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Hemodialysis External procedure 3 sessions of 4 hrs a week Filtration process only Hollow Fiber Dialyzer Blood flows in and is cleaned using the process of diffusion and ultrafiltration. 7/20/2015 1 Biocompatibility in Hemodialysis Significant interaction of blood Activation of humoral enzymatic pathways Activation of white blood cells and platelets Cuprophane membranes Propose a biologically inspired design? 7/20/2015 2 Annu. Rev. Med. 1997. 48:467–76 Copyright © 1997 by Annual Reviews Inc. All rights reserved ACUTE RENAL FAILURE: Role of Dialysis Membrane Biocompatibility Manuel Pascual, MD, Rita D. Swinford, MD,1 and Nina Tolkoff-Rubin, MD The Renal Unit and Transplantation Unit and 1 Pediatric Nephrology Division, Massachusetts General Hospital and Harvard Medical School, Boston, Massachusetts 02114 Hemodialysis Membranes: Interleukins, Biocompatibility, and Middle Molecules WALTER H. HORL Department of Medicine, Division of Nephrology, University of Vienna, Vienna, Austria. 7/20/2015 J Am Soc Nephrol 13: S62–S71, 2002 3 Hydrogels 7/20/2015 4 Definition -water insoluble, three dimensional network of polymeric chains that are crosslinked by chemical or physical bonding; -polymers capable of swelling substantially in aqueous conditions (eg hydrophilic) -polymeric network in which water is dispersed throughout the structure 7/20/2015 5 The Cross-links may be physical or chemical: by reaction of one or more monomers with pendant functional groups hydrogen or ionic bonding, or van der Waals interactions 7/20/2015 _ _ + + _ _ _ _ 6 Hydrogels One or more highly electronegative atoms which results in charge asymmetry favoring hydrogen bonding with water; Because of their hydrophilic nature dry materials absorb water; By definition, water must constitute at least 10% of the total weight (or volume) for a materials to be a hydrogel; When the content of water exceeds 95% of the total weight (or volume), the hydrogel is said to be superabsorbant; 7/20/2015 7 Hydrogels: Swelling Degree of swelling can be quantified by: ratio of sample volume in the swollen state to volume in the dry state weight degree of swelling: ratio of the weight of swollen sample to that of the dry sample 7/20/2015 8 Hydrogels: In a chemically cross-linked hydrogel, all of the polymer chains are connected by covalent bonds to form a network; and, thus Can be viewed as one one molecule of large size or supramacromolecules; The thermodynamically driven swelling force is counterbalanced by the retractive force of the crosslinked structure; The unique property of these gels is there ability to maintain their original shape during and after swelling; Two forces become equal at some point and equilibrium is reached 7/20/2015 9 7/20/2015 10 Xerogels Dried hydrogels Usually clear and swelling in water takes a long time; The swelling behavior is due to slow diffusion of water through the compact polymer chains; A useful property in controlled drug delivery; 7/20/2015 11 Chitosan 7/20/2015 12 Hydrogels: Swelling Why is the degree of swelling important? solute diffusion coefficient through the hydrogel surface properties and surface mobility optical properties (particularly for contact lens applications) mechanical properties 7/20/2015 13 Applications Pharmaceutical applications monomer composition and relative amounts of multipolymer hydrogels can be varied to alter the diffusion characteristic and permeability of the gel containing pharmaceutical agents Methods for drug delivery 7/20/2015 drug gets trapped in the hydrogel during polymerization drug introduced during swelling in water Release occurs by outflow of drug from the gel and inflow of water to the gel 14 Drug delivery 7/20/2015 15 Examples of biological hydrogels: Jello (a collagen gel ~ 97% water) Extracellular matrix components Polysaccharides DNA/RNA Blood clot Mucin - lining the stomach, bronchial tubes, intestines Gycocalyx - lining epithelial cells of blood vessels Sinus secretions 7/20/2015 16 Fibrin Hydrogel (Blood Clot) 7/20/2015 17 Function of a biological hydrogel 7/20/2015 