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Lymphoid cell transfers between adult C57BL/6 mice differing at the LPR locus. Lack of lymphadenopathy transfer and effects on host survival.

"1 pr" is an autosomal recessive locus which determines the lymphoproliferation of an abnormal T cell subset ("T lpr" cell subset). Though a thymus is necessary for the initiation of the lymphadenopathy, adult thymectomy does not interfere with the development of disease. C57BL/6 (B6) mice (either treated with cyclophosphamide or not), lpr heterozygous at the lpr locus, or not), and nu homozygous B6 mice (either homozygous at the lpr locus, or not) are refractory to the growth and massive proliferation of grafted cells of the aberrant T lpr cell subset, which polyclonally expands in lpr homozygous B6 mice. Their lack of expansion in B6 nu, lpr mice is surprising, since such animals may develop the lymphadenopathy under certain circumstances (thymus grafting). While the injection of normal B6 lymphoid cells does not improve the health of the B6 nu, lpr mice, but may even accelerate their wasting, the injection of B6 lpr lymphoid cells into B6 nu, lpr mice causes, after a transient wasting, a remarkable prolongation of survival. B6 nu recipients of B6 lpr lymphoid cells show no sign of wasting and survive like recipients of normal B6 (B6+) cells. Thus the "lpr type" lymphoproliferative potential is neither simply carried by the T lpr subset cells themselves, nor simply determined by the lpr environment of athymic, lpr homozygous mice, and it is also not readily reconstituted by grafting T lpr cells in athymic lpr mice.

Animals↗

A mouse model for the renal salt-wasting syndrome pseudohypoaldosteronism.

Aldosterone-dependent epithelial sodium transport in the distal nephron is mediated by the absorption of sodium through the highly selective, amiloride-sensitive epithelial sodium channel (ENaC) made of three homologous subunits (alpha, beta, and gamma). In human, autosomal recessive mutations of alpha, beta, or gammaENaC subunits cause pseudohypoaldosteronism type 1 (PHA-1), a renal salt-wasting syndrome characterized by severe hypovolemia, high plasma aldosterone, hyponatremia, life-threatening hyperkaliemia, and metabolic acidosis. In the mouse, inactivation of alphaENaC results in failure to clear fetal lung liquid at birth and in early neonatal death, preventing the observation of a PHA-1 renal phenotype. Transgenic expression of alphaENaC driven by a cytomegalovirus promoter in alphaENaC(-/-) knockout mice [alphaENaC(-/-)Tg] rescued the perinatal lethal pulmonary phenotype and partially restored Na+ transport in renal, colonic, and pulmonary epithelia. At days 5-9, however, alphaENaC(-/-)Tg mice showed clinical features of severe PHA-1 with metabolic acidosis, urinary salt-wasting, growth retardation, and 50% mortality. Adult alphaENaC(-/-)Tg survivors exhibited a compensated PHA-1 with normal acid/base and electrolyte values but 6-fold elevation of plasma aldosterone compared with wild-type littermate controls. We conclude that partial restoration of ENaC-mediated Na+ absorption in this transgenic mouse results in a mouse model for PHA-1.

Amiloride↗

Duodenal immunoglobulin deficiency in graft versus host disease (GVHD) mice.

The small intestine is a well documented target organ in mouse and human GVHD, and diarrhea is a prominent part of the clinical GVHD syndrome. Although a plethora of systemic immune deficits has been documented in GVHD, the integrity of the small intestinal immune system has not been investigated. A correlation has not been demonstrated between systemic immune dysfuction and the incidence of lymphomas in mouse GVHD survivors. If gastrointestinal immune deficiency exists in mouse GVHD, its possible relationship to GVHD lymphomas, frequently abdominal. should be investigated. GVHD was produced in newborn BLA (C57 BL/Ka females x BALB-C males) mice house in a specific pathogen-free environment by the i.p. inoculation of 10(7) male BALB-C spleen cells. Control mice received syngeneic spleen cells. Twenty GVHD and 16 control mice were sacrificed at 3 weeks and specimens of duodenum were removed for routine histologic and immunofluorescent examination. All but one GVHD mouse (95%) had virtually absent duodenal IgA and IgM. Duodenal cellular fluorescence was demonstrated in all controls. A significant duodenal immunoglobulin deficit has been demonstrated in 3-week-old GVHD mice. The relationship of this finding to GVHD diarrhea, wasting, and neoplasia remains to be determined.

