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Biomedical subjects

B Steinmann

Publications and source records attributed to B Steinmann.

At least 109 records · Page 6Linked to original sources

Microangiopathy in Ehlers-Danlos syndrome type IV.

In two patients with Ehlers-Danlos syndrome type IV, an autosomal dominant disorder characterized by fragility of large vessels, excessive bruising, and deficiency in type III collagen, capillary microscopy was performed at the nailfold. Indocyanine green and Na-fluorescein were used as fluorescent tracers. Both patients exhibited microangiopathy of the skin capillaries with microbleedings, presence of microaneurysms and increased transcapillary diffusion. Microvascular involvement appears to be an additional manifestation of the syndrome.

Adult↗

A 9-base pair deletion in COL1A1 in a lethal variant of osteogenesis imperfecta.

A proband with lethal osteogenesis imperfecta has been investigated for the causative defect at the levels of collagen protein, mRNA, and DNA. Analysis of type I collagen synthesized by the proband's fibroblasts showed excessive post-translational modification of alpha 1(I) chains along the entire length of the helix. Oververmodification of alpha chains could be prevented by incubation of the cells at 30 rather than 37 degrees C, and the thermal stability of the triple helix, as determined by protease digestion, was normal. RNase A cleavage of RNA:RNA hybrids formed between the proband's mRNA and antisense RNA derived from normal pro-alpha 1(I) chain cDNA clones was used to locate an abnormality to exon 43 of the proband's pro-alpha 1(I) collagen gene (COL1A1). The nucleotide sequence of the corresponding gene region showed, in one allele, the deletion of 9 base pairs, not present in either parent, within a repeating sequence of exon 43. The mutation causes the loss of one of three consecutive Gly-Ala-Pro triplets at positions 868-876, but does not otherwise disrupt the Gly-X-Y sequence. Procollagen processing in fibroblast cultures and susceptibility of the mutant collagen I to cleavage with vertebrate collagenase were normal, indicating that the slippage of collagen chains by one Gly-X-Y triplet does not abolish amino-propeptidase and collagenase cleavage sites. How the mutation produces the lethal osteogenesis imperfecta phenotype is not entirely clear; the data suggest that the interaction of alpha chains immediately prior to helix formation may be affected.

Amino Acid Sequence↗

Substitution of cysteine for glycine-alpha 1-691 in the pro alpha 1(I) chain of type I procollagen in a proband with lethal osteogenesis imperfecta destabilizes the triple helix at a site C-terminal to the substitution.

Skin fibroblasts from a proband with lethal osteogenesis imperfecta synthesized a type I procollagen containing a cysteine residue in the alpha 1(I) helical domain. Assay of thermal stability of the triple helix by proteinase digestion demonstrated a decreased temperature for thermal unfolding of the protein. Of special importance was the observation that assays of thermal stability by proteinase digestion revealed two bands present in a 2:1 ratio of about 140 and 70 kDa; the 140 kDa band was reducible to a 70 kDa band. Further analysis of the fragments demonstrated that the cysteine mutation produced a local unfolding of the triple helix around residue 700 and apparently exposed the arginine residue at position 704 in both the alpha 1(I) and alpha 2(I) chains. Analysis of cDNAs and genomic DNAs demonstrated a single-base mutation that changed the GGT codon for glycine-691 of the alpha 1(I) chain to a TGT codon for cysteine. The mutation was not found in DNA from either of the proband's parents. Since the proteinase assay of helical stability generated a fragment of 700 residues that retained disulphide-bonded cysteine residues at alpha 1-691, the results provide one of the first indications that glycine substitutions in type I procollagen can alter the conformation of the triple helix at a site that is C-terminal to the site of the substitution.

Alleles↗

G to T transversion at position +5 of a splice donor site causes skipping of the preceding exon in the type III procollagen transcripts of a patient with Ehlers-Danlos syndrome type IV.

We identified a splicing mutation in a patient with Ehlers-Danlos syndrome type IV, a heritable connective tissue disorder associated with dysfunctions of type III collagen. The mutation was first localized in the patient's type III procollagen mRNA by amplifying the reverse transcribed product in several overlapping fragments using the polymerase chain reaction. Amplified products spanning exon 24-26 sequences displayed two distinct fragments, one of normal size and the other lacking the 99 base pairs of exon 25. Sequencing of amplified genomic products identified a G to T transversion at position +5 of the splice donor site of intron 25 in one of the patient's procollagen III genes. Expression of allelic minigene constructs correlated the T for G substitution with skipping of exon 25 sequences. Like previously characterized splicing mutations in other collagen genes, lowering the temperature at which the patient's fibroblasts were incubated nearly abolished exon skipping. As a part of this study, we also identified a highly polymorphic, intronic DNA sequence whose different allelic forms can be detected easily by the polymerase chain reaction technique.

