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Biomedical subjects

N Wisniewski

Publications and source records attributed to N Wisniewski.

5 recordsLinked to original sources

Decreased analyte transport through implanted membranes: differentiation of biofouling from tissue effects.

Membrane biofouling and tissue changes in the foreign body response are known to cause detrimental reductions of analyte transport into implanted biosensors. The relative contribution of each phenomenon is unknown. Hollow fiber microdialysis probes were employed to assess the effect of subcutaneous implantation on glucose flux through polymeric membranes in rats over 8 days and to differentiate the transport effects of biofouling versus tissue changes. Three commercially available membranes were examined: poly(ether sulfone) (PES), polyacrylonitrile (PAN), and polycarbonate (PC). As measured by glucose recovery (the ratio of microdialysis glucose to blood glucose concentrations), transport through PES membranes was significantly less on day 2 than day 0 (39% decrease, p < 0.05) whereas PAN and PC showed no significant decreases in flux until day 8 (42 and 43%, respectively). Application of a transport model to glucose recovery data obtained before implantation in vivo and after explantation indicated that mass transport resistances originating from biofouling and tissue compartments increased between days 0 and 8. However, on average the biofouling layer adherent to the probe created substantially less resistance to glucose transport (12-24% of total) than did the tissue that surrounded the probe. These results suggested that future material developments for biosensors should be directed at understanding and modifying transport properties of tissues at the implant site.

Animals↗

Water-soluble treatments to enhance glucose permeability of protein-resistant polymer overlayers.

This study employed two water-soluble and nontoxic molecules, sucrose and glycerol, to enhance the permeability of PEG-PHEMA polymer gels coated onto 100 kDa molecular weight cutoff polyethersulfone (PES) microdialysis probes. Sucrose precoating of the probes prior to prepolymer coating prevented penetration of the prepolymer into the microdialysis membrane. Glycerol mixed with the prepolymer introduced porosity in the polymer coating upon curing. The sucrose and glycerol were completely removed by soaking in PBS after curing of the polymer coat on the probe tip. Polymer coated probe glucose permeability was tested by measuring glucose recovery from PBS solutions. Biocompatibility was assessed by measuring glucose recovery of polymer coated probes from heparanized whole porcine blood. Results show that the sucrose and glycerol treatments yielded polymer coated probes with glucose permeability nearly equal to bare probes when tested in PBS solution, but that this increased permeability was not observed when tested in whole blood. This suggests that the thickness of the polymer films (10-100 microm), while not a limiting factor in PBS solution, may have presented a diffusion barrier to glucose recovered from blood. Surprisingly, however, the polymer coated probes exhibited less thrombus formation that did the bare probes after blood exposure.

Animals↗

Methods for reducing biosensor membrane biofouling.

The deleterious effect that biofouling has on sensor stability is a serious impediment to the development of long term implanted biosensors. This paper reviews the surface modification strategies currently employed to minimize membrane biofouling of in vivo sensors. Nine sensor modifications are discussed herein: hydrogels, phospholipid-based biomimicry, flow-based systems, Nafion, surfactants, naturally derived materials, covalent attachments, diamond-like carbons, and topology.

Journal Article↗

Characterization of implantable biosensor membrane biofouling.

The material-tissue interaction that results from sensor implantation is one of the major obstacles in developing viable, long-term implantable biosensors. Strategies useful for the characterization and modification of sensor biocompatibility are widely scattered in the literature, and there are many peripheral studies from which useful information can be gleaned. The current paper reviews strategies suitable for addressing biofouling, one aspect of biosensor biocompatibility. Specifically, this paper addresses the effect of membrane biofouling on sensor sensitivity from the standpoint of glucose transport limitations. Part I discusses the in vivo and in vitro methods used to characterize biofouling and the effects of biofouling on sensor performance, while Part II presents techniques intended to improve biosensor biocompatibility.

Biocompatible Materials↗