Animals↗

Mutations in the small GTP-ase late endosomal protein RAB7 cause Charcot-Marie-Tooth type 2B neuropathy.

Charcot-Marie-Tooth type 2B (CMT2B) is clinically characterized by marked distal muscle weakness and wasting and a high frequency of foot ulcers, infections, and amputations of the toes because of recurrent infections. CMT2B maps to chromosome 3q13-q22. We refined the CMT2B locus to a 2.5-cM region and report two missense mutations (Leu129Phe and Val162Met) in the small GTP-ase late endosomal protein RAB7 which causes the CMT2B phenotype in three extended families and in three patients with a positive family history. The alignment of RAB7 orthologs shows that both missense mutations target highly conserved amino acid residues. RAB7 is ubiquitously expressed, and we found expression in sensory and motor neurons.

Amino Acid Sequence↗

Marrow grafts between DLA-identical and homozygous unrelated dogs: evidence for an additional locus involved in graft-versus-host disease.

Marrow transplants were carried out between unrelated donor-recipient pairs of dogs that were homozygous and identical for DLA-A, B, C, and D, i.e., mutually nonreactive in mixed leukocyte culture. Recipients were conditioned for transplantation by 1,200 R of total body irradiation and then treated with intermittent methotrexate for 102 days in order to prevent or delay graft-versus-host disease (GVHD). Of 13 dogs that received transplants, 4 are surviving with good grafts and no GVHD for more than 12 to 20 minutes. Nine died, 6 with GVHD between days 26 and 141, 1 with wasting on day 65, 1 with interstitial pneumonia on day 83, and 1 with graft rejection on day 23. In comparison, the survival of 17 DLA-identical littermates treated in the same manner was significantly better with 16 surviving without GVHD (P less than 0.01), while the survival of 54 DLA-nonidentical littermates was significantly worse with only two surviving without GVHD (P less than 0.025). These results are incompatible with the concept that solely the loci detected by mixed leukocyte culture and serotyping are responsible for GVHD. One or more additional loci appear to be involved. Knowledg e of this locus (loci) is important if marrow grafting between unrelated individuals is to be successful. However, results also indicate that an unrelated "compatible" marrow graft is more likely to succeed than a graft from an incompatible littermate.

Animals↗

A gene similar to the human hyaluronan-mediated motility receptor (RHAMM) gene is upregulated during Porcine Circovirus type 2 infection.

Little is known on the cellular events triggered by the Porcine Circovirus type 2 (PCV2) in Porcine Multisystemic Wasting Syndrome (PMWS). The differential display reverse-transcription PCR (DDRT-PCR) was used to identify cellular target molecules in lymph node tissue that were regulated in PMWS. Comparative profile analysis of a pool of lymph node tissues from PMWS and healthy animals showed that some transcripts were up-regulated in PMWS. Bacterial recombinant clones containing up-regulated transcripts were analyzed by reverse dot blot. Clones showing enhanced hybridization when probed with cDNAs from PMWS animals were sequenced and compared to existing databases. Two of the differentially regulated transcripts displayed homology with human genes such as an RNA splicing factor and hyaluronan-mediated motility receptor (RHAMM). Clones encoding theses genes were subsequently used as probes to analyze their expression pattern in PK15 cells persistently infected with PCV2. Northern blot analyzes indicated that these transcripts were up-regulated in these cells as observed in infected lymph node tissue from PMWS cases. A role for the up-regulation of the RHAMM gene is proposed.

Animals↗

Tolerance, immunocompetence, and secondary disease in fully allogeneic radiation chimeras.

The aim of this study was to ascertain the extent to which secondary disease and mortality in fully allogeneic chimeras (C57BL leads to CBA) is caused (if at all) by a delayed graft-versus-host reaction. Adult CBA males were thymectomized, irradiated, and reconstituted with T-lymphocyte-depleted C57BL or CBA bone marrow cells (BMC), followed three weeks after irradiation by implantation under the kidney capsule of thymic lobes from C57BL or CBA fetal or adult donors. These mice were observed for the development of secondary disease for periods in excess of 250 days, and they were examined at 5 weeks or 4 months for T lymphocyte reactivity and tolerance to alloantigens, using the cell-mediated lympholysis assay (CML). The following results were obtained. First, removal of T lymphocytes with anti-Thy 1 antibody and complement from allogeneic bone marrow did not prevent wasting and eventual death, although it prolonged the lifespan of mice substantially. Second, T lymphocytes generated from bone marrow-derived precursor cells became tolerant of the histocompatibility antigens of the thymus donor strain but remained normally reactive to third-party antigens. Third, allogeneic radiation chimeras did not survive as well as animals reconstituted with syngeneic cells, even when they were demonstrably tolerant in CML. Fourth, C57BL BMC maturing in a CBA host equipped with a C57BL thymus graft did not become tolerant of host antigens, indicating that extra-thymic tolerance does not occur in fully allogeneic--as opposed to semiallogeneic--chimeras. It is argued that the function of B lymphocytes and/or accessory cells is impaired in fully allogeneic radiation chimeras, and that the mortality observed was directly related to the resulting immunodeficiency. The relevance of the results described in this paper to clinical bone marrow transplantation is discussed.