Alleles↗

Multiexon deletion in the procollagen III gene is associated with mild Ehlers-Danlos syndrome type IV.

We have characterized a deletion of approximately 9 kilobases which spans from intron 33 to exon 48 of one pro-alpha 1 (III) collagen allele in a patient with Ehlers-Danlos syndrome type IV. The mutation results in the production of an in-frame species of mRNA which lacks the sequences corresponding to residues 595-1,008 of the triple-helical domain. Thus, half of the pro-alpha 1 (III) chains synthesized by the patient's fibroblasts are nearly 30% shorter than normal. The procollagen III molecules composed of either three normal length or three shortened chains are thermally stable and efficiently secreted. In contrast, the procollagen III molecules that contain one or two shortened chains are unstable and are not secreted. Failure to secrete unstable molecules and a residual functional role of the shortened but stable homotrimers may explain the somewhat milder phenotype of this individual compared with that of another Ehlers-Danlos type IV patient bearing a deletion of similar size in the amino-terminal portion of the alpha 1 (III) collagen chain.

Chromosome Deletion↗

Cyclosporin A slows collagen triple-helix formation in vivo: indirect evidence for a physiologic role of peptidyl-prolyl cis-trans-isomerase.

Peptidyl-prolyl cis-trans-isomerase accelerates otherwise slow, rate-limiting isomerization steps during folding of proteins in vitro, but is not yet securely identified with any specific physiologic role. Peptidyl-prolyl cis-trans-isomerase and the cyclosporin A (CsA)-binding protein cyclophilin are identical, and peptidyl-prolyl cis-trans-isomerase activity is inhibited by the immunosuppressive drug CsA in vitro. To establish a possible physiologic role of peptidyl-prolyl cis-trans-isomerase, we have studied the folding of procollagen I in suspended chick embryo tendon fibroblasts. Folding of procollagen I is slowed by CsA: the time needed for 50% of the molecules to reach a completely helical confirmation is 8.5 min in the absence and 13.5 min in the presence of 5 microM CsA; and the calculated products, k x K, of the rate constant (k) and the equilibrium constant (K) of peptidyl-prolyl cis-trans isomerization are 2.10 and 1.30 s-1, respectively. In contrast, folding of purified collagen III in vitro is unaffected by CsA. In cultured human fibroblasts, CsA caused posttranslational overmodification (hydroxylation of lysine 32.1 versus 22.1%) and increased intracellular degradation (18.7 versus 12.5%), and hence decreased production (10.2 versus 13.2% of total protein synthesis) of collagens I and III, indicating that procollagen folding is slowed by CsA also in human fibroblasts. We conclude that peptidyl-prolyl cis-transisomerase (and hence cyclophilin) accelerates protein folding in living cells. Furthermore, the CsA-induced changes in collagen metabolism are reminiscent of those observed in several variants of osteogenesis imperfecta caused by structural abnormalities in the pro-collagen chains which impair helix formation.

Amino Acid Isomerases↗

Maternal phenylketonuria syndrome in cousins caused by mild, unrecognized phenylketonuria in their mothers homozygous for the phenylalanine hydroxylase Arg-261-Gln mutation.

Intrauterine growth retardation, microcephaly, and developmental delay in two first cousins lead to the recognition of phenylketonuria (PKU) in their mothers, 24- and 23 year-old sisters with blood phenylalanine concentrations of approx. 1.2 mmol/l who had never been treated and had no overt mental retardation. Both mothers were shown to be homozygous for a point mutation leading to an Arg-to-Gln substitution at codon 261 of the phenylalanine hydroxylase gene, a mutation which has been recently identified and tentatively associated with a mild variant of PKU. Our observation suggests that homozygosity for the Arg-261-Gln mutation can indeed result in "mild" PKU with little or perhaps no mental retardation, but also indicates that in such women, who may go unrecognized if not screened for, blood phenylalanine is elevated enough to cause the maternal PKU syndrome in their offspring.

Adult↗

Marfan syndrome: no evidence for heterogeneity in different populations, and more precise mapping of the gene.

