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Biomedical subjects

J Zuo

Publications and source records attributed to J Zuo.

At least 91 records · Page 5Linked to original sources

Molecular mutagenesis induced by glycidyl methacrylate.

Glycidyl methacrylate (GMA) is a recently recognized mutagen. In order to explore the mutagenicity and mechanism of GMA, plasmid pBR322 was used for in vitro binding, mutant screening, restriction enzyme mapping, and DNA sequencing. To explore the mechanism by which an initial premutational event is converted into a stable heritable mutation, pBR322 and GMA-bound pBR322 were transformed into E. coli HB101, and the following results were obtained: 1) GMA-bound pBR322 induced phenotype changes in competent cells. Two stable and heritable mutants were isolated (ApRTcS and ApSTcR). 2) When restriction enzyme mapping was used to analyze the mutant ApRTcS, four of seven maps showed changes, but no large DNA insertion or deletion were observed. 3) The frequency of deletion and insertion forms counted about 10%. Sequence specificity and hot spot regions were evident in the sequence analysis of mutated plasmid. The above results indicate that the premutagenic lesions of plasmid induced by GMA can be converted into point mutations in vivo.

Amino Acid Sequence↗

Construction of cosmid contigs and high-resolution restriction mapping of the Huntington disease region of human chromosome 4.

The gene responsible for Huntington disease (HD) has been localized to a 2.2 million base pair (Mbp) region between the loci D4S10 and D4S98 on the short arm of human chromosome 4. As part of a strategy originally designed to clone the gene based on its chromosomal location, we and others previously identified overlapping yeast artificial chromosome (YAC) clones covering most of this region. While these YAC clones were useful for initially obtaining long-range clone continuity, a number of features of the YACs indicated that smaller clones are generally more useful in the subsequent steps of the positional cloning strategy. In this paper, we use these YAC clones to generate sets of overlapping cosmid clones covering most of the HD region. We isolated a large number of cosmids by screening a chromosome 4-specific cosmid library with labeled DNA from a minimal overlapping set of YAC clones. These cosmid clones were further analyzed by restriction mapping and hybridization experiments, leading to the assembly of 185 cosmids into eleven contigs covering more than 1.65 Mbp and to a fine-structure restriction map of the region. Nine of these contigs cover 90 percent of the 1.7 Mbp subregion between loci D4S125 and D4S98 where the HD gene is now known to lie. The detailed restriction map and the cosmid clones should facilitate the identification and localization of cDNAs and polymorphic markers, and they provide reagents for large scale DNA sequencing of this region of the human genome. Our results suggest that this strategy should be generally useful for converting YAC clones into cosmid contigs and generating high-resolution restriction maps of genomic regions of interest.

Chromosomes, Fungal↗

Synergistic activation of transcription is mediated by the N-terminal domain of Drosophila fushi tarazu homeoprotein and can occur without DNA binding by the protein.

Synergistic activation of transcription by Drosophila segmentation genes in tissue culture cells provides a model with which to study combinatorial regulation. We examined the synergistic activation of an engrailed-derived promoter by the pair-rule proteins paired (PRD) and fushi tarazu (FTZ). Synergistic activation by PRD requires regions of the homeodomain or adjacent sequences, and that by FTZ requires the first 171 residues. Surprisingly, deletion of the FTZ homeodomain does not reduce the capacity of the protein for synergistic activation, although this mutation abolishes any detectable DNA-binding activity. This finding suggests that FTZ can function through protein-protein interactions with PRD or other components of the homeoprotein transcription complex, adding a new layer of mechanisms that could underlie the functional specificities and combinatorial regulation of homeoproteins.

Animals↗

[Production of transgenic rabbits by micro injection].

The feasibility of using whole animal instead of bioreactor in genetic engineering has been investigated with transgenic domestic rabbits. The gene chosen is the surface gene (S gene) of hepatitis B virus. Two plasmids were specifically constructed for this purpose, pHBV3.0 contains the promoter pre S gene and a part of c gene of the virus; while MT-SA, the S gene and mouse MT promotor. These plasmids were made linear by suitable restriction endonuclease before they were transferred into maleprounclei by means of microinjection. From 757 microinjected and transplanted fertilized eggs 101 rabbits were obtained. 57% of these animals were found with integrated microinjected genes. 28 of the transgenic animals were tested for the presence of the surface antigen of the virus in the serum by ELISA method. 8 animals were found positive, approximately 30% of the tested transgenic animals. The second generation transgenics were obtained either by first generation ransgenics crossed with non-trans-genics or transgenics. Among them 73% contained the transgene and 15% had the surface antigen in the serum. Some experiments were also carried out with human growth hormone gene.

Animals↗

Cloning of the Huntington disease region in yeast artificial chromosomes.

The gene responsible for Huntington disease has been localized to a 2.5 million base pair (Mb) region between the loci D4S10 and D4S168 on the short arm of chromosome 4. As part of a strategy to clone the HD gene on the basis of its chromosomal location, we isolated genomic DNA from the HD region as a set of overlapping yeast artificial chromosome (YAC) clones. Twenty-eight YAC clones were identified by screening human YAC libraries with twelve PCR-based sequence-tagged sites (STSs) from the region. We assembled the YAC clones into overlapping sets by hybridizing them to a large number of DNA probes from the HD region, including the STSs. In addition, we isolated the ends of the human DNA inserts of most of the YAC clones to assist in the construction of the contig. Although almost half of the YACs appear to contain chimeric inserts and several contain internal deletions or other rearrangements, we were able to obtain over 2.2 Mb of the HD region in YACs, including one continuous segment of 2.0 Mb covering the region that most likely contains the HD gene. Ten of the twenty eight YAC clones comprise a minimal set spanning the 2.2 Mb. These clones provide reagents for the complete characterization of this region of the genome and for the eventual isolation of the HD gene.

