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Biomedical subjects

W Kuhl

Publications and source records attributed to W Kuhl.

At least 19 recordsLinked to original sources

Mutations in Jewish patients with Gaucher disease.

DNA from 100 unrelated patients, 97 of whom were Jewish and three half-Jewish, was analyzed for 22 mutations known to cause Gaucher disease. All but seven of the alleles were identified as having previously described mutations. Five of the unidentified mutations proved to be a previously undescribed nucleotide substitution in a splice junction (IVS2+1) that causes skipping of exon 2. Thus, only 2 of 197 alleles remained unidentified. Homozygotes for the most common mutation, that a nucleotide (nt) 1226, manifested, on average, the mildest disease and the latest age of onset. The mutation at nt 84 and the newly described IVS2+1 mutation, which do not produce any enzyme, were associated with earlier onset and more severe disease. Five of the mutations were considered to be "public," in the sense that they were found in more than one unrelated individual. Screening for these five mutations permitted detection of 97.5% of all Gaucher alleles in this patient population. Because the mutation at nt 1226 is underrepresented in the patient population and because not all homozygotes come to medical attention, screening the Ashkenazi population using DNA analysis should detect approximately 99% of all heterozygotes.

Alleles

Glucose-6-phosphate dehydrogenase variants in Hawaii.

Sequence analysis has been performed on the DNA of 13 glucose-6-phosphate dehydrogenase (G6PD) deficient males from Hawaii, 6 of Filipino, 6 of Laotian, and 1 of Chinese extraction. Four different mutations were found: A-->T at cDNA nt 835, G-->A at nt 871, C-->T at nt 1360, and G-->A at nt 1388. The mutations at nt 835 and nt 1360 have not been described previously, and the latter, in particular, appears to be relatively common. The nt 1360 mutation changes the same codon as is altered in a previously described mutation, G6PD Andalus.

China

Prenatal diagnosis of glucose-6-phosphate-dehydrogenase deficiency.

Prior to the development of the DNA-based technology reliable prenatal diagnosis of G6PD deficiency was not possible. We show that, using PCR amplification and restriction endonuclease digestion, prenatal diagnosis is possible. We have now been able to determine that the male fetus of a mother heterozygous for G6PD Mediterranean had inherited the maternal X chromosome with the normal G6PD gene.

Adult

The origin of glucose-6-phosphate-dehydrogenase (G6PD) polymorphisms in African-Americans.

DNA samples from 54 male Afro-Americans were examined for glucose-6-phosphate dehydrogenase (G6PD) genotypes G6PD A(+)376G, G6PD A(-)202A/376G, and G6PD B and for polymorphisms in intron 5 (PvuII), at nucleotide 1311, and at nucleotide 1116 (PstI). In the G6PD B subjects, the nucleotide 1311 mutation and the PstI site appeared to be in linkage equilibrium. No PvuII+ G6PD men were encountered. The G6PD A(+) mutation was in disequilibrium with respect to both the nucleotide 1311 mutation and the PstI site. The G6PD A- nucleotide 202 mutation was in disequilibrium with all three polymorphic sites. No conclusion could be drawn with respect to the PvuII site, except that it preceded the nucleotide 202 (A-) mutation. We conclude from these and our previous studies that G6PD B is the most ancient genotype. The nucleotide 1311 mutation, with its worldwide distribution, probably occurred next. The PstI mutation, limited to Africans, probably arose next and is more ancient than the A(+) mutation, which occurred in a gene without either the PstI or the 1311 mutation. G6PD A-202A/376G is the most recent of these mutations and is still in linkage disequilibrium with all of the sites. Presumably it occurred in an individual with both the A(+) and PvuII mutations.

Black People

Identification of the second common Jewish Gaucher disease mutation makes possible population-based screening for the heterozygous state.

Gaucher disease is an autosomal recessive glycolipid storage disease characterized by a deficiency of glucocerebrosidase. The disease is most common in persons of Ashkenazi Jewish ancestry and the most common mutation, accounting for about 75% of the mutant alleles in this population, is known to be an A----G substitution at cDNA nucleotide (nt) 1226. Screening for this disease has not been possible because nearly 25% of the mutant alleles had not been identified, but linkage analysis led to the suggestion that most of these could be accounted for by a single mutation. We now report the discovery of this mutation. The insertion of a single nucleotide, a second guanine at cDNA nt 84 (the 84GG mutation), has been detected in the 5' coding region of the glucocerebrosidase gene. The amount of mRNA produced is shown to be normal but since the frameshift produced early termination, no translation product is seen. This finding is consistent with the virtual absence of antigen found in patients carrying this mutation. The 84GG mutation accounts for most of the previously unidentified Gaucher disease mutations in Jewish patients. The common Jewish mutation at nt 1226, the 84GG mutation, and the less-common mutation at nt 1448 accounted for 95% of all of the Gaucher disease-producing alleles in 71 Jewish patients. This now makes it possible to screen for heterozygotes on a DNA level with a relatively low risk of missing couples at risk for producing infants with Gaucher disease.

Age Factors

DNA sequence abnormalities of human glucose-6-phosphate dehydrogenase variants.

