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B Hartenstein

Publications and source records attributed to B Hartenstein.

6 recordsLinked to original sources

Transient neuromotor phenotype in transgenic spastic mice expressing low levels of glycine receptor beta-subunit: an animal model of startle disease.

Startle disease or hereditary hyperekplexia has been shown to result from mutations in the alpha1-subunit gene of the inhibitory glycine receptor (GlyR). In hyperekplexia patients, neuromotor symptoms generally become apparent at birth, improve with age, and often disappear in adulthood. Loss-of-function mutations of GlyR alpha or beta-subunits in mice show rather severe neuromotor phenotypes. Here, we generated mutant mice with a transient neuromotor deficiency by introducing a GlyR beta transgene into the spastic mouse (spa/spa), a recessive mutant carrying a transposon insertion within the GlyR beta-subunit gene. In spa/spa TG456 mice, one of three strains generated with this construct, which expressed very low levels of GlyR beta transgene-dependent mRNA and protein, the spastic phenotype was found to depend upon the transgene copy number. Notably, mice carrying two copies of the transgene showed an age-dependent sensitivity to tremor induction, which peaked at approximately 3-4 weeks postnatally. This closely resembles the development of symptoms in human hyperekplexia patients, where motor coordination significantly improves after adolescence. The spa/spa TG456 line thus may serve as an animal model of human startle disease.

Animals↗

Low level expression of glycine receptor beta subunit transgene is sufficient for phenotype correction in spastic mice.

Mutations in inhibitory glycine receptor (GlyR) subunit genes are associated with neuromotor diseases in man and mouse. To use the potential of the mouse mutants as animal models of human disease, we altered GlyR levels in mutant mice and studied their phenotype. A transgene coding for the beta subunit of the rat GlyR was introduced into the genetic background of the spa mutation, which is characterized by low endogenous expression levels of the beta subunit and a dramatic neuromotor phenotype. The resulting transgenic mice expressed the beta subunit mRNA at intermediate levels, and their phenotype was rescued. This provides formal proof for the casual relationship between GlyR beta gene mutation and motor disease, and indicates that a low level of beta gene expression (25% of normal) is sufficient for proper functioning of glycinergic synapses.

Animals↗

Overexpression of human DNA repair protein N-methylpurine-DNA glycosylase results in the increased removal of N-methylpurines in DNA without a concomitant increase in resistance to alkylating agents in Chinese hamster ovary cells.

N-Alkylpurines induced in DNA by simple monofunctional alkylating agents are known to be cytotoxic and possibly indirectly mutagenic. These adducts are removed by the ubiquitous N-methylpurine-DNA glycosylase (MPG) in a multistep repair pathway. Chinese hamster ovary (CHO) cell clones expressing 2- to 16-fold enhanced levels of MPG activity were isolated from cells stably transfected with human MPG cDNA expression plasmids. The in vivo removal of 3-methyladenine and 7-methylguanine from some of these lines was analyzed and was observed to reflect their MPG levels. These cell lines did not develop increased resistance, as compared to the control, in regards to cytotoxic, mutagenic and sister chromatid exchange inducing effects of the alkylating agents that induce 3-alkyladenine and 7-alkylguanine as the major alkyl adducts in DNA. These results suggest that the MPG activity is not limiting in the multi-step repair pathway of N-alkylpurines in CHO cells.

Alkylating Agents↗

[Effect of local hemostyptics on human gingiva fibroblasts in culture].

Local hemostyptics and materials for filling surgical defects are frequently used by dentists after extractions and in the treatment of cystic cavities. Three of these materials, Kollagen Vlies, Tabotamp Gaze, and Gelita Tampon were studied in cultures of human gingiva fibroblasts for their biological tolerance.

Cells, Cultured↗