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1.
Neuroscience ; 457: 186-195, 2021 03 01.
Article in English | MEDLINE | ID: mdl-33482328

ABSTRACT

Alpha-synuclein (αS) is an intrinsically disordered protein (IDP) that is abundantly present in the brain and is associated with Parkinson's disease (PD). In spite of its abundance and its contribution to PD pathogenesis, the exact cellular function of αS remains largely unknown. The ability of αS to remodel phospholipid model membranes combined with biochemical and cellular studies suggests that αS is involved in endocytosis. To unravel with which route(s) and stage(s) of the endocytic pathway αS is associated, we quantified the colocalization between αS and endocytic marker proteins in differentiated SH-SY5Y neuronal cells, using an object based colocalization analysis. Comparison with randomized data allowed us to discriminate between structural and coincidental colocalizations. A large fraction of the αS positive vesicles colocalizes with caveolin positive vesicles, a smaller fraction colocalizes with EEA1 and Rab7. We find no structural colocalization between αS and clathrin and Rab11 positive vesicles. We conclude that in a physiological context, αS is structurally associated with caveolin dependent membrane vesiculation and is found further along the endocytic pathway, in decreasing amounts, on early and late endosomes. Our results not only shed new light on the function of αS, they also provide a possible link between αS function and vesicle trafficking malfunction in PD.


Subject(s)
Parkinson Disease , alpha-Synuclein , Clathrin , Endocytosis , Humans , Neurons
2.
Sci Rep ; 6: 23116, 2016 Mar 17.
Article in English | MEDLINE | ID: mdl-26984067

ABSTRACT

The formation of α-synuclein (α-S) amyloid aggregates, called Lewy bodies (LBs), is a hallmark of Parkinson's disease (PD). The function of LBs in the disease process is however still unclear; they have been associated with both neuroprotection and toxicity. To obtain insight into this contradiction, we induced the formation of α-S inclusions, using three different induction methods in SH-SY5Y cells and rat-derived primary neuronal cells. Using confocal and STED microscopy we observed induction-dependent differences in α-S inclusion morphology, location and function. The aggregation of α-S in functionally different compartments correlates with the toxicity of the induction method measured in viability assays. The most cytotoxic treatment largely correlates with the formation of proteasome-associated, juxta-nuclear inclusions. With less toxic methods cytosolic deposits that are not associated with the proteasome are more prevalent. The distribution of α-S over at least two different types of inclusions is not limited to cell models, but is also observed in primary neuronal cells and in human mesencephalon. The existence of functionally different LBs, in vivo and in vitro, gives important insights in the impact of Lewy Body formation on neuronal functioning and may thereby provide a platform for discovering therapeutics.


Subject(s)
Lewy Bodies/metabolism , Parkinson Disease/pathology , alpha-Synuclein/metabolism , Amyloid/metabolism , Animals , Cells, Cultured , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , Humans , Mesencephalon/cytology , Mesencephalon/metabolism , Microscopy, Atomic Force , Microscopy, Confocal , Neurons/cytology , Neurons/metabolism , Parkinson Disease/metabolism , Proteasome Endopeptidase Complex/metabolism , Protein Aggregates , Rats , Rats, Wistar , Recombinant Fusion Proteins/biosynthesis , Recombinant Fusion Proteins/genetics , Transfection , alpha-Synuclein/genetics
3.
Hum Mutat ; 30(10): 1387-96, 2009 Oct.
Article in English | MEDLINE | ID: mdl-19701945

ABSTRACT

Regulation of body water homeostasis occurs by the vasopressin-dependent sorting of aquaporin-2 (AQP2) water channels to and from the apical membrane of renal principal cells. Mutations in AQP2 cause autosomal nephrogenic diabetes insipidus (NDI), a disease that renders the kidney unresponsive to vasopressin, resulting in polyuria and polydipsia. The AQP2 mutant c.772G>A; p.Glu258Lys (AQP2-E258K) causes dominant NDI by oligomerizing with wild-type AQP2 and missorting of this AQP2 complex to multivesicular bodies instead of the apical membrane. The motif causing this missorting of AQP2-E258K was identified here. Functional analyses and plasma membrane expression studies of truncation mutants in oocytes revealed that AQP2-E258K shortened to Leu259 is still intracellular retained. Alanine scanning and glutamic acid to arginine exchanges revealed increased function and plasma membrane expression for AQP2-E258K mutants with the following additional changes: Leu259Ala, Arg252Glu, Arg253Glu, or Arg252Ala-Arg254Ala, or for the AQP2 mutant p.Glu258Ala, indicating that the motif RRRxxxK(258)L confers AQP2-E258K retention. Fusion of this motif to aquaporin-1 also resulted in missorting of that water channel, indicating that this retention motif is transferable. In conclusion, our data reveal that the RRRxxxKL motif and repulsion between K258 and the arginine-triplet within this motif are the primary cause of missorting of AQP2-E258K in NDI.