Marfan syndrome is a dominantly inherited connective tissue disorder with manifestations in the cardiovascular, ocular, and skeletal systems. The diagnosis is hampered by both high variability in the phenotypic expression and late manifestation of symptoms. The cause of Marfan syndrome remains unknown, but our group has recently reported the genetic linkage of Marfan syndrome to a polymorphic marker on chromosome 15. To analyze the possible heterogeneity behind Marfan syndrome, we have performed linkage analyses for four chromosome 15 markers in 17 families from five different populations: Scottish, English, Swiss, American, and Finnish. By combining the linkage data of all the studied families into a LINKMAP analysis we obtained a maximal LOD score of 11.2, which maps the Marfan syndrome locus between D15S25 and D15S45 on the long arm of chromosome 15. The data reveal no evidence for genetic heterogeneity behind Marfan syndrome and provide us with a more precise location of both the Marfan syndrome locus and flanking markers. This information will provide the basis for the DNA diagnostics of Marfan syndrome in the future.

Chromosome Mapping↗

Characterization of a large deletion associated with a polymorphic block of repeated dinucleotides in the type III procollagen gene (COL3A1) of a patient with Ehlers-Danlos syndrome type IV.

Ehlers-Danlos syndrome type IV (EDS IV) is an autosomal dominant condition characterized by extreme fragility of skin, blood vessels, intestine, gravid uterus, and lungs. The phenotype is accounted for by mutations affecting the integrity and/or synthesis of the precursor procollagen molecules of type III collagen. In this article, we report the elucidation of the molecular defect in an EDS IV patient whose type III collagen was previously found to be structurally abnormal. We utilized PCR in a two-step process involving first the localization of the mutation in the mRNA and then the characterization of the defect in the gene. The results established the patient's heterozygosity for a genomic deletion of about 7.5 kb which eliminates 1,026 nucleotides of coding sequences in the message. The mutation arose as a result of an exon-to-intron recombination. The deleted segment extends from the 13th nucleotide of exon 9 to within a DNA sequence of intron 24, which is composed of a series of dinucleotide repeats. Using PCR, we tested the polymorphic nature of this DNA element on several unrelated individuals. Analysis of amplified genomic products of 45 chromosomes recognized at least four distinct allelic forms that display frequencies ranging from 5% to 61%. Mendelian segregation of three of the four alleles was established by the same method in a 3-generation family.

Alleles↗

Collagen degradation in I-cells is normal.

There is evidence that lysosomal proteases mediate the intracellular degradation of structurally abnormal collagen. I-Cell disease (Mucolipidosis II) is characterized by marked deficiency of many lysosomal hydrolases, including the collagenolytic enzyme cathepsin B. The experiments reported here tested the hypothesis that degradation of abnormal collagen would be severely impaired in I-cells. Skin fibroblasts from 3 patients with I-cell disease were incubated with and without cis-hydroxyproline, a proline analog that causes structural abnormalities in collagen, and [14C]proline. The amount of [14C]hydroxyproline in a low molecular weight fraction relative to total [14C]hydroxyproline was used as a measure of intracellular collagen degradation. Levels of degradation were significantly higher in I-cells exposed to cis-hydroxyproline than in cells incubated without the analog. Similar data were obtained for normal human fetal lung fibroblasts incubated under the same conditions. Degradation of [125I]-epidermal growth factor was used to assess the functionality of the lysosomal pathway for protein degradation, and it was much lower in I-cells than in normal cells. It can be concluded that a completely functional complement of lysosomal enzymes is not necessary for structurally abnormal collagen to be degraded intracellularly; the data suggest that a nonlysosomal pathway exists.

Cells, Cultured↗

In vivo and in vitro noncovalent association of excised alpha 1 (I) amino-terminal propeptides with mutant pN alpha 2(I) collagen chains in native mutant collagen in a case of Ehlers-Danlos syndrome, type VII.

