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Environmental degradation of polyacrylamides. 1. Effects of artificial environmental conditions: temperature, light, and pH.

A polyacrylamide thickening agent (PATA) was formulated at four concentrations in distilled-deionized water, without and with a glyphosate-surfactant herbicide (GH). Over a 6-week period, these mixtures were exposed to various controlled temperature and light conditions. Acrylamide concentration, ammonium concentration, and pH were measured at weekly intervals to assess the degradation of polyacrylamide and acrylamide. Satellite studies were conducted to examine the effect of altered pH on solutions of PATA (i.e., does pH promote polyacrylamide depolymerization?) and GH binding to amine groups (i.e., protection from degradation). The results of these studies suggest that polyacrylamide can degrade to acrylamide by thermal and photolytic effects, that changes in pH do not promote the depolymerization of polyacrylamide, and that GH does protect polyacrylamide and acrylamide from environmental degradation. Statistically there was no linear correlation between the various parameters measured.

Acrylamide↗

Synthesis of polymeric neoglycoconjugates based on N-substituted polyacrylamides.

Several types of polymeric glycoconjugates, N-substituted polyacrylamides, have been synthesized by the reaction of activated polymers with omega-aminoalkylglycosides: (i) (carbohydrate-spacer)n-polyacrylamide, 'pseudopolysaccharides'; (ii) (carbohydrate-spacer)n-phosphatidylethanolaminem-polyacrylamide, neoglycolipids, derivatives of phosphatidylethanolamine; (iii) (carbohydrate-spacer)n-biotin-polyacrylamide, biotinylated probes; (iv) (carbohydrate-spacer)n-polyacrylamide-(macroporous glass), affinity sorbents based on macroporous glass, covalently coated with polyacrylamide. An almost quantitative yield in the conjunction reaction makes it possible to insert in the conjugate a predetermined quantity of the ligand(s). Pseudopolysaccharides proved to be a suitable form of antigen for activation of polystyrene and poly(vinyl chloride) plates (ELISA) and nitrocellulose membranes (dot blot), being advantageous over traditional neoglycoproteins. Polyvalent glycolipids insert well in biological membranes: their physical properties, particularly solubility, can be changed in a desired direction. Biotinylated derivatives were used as probes for detection and analysis of lectins.

Acrylic Resins↗

Preparation and characterization of a stable polyacrylamide sieving matrix-filled capillary for high-performance capillary electrophoresis.

A stable sieving matrix of polyacrylamide filled in a capillary was developed. The inner wall of a fused-silica capillary was covalently bonded with a linear polyacrylamide through Si-C linkages, in which cross-linked polyacrylamide gel or linear polyacrylamide solution was filled. The stability of the coating was examined by exposure of the capillaries to alkaline buffer (pH 8) for up to 30 days. Compared with the coatings with linear polyacrylamide bonded through siloxane linkages, the present capillary markedly reduced the electroosmotic flow. Thus, the sieving matrix in the capillary was stabilized, resulting in a prolonged lifetime of the capillary and good reproducibility of separations. The migration behaviours of oligonucleotides were compared for the cross-linked gel and linear polyacrylamide solution at the same concentration.

Base Sequence↗

Treatment of pulp and paper mill wastewater by polyacrylamide (PAM) in polymer induced flocculation.

The flocculation performances of nine cationic and anionic polyacrylamides with different molecular weights and different charge densities in the treatment of pulp and paper mill wastewater have been studied. The experiments were carried out in jar tests with the polyacrylamide dosages range of 0.5-15 mg l(-1), rapid mixing at 200 rpm for 2 min, followed by slow mixing at 40 rpm for 15 min and settling time of 30 min. The effectiveness of the polyacrylamides was measured based on the reduction of turbidity, the removal of total suspended solids (TSS) and the reduction of chemical oxygen demand (COD). Cationic polyacrlyamide Organopol 5415 with very high molecular weight and low charge density is found to give the highest flocculation efficiency in the treatment of the paper mill wastewater. It can achieve 95% of turbidity reduction, 98% of TSS removal, 93% of COD reduction and sludge volume index (SVI) of 14 ml g(-1) at the optimum dosage of 5 mg l(-1). SVI values of less than 70 m lg(-1) are found for all polyacrylamide at their respective optimum dosage. Based on the cost evaluation, the use of the polyacrylamides is economically feasible to treat the pulp and paper mill wastewaters. This result suggests that single-polymer system can be used alone in the coagulation-flocculation process due to the efficiency of the polyacrylamide. Sedimentation of the sludge by gravity thickening with settling time of 30 min is possible based on the settling characteristics of the sludge produced by Organopol 5415 that can achieve 91% water recovery and 99% TSS removal after 30 min settling.