Subject(s)
Aquaporin 2/genetics , Arginine/genetics , Diabetes Insipidus, Nephrogenic/genetics , Glycine/genetics , Lysine/genetics , Mutation , Amino Acid Sequence , Aquaporin 2/chemistry , Aquaporin 2/metabolism , Cell Compartmentation , Humans , Immunohistochemistry , Molecular Sequence Data , Sequence Homology, Amino Acid
4.
Hum Mutat ; 30(10): E891-903, 2009 Oct.
Article in English | MEDLINE | ID: mdl-19585583

ABSTRACT

Vasopressin regulates human water homeostasis by re-distributing homotetrameric aquaporin-2 (AQP2) water channels from intracellular vesicles to the apical membrane of renal principal cells, a process in which phosphorylation of AQP2 at S256 by cAMP-dependent protein kinase A (PKA) is thought to be essential. Dominant nephrogenic diabetes insipidus (NDI), a disease in which the kidney is unable to concentrate urine in response to vasopressin, is caused by AQP2 gene mutations. Here, we investigated a reported patient case of dominant NDI caused by a novel p.R254Q mutation. Expressed in oocytes, AQP2-p.R254Q appeared to be a functional water channel, but was impaired in its transport to the cell surface to the same degree as AQP2-p.S256A, which mimics non-phosphorylated AQP2. In polarized MDCK cells, AQP2-p.R254Q was retained and was distributed similarly to that of unstimulated wt-AQP2 or AQP2-p.S256A. Upon co-expression, AQP2-p.R254Q interacted with, and retained wt-AQP2 in intracellular vesicles. In contrast to wild-type AQP2, forskolin did not increase AQP2-p.R254Q phosphorylation at S256 or its translocation to the apical membrane. Mimicking constitutive phosphorylation in AQP2-p.R254Q with the p.S256D mutation, however, rescued its apical membrane expression. These date indicate that a lack of S256 phosphorylation is the sole cause of dominant NDI here, and thereby, p.R254Q is a loss of function instead of a gain of function mutation in dominant NDI.


Subject(s)
Aquaporin 2/genetics , Arginine Vasopressin/metabolism , Diabetes Insipidus, Nephrogenic/genetics , Genes, Dominant , Mutation , Animals , Aquaporin 2/metabolism , Base Sequence , Biopolymers , Cell Membrane/metabolism , Cells, Cultured , DNA Primers , Dogs , Humans , Phosphorylation
5.
Am J Physiol Renal Physiol ; 295(2): F525-33, 2008 Aug.
Article in English | MEDLINE | ID: mdl-18495799

ABSTRACT

In the kidney, many physiological processes of ion transport and cellular proliferation are mediated via cAMP, which classically activates protein kinase A (PKA). Recently, however, two new cAMP targets, the exchange protein directly activated by cAMP (Epac) 1 and 2, were identified, which mediate alternative pathways to PKA. To investigate their renal expression, antibodies specifically recognizing Epac1 and Epac2 were generated and used in rat immunohistochemistry with antibodies recognizing aquaporin-1 (AQP1), Tamm-Horsfall protein, Calbindin-D(28K), and AQP2 to mark proximal tubules (PT)/thin descending limbs of Henle's loop (tDLH), thick ascending limbs of Henle's loop (TAL), distal convoluted tubule/connecting tubule (DCT/CNT), and the collecting duct (CD) principal cells, respectively. Epac1 and Epac2 were expressed at the brush border of PT cells but were absent from tDLH cells. In the TAL, Epac1 and Epac2 were expressed throughout the cells with some confinement toward the apical membrane. In the DCT/CNT, Epac1 was confined to the apical region of the cells, whereas Epac2 was mainly expressed in the apical and basolateral regions. In the CD, a dispersed Epac1 expression was found in intercalated cells only (cortical CD), principal and intercalated cells [outer medullary CD (OMCD)], and mainly AQP2-negative cells in the inner medullary CD (IMCD). In contrast, Epac2 expression was at the apical and basolateral membrane of cortical principal cells, dispersed and apical in the OMCD, and in all cells of the IMCD. A similar distribution for Epac1/2 was found in the human kidney. The observed expression in different tubular segments suggests a major role for Epac 1/2 in tubular transport physiology and cellular proliferation.


