[Television, printed mass media and their relationship with eating disorders].
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Neuronal cell growth in vitro can be controlled with micropatterned structures of extracellular matrix proteins such as laminin. This technique is a powerful tool for studying neuronal cell function in order to increase experimental reproducibility and to specifically design innovative experimental setups. In this paper the correlation between the structural dimensions of the ECM pattern and the shape of the resulting cellular network is analyzed. The aim of the present study was to position neuronal cell bodies as precisely as possible and to induce directed cell differentiation. PCC7-MzN cells were cultured on laminin patterns. The line width, node size and gap size in-between cell adhesion sites was varied systematically. Micrographs of the samples were taken and statistically analyzed using Student's t-test and linear correlation methods. Precise cell positioning has successfully been performed and evidence for controlled neuronal polarization has been found. With a structure geometry of 4 microm line width, 20 microm node size and 10 microm gap size a nodal compliance of 86% (+/- 10%) has been achieved.
In this article we discuss selected issues related to Medicare's end-stage renal disease (ESRD) managed care demonstration project and Congressional proposals to remove the barrier to ESRD patients enrolling in Medicare managed care plans. We discuss financial incentives to keep patients healthy; beneficiary obligations under fee-for-service and managed care; risk selection by beneficiaries among plans; and the baseline determination of a capitation rate. The ESRD demonstration offers the opportunity to evaluate the consequences of making Medicare managed care options available to a high cost and clinically vulnerable population. Careful evaluation is necessary to ensure that ESRD managed care options are structured to be beneficial to taxpayers, caregivers, and, most importantly, the beneficiaries choosing these options. Certainly, the potential exists for managed care to benefit patients by changing the fractured system in which each provider only has an incentive to worry about its own costs. However, the possible unintended consequences highlighted in this article strongly suggest that the evaluation of the demonstration project be undertaken before managed care options are made widely available outside the demonstration sites. Problems of a more technical nature, such as how to best use available Health Care Financing Administration data in the rate-setting process, are likely to be overcome, but the time and effort necessary to resolve them should not be underestimated.
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Characterization of synthetic polymers by Matrix assisted laser desorption (MALDI) is limited by the solubility of different oligomers in a suitable solvent, and the fingerprint of the mass spectrum is affected by the properties of solvents employed (eg., pH, secondary solvents, evaporation) during sample target preparation. If solvents are not used during sample target preparation, then solvent properties should not play an important role in determining the quality of the MALDI mass spectrum. We report here two solventless approaches for sample target preparation. It was observed that Poly(ethylene glycol) 6000 (PEG) showed the same molecular mass distribution in different modes of sample target preparation. Fluorinated polymer used in these studies was affected by sample target preparation protocol and by target surface. Pyrolysis of PEG oligomers was observed in all the methods of sample target preparation. The desorbed high mass neutral oligomers fragment to give small oligomers which are then cationized by the desolvation of the cationized matrix clusters. Moreover, the origin of the matrix clusters (i.e., formed in the condensed phase or in the gas phase) determines the relative intensities of PEG oligomers cationized by sodium or potassium.
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Patterning techniques that rely on high-resolution elastomeric elements such as stamps, molds, and conformable photomasks are operationally simple methods for nanofabrication that may find applications in areas such as molecular and organic electronics. The resolution of these "soft" lithographic procedures is often limited by the mechanical properties of the elastomers. We introduce here a chemically modified poly(dimethylsiloxane) material that is designed and optimized specifically for soft lithography, particularly in the nanometer regime. We demonstrate its use for nanopatterning tasks that are challenging with the commercially available elastomers that have been used in the past.