Acrylic Resins↗

Polyacrylamide added as a nitrogen source stimulates methanogenesis in consortia from various wastewaters.

Polyacrylamides are widely used as flocculants to enhance clarification of drinking waters and domestic wastewaters, for stabilization of agricultural soils, and to aid in managing mine tailings. The flocs produced with polyacrylamide may be deposited into retention areas that become anaerobic. Although it is unlikely that the carbon backbone of these polymers would be cleaved by microbial activity, the amide group could serve as a nitrogen source for microorganisms. Previous studies have shown that aerobic bacteria utilize the nitrogen from polyacrylamide. This study assessed whether methanogenesis was stimulated when an anionic polyacrylamide (Magnafloc LT27AG) was the sole fixed nitrogen source in serum-bottle microcosms. Microorganisms from two oil sands tailings sources, and a domestic anaerobic sewage sludge were used, with benzoate or acetate provided as carbon and energy sources. In each inoculum-substrate combination, the presence of polyacrylamide-enhanced methane production, indicating that polyacrylamide may stimulate microbial activities in anaerobic environments that are rich in fermentable carbon, but lack nitrogen sources.

Acetates↗

Pulsed-field polyacrylamide gel electrophoresis: basic phenomena and applications.

Pulsed-field gel electrophoresis (PFGE) using polyacrylamide gels, termed pulsed-field polyacrylamide gel electrophoresis (PF-PAGE), had been developed for the effective separation of linear DNAs from circular ones [1]. The first generation PF-PAGE employed horizontal polyacrylamide gels run in a contour-clamped homogeneous electric field (CHEF) apparatus. The second generation system, using a vertical slab gel in a discontinuous buffer system and field inversion gel electrophoresis (FIGE), was found to be easier to handle and requires a much shorter time for separation than the previous one [2]. In this report, basic aspects of the second generation PF-PAGE, such as the effects of a discontinuous buffer system and field inversion on the DNA migration in polyacrylamide gels, were investigated. The results indicate that the periodic inversion of electric field can broaden the resolving capability of polyacrylamide gels, enabling DNAs that otherwise fail to enter polyacrylamide gels to be resolved in such systems. Successful and possible applications of PF-PAGE techniques are also discussed.

Base Sequence↗

Model and field studies of the degradation of cross-linked polyacrylamide gels used during the revegetation of slate waste.

Cross-linked polyacrylamide gels are increasingly being used in environmental restoration schemes and horticulture as a means of enhancing water supply to plants. However, the environmental impact of cross-linked polyacrylamide gel deployment in soil remains poorly understood. This study assessed the chemical, physical and biological properties of new and field-conditioned cross-linked polyacrylamide gels. Both monomeric acrylamide (11 microg l(-1)) and acrylic acid (285 microg l(-1)) were observed in new gel; however, the levels of monomers in field-conditioned gels (1-6 years old) were very low (acrylamide <1 microg l(-1); acrylic acid <7 microg l(-1)). Generally, freeze-thaw processes and exposure to UV radiation had little effect on gel acrylic acid and acrylamide concentrations. However, elevated temperatures (35 degrees C) caused a significant release of up to 144 mug l(-1) of acrylamide and 453 microg l(-1) of acrylic acid in new gel and up to 25 microg l(-1) of acrylamide and 157 microg l(-1) of acrylic acid in field-conditioned gels. In contrast, gel water holding capacity was highly dependent upon environmental conditions (UV exposure and freeze/thaw cycles produced the greatest loss of water holding in new gels) and gel age. Optical microscopy revealed that after placement in the field the gels became increasingly colonised over time by fungi and bacteria. In enrichment cultures, we were unable, however, to demonstrate microbial growth when cross-linked polyacrylamide was used as the sole nitrogen source. In summary, under a range of conditions cross-linked polyacrylamide did not release acrylamide above legally permitted limits, with the exception of gel subjected to elevated temperatures. However, their capacity for holding water decreased sharply within 18 months. We therefore conclude that cross-linked polyacrylamide placed in soil is relatively stable with respect to the production of potentially toxic acrylamide, a species with a short half-life, which degrades to the much less toxic acrylic acid. However, the loss of water holding capacity raises questions about its long-term effectiveness in land restoration schemes as this is the main reason it is used in this role.