Subject(s)
Guanine Nucleotide Exchange Factors/metabolism , Kidney Tubules, Proximal/metabolism , Loop of Henle/metabolism , Animals , Antibodies/immunology , Antibodies/metabolism , Antibody Specificity , Cell Line , Cell Proliferation , Cyclic AMP-Dependent Protein Kinases/metabolism , Guanine Nucleotide Exchange Factors/immunology , Humans , Kidney Tubules, Distal/cytology , Kidney Tubules, Distal/metabolism , Kidney Tubules, Proximal/cytology , Loop of Henle/cytology , Male , Protein Isoforms/immunology , Protein Isoforms/metabolism , Rats , Rats, Wistar
6.
Pflugers Arch ; 455(6): 1041-54, 2008 Mar.
Article in English | MEDLINE | ID: mdl-17965877

ABSTRACT

To stimulate renal water reabsorption, vasopressin induces phosphorylation of Aquaporin-2 (AQP2) water channels at S256 and their redistribution from vesicles to the apical membrane, whereas vasopressin removal results in AQP2 ubiquitination at K270 and its internalization to multivesicular bodies (MVB). AQP2-E258K causes dominant nephrogenic diabetes insipidus (NDI), but its subcellular location is unclear, and the molecular reason for its involvement in dominant NDI is unknown. To unravel these, AQP2-E258K was studied in transfected polarized Madin-Darby canine kidney (MDCK) cells. In MDCK cells, AQP2-E258K mainly localized to MVB/lysosomes (Lys). Upon coexpression, wild-type (wt) AQP2 and AQP2-E258K formed multimers, which also localized to MVB/Lys, independent of forskolin stimulation. Orthophosphate labeling revealed that forskolin increased phosphorylation of wt-AQP2 and AQP2-E258K but not AQP2-S256A, indicating that the E258K mutation does not interfere with the AQP2 phosphorylation at S256. In contrast to wt-AQP2 but consistent with the introduced protein kinase C (PKC) consensus site, AQP2-E258K was phosphorylated by phorbol esters. Besides the 29-kDa band, however, an additional band of about 35 kDa was observed for AQP2-E258K only, which represented AQP2-E258K uniquely monoubiquitinated at K228 only. Analysis of several mutants interfering with AQP2-E258K phosphorylation, and/or ubiquitination, however, revealed that the MVB/lysosomal sorting of AQP2-E258K occurred independent of its monoubiquitination or phosphorylation by PKC. Instead, our data reveal that the loss of the E258 in AQP2-E258K is fundamental to its missorting to MVB/Lys and indicate that this amino acid has an important role in the proper structure formation of the C-terminal tail of AQP2.


Subject(s)
Aquaporin 2/genetics , Aquaporin 2/metabolism , Cytoplasmic Vesicles/metabolism , Diabetes Insipidus, Nephrogenic/genetics , Diabetes Insipidus, Nephrogenic/metabolism , Lysosomes/metabolism , Protein Kinase C/metabolism , Animals , Biotinylation , Blotting, Western , Cell Line , Cell Membrane/metabolism , Cytoplasmic Vesicles/drug effects , Densitometry , Dogs , Electrophoresis, Polyacrylamide Gel , Gene Expression , Half-Life , Immunoprecipitation , Mutation/physiology , Phosphorylation , Subcellular Fractions/drug effects , Subcellular Fractions/metabolism , Transfection , Ubiquitins/metabolism
7.
Proc Natl Acad Sci U S A ; 104(42): 16696-701, 2007 Oct 16.
Article in English | MEDLINE | ID: mdl-17940053

