PubMed HealthSearch

Biomedical subjects

J W Gordon

Publications and source records attributed to J W Gordon.

At least 19 recordsLinked to original sources

Arylamine N-acetyltransferase in human red blood cells.

N-Acetyltransferase activities associated with erythrocytes from 20 individuals have been determined with p-aminobenzoic acid as substrate. A three-fold variation in Vmax is found. The N-acetyltransferase genotype of the individuals has been determined and there is no correlation between the extent of acetylation measured in the individuals' erythrocytes and the inheritance of alleles at the polymorphic NAT locus. Folate is confirmed to be an inhibitor of arylamine N-acetyltransferase activity measured in erythrocytes. The content of folate in erythrocytes of individuals also varies. The individual with the maximum folate content has the minimum N-acetyltransferase activity. The monomorphic N-acetyltransferase gene from individuals spanning the range of N-acetyltransferase activity have been amplified, using the polymerase chain reaction. The pattern of restriction enzyme digestion of the monomorphic N-acetyltransferase gene with a series of eight restriction enzymes is the same for individuals spanning the activity range of arylamine N-acetyltransferase in their erythrocytes.

4-Aminobenzoic Acid

Molecular cloning, sequencing and restriction mapping of the genomic sequence encoding human proacrosin.

In the present study, molecular cloning, sequencing and restriction mapping of the genomic sequence encoding human proacrosin is described. The full-length cDNA encoding human proacrosin was utilized to recover a 17-kb human genomic clone which was sequenced without further subcloning. The nucleotide sequences of the exons agree with the sequence of the cDNA reported previously. More than 500 bases of the promoter region were sequenced and found to be highly GC rich but devoid of an identifiable TATA box. These findings are generally consistent with a recently published report [Keime, S., Adham, I. M. & Engel, W. (1990) Eur. J. Biochem. 190, 195-200]. However, further sequence analysis revealed discrepancies between our clone and that previously reported. Sequencing of the first intron showed similarity with the published data for 54 bases of the 5' region, beginning with the donor splice site, and for 114 bases at the 3' end. However, 500 bases sequenced distal to the initial 54 bases at the 5' end of intron 1 showed no similarity with the published sequence. In addition, the boundaries of intron 3 differed such that a cytosine residue previously reported to be in exon 3 was found to be the first base of exon 4. Detailed studies were undertaken to confirm that our clone constitutes the authentic sequence of human proacrosin. Cloning and characterization of the human proacrosin gene may allow for informative studies of its regulation, and for a more detailed examination of its role in fertilization.

Acrosin

Transgenic mice with a rhodopsin mutation (Pro23His): a mouse model of autosomal dominant retinitis pigmentosa.

We inserted into the germline of mice either a mutant or wild-type allele from a patient with retinitis pigmentosa and a missense mutation (P23H) in the rhodopsin gene. All three lines of transgenic mice with the mutant allele developed photoreceptor degeneration; the one with the least severe retinal photoreceptor degeneration had the lowest transgene expression, which was one-sixth the level of endogenous murine rod opsin. Of two lines of mice with the wild-type allele, one expressed approximately equal amounts of transgenic and murine opsin and maintained normal retinal function and structure. The other expressed approximately 5 times more transgenic than murine opsin and developed a retinal degeneration similar to that found in mice carrying a mutant allele, presumably due to the overexpression of this protein. Our findings help to establish the pathogenicity of mutant human P23H rod opsin and suggest that overexpression of wild-type human rod opsin leads to a remarkably similar photoreceptor degeneration.

Animals

An intact zona pellucida is not necessary for successful mouse embryo cryopreservation.

OBJECTIVE: To determine the developmental potential of mouse embryos that underwent cryopreservation after micromanipulation of the zona pellucida. DESIGN: Gaps were produced in the zona pellucida of mouse oocytes or two-cell embryos by zona drilling with acid Tyrode's solution. Zona-drilled oocytes were fertilized in vitro and cultured to the two-cell stage. Two-cell embryos were frozen, thawed, and cultured to the expanded blastocyst stage. RESULTS: There was no difference in the rate of embryo survival post-thaw (248/318, 77% versus 288/345, 83.4%), or in the rate of development to the expanded blastocyst stage (91/248, 36.7% versus 88/288, 30.6%), between embryos that were zona drilled as oocytes and unmanipulated controls. Similarly, there was no difference in the rate of cryosurvival (206/217, 94.9% versus 168/187, 89.8%) or development to the blastocyst stage (154/206, 74.7% versus 132/168, 78.6%) between embryos that were fertilized in vivo and zona drilled at the two-cell stage and embryos that were unmanipulated. CONCLUSIONS: These findings indicate that small gaps in the zona pellucida, such as those that result from micromanipulation, do not significantly alter the ability of embryos to withstand cryopreservation.