Animals↗

Isolation and characterization of the complete mouse emerin gene.

Emery-Dreifuss muscular dystrophy (EMD) is an X-linked recessive disorder associated with muscle wasting, contractures, and cardiomyopathy. The responsible emerin gene has recently been identified and found to encode a serine-rich protein similar to lamina-associated protein 2 (LAP2), although the disease mechanism remains obscure. In order to pursue the pathophysiology of this disorder, we report here the isolation and characterization of the complete mouse emerin gene. The emerin cDNA was isolated from murine strain BALB/c, and the emerin gene was isolated from strain 129. The 2.9-kb mouse emerin gene was completely sequenced and found to be composed of 6 exons and encode a protein 73% identical to that of the human protein. Key similarities with LAP2 were found to be conserved, including critical LAP2 phosphorylation sites. Examination of the murine promoter revealed three previously unrecognized cAMP response elements (CRE) conserved between human and mouse. While Northern analysis shows emerin to be widely expressed in the mouse, as it is in humans, these promoter elements may indicate cAMP responsiveness. These data provide the necessary elements to further investigate EMD in a murine system.

Amino Acid Sequence↗

Hemosiderin deposits in chronic graft-vs.-host disease related myopathy.

Chronic graft-vs.-host disease (cGVHD) occurs in 20-50% of patients who survive for at least 100 d after allogeneic stem cell transplantation (SCT). cGVHD includes scleroderma-like skin changes, chronic cholangitis, obstructive lung disease and general wasting syndrome. Polymyositis or myopathy are rare manifestations of cGVHD with approximately 40 reported cases. Polymyositis accompanied by hemosiderin deposits in cGVHD has been reported only once, and there are no reports on lipofuscin deposits in skeletal muscle cells in cGVHD. We report here on a 56-yr-old male who underwent allogeneic SCT in 1999 for osteomyelofibrosis and progressive hematopoietic insufficiency. In February 2004, the patient was hospitalized for progressive muscular weakness with loss of the ability to walk. Laboratory tests demonstrated normal values for serum creatine kinase, aldolase and lactic dehydrogenase; the ferritin level was highly elevated. The femoral muscle biopsy showed mostly perifascicular atrophy as well as numerous subsarcolemmal hemosiderin and lipofuscin deposits. Intravenous administration of the chelating agent deferoxamine was ineffective. Three weeks later the patient died of aspiration pneumonia. Interestingly, autopsy disclosed moderate hemosiderin deposits in the liver, the organ usually involved in hemosiderosis.

Biopsy↗

A novel splice-site mutation in the gamma subunit of the epithelial sodium channel gene in three pseudohypoaldosteronism type 1 families.

Pseudohypoaldosteronism type 1 (PHA1, OMIM 264350) is an uncommon inherited disorder characterized by salt-wasting and end-organ unresponsiveness to mineralocorticoids. A complete genome search using homozygosity mapping in eleven consanguineous families with PHA1 provided conclusive evidence of linkage with heterogeneity. The disease locus mapped to chromosome 16p12.2-13.11 in six families and to 12p13.1-pter in the other five families. These two chromosomal regions harbour the genes encoding the three subunits of the human amiloride sensitive epithelial sodium channel (hENaC): SCNN1B and SCNN1G on 16p and SCNN1A on 12p. Our linkage results have been further supported by the recent report of mutations in the alpha and beta subunit genes in PHA1 patients. We now report the identification of a 3' splice site mutation in SCNN1G (318-1 G-->A) in three families showing linkage to 16p. Abnormal splicing results with the production of two messenger RNAs, one arising from activation of an adjacent cryptic splice site and the other from skipping of the downstream exon. The two corresponding mutant gamma hENaC subunits are predicted to have three highly conserved amino acids in the extracellular domain replaced by a novel amino acid (KYS106-108-->N) and truncation from 649 to 134 amino acids respectively. These three families all originate from the Indian sub-continent and the probands have severe generalized PHA. They share a common haplotype which suggests the presence of a founder mutation in this sub-population.

