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Christian Gloeckner

Publications and source records attributed to Christian Gloeckner.

3 recordsLinked to original sources

New branched DNA constructs.

The Watson-Crick base pairing of DNA is an advantageous phenomenon that can be exploited when using DNA as a scaffold for directed self-organization of nanometer-sized objects. Several reports have appeared in the literature that describe the generation of branched DNA (bDNA) with variable numbers of arms that self-assembles into predesigned architectures. These bDNA units are generated by using cleverly designed rigid crossover DNA molecules. Alternatively, bDNA can be generated by using synthetic branch points derived from either nucleoside or non-nucleoside building blocks. Branched DNA has scarcely been explored for use in nanotechnology or from self-assembling perspectives. Herein, we wish to report our results for the synthesis, characterization, and assembling properties of asymmetrical bDNA molecules that are able to generate linear and circular bDNA constructs. Our strategy for the generation of bDNA is based on a branching point that makes use of a novel protecting-group strategy. The bDNA units were generated by means of automated DNA synthesis methods and were used to generate novel objects by employing chemical and biological techniques. The entities generated might be useful building blocks for DNA-based nanobiotechnology.

Automation↗

Association of the metabolic syndrome with early coronary disease in families with frequent myocardial infarction.

This study examined the extent to which the metabolic syndrome (MS) augments the risk for major cardiovascular events in healthy patients with a strong genetic background for coronary artery disease (CAD). In a prospective cohort study, we examined 1,316 patients without previously diagnosed CAD or diabetes mellitus. Patients were participants of the Regensburg Myocardial Infarction Family Study, in which > or = 2 family members had severe CAD and 1 had myocardial infarction (MI) at < 60 years of age. During a 2-year follow-up, the incidence of first cardiovascular events (MI, revascularization, and cardiac death) was compared between those with and without the MS at baseline. In all previously unaffected family members, the presence of MS increased the hazard ratio for first manifestation of CAD by a factor of 1.9 (p = 0.030), which resulted in an event rate of 7.1% during follow-up. Specifically in young patients (< or = 50 years old, n = 422), we identified the MS as a major event predictor that conferred a 5.8-fold increased relative risk for first cardiovascular events compared with patients without the MS (95% confidence interval 1.4 to 23.8, p = 0.015, event rate 6.2%). Remarkably, of the individual MS components, obesity was strongly associated with incident MI (relative risk 4.4, 95% confidence interval 1.5 to 13.0, p = 0.007). Thus, the MS strongly predicts cardiac morbidity and mortality in healthy patients with a family background of CAD.

Adult↗

Genome-wide transcriptional responses to a lipid hydroperoxide: adaptation occurs without induction of oxidant defenses.

Free radicals can initiate the oxidation of polyunsaturated fatty acids in cells through the process of lipid peroxidation. The genome-wide transcriptional changes in Saccharomyces cerevisiae after treatment with the toxic lipid peroxidation product linoleic acid hydroperoxide (LoaOOH) were identified. High-dose treatment led to a switch in transcription from biosynthetic to protective functions. This response encompassed a set of genes stimulated predominantly by LoaOOH, and not by other oxidants or heat shock, which contained components of the pleiotropic drug resistance system. The dose dependence of the transcriptional response revealed that large and widespread changes occur only in response to higher doses. Pretreatment of cells with sublethal doses of LoaOOH induces resistance to an otherwise lethal dose through the process of adaptation. Adaptive doses elicited a more subtle transcriptional response affecting metabolic functions, including an increase in the capacity for detoxification and downregulation of the rate of protein synthesis. Surprisingly, the cellular response to adaptive doses did not include induction of oxidative-stress defense enzymes nor of transcripts involved in general cellular defense systems.

Fungal Proteins↗