ABSTRACT

Body water homeostasis depends critically on the hormonally regulated trafficking of aquaporin-2 (AQP2) water channels in renal collecting duct epithelial cells. Several types of posttranslational modifications are clearly involved in controlling the distribution of AQP2 between intracellular vesicles and the apical plasma membrane. Little is known, however, about the protein interactions that govern the trafficking of AQP2 between these organelles. MAL is a detergent-resistant membrane-associated protein implicated in apical sorting events. We wondered, therefore, whether MAL plays a role in the regulated trafficking of AQP2 between intracellular vesicles and the apical surface. We find that AQP2 and MAL are coexpressed in epithelial cells of the kidney collecting duct. These two proteins interact, both in the native kidney and when expressed by transfection in cultured cells. The S256-phosphorylated form of AQP2 appears to interact more extensively with MAL than does the water channel protein not phosphorylated at this serine. We find that MAL is not involved in detergent-resistant membrane association or apical delivery of AQP2 in LLC-PK(1) renal epithelial cells. Instead, MAL increases the S256 phosphorylation and apical surface expression of AQP2. Furthermore, internalization experiments show that MAL induces surface expression of AQP2 by attenuating its internalization. Thus, the involvement of MAL in the cell surface retention of apical membrane proteins could play an important role in regulated absorption and secretion in transporting epithelia.


Subject(s)
Aquaporin 2/metabolism , Kidney Tubules, Collecting/metabolism , Membrane Transport Proteins/metabolism , Myelin Proteins/metabolism , Proteolipids/metabolism , Animals , Aquaporin 2/analysis , Cell Line , Cell Membrane/chemistry , Cell Membrane/metabolism , Detergents/chemistry , Kidney Tubules, Collecting/chemistry , Membrane Transport Proteins/analysis , Myelin Proteins/analysis , Myelin and Lymphocyte-Associated Proteolipid Proteins , Phosphorylation , Protein Transport , Proteolipids/analysis
8.
Proc Natl Acad Sci U S A ; 103(48): 18344-9, 2006 Nov 28.
Article in English | MEDLINE | ID: mdl-17101973

ABSTRACT

To regulate mammalian water homeostasis, arginine-vasopressin (AVP) induces phosphorylation and thereby redistribution of renal aquaporin-2 (AQP2) water channels from vesicles to the apical membrane. Vice versa, AVP (or forskolin) removal and hormones activating PKC cause AQP2 internalization, but the mechanism is unknown. Here, we show that a fraction of AQP2 is modified with two to three ubiquitin moieties in vitro and in vivo. Mutagenesis revealed that AQP2 is ubiquitinated with one K63-linked chain at K270 only. In Madin-Darby canine kidney cells, AQP2 ubiquitination occurs preferentially when present in the apical membrane, is transiently increased with forskolin removal or PKC activation, and precedes its internalization. Internalization kinetics assays with wild type (wt) and ubiquitination-deficient (K270R) AQP2 revealed that ubiquitination enhances AQP2 endocytosis. Electron microscopy showed that a translational fusion of AQP2 with ubiquitin (AQP2-Ub) localized particularly to internal vesicles of multivesicular bodies (MVBs), whereas AQP2-K270R largely localized to the apical membrane, early endosomes, and the limiting membrane of MVBs. Consistent with this distribution pattern, lysosomal degradation was extensive for AQP2-Ub, low for AQP2-K270R, and intermediate for wt-AQP2. Our data show that short-chain ubiquitination is involved in the regulated endocytosis, MVB sorting, and degradation of AQP2 and may be the mechanism used by AVP removal and PKC-activating hormones to reduce renal water reabsorption. Moreover, because several other channels are also (short-chain) ubiquitinated, our data suggest that ubiquitination may be a general mediator for the regulated endocytosis and degradation of channels in higher eukaryotes.