Amino Acid Sequence↗

Mutations in the gene encoding lamin A/C cause autosomal dominant Emery-Dreifuss muscular dystrophy.

Emery-Dreifuss muscular dystrophy (EDMD) is characterized by early contractures of elbows and Achilles tendons, slowly progressive muscle wasting and weakness, and a cardiomyopathy with conduction blocks which is life-threatening. Two modes of inheritance exist, X-linked (OMIM 310300) and autosomal dominant (EDMD-AD; OMIM 181350). EDMD-AD is clinically identical to the X-linked forms of the disease. Mutations in EMD, the gene encoding emerin, are responsible for the X-linked form. We have mapped the locus for EDMD-AD to an 8-cM interval on chromosome 1q11-q23 in a large French pedigree, and found that the EMD phenotype in four other small families was potentially linked to this locus. This region contains the lamin A/C gene (LMNA), a candidate gene encoding two proteins of the nuclear lamina, lamins A and C, produced by alternative splicing. We identified four mutations in LMNA that co-segregate with the disease phenotype in the five families: one nonsense mutation and three missense mutations. These results are the first identification of mutations in a component of the nuclear lamina as a cause of inherited muscle disorder. Together with mutations in EMD (refs 5,6), they underscore the potential importance of the nuclear envelope components in the pathogenesis of neuromuscular disorders.

Amino Acid Sequence↗

A second promoter provides an alternative target for therapeutic up-regulation of utrophin in Duchenne muscular dystrophy.

Duchenne muscular dystrophy (DMD) is an inherited muscle-wasting disease caused by the absence of a muscle cytoskeletal protein, dystrophin. We have previously shown that utrophin, the autosomal homologue of dystrophin, is able to compensate for the absence of dystrophin in a mouse model of DMD; we have therefore undertaken a detailed study of the transcriptional regulation of utrophin to identify means of effecting its up-regulation in DMD muscle. We have previously isolated a promoter element lying within the CpG island at the 5' end of the gene and have shown it to be synaptically regulated in vivo. In this paper, we show that there is an alternative promoter lying within the large second intron of the utrophin gene, 50 kb 3' to exon 2. The promoter is highly regulated and drives transcription of a widely expressed unique first exon that splices into a common full-length mRNA at exon 3. The two utrophin promoters are independently regulated, and we predict that they respond to discrete sets of cellular signals. These findings significantly contribute to understanding the molecular physiology of utrophin expression and are important because the promoter reported here provides an alternative target for transcriptional activation of utrophin in DMD muscle. This promoter does not contain synaptic regulatory elements and might, therefore, be a more suitable target for pharmacological manipulation than the previously described promoter.

Amino Acid Sequence↗

Onset and progression of pathological lesions in transforming growth factor-beta 1-deficient mice.

Null-mutant (knockout) mice were obtained through disruption of the sixth exon of the endogenous transforming growth factor-beta 1 allele in murine embryonic stem cells via homologous recombination. Mice lacking transforming growth factor-beta 1 (mutants) were born grossly indistinguishable from wild-type littermates. With time, mutant mice exhibited a wasting phenotype that manifested itself in severe weight loss and dishevelled appearance (between 15 and 36 days of age). Examination of these moribund mice histologically revealed that transforming growth factor-beta 1-deficient mice exhibit a moderate to severe, multifocal, organ-dependent, mixed inflammatory cell response adversely affecting the heart, stomach, diaphragm, liver, lung, salivary gland, and pancreas. Because of the known multifunctional nature of transforming growth factor-beta 1 on the control of growth and differentiation of many different cell types, it is important to determine the degree to which the inflammatory response interacts with or masks other deficiencies that are present. To this end, we examined the extent and nature of the inflammatory lesions in different ages of neonatal knockout mice (5, 7, 10, and 14 days of age) and older moribund mice (> 15 days of age) and compared them with the histology seen in wild-type normal animals. Mild inflammatory infiltrates were first observed in 5-day mutant mice in the heart, by day 7 in the lung, salivary gland, and pancreas, and by day 14 inflammatory lesions were found in almost all organs examined. Moderate to severe inflammation was not present until the mice were 10 to 14 days old. In the older animals, there was a slight increase in the severity of the inflammatory lesions as the mice aged.

