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Biomedical subjects

G Cetta

Publications and source records attributed to G Cetta.

At least 55 records · Page 3Linked to original sources

Severe (type III) osteogenesis imperfecta due to glycine substitutions in the central domain of the collagen triple helix.

The molecular defects responsible for three cases of severe (type III) osteogenesis imperfecta (OI) were investigated. The mutation sites were localized in pro alpha 1(I) and pro alpha 2(I) mRNA molecules, respectively, by chemical cleavage of mismatch in heteroduplex nucleic acids. Mutation identification was achieved by reverse transcription-polymerase chain reaction-DNA amplification, followed by cloning and sequencing. Two unrelated patients were demonstrated to bear the same G-A transition at nucleotide 2418 of the pro alpha 1(I) coding region, leading to G589S substitution and resulting in very similar clinical manifestations. In the latter patient, a G-T transversion at nucleotide 2166 was found in one pro alpha 2(I) allele, which caused a G586V substitution and again severe OI. Presumably all three mutations occurred de novo in the probands, since they were not found in their parents' DNA. The biochemical findings on type I collagen were very similar in all the probands: the mutations here described had little destabilizing effects on triple helix formation, secretion and stability. The half-life of the collagen incorporated into the insoluble matrix was comparable with that of controls. These mutations are localized in the gap zone of the fibrils where mineral nucleation occurs. This fact suggests that they probably do not exert destabilizing effects on the individual collagen molecules, but rather on the mineralization process, once the defective molecules are incorporated into the fibrils, hence causing severe phenotypes.

Base Sequence↗

Gly85 to Val substitution in pro alpha 1(I) chain causes mild osteogenesis imperfecta and introduces a susceptibility to protease digestion.

In this paper we describe a mild moderate form of osteogenesis imperfecta caused by a point mutation in COL1A1 which converted glycine 85 to valine. The valine substitution introduced into the triple-helical domain of type-I collagen a conformational perturbation causing susceptibility to digestive proteases. In fact, SDS/PAGE of pepsin-treated collagen showed the presence of a faint band, migrating between alpha 1(I) and alpha 2(I), both in the medium and in the cell layer. On trypsin digestion the band, a shortened form of alpha 1(I), had a melting temperature of 39.5 degrees C. If the triple-helical collagen was obtained after trypsin or chymotrypsin digestion of procollagen, two shortened bands were identified; the enzymes cleaved about 40% of the trimers. The mutant procollagen was normally secreted and processed in the extracellular matrix at a normal rate. When native type-I collagen was formed after dextran-sulfate incubation, only chains of normal length were found, suggesting that the fibroblast proteases did not recognize the alteration introduced by the mutation. The effects of glycine 85 to valine substitution are compared with those produced by a previously described arginine substitution of the same residue (Deak et al., 1991).

Adult↗

Osteogenesis imperfecta and type-I collagen mutations. A lethal variant caused by a Gly910-->Ala substitution in the alpha 1 (I) chain.

In this study we describe a new dominant point mutation in COL1A1 causing a lethal form of Osteogenesis imperfecta (type II B). Dermal cultured fibroblasts from the proband were shown to produce both normal and heavily overmodified type-I collagen. The mutation introduced a local conformational perturbation, which causes abnormal exposure of arginine residues; the triple helical domain was susceptible to trypsin digestion even at 30 degrees C. The chains bearing the point mutation were poorly secreted and short-term pulse experiments showed that the extensive intracellular retention of mutant trimers also impaired the secretion of normal chains. The molecular defect was localized in a COL1A1 allele by cloning and sequencing a cDNA region corresponding to the CB6 peptide. A G to C transversion which causes the substitution in the triple helical region of Gly910 with alanine was found. The mutation also causes the disappearance of a MspI-recognition site at nucleotide 3263 of the pro alpha 1 (I) coding sequence. Restriction analysis, along with the biochemical screening of collagens, allowed us to perform prenatal diagnosis on cells from chorionic-villus sampling and to exclude the recurrence of the mutation in the sibling.

