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      Dielectrophoretic separation of carbon nanotubes and polystyrene microparticles

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          Magnetic nanoparticles for drug delivery

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            Electrical forces for microscale cell manipulation.

            Electrical forces for manipulating cells at the microscale include electrophoresis and dielectrophoresis. Electrophoretic forces arise from the interaction of a cell's charge and an electric field, whereas dielectrophoresis arises from a cell's polarizability. Both forces can be used to create microsystems that separate cell mixtures into its component cell types or act as electrical "handles" to transport cells or place them in specific locations. This review explores the use of these two forces for microscale cell manipulation. We first examine the forces and electrodes used to create them, then address potential impacts on cell health, followed by examples of devices for both separating cells and handling them.
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              Solid lipid nanoparticles as a drug delivery system for peptides and proteins.

              Solid lipid particulate systems such as solid lipid nanoparticles (SLN), lipid microparticles (LM) and lipospheres have been sought as alternative carriers for therapeutic peptides, proteins and antigens. The research work developed in the area confirms that under optimised conditions they can be produced to incorporate hydrophobic or hydrophilic proteins and seem to fulfil the requirements for an optimum particulate carrier system. Proteins and antigens intended for therapeutic purposes may be incorporated or adsorbed onto SLN, and further administered by parenteral routes or by alternative routes such as oral, nasal and pulmonary. Formulation in SLN confers improved protein stability, avoids proteolytic degradation, as well as sustained release of the incorporated molecules. Important peptides such as cyclosporine A, insulin, calcitonin and somatostatin have been incorporated into solid lipid particles and are currently under investigation. Several local or systemic therapeutic applications may be foreseen, such as immunisation with protein antigens, infectious disease treatment, chronic diseases and cancer therapy.
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                Author and article information

                Journal
                Microfluidics and Nanofluidics
                Microfluid Nanofluid
                Springer Nature
                1613-4982
                1613-4990
                November 2009
                February 17 2009
                November 2009
                : 7
                : 5
                : 633-645
                Article
                10.1007/s10404-009-0419-4
                76f26c61-79e5-43fb-9752-a840a59ada13
                © 2009
                History

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