Subject(s)
Aquaporin 2/metabolism , Endocytosis , Ubiquitin/metabolism , Water/metabolism , Animals , Aquaporin 2/genetics , Cell Line , Cell Membrane/metabolism , Dogs , Lysine/genetics , Lysine/metabolism , Lysosomes/metabolism , Lysosomes/ultrastructure , Microscopy, Immunoelectron , Mutation/genetics , Protein Binding
9.
Biochim Biophys Acta ; 1758(8): 1126-33, 2006 Aug.
Article in English | MEDLINE | ID: mdl-16630534

ABSTRACT

Polarisation of cells is crucial for vectorial transport of ions and solutes. In literature, however, proteins specifically targeted to the apical or basolateral membrane are often studied in non-polarised cells. To investigate whether these data can be extrapolated to expression in polarised cells, we studied several membrane-specific proteins. In polarised MDCK cells, the Aquaporin-2 water channel resides in intracellular vesicles and apical membrane, while the vasopressin-type 2 receptor, anion-exchanger 1 (AE1) protein and E-Cadherin mainly localise to the basolateral membrane. In non-polarised MDCK cells, however, Aquaporin-2 localises, besides plasma membrane, mainly in the Golgi complex, while the others show a dispersed staining throughout the cell. Moreover, while AQP2 mutants in dominant nephrogenic diabetes insipidus are missorted to different organelles in polarised cells, they all predominantly localise to the Golgi complex in non-polarised MDCK cells. Additionally, the maturation of V2R, and likely its missorting, is affected in transiently-transfected compared to stably-transfected cells. In conclusion, we show that the use of stably-transfected polarised cells is crucial in interpreting the processing and the localisation of membrane targeted proteins.


Subject(s)
Anion Exchange Protein 1, Erythrocyte/metabolism , Aquaporin 2/metabolism , Cadherins/metabolism , Cell Polarity , Receptors, Vasopressin/metabolism , Animals , Aquaporin 2/genetics , COS Cells , Cell Membrane/metabolism , Chlorocebus aethiops , Diabetes Insipidus, Nephrogenic/metabolism , Diabetes Insipidus, Nephrogenic/pathology , Dogs , Golgi Apparatus/metabolism , Mutation , Organelles/metabolism , Transfection
10.
J Biol Chem ; 281(20): 14207-14, 2006 May 19.
Article in English | MEDLINE | ID: mdl-16551622

ABSTRACT

Excessive water uptake through Aquaporins (AQP) can be life-threatening and reversible AQP inhibitors are needed. Here, we determined the specificity, potency, and binding site of tetraethylammonium (TEA) to block Aquaporin water permeability. Using oocytes, externally applied TEA blocked AQP1/AQP2/AQP4 with IC50 values of 1.4, 6.2, and 9.8 microM, respectively. Related tetraammonium compounds yielded some (propyl) or no (methyl, butyl, or pentyl) inhibition. TEA inhibition was lost upon a Tyr to Phe amino acid switch in the external water pore of AQP1/AQP2/AQP4, whereas the water permeability of AQP3 and AQP5, which lack a corresponding Tyr, was not blocked by TEA. Consistent with experimental data, multi-nanosecond molecular dynamics simulations showed one stable binding site for TEA, but not tetramethyl (TMA), in AQP1, resulting in a nearly 50% water permeability inhibition, which was reduced in AQP1-Y186F due to effects on the TEA inhibitory binding region. Moreover, in the simulation TEA interacted with charged residues in the C (Asp128) and E (Asp185) loop, and the A(Tyr37-Asn42-Thr44) loop of the neighboring monomer, but not directly with Tyr186. The loss of TEA inhibition in oocytes expressing properly folded AQP1-N42A or -T44A is in line with the computationally predicted binding mode. Our data reveal that the molecular interaction of TEA with AQP1 differs and is about 1000-fold more effective on AQPs than on potassium channels. Moreover, the observed experimental and simulated similarities open the way for rational design and virtual screening for AQP-specific inhibitors, with quaternary ammonium compounds in general, and TEA in particular as a lead compound.


