, and other tissues. We showed recently that the homologous water channel CHIP28 spanned the endoplasmic reticulum (ER) membrane 4 times with N- and C-termini in the cytoplasm [Skach et al., (1994) J. Cell Biol. 125, 803-815]. Hydropathy analysis of MIWC indicated up to eight hydrophobic regions (HRs) comprising potential membrane-spanning domains. To determine MIWC transmembrane topology at the ER, 10 cDNA chimeras were constructed which encoded increasing lengths of MIWC upstream from a reporter epitope (prolactin P-domain) at residues 13, 46, 73, 92, 120, 140, 164, 209, 276, and 2097, corresponding to putative polar extramembrane loops in the MIWC sequence. The chimeras were translated cell-free (rabbit reticulocyte lysate+ER-derived microsomes) and in Xenopus oocytes. Peptide chains were labeled with [35S]methionine and immunoprecipitated with a P-domain antibody. Transmembrane topology as determined by protease accessibility of the P-reporter indicated six membrane-spanning domains with N- and C-termini in the cytoplasm. The predicted topology was confirmed by demonstrating N-linked glycosylation at native residue N131 and an engineered consensus site at residue 197. Membrane integration of the nascent chain, as assayed by extractability at pH 11.5, occurred after synthesis of the first HR (residues 1-46). Translocation was terminated by a stop transfer sequence in the second HR (residues 32-73) as demonstrated by translation of the heterologous construct, [prolactin signal sequence]-[globin]-[HR2]-P.(ABSTRACT TRUNCATED AT 250 WORDS)
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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