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Biomedical subjects

W Horton

Publications and source records attributed to W Horton.

At least 19 recordsLinked to original sources

Chaotic scattering and the magneto-Coulomb map.

A nonrelativistic classical electron scattering by a fixed ion in a uniform magnetic field is discussed. The system is nonintegrable, and there is chaotic scattering for a certain class of initial conditions. A two-dimensional discrete map is derived from the equation of motion. Our map exhibits four different types of motion by changing the parameters which characterize the initial condition. The fractal structure for certain observables is obtained. The width of the chaotic scattering region in the impact parameter is estimated numerically. We suggest a certain class of plasma environments where the chaotic scattering may have an important role.

Journal Article↗

Experimental determination of critical threshold in electron transport on Tore Supra.

In Tore Supra plasmas with fast wave electron heating, a critical threshold in the electron temperature gradient (inverted DeltaT(e)) is clearly observed, i.e., a finite value of inverted DeltaT(e) for which the turbulent heat diffusivity vanishes. The radial profile of this critical gradient is experimentally determined from a set of discharges characterized by similar plasma parameters with fast wave powers ranging from 0.75 to 7.4 MW. The dependence of the electron heat flux on the gradient length is found to be offset linearly. The offset term increases linearly with the ratio of the local magnetic shear to the safety factor.

Journal Article↗

Mseleni joint disease--a molecular genetic approach to defining the aetiology.

Mseleni joint disease (MJD) is an unusual form of progressive and widespread degenerative osteoarthropathy that has been identified in several hundred people in the remote Mseleni region of northern Zululand. Affected individuals experience articular discomfort in childhood and may be seriously handicapped as adults, often requiring prosthetic hip joint replacement. Although the condition clusters in families, there is no evidence of Mendelian inheritance and assessment of affected kindreds has not shown any evidence of genomic imprinting. To date our molecular work-up has entailed the study of 47 affected individuals from MJD kindreds to investigate familial predisposition based on the inheritance of a subset of markers and/or genes on the human genome, particularly those associated with the cartilage matrix. In addition, we have collected blood specimens form 111 unaffected but unrelated individuals from the same population group in order to determine whether any relationship exists between genetic components of the human leucocyte antigen (HLA) system and the MJD phenotype. Our investigations show the following: (i) there is no association between MJD and the HLA system which has previously been associated with non-Mendelian genetic conditions; (ii) COL2A1, which has been implicated in some forms of spondylo-epiphyseal dysplasia, may be involved in at least a subset of MJD patients; and (iii) type VI collagen is overabundant in degenerated hip joint cartilage.

Black People↗

Skeletal Dysplasias: An Approach to Diagnosis.

Skeletal dysplasias are the result of aberration in the growth and development of the skeleton. While they are individually rare, they are important in that they provide an insight into the mechanism of skeletal development. This article offers an approach to the diagnosis of skeletal dysplasias, rather than an exhaustive account of all the possible diagnoses. Dysplastic conditions are suspected on the basis of abnormal stature, disproportion, dysmorphism, or deformity. Diagnosis requires simple measurement of height and calculation of proportionality, combined with a complete physical examination, appropriate radiographs, an investigation of the family pedigree, and occasionally laboratory studies. An accurate diagnosis can usually be made on the basis of these data and a review of descriptive sources. A definitive diagnosis allows the treating physician to project the patient's ultimate height and to prognosticate about likely deformities and the risk of the recurrence of the condition in the family.

Journal Article↗

Transrepression of type II collagen by TGF-beta and FGF is protein kinase C dependent and is mediated through regulatory sequences in the promoter and first intron.

Transforming growth factor beta and basic fibroblast growth factor are multipotential factors found in bone and cartilage that may be involved in both the proliferation and differentiation of chondrocytes. It was previously reported that TGF-beta plus FGF caused a modulation of chondrocyte phenotype that included the down-regulation of steady-state level of the collagen II transcript. In this report, the results of nuclear run-off data indicate that repression of transcript initiation from the collagen II gene is the primary mechanism involved in the growth factor induced inhibition. Transient transfection assays with CAT expression vectors containing portions of the collagen II gene show that the TGF-beta/FGF induced transrepression requires a region in the first intron previously reported to have transcriptional enhancer activity and to bind chondrocyte nuclear proteins. In addition, silencer elements in the promoter also appear to play a role. Protein data as well as transient transfection experiments indicate that the activation of protein kinase C is necessary for the growth factor-induced down-regulation of collagen II expression. These studies suggest that a cascade initiating with PKC activation is responsible for modifying transcription factors that interact with regulatory sequences in the collagen II gene. A detailed understanding of the factors involved in cartilage-specific gene regulation in chondrocytes would facilitate development of therapeutic protocols for the repair of degenerated cartilage in diseases such as osteoarthritis.