Over 400 supposedly biochemically and genetically distinct variants of glucose-6-phosphate dehydrogenase (G6PD) have been described in the past. In order to investigate these variants at the DNA sequence level we have now determined the relevant sequences of introns of G6PD and describe a method which allows us to rapidly determine the sequence of the entire coding region of G6PD. This technique was applied to six variants that cause G6PD deficiency to be functionally so severe as to result in nonspherocytic hemolytic anemia. Although the patients were all unrelated, G6PD Marion, Gastonia, and Minnesota each had identical mutations, a G----T at nucleotide (nt) 637 in exon 6 leading to a Val----Leu substitution at amino acid 213. The mutations of Nashville and Anaheim were identical to each other, viz. G----A at nt 1178 in exon 10 producing a Arg----His substitution at amino acid 393. G6PD Loma Linda had a C----A substitution at nt 1089 in exon 10, producing a Asn----Lys change at amino acid 363. The results confirm our earlier results suggesting that the NADP-binding site is in a small region of exon 10 and suggest the possibility that this area is also concerned with the binding of glucose-6-P.

Anemia, Hemolytic, Congenital Nonspherocytic

Mutation analysis of glucose-6-phosphate dehydrogenase (G6PD) variants in Costa Rica.

Glucose-6-phosphate dehydrogenase (G6PD) deficiency has previously been reported among both the black and white populations of Costa Rica. All 28 G6PD A- samples were found to be of the common G6PD A-376G/202A type. A previously described mutation associated with nonspherocytic hemolytic anemia, G6PD Puerto Limón, was found to be due to a G----A transition at nucleotide (nt) 1192, causing a glu----lys substitution. Mutations in this region of the G6PD molecule seem invariably to be associated with chronic hemolytic anemia. G6PD Santamaria had been described previously in two unrelated white subjects. We found that both did, indeed, have the same mutations. In this variant the A----G substitution at nt 376 that is characteristic of G6PD A was present, but an A----T mutation at nt 542, apparently superimposed on the ancient G6PD A mutation, resulted in an asp----val substitution. Thus, the gain of a negative charge at amino acid 126 was counterbalanced by the loss of a charge at amino acid 181, giving rise to a variant with the G6PD A mutation but with normal electrophoretic mobility.

Black People

Some Mexican glucose-6-phosphate dehydrogenase variants revisited.

Glucose-6-phosphate dehydrogenase (G6PD) deficiency appears to be fairly common in Mexico. We have now examined the DNA of three previously reported electrophoretically fast Mexican G6PD variants, -G6PD Distrito Federal, G6PD Tepic, and G6PD Castilla. All three of these variants, believed on the basis of biochemical characterization and population origin to be unique, have the G----A transition at nucleotide 202 and the A----G transition at nucleotide 376, mutations that we now recognize to be characteristic of G6PD A-. Two other Mexican males with G6PD deficiency were found to have the same mutation. All five have the (NlaIII/FokI/PvuII/PstI) haplotype characteristic of G6PD A -in Africa. Since the PvuII+ genotype seems to be rare in Europe, we conclude that all of these G6PD A - genes had their ancient origin in Africa, although in many of the Mexican patients with G6PD A -202A/376G the gene may have been imported more recently from Spain, where this variant, formerly known as G6PD Betica, is also prevalent.

DNA

Definition of the mutations of G6PD Wayne, G6PD Viangchan, G6PD Jammu, and G6PD 'LeJeune'.

We report the nucleotide (nt) substitutions of four unrelated glucose-6-phosphate dehydrogenase (G6PD)-deficient males. Only the mutation of G6PD Wayne was unique. It was a nt 769 C----G substitution causing a deduced substitution of glycine for arginine at amino acid 257. This mutation is in a region in which G6PD mutations have previously been associated with chronic hemolytic anemia. The mutation of G6PD Jammu and G6PD Viangchan were identical: a G----A mutation at nucleotide 871, predicting a Val----Met substitution at amino acid 291. However, these two variants differ with respect to the 1311 polymorphism, suggesting that they may have arisen independently. Enzyme from a child with chronic hemolytic anemia, designated G6PD 'LeJeune', proved to be due to a G----T substitution at nt 637, a change identical with that in 3 unrelated patients who had been reported previously as having G6PD Gastonia, Minnesota and Marion. These findings support the suggestion that both polymorphic and sporadic G6PD deficiency mutations in unrelated persons with G6PD deficiency are often the same, even when thought to be distinct on the basis of biochemical characterization.

Amino Acid Sequence

Linkage between a PvuII restriction fragment length polymorphism and G6PD A-202A/376G: evidence for a single origin of the common G6PD A- mutation.

DNA samples from 29 males with the G6PD A- phenotype and 14 males with a G6PD B phenotype were studied for the presence of each of four polymorphic restriction sites in the glucose-6-phosphate dehydrogenase locus. All G6PD A- subjects with the G6PD A-202A/376G genotype, regardless of population origin, shared identical haplotypes. In view of the fact that at least one of the restriction sites, the PvuII site in the intron between exon 5 and 6, has thus far been uncommon in the populations studied, it seems likely that the G6PD A- mutation at nucleotide 202 arose relatively recently and in a single individual.