Subject(s)
Aquaporins/chemistry , Quaternary Ammonium Compounds/chemistry , Amino Acid Sequence , Binding Sites , Inhibitory Concentration 50 , Ion Channels/chemistry , Models, Molecular , Molecular Sequence Data , Permeability , Sequence Homology, Amino Acid , Tetraethylammonium/chemistry , Thermodynamics , Tyrosine/chemistry
11.
J Am Soc Nephrol ; 16(10): 2872-80, 2005 Oct.
Article in English | MEDLINE | ID: mdl-16120822

ABSTRACT

Water homeostasis in humans is regulated by vasopressin, which induces the translocation of homotetrameric aquaporin-2 (AQP2) water channels from intracellular vesicles to the apical membrane of renal principal cells. For this process, phosphorylation of AQP2 at S256 by cAMP-dependent protein kinase A is thought to be essential. Mutations in the AQP2 gene cause recessive and dominant nephrogenic diabetes insipidus (NDI), a disease in which the kidney is unable to concentrate urine in response to vasopressin. Here, a family in which dominant NDI was caused by an exchange of arginine 254 by leucine in the intracellular C terminus of AQP2 (AQP2-R254L), which destroys the protein kinase A consensus site, was identified. Expressed in oocytes, AQP2-R254L appeared to be a functional water channel but was impaired in its transport to the cell surface to the same degree as AQP2-S256A, which mimics nonphosphorylated AQP2. In polarized renal cells, AQP2-R254L was retained intracellularly and was distributed similarly as AQP2-S256A or wild-type AQP2 in unstimulated cells. Upon co-expression in MDCK cells, AQP2-R254L interacted with and retained wild-type AQP2 in intracellular vesicles. Furthermore, AQP2-R254L had a low basal phosphorylation level, which was not increased with forskolin, and mimicking constitutive phosphorylation in AQP2-R254L with the S256D mutation shifted its expression to the basolateral and apical membrane. These data indicate that dominant NDI in this family is due to a R254L mutation, resulting in the loss of arginine vasopressin-mediated phosphorylation of AQP2 at S256, and illustrates the in vivo importance of phosphorylation of AQP2 at S256 for the first time.


Subject(s)
Aquaporin 2/genetics , Aquaporin 2/metabolism , Arginine Vasopressin/physiology , Diabetes Insipidus, Nephrogenic/genetics , Diabetes Insipidus, Nephrogenic/metabolism , Mutation , Cells, Cultured , Child , Humans , Male , Oocytes/metabolism , Pedigree , Phosphorylation , Protein Transport
12.
Hum Mol Genet ; 13(24): 3045-56, 2004 Dec 15.
Article in English | MEDLINE | ID: mdl-15509592

ABSTRACT

Vasopressin regulates water homeostasis through insertion of homotetrameric aquaporin-2 (AQP2) water channels in the apical plasma membrane of renal cells. AQP2 mutations cause recessive and dominant nephrogenic diabetes insipidus (NDI), a disease in which the kidney is unable to concentrate urine in response to vasopressin. Until now, all AQP2 mutants in recessive NDI were shown to be misfolded, retained in the endoplasmic reticulum (ER) and unable to interact with wild-type (wt)-AQP2, whereas AQP2 mutants in dominant NDI are properly folded and interact with wt-AQP2, but, due to the mutation, cause missorting of the wt-AQP2/mutant complex. Here, patients of two families with recessive NDI appeared compound heterozygotes for AQP2-A190T or AQP2-R187C mutants, together with AQP2-P262L. As mutations in the AQP2 C-tail, where P262 resides, usually cause dominant NDI, the underlying cell-biological mechanism was investigated. Upon expression in oocytes, AQP2-P262L was a properly folded and functional aquaporin in contrast to the classical mutants, AQP2-R187C and AQP2-A190T. Expressed in polarized cells, AQP2-P262L was retained in intracellular vesicles and did not localize to the ER. Upon co-expression, however, AQP2-P262L interacted with wt-AQP2, but not with AQP2-R187C, resulting in a rescued apical membrane expression of AQP2-P262L. In conclusion, our study reveals a novel cellular phenotype in recessive NDI in that AQP2-P262L acts as a mutant in dominant NDI, except for that its missorting is overruled by apical sorting of wt-AQP2. Also, it demonstrates for the first time that the recessive inheritance of a disease involving a channel can be due to two cell-biological mechanisms.