Animals

A self-reactive T cell population that is not subject to negative selection.

In male mice expressing a transgenic alpha beta TCR which recognizes a male antigen (HY), T cells which do not express normal levels of CD8 escape thymic deletion and appear in the periphery. These consist of two distinct populations, one which lacks expression of both CD4 and CD8, and one with low levels of CD8. Neither population has anti-HY reactivity, consistent with the known requirement of this TCR for CD8. We now describe the consequences of expression of both the anti-HY TCR transgene and a constitutive CD8.1 transgene on T cells of male mice. Peripheral T cells in these male 'double transgenic' mice express both the anti-HY TCR and normal levels of CD8, and can proliferate to male antigen in vitro. These cells do not express the endogenous allele of CD8 (CD8.2), suggesting that the increase in CD8 levels due to the CD8.1 transgene leads to the deletion of the CD8.2low population. In contrast, the CD8.1 transgene does not lead to the deletion of the CD8.2- population. This implies that, unlike the majority of alpha beta T cells, TCR+CD4-CD8- cells in TCR transgenic mice are not subject to deletion.

Animals

Overexpression of the N-ras proto-oncogene, not somatic mutational activation, associated with malignant tumors in transgenic mice.

We have produced transgenic mice that carry a foreign gene construct consisting of the N-ras proto-oncogene driven by the mouse mammary tumor virus (MMTV) long terminal repeat. Overexpression of the normal N-ras gene is associated with development of hyperplasias and tumors in a variety of tissues. The tumors are clearly malignant, as evidenced by the presence of metastatic lesions. Extensive analysis of the foreign ras gene in these tumors by use of polymerase chain reaction and sequencing demonstrates in all cases the absence of somatically acquired mutations at those codons normally associated with activation of the ras genes. Thus, these tumors develop from overexpression of the proto-oncogene rather than the presence of the mutated oncogene. These data demonstrate that overexpression of a protooncogene of the ras family can predispose cells in vivo to fully malignant behavior.

Animals

Amyloid plaques, neurofibrillary tangles and neuronal loss in brains of transgenic mice overexpressing a C-terminal fragment of human amyloid precursor protein.

Alzheimer's disease (AD) affects more than 30% of people over 80 years of age. The aetiology and pathogenesis of this progressive dementia is poorly understood, but symptomatic disease is associated histopathologically with amyloid plaques, neurofibrillary tangles and neuronal loss primarily in the temporal lobe and neocortex of the brain. The core of the extracellular plaque is a derivative of the amyloid precursor protein (APP), referred to as beta/A4, and contains the amino-acid residues 29-42 that are normally embedded in the membrane-spanning region of the precursor. The cellular source of APP and the relationship of its deposition to the neuropathology of AD is unknown. To investigate the relationship between APP overexpression and amyloidogenesis, we have developed a vector to drive expression specifically in neurons of a C-terminal fragment of APP that contains the beta/A4 region, and have used a transgenic mouse system to insert and express this construct. We report here that overexpression of this APP transgene in neurons is sufficient to produce extracellular dense-core amyloid plaques, neurofibrillary tangles and neuronal degeneration similar to that in the AD brain.

Alzheimer Disease

Drug metabolising N-acetyltransferase activity in human cell lines.

Many arylamine and hydrazine drugs and xenobiotics are acetylated by N-acetyltransferase (NAT), a cytosolic enzymic activity which has a wide tissue distribution. Humans can be classified as either fast or slow acetylators on the basis of their ability to metabolise isoniazid or sulphamethazine. These are termed polymorphic substrates. The acetylation of other compounds does not vary amongst individuals, e.g., p-aminobenzoic acid, and are termed monomorphic substrates. NAT from human hepatic and non-hepatic tissues, viz., (i) liver, (ii) the hepatoma cell line HepG2, (iii) tonsil lymphocytes and (iv) the monocytic cell line U937 have been compared with respect to substrate specificity towards polymorphic and monomorphic substrates. The chromatographic and centrifugation behaviour of NAT from these sources has also been investigated. NAT from liver shows 2-fold greater activity towards sulphamethazine than towards p-aminobenzoic acid as substrate. All other cell types tested show at least 70-fold greater activity with p-aminobenzoic as substrate compared to sulphamethazine. NAT from HepG2 cells, U937 cells and tonsil lymphocytes migrates as a single peak during ion-exchange chromatography, whereas the liver NAT activity is separated into two peaks. NAT in HepG2 cells resembles extra-hepatic tissue NAT rather than NAT in liver. HepG2 cells do not therefore represent a good in vitro model for investigation of human metabolism of arylamines or hydrazines. The molecular weight of NAT from U937 cells has been determined by a combination of sucrose density gradient centrifugation and gel filtration to be 31,600 +/- 1200 daltons.

