| Literature DB >> 19753315 |
Juha Isosomppi1, Hanna Västinsalo, Scott F Geller, Elise Heon, John G Flannery, Eeva-Marja Sankila.
Abstract
<span class="abstract_title">PURPOSE: Mutations of <span class="Gene">clarin 1 (CLRN1) cause Usher syndrome type 3 (USH3). To determine the effects of USH3 mutations on CLRN1 function, we examined the cellular distribution and stability of both normal and mutant CLRN1 in vitro. We also searched for novel disease-causing mutations in a cohort of 59 unrelated Canadian and Finnish USH patients.Entities:
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Year: 2009 PMID: 19753315 PMCID: PMC2742642
Source DB: PubMed Journal: Mol Vis ISSN: 1090-0535 Impact factor: 2.367
Figure 1Sequence conservation around the p.L54P and p.A123D changes. Amino acids conserved in evolution are marked in bold, and mutations are marked with red. Mutations are also marked with an asterisk. Abbreviations: Homo sapiens (HS), Pan troglodytes (Pt), Bos taurus (Bt), Mus musculus (Mm), Gallus gallus (Gg), Danio rerio (Dr).
CLRN1 mutations and their prevalences.
| Spanish | homozygote | 1/1 | [ | |
| Eastern European Jewish | 5/6 pts homozygotes, 1/6 heterozygote, other allele not found | 6/4 | [ | |
| Ashkenazi Jewish | homozygote | 16/11 | [ | |
| Ashkenazi Jewish | homozygote heterozygote with p.L150P | 5/5
1/1 | [ | |
| Jewish (USA) | homozygote | 5/5 | [ | |
| Ashkenazi Jewish | homozygote heterozygote, other allele not found | 7/6
2/2 | [ | |
| Canadian | homozygote | 1/1 | This study | |
| Finnish | compound heterozygote with p.Y176X | 1/1 | This study | |
| Scotch-Irish (USA) | homozygote compound heterozygote with p.Y176X | 1/1
1/1 | [ | |
| UK (USA) | homozygote | 1/1 | [ | |
| German | compound heterozygote with c.502_503insA | 3/1 | [ | |
| Dutch (USA) | heterozygote, other allele not found | 1/1 | [ | |
| Dutch (USA) | heterozygote, other allele not found | 4/1 | [ | |
| Yemenite Jewish | homozygote | 2/1 | [ | |
| Spanish | homozygote | 3/1 | [ | |
| Turkish | homozygote | 2/1 | [ | |
| Finnish | compound heterozygote with p.Y176X | 4/2 | [ | |
| French Canadian | homozygote | 1/1 | [ | |
| Dominican (Canadian) | homozygote | 1/1 | This study | |
| Ashkenazi Jewish | compound heterozygote with p.N48K | 1/1 | [ | |
| Italian | homozygote | 4/1 | [ | |
| German | compound heterozygote with c.149_152delinsTGTCCAAT | 3/1 | [ | |
| Finnish | homozygote | 52/21 | [ | |
| Northern European, one family Scotch-Irish (USA) | homozygote | 11/6 | [ | |
| Finnish-Swedish | homozygote | 13/5 | [ | |
| Scotch-Irish (USA) | compound heterozygote with c.149–152del | 3/1 | [ |
Disease-causing USH3 mutations identified in patients are listed with the number of patients and families reported to be affected by these mutations.
Figure 2Predicted membrane topology of CLRN1. Disease-associated mutations are marked; the frameshift and nonsense mutations are marked with red amino acids, missense mutations are marked with blue amino acids, and the deleted amino acids replaced by an insertion are marked with green. Transmembrane regions (1–4) were predicted using a TMHMM2.0 program [36]. The mutations studied in this article are marked with red.
Figure 3Optical coherence tomographs of a normal control and three USH3 patients. A: 32-year-old healthy control with visual acuity (VA) of 20/20. B: 8-year-old USH3 patient with heterozygous p.Y176X and p.N48K mutations and VA of 20/20. The arrow points to the region of retinal thinning in patient’s macula. C: 35-year-old USH3 patient with homozygous p.A123D mutation and VA of 20/25. The arrow points to the schisis-like change in patient’s macula. D: 52-year-old USH3 patient with homozygous p.N48K mutation and VA of 20/30. The arrow points to the intraretinal cysts. Scale bar represents 1 mm.
Figure 4Cellular localization of WT CLRN1-HA protein in transfected BHK-21 cells. In panels B and E the cells were immunostained with HA antibody (red). In panel A the cells were immunostained with a plasma membrane specific antibody (green) and in panel D with ER specific antibody (green). The right-most panels (C and F) show the overlay of both CLRN1-HA and the organelle-specific double staining. Yellow-orange staining indicates an overlap of the CLRN1-HA protein (red) and subcellular markers (green). Cells were viewed with a confocal immunofluorescence microscope, magnification 63×. Scale bar represents 10 μm.
Figure 5Cellular localization of the disease-causing mutant CLRN1-HA polypeptides. The transfected BHK-21 cells were double immunostained with HA antibody (red) in panels B, E, H, K, and N showing the localization of mutant CLRN1-HA. In panels A, D, G, J, and M the cells were stained with the ER marker (green). The right-most panels C, F, I, L, and O show the overlay of the mutant CLRN1- HA staining (red) and ER-specific staining (green). Yellow-orange staining indicates colocalization of these stainings. Cells were viewed with a confocal immunofluorescence microscope. Scale bar represents 10 µm.
Figure 6Cellular localization of the p.L54P, p.N48K and WT CLRN1-HA polypeptides. The transfected BHK-21 cells were immunostained with HA antibody (red) showing the localization of WT CLRN1-HA (E), the novel sequence alteration p.L54P mutated CLRN1-HA (B) and the known disease-causing p.N48K mutated CLRN1-HA (H). The same cells were immunostained with plasma membrane –specific antibody (green) in panels A, D, and G. Double-staining shows that WT CLRN1-HA (F) and the p.L54P mutated CLRN1-HA (C) colocalize (yellow) with the plasma membrane marker whereas the known mutation p.N48K (I) does not colocalize with the plasma membrane marker. Cells were viewed with a confocal immunofluorescence microscope. Scale bar represents 10 µm.
Figure 7Stability of WT and mutant CLRN1-HA polypeptides in transfected BHK-21 cells. Cells were transiently transfected either with WT or mutant CLRN1-HA cDNAs. At 48 h posttransfection protein synthesis was stopped by incubating the cells for 4 h in the presence of 50 µg/ml of cycloheximide. Cells were viewed with a Zeiss Axioplan 2 fluorescence microscope. The scale bar represents 50 µm.
Figure 8Western blot analysis of the wild-type and mutant CLRN1-HA polypeptides. BHK-21 cells were transfected with the indicated HA-tagged CLRN1 plasmids. Nontransfected cells (0-BHK) were used as controls. Polypeptides were resolved on 12% SDS–PAGE, and anti-HA antibodies were used to probe the blots. Samples were untreated (-) or treated (+) with deglycosylating enzyme (PNGase F). The molecular weights of the protein bands are indicated on the left and right sides of the figure.