Animals↗

Assembly of cartilage collagen fibrils is disrupted by overexpression of normal type II collagen in transgenic mice.

Cartilage collagen fibrils, which are characterized by their thin, uniform diameters, are formed of a multicomponent system of three collagen types (II, IX, and XI) and interacting proteoglycans. We have used a genetic approach to test whether the proper assembly of this multiprotein structure was altered by overexpression of one of its normal components. Here we show that in transgenic mice in which the normal mouse alpha 1(II) collagen is overexpressed, thick abnormal collagen fibrils are generated. Mice that showed the highest expression of the transgene also displayed a larger proportion of abnormal fibrils and died at birth. We propose that an imbalance among the constituents of the cartilage collagen fibrils disrupts the mechanism that controls their assembly. The results show the applicability of the transgenic mice system to studies of complex multicomponent protein assemblies in intact animals.

Animals↗

Reduced amounts of cartilage collagen fibrils and growth plate anomalies in transgenic mice harboring a glycine-to-cysteine mutation in the mouse type II procollagen alpha 1-chain gene.

We have generated transgenic mice harboring a glycine-to-cysteine mutation in residue 85 of the triple helical domain of mouse type II collagen. The offspring of different founders displayed a phenotype of severe chondrodysplasia characterized by short limbs and trunk, cranio-facial deformities, and cleft palate. The affected pups died of acute respiratory distress caused by an inability to inflate lungs at birth. Staining of the skeleton showed a severe retardation of growth for practically all bones. Light microscopic examination indicated a decrease in cartilage matrix density, a severe disorganization of growth plate architecture, and the presence of streaks of fibrillar material in the cartilage matrix. Electron microscopic analysis showed a pronounced decrease in the number of typical thin cartilage collagen fibrils, distension of the rough endoplasmic reticulum of chondrocytes, and the presence of abnormally large banded collagen fibril bundles. The level of expression of the mutant type II procollagen alpha 1 chain transgene in cartilage tissues was approximately equal to that of the endogenous gene in two of the strains. We propose that the principal consequence of the mutation is a considerable reduction in density of the typical thin cartilage collagen fibrils and that this phenomenon causes the severe disorganization of the growth plate. We also postulate that the abnormal thick collagen fibrils are probably related to a defect in crosslinking between the collagen molecules. The cartilage anomalies displayed by these transgenic mice are remarkably similar to those of certain human chondrodysplasias.

Animals↗

Heterozygous mutation in the G+5 position of intron 33 of the pro-alpha 2(I) gene (COL1A2) that causes aberrant RNA splicing and lethal osteogenesis imperfecta. Use of carbodiimide methods that decrease the extent of DNA sequencing necessary to define an unusual mutation.

Cultured skin fibroblasts from a proband with osteogenesis imperfecta were found to synthesize normal and shortened alpha 2(I) chains of type I procollagen. A cDNA library was prepared using mRNA isolated from the proband's fibroblasts. Partial nucleotide sequencing of five clones demonstrated that two clones lacked the 54 base pairs (bp) of coding sequences found in exon 33 of the pro-alpha 2(I) gene (COL1A2). To reduce the amount of nucleotide sequencing required, heteroduplexes were prepared from two of the clones, one normal and the other lacking exon 33, and reacted with a water-soluble carbodiimide under conditions in which nonbase-paired G and T nucleotides are specifically modified by the reagent. Analysis of the heteroduplexes by immunoelectron microscopy suggested that the sequence variation near the codons of exon 33 was the only sequence difference in the cDNA clones. Amplification of cDNA from the proband by polymerase chain reaction gave products of two sizes, one of the expected size for the normal sequence and the other of the expected size for a product lacking the 54 bp in exon 33. To define the mutation in genomic DNA, a 1.6-kilobase region spanning exons 32 and 34 was amplified by the polymerase chain reaction and DNA heteroduplexes were prepared from the products. The heteroduplexes were treated with a water-soluble carbodiimide and then used as templates for primer extension under conditions in which extension terminates at the site of a carbodiimide-modified base. The results suggested a mismatch near the exon-intron boundary of exon 33 and a second mismatch near the 3' end of intron 33. Nucleotide sequencing of the polymerase chain reaction products revealed a single-base substitution in one allele that changed the moderately conserved G at position +5 of the 5' splice site of intron 33 to an A. In addition, there was an apparently neutral single-base substitution that placed both a G and T at position +661 of intron 33. The results provide only the third example of a mutation in the G at the +5 position of an intron that causes aberrant RNA splicing. Also, the results demonstrate that use of techniques involving carbodiimide modification of DNA heteroduplexes can reduce the amount of nucleotide sequencing necessary to define mutations in large and complex genes.