Subject(s)
Aquaporins/genetics , Diabetes Insipidus, Nephrogenic/genetics , Amino Acid Sequence , Amino Acid Substitution , Animals , Aquaporin 2 , Aquaporins/metabolism , Diabetes Insipidus, Nephrogenic/metabolism , Female , Genetic Heterogeneity , Humans , Male , Molecular Sequence Data , Mutation , Pedigree , Phenotype , Protein Structure, Secondary , Xenopus
13.
J Cell Biol ; 163(5): 1099-109, 2003 Dec 08.
Article in English | MEDLINE | ID: mdl-14662748

ABSTRACT

Vasopressin regulates body water conservation by redistributing aquaporin-2 (AQP2) water channels from intracellular vesicles to the apical surface of renal collecting ducts, resulting in water reabsorption from urine. Mutations in AQP2 cause autosomal nephrogenic diabetes insipidus (NDI), a disease characterized by the inability to concentrate urine. Here, we report a frame-shift mutation in AQP2 causing dominant NDI. This AQP2 mutant is a functional water channel when expressed in Xenopus oocytes. However, expressed in polarized renal cells, it is misrouted to the basolateral instead of apical plasma membrane. Additionally, this mutant forms heterotetramers with wild-type AQP2 and redirects this complex to the basolateral surface. The frame shift induces a change in the COOH terminus of AQP2, creating both a leucine- and a tyrosine-based motif, which cause the reversed sorting of AQP2. Our data reveal a novel cellular phenotype in dominant NDI and show that dominance of basolateral sorting motifs in a mutant subunit can be the molecular basis for disease.


Subject(s)
Aquaporins/genetics , Aquaporins/metabolism , Cell Polarity , Diabetes Insipidus, Nephrogenic/genetics , Amino Acid Sequence , Animals , Aquaporin 2 , Aquaporin 6 , Aquaporins/chemistry , Base Sequence , Cell Line , Cell Membrane/metabolism , Cytoplasmic Vesicles/metabolism , Diabetes Insipidus, Nephrogenic/metabolism , Frameshift Mutation , Humans , Leucine/metabolism , Molecular Sequence Data , Oocytes/physiology , Pedigree , Phenotype , Protein Sorting Signals , Protein Transport , Tyrosine/metabolism , Vasopressins/metabolism , Xenopus laevis
14.
J Am Soc Nephrol ; 13(9): 2267-77, 2002 Sep.
Article in English | MEDLINE | ID: mdl-12191971

ABSTRACT

Mutations in the Aquaporin-2 gene, which encodes a renal water channel, have been shown to cause autosomal nephrogenic diabetes insipidus (NDI), a disease in which the kidney is unable to concentrate urine in response to vasopressin. Most AQP2 missense mutants in recessive NDI are retained in the endoplasmic reticulum (ER), but AQP2-T125M and AQP2-G175R were reported to be nonfunctional channels unimpaired in their routing to the plasma membrane. In five families, seven novel AQP2 gene mutations were identified and their cell-biologic basis for causing recessive NDI was analyzed. The patients in four families were homozygous for mutations, encoding AQP2-L28P, AQP2-A47V, AQP2-V71M, or AQP2-P185A. Expression in oocytes revealed that all these mutants, and also AQP2-T125M and AQP2-G175R, conferred a reduced water permeability compared with wt-AQP2, which was due to ER retardation. The patient in the fifth family had a G>A nucleotide substitution in the splice donor site of one allele that results in an out-of-frame protein. The other allele has a nucleotide deletion (c652delC) and a missense mutation (V194I). The routing and function of AQP2-V194I in oocytes was not different from wt-AQP2; it was therefore concluded that c652delC, which leads to an out-of-frame protein, is the NDI-causing mutation of the second allele. This study indicates that misfolding and ER retention is the main, and possibly only, cell-biologic basis for recessive NDI caused by missense AQP2 proteins. In addition, the reduced single channel water permeability of AQP2-A47V (40%) and AQP2-T125M (25%) might become of therapeutic value when chemical chaperones can be found that restore their routing to the plasma membrane.


Subject(s)
Aquaporins/genetics , Aquaporins/metabolism , Diabetes Insipidus, Nephrogenic/genetics , Mutation, Missense , Amino Acid Sequence , Animals , Aquaporin 2 , Aquaporin 6 , Aquaporins/chemistry , Cell Line , Cell Membrane/metabolism , Diabetes Insipidus, Nephrogenic/metabolism , Family Health , Female , Genes, Recessive , Humans , Infant, Newborn , Male , Molecular Sequence Data , Oocytes/metabolism , Pedigree , Protein Structure, Tertiary , Protein Transport/genetics , Water/metabolism , Xenopus
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