Base Sequence

The NT 1311 polymorphism of G6PD: G6PD Mediterranean mutation may have originated independently in Europe and Asia.

A polymorphic site exists in exon 11 of G6PD: in the wild-type enzyme, nucleotide (NT) 1311 is a C, but is some individuals from diverse populations a T is present instead. Nine of 54 X chromosomes from Europeans of mixed origins, nine of 41 X chromosomes of Ashkenazi Jewish subjects, three of 18 X chromosomes of Sicilians, five of 20 African X chromosomes, and nine of 20 Asian Indian X chromosomes had the mutant genotype. In contrast, the mutation was found in only three of 59 Oriental X chromosomes and in three of 30 Central/South American X chromosomes. The mutation was absent from four samples of chimpanzee DNA. Twenty-one of 22 male subjects from Mediterranean countries who had the G6PD Mediterranean 563T genotype investigated in the present study or reported previously had a T at NT 1311. Only one had the normal C at NT 1311. In contrast, both G6PD Mediterranean563T males from the Indian subcontinent had the normal C at NT 1311. These findings suggest that the same mutation at nucleotide 563 giving rise to G6PD Mediterranean may have arisen independently in Europe and in Asia.

Animals

Molecular biology of G 6 PD variants.

Glucose-6-phosphate dehydrogenase (G6PD, E.C. 1.1.1.49) deficiency is probably the most common disease-producing enzyme deficiency of man. Originally described in the 1950's in Black Americans and regarded a single disorder, it soon became apparent that this enzyme defect occurred in many populations and that it was biochemically heterogeneous. By 1965 a considerable number of distinct variants had been described and a WHO Scientific Group was convened to standardize methods of characterization of variants, so as to allow meaningful interlaboratory comparisons to be made. In the succeeding quarter of a century nearly 400 variants believed to be unique have been characterized, most of them by the standard methods that had been adopted in 1967. Helpful as standardization proved to be, however, comparison of variants with one another proved to be difficult. Electrophoretic mobilities and kinetic constants vary with changes in reagents over which investigators have no control, and the lack of stability of enzymes and their kinetic characteristics makes side-by-side comparison a goal that can be achieved only rarely. It is not surprising, then, that in at least one instance variants that appeared to be quite different proved to have been obtained from two members of the same family, and were undoubtedly identical. It has thus been clear for many years that a true appreciation of the extent of G6PD mutations would require the acquisition of incontrovertible structural data.(ABSTRACT TRUNCATED AT 250 WORDS)

Africa

Molecular genetics of the glucose-6-phosphate dehydrogenase (G6PD) Mediterranean variant and description of a new G6PD mutant, G6PD Andalus1361A.

Glucose-6-phosphate dehydrogenase (G6PD; E.C.1.1.1.49) deficiency is the most common human enzymopathy; more than 300 different biochemical variants of the enzyme have been described. In many parts of the world the Mediterranean type of G6PD deficiency is prevalent. However, G6PD Mediterranean has come to be regarded as a generic term applied to similar G6PD mutations thought, however, to represent a somewhat heterogeneous group. A C----T mutation at nucleotide 563 of G6PD Mediterranean has been identified by Vulliamy et al., and the same mutation has been found by De Vita et al. in G6PD Mediterranean, G6PD Sassari, and G6PD Cagliari. The latter subjects had an additional mutation, at nucleotide 1311, that did not produce a coding change. We have examined genomic DNA of five patients--four of Spanish origin and one of Jewish origin--having enzymatically documented G6PD Mediterranean. All had both the mutation at nucleotide 563 and that at nucleotide 1311. A sixth sample, resembling G6PD Mediterranean kinetically but with a slightly rapid electrophoretic mobility, was designated G6PD Andalus and was found to have a different mutation, a G----A transition at nucleotide 1361, producing an arginine-to-histidine substitution. These studies suggest that G6PD Mediterranean is, after all, relatively homogeneous.

Base Sequence

Molecular heterogeneity of glucose-6-phosphate dehydrogenase A-.

Glucose-6-phosphate dehydrogenase (G6PD) deficiency is probably the most common disease-producing genetic polymorphism of humans. Virtually all G6PD-deficient Africans show the G6PD A- phenotype, an electrophoretically rapid, deficient enzyme. The recently acquired ability to identify the point mutations producing the different variants has given us new insights into the population genetics of G6PD variants. Twenty-nine males with the G6PD A- phenotype were studied. They were of African, Mexican, Spanish, and US white ethnic origin. All had the A---G transition at nucleotide 376 characteristic of G6PD A. In each case, one of three additional mutations was present, at nucleotides 202, 680, or 968. That in this population second mutations producing G6PD deficiency occurred only on the genetic background of G6PD A suggests that G6PD A was at one time the most common type of G6PD in Africa. However, the nucleotide sequence of the chimpanzee (Pan troglodytes) G6PD indicates that the primordial human type of G6PD was G6PD B.

Base Sequence