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Joshua A Bornhorst

Publications and source records attributed to Joshua A Bornhorst.

4 recordsLinked to original sources

Comparison of sample preservation methods for clinical trace element analysis by inductively coupled plasma mass spectrometry.

The effects of chemical additives and storage temperatures on measurement of 16 trace elements in urine by inductively coupled plasma mass spectrometry (ICP-MS) were evaluated. A 24-hour urine specimen was supplemented with concentrations of the elements. Aliquots containing 1 of 4 chemical additives were stored at 3 different temperatures in sealed polypropylene containers. Elemental concentrations were determined by ICP-MS for the resulting samples after 1, 2, 8, and 65 days of storage. Initial element concentrations measured within 8 hours of specimen preparation were consistent with expected concentrations (except for aluminum). For most elements, preservation and storage conditions yielded consistent measured concentrations throughout the experiment. Notable exceptions were for aluminum (general rise over time) and mercury (general decrease over time). Adding boric acid and potassium pyrosulfate resulted in sample contamination; elemental contamination was concentration-dependent for both. Although little microbial contamination was observed during the experiment, refrigeration of samples is recommended to curtail bacterial growth in nonsterile specimens. In light of these results, refrigerated urine storage without the use of chemical additives is an effective preservation method for ICP-MS analysis of many trace elements.

Humans↗

Quantitative analysis of aspartate receptor signaling complex reveals that the homogeneous two-state model is inadequate: development of a heterogeneous two-state model.

The two-state model of receptor activation, in which a receptor population exists in equilibrium between a single on-state and a single off-state, has long been considered a viable model for the signaling behavior of bacterial chemoreceptors. Here, we show that this simple, homogeneous two-state model is adequate for a pure receptor population with just one adaptation state, but fails to account quantitatively for the observed linear relationship between the apparent attractant affinity (K(1/2)) and kinase activity (V(obs)(apo)) as the adaptation state is varied. Further analysis reveals that the available data are instead consistent with a heterogeneous two-state model in which covalent modification of receptor adaptation sites changes the microscopic properties of the on-state or off-state. In such a system, each receptor molecule retains a single on-state and off-state, but covalent adaptation generates a heterogeneous population of receptors exhibiting a range of different on-states or off-states with different microscopic parameters and conformations. It follows that covalent adaptation transforms the receptor from a simple, two-state toggle switch into a variable switch. In order to identify the microscopic parameters most sensitive to covalent adaptation, six modified, two-state models were examined in which covalent adaptation alters a different microscopic parameter. The analysis suggests that covalent adaptation primarily alters the ligand-binding affinity of the receptor off-state (K(D1)). By contrast, models in which covalent adaptation alters the ligand-binding affinity of the receptor on-state, the maximal kinase stimulation of the on-state or off-state, cooperative interactions between receptors, or the assembly of the receptor-kinase signaling complex are inconsistent with the available evidence. Overall, the findings support a heterogeneous two-state model in which modification of the receptor adaptation sites generates a population of receptors with heterogeneous off-states differing in their attractant affinities. In the process of testing the effects of covalent adaptation on the assembly of the receptor-kinase signaling complex, a new method for estimating the stoichiometric ratio of receptor and CheA in the ternary signaling complex was devised. This method suggests that the ratio of receptor dimers to CheA dimers in the assembled complex is 6:1 or less.

Bacterial Proteins↗