Alanine↗

Possible role of overglycosylation in the type I collagen triple helical domain in the molecular pathogenesis of osteogenesis imperfecta.

The underlying defect in patients affected by a form of osteogenesis imperfecta (OI) clarified at the molecular level regards the amount or the structure of type I collagen synthesized. This leads to a decreased and/or abnormal mineral deposition in bone and affects bone mass and/or strength. Abnormal interactions between collagen molecules in the presence of mutant trimers could give rise to abnormal fibrils, which, in turn, can determine incorrect interactions with noncollagenous matrix macromolecules. The interactions can be disturbed or modulated by an abnormal distribution on the collagen fibril surface of electrically charged or hydrophobic groups, or by an increased presence of sugar moieties linked to hydroxylysyl residues due to chain post-translational overmodifications (lysyl overhydroxylation and hydroxylysyl overglycosylation) of the portion of the triple helical domain of abnormal type I collagen molecules N-terminal with respect to the defect localization.

Amino Acid Sequence↗

Paternal mosaicism for a COL1A1 dominant mutation (alpha 1 Ser-415) causes recurrent osteogenesis imperfecta.

We describe a dominant point mutation in the COL1A1 gene causing extremely severe osteogenesis imperfecta (OI type II/III) which was detected in the dermal fibroblasts of a proband, diagnosed by ultrasonography at 24 weeks of gestation. Type I collagen secretion was reduced and pro alpha 1(I) chains were overmodified. The mutation was localised in one COL1A1 allele by chemical cleavage of mismatched bases in normal cDNA/proband's mRNA heteroduplexes, and identified by cloning and sequencing. A G-to-A transition which causes the substitution of Gly-415 with serine in the alpha 1(I) triple helical domain was found. The same mutation was detected in the father's spermatozoa and lymphocytes. Mosaicism in the father's germline explains the occurrence in the family of two additional OI pregnancies, which were documented by X-ray and ultrasound investigations.

Adult↗

Extracellular matrix deposition in cultured dermal fibroblasts from four probands affected by osteogenesis imperfecta.

Type I procollagen biosynthesis and matrix deposition were studied in cultured fibroblasts of four probands affected by Osteogenesis Imperfecta and in whom the mutations have been characterized. The mutations along the triple helix altered all biochemical parameters considered, i.e. thermal stability, kinetics of procollagen secretion and rate of maturation from procollagen to collagen. The biochemical findings were peculiar for each case considered, but there was no correlation between biochemical parameters and clinical phenotype. In all our probands, regardless of the clinical severity, mutant chains appeared in the insoluble matrix formed by fibroblasts cultured in the presence of dextran sulfate. The densitometric scanning revealed a relative increased amount of fibronectin, suggesting that the matrix contained a lower quantity of type I collagen. Furthermore, the amount of mutant chains found in the insoluble fraction was clearly less than expected, considering that 75% of new synthesized trimers are abnormal. Therefore, in the presence of a mutation, the protein available for extracellular matrix formation is reduced and the mutant trimers incorporated in the matrix probably interfere with normal fibril performance. The abnormal fibril morphology has a dramatic effect in bone, interfering presumably with a correct mineral deposition and interactions with non/collagenous bone proteins.

Cells, Cultured↗

Ehlers-Danlos syndrome type VIII: biochemical, stereological and immunocytochemical studies on dermis from a child with clinical signs of Ehlers-Danlos syndrome and a family history of premature loss of permanent teeth.

We studied collagen expressed by skin fibroblasts in culture, and performed immunocytochemical, ultrastructural and stereological analysis of dermis from a child with signs reminiscent of a mild Ehlers-Danlos syndrome (EDS) type IV and severe periodontitis. No alterations in types I and III [corrected] collagen synthesis and secretion, or serum levels of type III procollagen aminoterminal propeptide were found, and morphological studies revealed non-specific alterations of collagen and elastic components observed in many connective tissue disorders.