Acrylic Resins↗

Enhanced and selective adsorption of mercury ions on chitosan beads grafted with polyacrylamide via surface-initiated atom transfer radical polymerization.

Enhanced and selective removal of mercury ions was achieved with chitosan beads grafted with polyacrylamide (chitosan-g-polyacrylamide) via surface-initiated atom transfer radical polymerization (ATRP). The chitosan-g-polyacrylamide beads were found to have significantly greater adsorption capacities and faster adsorption kinetics for mercury ions than the chitosan beads. At pH 4 and with initial mercury concentrations of 10-200 mg/L, the chitosan-g-polyacrylamide beads can achieve a maximum adsorption capacity of up to 322.6 mg/g (in comparison with 181.8 mg/g for the chitosan beads) and displayed a short adsorption equilibrium time of less than 60 min (compared to more than 15 h for the chitosan beads). Coadsorption experiments with both mercury and lead ions showed that the chitosan-g-polyacrylamide beads had excellent selectivity in the adsorption of mercury ions over lead ions at pH < 6, in contrast to the chitosan beads, which did not show clear selectivity for either of the two metal species. Mechanism study suggested that the enhanced mercury adsorption was due to the many amide groups grafted onto the surfaces of the beads, and the selectivity in mercury adsorption can be attributed to the ability of mercury ions to form covalent bonds with the amide. It was found that adsorbed mercury ions on the chitosan-g-polyacrylamide beads can be effectively desorbed in a perchloric acid solution, and the regenerated beads can be reused almost without any loss of adsorption capacity.

Adsorption↗

[Complication of polyacrylamide hydrogel injection for facial plasty].

OBJECTIVE: To investigate the causes of complications of polyacrylamide hydrogel injection for facial plasty and reliable treatments. METHODS: Eight patients were included in the study. Some of them were examined by MRI. All the patients received surgical treatments. RESULTS: The injected polyacrylamide hydrogel was found in the superficial layer of the superficial temporal fasica, the loose connective tissue below the deep temporal fascia, the subcutaneous tissue or the orbicularis muscle. Polyacrylamide hydrogel injected into the superficial layer of the superficial temporal fascia could spread to the face along the SMAS. Polyacrylamide hydrogel injected into the loose connective tissue below the deep temporal fascia could spread down to the cheek. The patients' symptoms were relieved with the operation. Satisfactory results were obtained. CONCLUSION: Polyacrylamide hydrogel injection does not adapt to facial plasty. The reliability of polyacrylamide hydrogel injection for facial plasty is in doubt.

Acrylic Resins↗

[Treatment of the complications of polyacrylamide hydrogel injection for augmentation mammaplasty].

OBJECTIVE: The purpose of this study was to search for a perfect treatment for the complications after polyacrylamide hydrogel injection for augmentation mammaplasty. METHODS: 48 patients who accepted polyacrylamide hydrogel injection for augmentation mammaplasty were included in this study. Operations were performed for the complications of polyacrylamide hydrogel injection. The clinical data were analyzed and the experience in the treatment of the complications was summarized. RESULTS: All patients were satisfied with the result of the operation. The B-ultrasonic examination showed that no visible polyacrylamide hydrogel remained in the cavity. CONCLUSION: The best therapy for the complications of polyacrylamide hydrogel injection was removing of the polyacrylamide hydrogel and the pathologic tissue and irrigation of the cavity.