Arylamine N-Acetyltransferase

Isolation and analysis of the mouse genomic sequence encoding Cu(2+)-Zn2+ superoxide dismutase.

Cu(2+)-Zn2+ superoxide dismutase (SOD-1) is a ubiquitously synthesized eukaryotic enzyme with a variety of important roles in mammalian development and physiology. With the goal of better understanding the structure and regulation of this gene, we have cloned and analyzed the genomic structure of the mouse SOD-1 gene. The murine sequence has an intron:exon organization very similar to that of the human gene, though significant diversion was observed in the promoter and 3' regions. These differences account for the observation that only a single transcript for SOD-1 is seen in mouse cells, while two transcripts are derived from the human gene. The cloning of mouse SOD-1 should allow elucidation of the regulatory characteristics of this element, as well as new and informative genetic engineering experiments.

Amino Acid Sequence

Thymic selection in CD8 transgenic mice supports an instructive model for commitment to a CD4 or CD8 lineage.

Immature thymocytes, which coexpress CD4 and CD8, give rise to mature CD4+CD8- and CD4-CD8+ T cells. Only those T cells that recognize self-MHC are selected to mature, a process known as positive selection. The specificity of the T cell antigen receptor (TCR) for class I or class II MHC influences the commitment to a CD4 or CD8 lineage. This may occur by a directed mechanism or by stochastic commitment followed by a selection step that allows only CD8+, class I-specific and CD4+, class II-specific cells to survive. We have generated a mouse line expressing a CD8 transgene under the control of the T cell-specific CD2 regulatory sequences. Although constitutive CD8 expression does not affect thymic selection of CD4+ cells, selection of a class I-specific TCR in the CD8 subset is substantially improved. This outcome is consistent with a model for positive selection in which selection occurs at a developmental stage in which both CD4 and CD8 are expressed, and positive selection by class I MHC generates an instructive signal that directs differentiation to a CD8 lineage.

Animals

Transgenic animals: a new era in developmental biology and medicine.

In the relatively short period since its development, the technique for the production of transgenic animals by pronuclear microinjection, as established by Gordon et al. (1980), has resulted in studies that have clearly had a profound effect on our basic understanding of mammalian development and genetics, and upon our outlook for genetic engineering. The question now is: What remains to be done? Clearly, a greater understanding of the mechanism of integration could lead to more efficient transfer of genes and lessen the problem of rearrangement of host DNA. A better characterization of enhancers and their mode(s) of action would allow design of molecules with highly specific patterns of gene expression, as well as novel distributions of expression. When these goals are met, it may well become scientifically feasible to transfer genes into the human germline. Whether such an undertaking is advisable or even desirable is an issue requiring open discussion, but it is an issue that is clearly distinct from the question of technical feasibility. The most rational approach to this profound question lies in the continued pursuit of knowledge relating to transgenic technology, rather than self-imposed ignorance. Even if never used as a medical therapy, transfer of genes into the germline will reveal what is certainly one of nature's greatest secrets: the nature of the interaction of genes in the development of a multicellular eukaryotic organism. Through the contributions to this volume and in the years ahead, we will find ourselves in a position to unravel the details of the awesome and fascinating phenomenon that is mammalian development.

Animals

Micromanipulation of embryos and germ cells: an approach to gene therapy?

Recent advances in mammalian gamete and embryo micromanipulation have stimulated the scientific and medical communities, and to some degree the public at large, to become aware that treatment of genetic disease by direct alteration of the genetic code may soon be possible. Because these micromanipulation techniques result in modification of the genotype at the earliest stages of development, such "gene therapy" affects not only the conceptus itself but also its germ cells. Thus such genetic modifications are heritable and can be transmitted indefinitely to succeeding generations of progeny. In the presentation, both narrow and broad definitions of gene therapy will be considered with respect to the techniques upon which they are based, their potential for treatment of genetic disease, and their current feasibility.

Animals

Analysis of the hotfoot (ho) locus by creation of an insertional mutation in a transgenic mouse.

Hotfoot (ho) mutation is a recessive trait in mice, characterized by motor disorder and male sterility, that maps to chromosome 6. We have identified a transgenic mouse pedigree with a similar trait. Using genetic and molecular approaches, we have demonstrated that the foreign DNA element is located in or near the ho locus. This new allele, designated hoJwg and presumably created by insertional mutagenesis, should make it possible to clone the ho gene. Male infertility in hoJwg male homozygotes was determined to be due to inability of sperm to penetrate the zona pellucida. This was demonstrated by rescuing mutant males by a new technique of gamete micromanipulation, zona pellucida drilling. These findings show that zona drilling is useful both for analysis and preservation of animals with reduced male fertility.

Animals