Alveolar Bone Loss↗

Deposition of mutant type I collagen in the extracellular matrix of cultured dermal fibroblasts in osteogenesis imperfecta.

To study how mutant type I collagen interferes with matrix deposition we investigated the extracellular matrix produced by cultured skin fibroblasts in thirteen patients affected by different forms of Osteogenesis Imperfecta. Two different approaches were used: a) the pericellular matrix produced during 24 h label was analyzed by SDS-PAGE; b) type I collagen present in the insoluble cell-layer fraction in long-term cultures was studied. Results showed that a very small amount of abnormal type I trimers were present regardless of the clinical phenotype. In only two cases mutant chains were clearly incorporated. These data indicate a selective deposition of normal collagen trimers over abnormal ones. Moreover, in long-term cultures a decreased amount of type I collagen was deposited as indicated by the relative increase in type V collagen. These data are discussed in light of results found in bone by other authors and suggest that decreased deposition of type I collagen could be a general feature in OI and not limited to null-allele OI probands.

Cells, Cultured↗

Mild dominant osteogenesis imperfecta with intrafamilial variability: the cause is a serine for glycine alpha 1(I) 901 substitution in a type-I collagen gene.

The molecular defect responsible for a case of mild osteogenesis imperfecta (OI) with repeated femoral fractures was investigated. The proband and his mother, who presented minor OI signs but no bone fractures, were shown to produce normal and abnormal type-I procollagen molecules in their dermal fibroblasts. The molecular defect was localized in about half of the proband's pro alpha 1(I) mRNA molecules by chemical cleavage with piperidine of hydroxylamine-reacted mRNA:cDNA heteroduplexes. The corresponding region was reverse-transcribed and amplified by polymerase chain reaction (PCR). Cloning and sequencing of the amplified products revealed in both subjects a G-to-A transition in the first base of codon 901 of the alpha 1(I) triple helical domain, which led to a serine for glycine substitution. Allele-specific oligonucleotide hybridization to amplified genomic DNA from fibroblasts and leukocytes confirmed the heterozygous nature of both patients and proved the absence of mosaicism. The presence of the mutation was excluded in other healthy family members, who were reported to have bluish selerae. The mild phenotypic outcome of this newly characterized mutation contradicts previous findings on glycine substitutions in the C-terminal region of collagen triple helix, most of which caused lethal OI.

Base Sequence↗

Blood transfusions in the therapy of a case of prolidase deficiency.

A case is reported of a 15-year-old boy with prolidase deficiency and marked urinary excretion of the iminodipeptide gly-pro. Prolidase activity of erythrocytes against substrate glycyl-proline was deficient, but after blood transfusions this was increased to 15.7% of donor activity and declined to 12% and 3.4% of normal activity after 8 and 45 days, respectively. Urinary iminodipeptide levels following transfusion remained unaltered.

Adolescent↗

[Ehlers-Danlos syndrome. Description of 2 clinical cases].

The paper describes the clinical symptoms and biochemical tests carried out in two girls suffering from Ehlers-Danlos syndrome. The most typical clinical feature, which is common to both cases, was the presence of skin alterations at the extensor surface level of elbows and, above all, knees. These alterations appeared to be delimited areas with irregular margins where the skin was thin, dry, hyperpigmented, wrinkled, with scanty or absent subcutaneous tissue. Biochemical tests carried out on cutaneous fibroblast cultures excluded the presence type I collagen alterations and an altered secretion of type I or III procollagen secretion. The Authors discuss the attribution of cases presented within the context of the various forms of Ehlers-Danlos syndrome in relation to clinical findings and the results of the biochemical tests.

Adolescent↗

A de novo G to T transversion in a pro-alpha 1 (I) collagen gene for a moderate case of osteogenesis imperfecta. Substitution of cysteine for glycine 178 in the triple helical domain.