The cause of the Ehlers-Danlos syndrome Type VII (EDS VII) is considered to be defective removal of the amino-terminal propeptide (N-propeptide) of Type I procollagen due to deficiency of procollagen N-proteinase, the enzyme responsible for the normal proteolytic excision of this precursor-specific domain. Molecules retaining the N-propeptide (pN-collagen molecules) are thought to cause defective fibrillogenesis and cross-linking which eventuate in dramatic joint laxity and joint dislocations, the clinical hallmark of this variety of EDS. Recent studies demonstrate that some EDS VII patients harbor small deletions of either the pro-alpha 1(I) or pro-alpha 2(I) chain of Type I procollagen. We have found an 18-amino acid deletion (due to exon outsplicing) in a mutant pro-alpha 2(I) chain from such a patient. The deleted peptide is the junctional segment (N-telopeptide) linking the alpha 2(I) N-propeptide and major triple helical domains; loss of this short segment results in union of these latter domains and produces a shortened pN alpha 2(I) chain. Directly extracted tissue collagen and pepsin-digested fibroblast collagen contain this mutant pN alpha 2(I) chain and normal alpha 1(I) chains, but not pN alpha 1(I) chains, indicating that the relatively larger alpha 1(I) N-propeptide is excised from the related alpha 1(I) chains. The fate of this alpha 1(I) N-propeptide was unclear and therefore whether or not the intact N-propeptide was, in fact, retained in native mutant collagen was also unclear. In this paper, we describe morphologic, chemical, and immunochemical studies which indicate that the alpha 1(I) N-propeptide is retained in noncovalent association with the mutant pN alpha 2(I) chain in native mutant collagen molecules both in vivo and in vitro. In both instances, the alpha 1(I) N-propeptides are proteolytically cleaved from the related alpha 1(I) chains. These data suggest that retention of a partially cleaved, but essentially intact N-propeptide in mutant collagen may play a role in the pathogenesis of this disease.

Amino Acid Sequence↗

Brittle cornea syndrome: an heritable connective tissue disorder distinct from Ehlers-Danlos syndrome type VI and fragilitas oculi, with spontaneous perforations of the eye, blue sclerae, red hair, and normal collagen lysyl hydroxylation.

We report a patient with the characteristic features of the brittle cornea syndrome, a rare, autosomal recessively inherited disorder, namely brittle corneae, blue sclerae, and red hair. The patient also showed joint hyperextensibility, a soft skin, and dysplastic auricles with unusually soft cartilage. Phenotypically, the disorder bears a certain resemblance to fragilitas oculi and the type VI (ocular) form of the Ehlers-Danlos syndrome, two conditions which are, themselves, not readily distinguishable. However, the hydroxylysine content of dermal collagen was normal, as was the activity of lysyl hydroxylase in cultured dermal fibroblasts, thus supporting the distinction of the brittle cornea syndrome as an independent entity. No abnormality was discernible in types I or III collagens synthesised by cultured fibroblasts, but electron microscopy revealed dramatic ultrastructural alterations in dermis in that distributed over its whole thickness were 20-60 microns wide "holes" or fibre-free spaces, filled with an amorphous material.

Child, Preschool↗

Radiological "metamorphosis" in a patient with severe congenital osteogenesis imperfecta.

Congenital osteogenesis imperfecta (OI) was diagnosed by ultrasound in a 31-week-old fetus, and the diagnosis confirmed after delivery by caesarean section at week 36. The baby survived the neonatal period, but failed to thrive, had recurrent respiratory infections and ultimately died at 8 months. Cultured fibroblasts synthesized both normal type I collagen and unstable type I collagen harbouring a structural defect in the alpha 1 (I) cyanogen bromide-derived peptide number 8 (CB8) region of the molecule, indicating a heterozygous dominant mutation. At birth, the radiological picture was that of the "thin bone"-type of congenital OI (OI type IIB/III in the Sillence classification); at the age of 12 weeks ribs and long bones had undergone a marked expansion giving a very different picture, that of the "thick bone"-type congenital OI (OI type IIA). The mechanism responsible for this change in bone structure is not known, but fractures and callus formation are unlikely to be the only factors. Caution is needed in the interpretation of radiographs of newborns with OI for prognostic or genetic purposes.

Collagen↗

Infantile phytanic acid storage disease, a disorder of peroxisome biogenesis: a case report.

The infantile and classic forms of phytanic acid storage disease belong to the newly recognized group of peroxisomal disorders. In this paper we report the full clinical, morphological and biochemical results in a patient with infantile phytanic acid storage disease. The results indicate a generalized loss of peroxisomal functions due to a deficiency of peroxisomes as demonstrated in hepatocytes and cultured skin fibroblasts.

Acyl Coenzyme A↗

Markedly reduced activity of lysyl oxidase in skin and aorta from a patient with Menkes' disease showing unusually severe connective tissue manifestations.

In Menkes' disease, a severe disturbance of copper handling appears to render copper unavailable for copper-requiring processes. We have measured the activity of lysyl oxidase, the copper-dependent enzyme that initiates the cross-linking of collagen and elastin, in extracts of skin and aorta obtained at autopsy from a patient with unusually marked connective tissue manifestations, and found it to be only 6-12% of normal, thus suggesting a basis for these alterations.

Amino Acid Oxidoreductases↗