Decreased permeability to large molecules Structural strength (for epithelial cell walls) Capture and clearance of foreign substances Decreased resistance to sliding/gliding High internal viscosity (low washout) 18 Hydrogel Forming Polymers Natural HO2C HO O HO O OH HO poly(hyaluronic acid) NaO2C O NH O O HO O OH n n O poly(sodium alginate) Synthetic O n O n poly(lactic acid) 7/20/2015 O NH poly(N-isopropyl acrylamide) O n poly(ethylene glycol) 19 Hydrogels Highly swollen hydrogels: cellulose derivatives poly(vinyl alcohol) poly(N-vinyl 2-pyrrolidone), PNVP poly(ethylene glycol) Moderately or poorly swollen hydrogels: poly(hydroxyethyl methacrylate), PHEMA and derivatives One may copolymerize a higly hydrophilic monomer with other less hydrophilic monomers to achieve desired swelling properties 7/20/2015 20 Hylauronic Acid 7/20/2015 21 Polyelectrolyte Hydrogels 7/20/2015 22 Polyelectrolyte Multilayers Layer by layer deposition 7/20/2015 23 Alginate gels 7/20/2015 24 Alginate gels 7/20/2015 25 Enzyme Immobilization 7/20/2015 26 Cell Encapsulation 7/20/2015 27 7/20/2015 28 7/20/2015 29 Important features of hydrogels Usually comprised of highly polyionic polymers Often exhibit large volumetric changes eg. Highly compressed in secretory vessicle and expand rapidly and dramatically on release Can undergo volumetric phase transitions in response to ionic concentrations (Ca++, H+), temperature, .. Volume is determined by combination of attractive and repulsive forces: 7/20/2015 repulsive electrostatic, hydrophobic attractive, hydrogen binding, cross-linking 30 Hydrogel Forming Polymers Natural HO2C HO O HO O OH HO poly(hyaluronic acid) NaO2C O NH O O HO O OH n n O poly(sodium alginate) Synthetic O n O n poly(lactic acid) 7/20/2015 O NH poly(N-isopropyl acrylamide) O n poly(ethylene glycol) 31 Poly(methyl methacrylate) 7/20/2015 32 Acrylates 7/20/2015 33 Methacrylates 7/20/2015 34 How biological hydrogels grow •Polymerization/deposition (blood clots) 7/20/2015 35 Preparation of Hydrogels 7/20/2015 Hoffman, A. S. Adv. Drug Deliv. Rev., 2002, 43, 3 36 Applications in Biomaterials and Tissue Engineering Cell Encapsulation Drug delivery Surface modification Enzyme Immobilization Biosensors Lab on a chip 7/20/2015 37 Hydrogels: PHEMA The most widely used hydrogel water content similar to living tissues inert to biological processes shows resistance to degradation permeable to metabolites not absorbed by the body withstands sterilization by heat prepared in various shaped and forms 7/20/2015 38 Hydrogels: Applications Biomedical use due to bio- and blood-compatibility Pharmaceutical use due to hydrophilicity (controlled/sustained drug release) Earliest biomedical application contact lenses good mechanical stability favorable refractive index high oxygen permeability needs hygienic maintenance unable to correct for astigmatism lubricating surface coating used with catheters, drainage tubes and gloves non-toxic 7/20/2015 39 Corning® Ultra Low Attachment Products Unique hydrogel surface inhibits cell attachment 7/20/2015 40 Ocular Drug Delivery 7/20/2015 41 Applications artificial tendon and cartilage wound healing dressings (Vigilon®, Hydron®, Gelperm®) non-antigenic, flexible wound cover permeable to water and metabolites low-strength artificial kidney membranes artificial skin maxillofacial and sexual organ reconstruction materials vocal cord replacement 7/20/2015 42 Applications Pharmaceutical applications monomer composition and relative amounts of multipolymer hydrogels can be varied to alter the diffusion characteristic and permeability of the gel containing pharmaceutical agents Methods for drug delivery 7/20/2015 drug gets trapped in the hydrogel during polymerization drug introduced during swelling in water Release occurs by outflow of drug from the gel and inflow of water to the gel 43 7/20/2015 44 7/20/2015 45 Contact lens PMMA HEMA Fabrication methods 7/20/2015 Computer assisted cutting (lathe)-PMMA rods Spin casting-polymerization Molding-polymerization 46 7/20/2015 47 7/20/2015 48 7/20/2015 49 7/20/2015 50 7/20/2015 51 7/20/2015 52 7/20/2015 53 7/20/2015 54