Cultured fibroblasts from a patient affected with a moderate form of osteogenesis imperfecta were defective for the synthesis of type I collagen molecules; about half of the alpha 1(I) chains contained a cysteine residue in the triple helical domain and a disulfide link formed when two mutant alpha 1(I) chains were incorporated into a type I collagen heterotrimer. The proband's parents were clinically and biochemically normal. The cysteine was localized within peptide alpha 1(I)CB8 between residues 170 and 200 of the triple helical domain using a chemical procedure with 2-nitro-5-thiocyanobenzoic acid (Tenni, R., Rossi, A., Valli, M., Mottes, M., Pignatti, P. F., and Cetta, G. (1990) Matrix 10, 20-26). Type I procollagen heterotrimers containing either one or two mutant chains showed (i) a slight abnormality in secretion from cells; (ii) a low degree of post-translational overmodifications; (iii) the same, but lower than normal, thermal stability. Total RNA was isolated from the proband's dermal fibroblast cultures, and cDNAs for pro-alpha 1(I) were prepared d using total RNA. A portion of cDNA, coding for the region encompassing residues 119-193 of alpha 1(I) triple helical domain, was amplified by polymerase chain reaction. A single base pair mismatch was identified by chemical cleavage of DNA.DNA heteroduplexes, indicating a possible substitution of a guanine in the triplet coding for glycine 178 or 181. The same unique mismatch was detected by chemical cleavage in about one-half of the molecules in heteroduplexes formed between patient's pro-alpha 1(I) mRNAs and a normal cDNA probe. The amplified products were cloned and sequenced, confirming the heterozygous nature of the patient and demonstrating the presence and the location of a missense mutation; a single T for G substitution was found in the first base of the triplet coding for residue 178 of alpha 1(I) triple helical domain, leading to a cysteine for glycine substitution. Allele-specific oligonucleotide hybridization to amplified DNA confirmed a de novo point mutation in the proband's genome. The findings in this patient are in accord with the phenotypic gradient model, which correlates the localization of the structural defect with the clinical outcome of osteogenesis imperfecta. The mutant protein has some properties that differ from the caused by the cysteine for glycine 175 substitution, suggesting a direct influence of the neighboring amino acids on the effects of the mutation.

Alleles↗

Phenotypic variability and abnormal type I collagen unstable at body temperature in a family with mild dominant osteogenesis imperfecta.

Autosomal dominant inheritance of a mild form of osteogenesis imperfecta (osteogenesis imperfecta type I) with different phenotypic expression was found in a family. Phenotypic expression was different for the affected mother and son, in the presence of the same biochemical results. Dermal fibroblast cultures synthesized normal and mutant type I collagen alpha chains. Collagen heterotrimers containing abnormal chains were overmodified along the entire triple helical domain and showed an unusually low denaturation temperature, so far found only in lethal cases. The mild phenotype in the family is probably due to the fact that abnormal type I collagen molecules are more likely to be degraded than utilized in the extracellular matrix.

Body Temperature↗

[Standardization of bone tissue densitometry].

Traditional X-ray technique have proved be scarcely reliable in determining bone tissue mineral status especially when comparing X-rays made at different times. The use of ergal or hydroxylapatite samples has been put forward to resolve this problem since, when used together with computerised imaging techniques, they allow a more precise and quantitative analysis to be made. The velidity of tyhis technique is confirmed by an experimental trial on animal bone.

Absorptiometry, Photon↗

Ultrastructural studies on dermis from prolidase deficient subjects.

Ultrastructural analyses were performed on clinically normal skin from forearm and/or femoral regions of five subjects, all excreting high levels of gly-pro dipeptides into the urine and exhibiting very low prolidase activity on hemolyzed erythrocytes. In both regions, the overall organization of the dermis was normal. Stereological analysis, however, showed that collagen volume density was reduced when compared to that of age-matched controls. Collagen fibrils did not show ultrastructural alterations, but they were distributed into a higher number of small bundles, and their diameters shifted towards lower values compared to age-matched controls. The elastin volume density was slightly reduced in the patients, especially in the femoral areas. In both forearm and femoral dermis, elastin fibers were significantly more numerous and smaller than in controls. Furthermore, elastin fibers were apparently normal in the forearm dermis, whereas appeared polymorphic and cribriform in the femoral skin. The results focused on the importance of efficient proline re-utilization for normal collagen and elastin synthesis and deposition. The differences between femoral and forearm skin regions from both clinical and ultrastructural points of view, may depend on mechanisms that regulate circulation and, possibly, on other factors which modulate the phenotypic expression of mesenchymal cells.