Adult↗

Atelosteogenesis type III: a distinct skeletal dysplasia with features overlapping atelosteogenesis and oto-palato-digital syndrome type II.

We present 5 cases of a short-limb dwarfism syndrome whose manifestations overlap those of atelosteogenesis and oto-palato-digital syndrome Type II. Clinical, radiographic, genetic, and histologic data are presented which demonstrate differences between our patients and previously reported cases of these other conditions. We conclude that the disorder seen in these children represents a distinct chondrodysplasia for which we propose the name atelosteogenesis Type III.

Bone and Bones↗

Comparative effects of retinoic acid and jervine on chondrocyte differentiation.

Jervine and retinoic acid are both teratogenic to structures which are initially modelled in cartilage. Differences in periods of maximal sensitivity, as well as in certain aspects of the morphological manifestations of exposure, indicate that these two teratogens act via different molecular mechanisms. Here we compare the effects of jervine and retinoic acid in three culture systems which represent sequential stages of the chondrocyte lineage. Proliferation of pluripotent C3H 10T 1/2 cells was decreased by exposure to jervine but was not affected by retinoic acid. Differentiation of high-density "spot" cultures of embryonic limb bud mesenchyme were sensitive to both compounds. Mature chondrocytes were resistant to jervine but "dedifferentiated" after 48-hour exposure to retinoic acid. We conclude that jervine compromises rapidly dividing chondrogenic precursors, whereas retinoic acid has little effect prior to the expression of cartilage-specific proteins.

Animals↗

Identification of a phenotype-specific enhancer in the first intron of the rat collagen II gene.

The regulation of the collagen II gene was investigated by transfecting plasmids containing potential regulatory sequences of this gene coupled to the gene for chloramphenicol acetyltransferase (CAT) into various cells. The 5' flanking region of this gene functioned as a weak promoter when transfected into chicken chondrocytes or fibroblasts. Inclusion of an 800-base fragment from the first intron, however, increased transcription of CAT approximately 18-fold in chicken chondrocytes and in differentiating limb bud cells but not in fibroblasts, myoblasts, muscle-derived fibroblasts, or teratocarcinoma cells. Furthermore, this fragment was active when placed either upstream or downstream of the CAT gene and when present in either orientation. The activity of this enhancer was examined in relation to differentiation by using "micromass" culture of limb bud mesenchyme cells undergoing chondrogenesis. In this system, no response to the enhancer was observed in undifferentiated limb bud mesenchyme cells. Following differentiation into chondrocytes, a 13-fold enhancer effect was observed in these cells. Finally, all-trans-retinoic acid, a known teratogen, dramatically suppressed enhancer activity in chondrocytes and differentiating limb bud mesenchyme cells. These results suggest that the collagen II gene contains an enhancer element in the first intron that is involved in cell-specific expression.

Animals↗

Association of amyoplasia with gastroschisis, bowel atresia, and defects of the muscular layer of the trunk.

We reviewed 225 cases of amyoplasia, and the association of amyoplasia with gastroschisis and with monozygotic twinning was confirmed. In addition, an apparently increased association of bowel atresia and defects in the muscular layer of the trunk wall with amyoplasia was observed. The association of amyoplasia, monozygotic twinning, and these trunk wall defects strongly suggests that the pathogenesis of amyoplasia is linked to some type of vascular compromise.

Abdominal Muscles↗

Independence of cell shape and loss of cartilage matrix production during retinoic acid treatment of cultured chondrocytes.

Retinoic acid has been shown to cause chondrocytes in culture to flatten and to inhibit the synthesis of cartilage specific components. Since the biochemical expression of chondrocytes is considered to be dependent on cell shape, it has been proposed that retinoic acid acts on these cells primarily by causing a change in cell morphology. This hypothesis was tested by culturing chick sternal chondrocytes suspended in methyl cellulose, which prevents cell flattening. Cultures were labeled with [35S]methionine and differentiation was assessed by polyacrylamide gel electrophoresis. The results showed that retinoic acid-treated chondrocytes in suspension remained rounded but synthesized proteins characteristic of flattened or dedifferentiated chondrocytes. Chondrocytes exposed to retinoic acid in suspension became fibroblastic when placed in monolayer culture in the absence of retinoic acid. This effect was irreversible after 2 weeks of culture. These results suggest that retinoic acid has a direct molecular or biochemical effect on the chondrocyte and that the cell shape change is secondary.

Animals↗