Animals↗

Regulation of thymus PCNA expression is altered in radiation-sensitive wasted mice.

Mice bearing the autosomal recessive mutation 'wasted' (wst/wst) express a disease syndrome characterized by neurologic dysfunction, immunodeficiency, and increased sensitivity to the killing effects of ionizing radiation relative to normal littermates (wst/-) and to parental control mice (BCF1, BALB/c, and C57BL/6). Many of these abnormalities, evident as early as 21 days of age, have been localized to thymic tissues and T-lymphocyte populations. Comparison of two-dimensional gel electrophoresis patterns of proteins from wst/wst and control mouse thymus revealed that an acidic protein with a molecular mass of approximately 30 kDa was consistently expressed at lower levels in wasted mice than in controls. Microsequencing of this protein revealed a sequence of 19 N-terminal amino acids identical to the sequence of murine proliferating cell nuclear antigen (PCNA). Northern blot analyses of PCNA expression in thymus and spleen demonstrated lower accumulation of PCNA-specific transcripts in wasted mice compared with that in controls. Because PCNA expression is associated with cell cycle progression, the percentages of thymic and splenic cells in each stage of the cell cycle were examined; there were no differences in the cell stage distribution of lymphocytes freshly isolated from wasted mice compared with littermate or parental controls. After activation with concanavalin A, however, splenocytes from wst/wst mice showed a lower percentage of cells in S phase compared with that in controls. Southern blots with PCNA probes showed that the PCNA loci from the wasted mice and their normal littermates have the same restriction maps. While differences in polymerase chain reaction (PCR) priming were obtained, these could be attributed to strain-specific differences in mouse PCNA pseudogenes. These results suggest the presence of an alteration in the pathway leading to PCNA expression in radiation-sensitive tissues of wasted mice.

Animals↗

Hot-spot residue in small heat-shock protein 22 causes distal motor neuropathy.

Distal hereditary motor neuropathies are pure motor disorders of the peripheral nervous system resulting in severe atrophy and wasting of distal limb muscles. In two pedigrees with distal hereditary motor neuropathy type II linked to chromosome 12q24.3, we identified the same mutation (K141N) in small heat-shock 22-kDa protein 8 (encoded by HSPB8; also called HSP22). We found a second mutation (K141E) in two smaller families. Both mutations target the same amino acid, which is essential to the structural and functional integrity of the small heat-shock protein alphaA-crystallin. This positively charged residue, when mutated in other small heat-shock proteins, results in various human disorders. Coimmunoprecipitation experiments showed greater binding of both HSPB8 mutants to the interacting partner HSPB1. Expression of mutant HSPB8 in cultured cells promoted formation of intracellular aggregates. Our findings provide further evidence that mutations in heat-shock proteins have an important role in neurodegenerative disorders.

Amino Acid Sequence↗

Cloning of cDNA encoding a regeneration-associated muscle protease whose expression is attenuated in cell lines derived from Duchenne muscular dystrophy patients.

In the dystrophin-mutant mdx mouse, an animal model for Duchenne muscular dystrophy (DMD), damaged skeletal muscles are efficiently regenerated and thus the animals thrive. The phenotypic differences between DMD patients and the mdx mice suggest the existence of factors that modulate the muscle wasting in the mdx mice. To identify these factors, we searched for mRNAs affected by the mdx mutation by using cDNA microarrays with newly established skeletal muscle cell lines from mdx and normal mice. We found that in the mdx muscle cell line, 12 genes, including L-arginine:glycine amidinotransferase and thymosin beta4, are up-regulated, whereas 7 genes, including selenoprotein P and a novel regeneration-associated muscle protease (RAMP), are down-regulated. Northern blot analysis and in situ hybridization revealed that RAMP mRNA is predominantly expressed in normal skeletal muscle and brain, and its production is enhanced in the regenerating area of injured skeletal muscle in mice. RAMP expression was much lower in individual muscle cell lines derived from biopsies of six DMD patients compared to a normal muscle cell line. These results suggest that RAMP may play a role in the regeneration of skeletal muscle and that its down-regulation could be involved in the progression of DMD in humans.

Amino Acid Sequence↗

Structure-function relationships of 3 beta-hydroxysteroid dehydrogenase: contribution made by the molecular genetics of 3 beta-hydroxysteroid dehydrogenase deficiency.