Adult↗

Anomalous cysteine in type I collagen. Localisation by chemical cleavage of the protein using 2-nitro-5-thiocyanobenzoic acid and by mismatch analysis of cDNA heteroduplexes.

A method is presented for the localisation of an anomalous cysteine inside the triple helical domain of type I collagen from a patient affected with Osteogenesis Imperfecta. The chemical cleavage used relies on the specificity and reactivity of the thiol side chain versus 2-nitro-5-thiocyanobenzoic acid, to yield cyanocysteine; in mild alkaline conditions this derivative will undergo the breakdown of its N-side peptide bond. This method could allow a more precise localisation of anomalous cysteine in both type I collagen alpha chains, alpha 1(I) and alpha 2(I), compared to previous analytical methods on CNBr peptides. For the mutant alpha 1(I) chains from a patient affected by Osteogenesis Imperfecta, we found a location of cysteine in the peptide alpha 1(I)CB8, between amino acids 170-200. Biochemical localisation was confirmed by a chemical cleavage method for mismatched cytosines on heteroduplexes obtained after denaturation and annealing of a 233 bp cDNA fragment amplified by PCR from the heterozygote patient.

Base Sequence↗

Moderately severe osteogenesis imperfecta: biochemical studies showing variable defect localization in the triple-helical domain of type I collagen.

This report describes the biochemical investigations on six patients affected by a moderate form of Osteogenesis Imperfecta (type IV according to the Sillence classification). Biochemical characterization of type I collagen produced by skin fibroblasts showed considerable heterogeneity: in three patients out of six, collagen appeared normal; while in the three others a structural defect in the protein was present. In these probands the mutations were localized in different regions of the triple helix domain (corresponding to peptides alpha 1(I)CB6 and alpha 1(I)CB7). In two probands showing the defect in alpha 1(I)CB7, a decrease of the thermal stability of the protein was present.

Child↗

Unilateral microfibrillar abnormalities in a case of asymmetric Marfan syndrome.

The Marfan syndrome is a dominantly inherited connective-tissue disorder characterized by ocular, cardiovascular, and musculoskeletal abnormalities. Although the underlying biochemical and molecular defect(s) of this pleiotropic disease is currently unknown, we have consistently observed apparent diminished content of elastin-associated microfibrillar fibers accumulating in skin, or produced by cultured fibroblasts, from patients with the Marfan syndrome and have documented the cosegregation of these immunofluorescent abnormalities of microfibrillar fibers with the Marfan syndrome phenotype in family studies. Recently, an unusual patient has been described with unilateral phenotypic features of the Marfan syndrome, providing an unique opportunity to compare microfibrillar fibers and other connective-tissue components between the affected and nonaffected sides. In the present report, we demonstrate striking differences in apparent content of microfibrillar fibers, as determined by indirect immunofluorescence of skin and fibroblast cultures, that are revealed when multiple homologous samples derived from different sides of the patient's body are compared. In contrast, no differences in apparent content of type III collagen or in the biosynthesis and apparent structure of types I and III (pro)collagens were found. HLA types and chromosome heteromorphisms were identical in fibroblasts from both sides of the body, eliminating the formal possibility of chimerism and suggesting that a postzygotic mutation accounts for the asymmetric manifestation of the Marfan syndrome in this patient. The observation of striking decreases in microfibrillar fibers on the affected side of the body provides further evidence that abnormalities of this component of the elastic fiber system may be central to the pathogenesis and possibly the etiology of the Marfan syndrome.

Cells, Cultured↗