Base Sequence↗

Recombination of 4p16 DNA markers in an unusual family with Huntington disease.

The Huntington disease (HD) mutation has been localized to human chromosome 4p16, in a 6-Mb region between the D4S10 locus and the 4p telomere. In a report by Robbins et al., a family was identified in which an affected individual failed to inherit three alleles within the 6-Mb region originating from the parental HD chromosome. To explain these results, it was suggested that the HD locus (HD) lies close to the telomere and that a recombination event took place between HD and the most telomeric marker examined, D4S90. As a test of this telomere hypothesis, we examined six members of this family, five of whom are affected with HD, for the segregation of 12 polymorphic markers from 4p16, including D4S169, which lies within 80 kb of the 4p telomere. We separated, in somatic cell hybrids, the chromosomes 4 from each family member, to determine the phase of marker alleles on each chromosome. We excluded nonpaternity by performing DNA fingerprint analyses on all six family members, and we found no evidence for chromosomal rearrangements when we used high-resolution karyotype analysis. We found that two affected siblings, including one of the patients originally described by Robbins et al., inherited alleles from the non-HD chromosome 4 of their affected parents, throughout the 6-Mb region. We found that a third affected sibling, also studied by Robbins et al., inherited alleles from the HD chromosome 4 of the affected parent, throughout the 6-Mb region. Finally, we found that a fourth sibling, who is likely affected with HD, has both a recombination event within the 6-Mb region and an additional recombination event in a more centromeric region of the short arm of chromosome 4. Our results argue against a telomeric location for HD and suggest that the HD mutation in this family is either associated with DNA predisposed to double recombination and/or gene conversion within the 6-Mb region or is in a gene that is outside this region and that is different from that mutated in most other families with HD.

Adult↗

[New mutagen, glycidyl methacrylate (GMA) changed restriction enzyme map of plasmid].

Our present work showed that the mutant TcS ApR of plasmid pBR322 induced by GMA changed restriction enzyme map in the single and double enzyme digestions. Results indicated that the mutant plasmid has lots of mutated sites which are disappeared on some sites and appeared on others in resistance gene region, for example, sites of Bg I, EcoRI, HindIII and HincII, and occurred a new recognition site for HincII (252). The relationship between gene mutation and genotoxicity of GMA was discussed.

Animals↗

Analysis of the phenotype and the restriction enzyme mapping level of mutations induced by the new mutagen glycidyl methacrylate.

Glycidyl methacrylate (GMA) is a recently recognized chemical mutagen. In order to explore the mutagenicity and mutagenic process of GMA, plasmid pBR322 was used for in vitro binding, mutant screening, and restriction enzyme mapping. The binding between GMA and DNA in vitro has been verified by means of a spectrophotometric method. When pBR322 and GMA-bound pBR322 were used to transform Escherichia coli HB101, the following results were obtained: (1) The transformation efficiency of GMA-bound pBR322 was much lower than that of pBR322 alone. (2) GMA-bound pBR322 induced phenotype changes in competent cells (i.e., tetracycline-resistance inactivation or ampicillin-resistance inactivation). There were two mutants of pBR322, ApRTCS and ApSTcR, in the transformants and a deductive mutant ApsTcs in the nontransformants. (3) All of the selected mutants were stable and heritable. (4) When restriction enzyme maps were used to analyze the mutant ApRTcS, four of seven maps were changed, some sites were shifted to other resistant gene regions, for example, sites of Bg/I, EcoRI, HindIII, HincII, etc., and there was a new recognition site for HincII (252). We did not observe any DNA fragment insertion or deletion on any maps. Our results suggest that when GMA is covalently linked to the plasmid DNA, it gives rise to a premutagenic lesion of DNA that is converted in vivo into a point mutation.

Ampicillin Resistance↗

Studies of the genotoxicity of glycidyl methacrylate (GMA).

The following experiments were conducted to evaluate the genotoxic effects of GMA (glycidyl methacrylate) on mammalian and human cells. (1) Using the absorption spectrum shift method in vitro, we observed that the maximums of calf thymus DNA and GMA were shifted toward longer wavelengths (a change of more than 15 nm) and the absorbance decreased after incubation at room temperature for 15 min or more. The result indicates that binding of DNA and GMA had occurred. The binding force is strong, not affected by the addition of concentrated sodium chloride solution, and only slightly decreased by the addition of 8 M urea solution. Therefore the bond between DNA and GMA might be covalent. (2) In cell cultures, unscheduled DNA synthesis (UDS) in human and/or rat lymphocyte was induced and DNA semiconservative replication was inhibited by GMA at concentrations of less than 5.2 mM. (3) Sperm abnormality tests and assays of UDS in germ cells of male mice were conducted to study the in vivo genotoxicity of GMA. The results revealed that GMA could damage DNA, increase sperm abnormality frequency, and reduce the number of sperm cells.

Animals↗