The transformation of delta 5-3 beta-hydroxysteroids into the corresponding delta 4-3-keto-steroids is an essential step for the biosynthesis of all classes of active steroids: progesterone, mineralocorticoids, glucocorticoids, androgens, and estrogens. These steroid hormones play a crucial role in the differentiation, development, growth, and physiological function of most human tissues. The structures of several cDNAs encoding 3 beta-HSD isoenzymes have been characterized in human and several other vertebrate species: human types I and II; macaque; bovine; rat types I, II, III, and IV; mouse types I, II, III, IV, V and VI; hamster types I, II, and III; and rainbow trout. Their transient expression reveals that 3 beta-HSD and delta 5-delta 4-isomerase activities reside within a single protein. Distinct approaches have been used for a better understanding of the structure-function relationships of these 3 beta-HSD enzymes: i) affinity radiolabeling studies of the human type I 3 beta-HSD; ii) identification and the functional consequences of the human type-II 3 beta-HSD mutations detected in patients with 3 beta-HSD deficiency. Taken together, all of these data were examined to determine whether the relationship between the genotype and the phenotype of these patients were consistent with in vitro mutagenesis studies. 3 beta-HSD deficiency, transmitted in an autosomic recessive disorder, is characterized by varying degrees of salt wasting; in genetic males, fetal testicular 3 beta-HSD deficiency causes an undervirilized male genitalia (male pseudohermaphroditism); females exhibit either normal sexual differentiation or mild virilization. All mutations were detected in the type II 3 beta-HSD gene, which is expressed almost exclusively in the adrenals and gonads. No mutation was detected in the type I 3 beta-HSD gene, which is expressed in peripheral tissues. The finding of a normal type I 3 beta-HSD gene explains the elevated delta 5-steroids and mild virilization of affected girls at birth. To date, 24 mutations have been identified in 25 distinct families with 3 beta-HSD deficiencies. All nonsense and frameshift mutations introducing a premature termination codon were associated with the classical salt-losing form. The locations of these nonsense mutations suggest that at least the first 318 amino acids out of 371 are required for 3 beta-HSD activity. The consequences of the missense mutations on some domains of the 3 beta-enzyme, such as membrane-spanning domains, cofactor-binding site, and steroid-binding site, were reviewed. The future crystallization of the overexpressed normal and mutant-type II-3 beta-HSD enzymes should contribute to a better understanding of the structure-function relationships of this enzyme, especially for missense mutations located outside the putative functional regions.

3-Hydroxysteroid Dehydrogenases↗

A mutation linked with Bartter's syndrome locks Kir 1.1a (ROMK1) channels in a closed state.

Mutations in the inward rectifying renal K(+) channel, Kir 1.1a (ROMK), have been linked with Bartter's syndrome, a familial salt-wasting nephropathy. One disease-causing mutation removes the last 60 amino acids (332-391), implicating a previously unappreciated domain, the extreme COOH terminus, as a necessary functional element. Consistent with this hypothesis, truncated channels (Kir 1.1a 331X) are nonfunctional. In the present study, the roles of this domain were systematically evaluated. When coexpressed with wild-type subunits, Kir 1.1a 331X exerted a negative effect, demonstrating that the mutant channel is synthesized and capable of oligomerization. Plasmalemma localization of Kir 1.1a 331X green fluorescent protein (GFP) fusion construct was indistinguishable from the GFP-wild-type channel, demonstrating that mutant channels are expressed on the oocyte plasma membrane in a nonconductive or locked-closed conformation. Incremental reconstruction of the COOH terminus identified amino acids 332-351 as the critical residues for restoring channel activity and uncovered the nature of the functional defect. Mutant channels that are truncated at the extreme boundary of the required domain (Kir 1.1a 351X) display marked inactivation behavior characterized by frequent occupancy in a long-lived closed state. A critical analysis of the Kir 1.1a 331X dominant negative effect suggests a molecular mechanism underlying the aberrant closed-state stabilization. Coexpression of different doses of mutant with wild-type subunits produced an intermediate dominant negative effect, whereas incorporation of a single mutant into a tetrameric concatemer conferred a complete dominant negative effect. This identifies the extreme COOH terminus as an important subunit interaction domain, controlling the efficiency of oligomerization. Collectively, these observations provide a mechanistic basis for the loss of function in one particular Bartter's-causing mutation and identify a structural element that controls open-state occupancy and determines subunit oligomerization. Based on the overlapping functions of this domain, we speculate that intersubunit interactions within the COOH terminus may regulate the energetics of channel opening.

Animals↗