Acrylic Resins↗

[Clinical and histological evaluation of the injectable hydrophilic polyacrylamide gel].

OBJECTIVE: To investigate the clinical and histological features of the complications after hydrophilic polyacrylamide gel injection. METHODS: Fifty-two patients were included in this study, who had undergone hydrophilic polyacrylamide gel injection in other units from 1998 to 2003 and later came to our department for removal of the injected gel. The tissue samples taken from each cyst were sectioned and stained with hematoxylin and eosin. The sections were investigated and analyzed under light microcopy. The tissue sections of 12 patients who had ever received liquid silicone injection from 1988 to 1994 were used as the control group. The difference in histological features was assessed. RESULTS: The inflammatory reaction of the hydrophilic polyacrylamide gel was characterized by an increased number of foreign-body giant cells. The mild lymphocyte infiltration was shown in the slides of hydrophilic polyacrylamide gel. On the contrary, there were much more clusters or lymphocyte infiltration in the slides of liquid silicone. The differences between the hydrophilic polyacrylamide gel and liquid silicone were significant in terms of thickness of the fibrous capsule. CONCLUSIONS: The security of hydrophilic polyacrylamide gel injection for soft tissue augmentation is in doubt.

Acrylic Resins↗

Affinity gel electrophoresis of nucleic acids. Specific base- and shape-selective separation of DNA and RNA on polyacrylamide-nucleobase conjugated gel.

Two types of affinity gels consisting of cross-linked polyacrylamide and affinity ligands possessing nucleic acid bases were prepared. One type of gel was polyacrylamide-poly(vinylnucleobase) conjugated gel, where the poly(vinylnucleobase) such as poly(9-vinyladenine) (PVAd) bearing a nucleobase in the side-chain was entrapped in the gel matrix. The other type of gel, in which a nucleobase such as adenine is chemically bonded to polyacrylamide gel, was prepared by copolymerization of acrylamide, cross-linker and 9-vinyladenine. These affinity gels, especially the former, demonstrated characteristic nucleobase- and shape-selective separation of nucleic acids. The gels showed high affinity for single-stranded DNA and both single- and double-stranded polynucleotides and could separate a double-stranded DNA in mixtures of double-stranded DNA and polynucleotides. The electrophoretic mobilities of poly(uridylic acid) and poly(inosinic acid) were selectively retarded even in the presence of 7 M urea. The electrophoretic behaviours of nucleic acids on the polyacrylamide-PVAd conjugated gels were compared with those on the agarose-PVAd conjugated gel. The effects of urea, temperature and concentration of PVAd were also examined. The polyacrylamide-PVAd conjugated gel served to elucidate interactions between PVAd and nucleic acids that could not be detected by usual spectroscopic methods.

Acrylic Resins↗

Discontinuous polyacrylamide gel-agarose gel immunoelectrophoresis for analysis of plasma lipoproteins.

A modification of crossed immunoelectrophoresis for the analysis of plasma lipoproteins is described and is called polyacrylamide gel-crossed immunoelectrophoresis. The incorporation of albumin in the first-dimensional gel facilitates the transfer of the larger lipoproteins containing apolipoprotein B from the first-dimensional gel to the second dimension. Furthermore, under this condition the quantitation of total apolipoprotein B by polyacrylamide gel-crossed immunoelectrophoresis is in good agreement with the results obtained by rocket immunoelectrophoresis or nephelometry. The correlation between polyacrylamide gel-crossed immunoelectrophoresis and rocket immunoelectrophoresis is good for total apolipoprotein B (p greater than 0.001) and apolipoprotein A-I (p greater than 0.001). Polyacrylamide gel-crossed immunoelectrophoresis also offers interesting aspects to study the plasma lipoprotein classes and subclasses in different cases: normal plasma, current and complex dyslipoproteinemias in the presence or absence of lipoprotein small a. In a case of dyslipoproteinemia of Fredrickson's Type V polyacrylamide gel-crossed immunoelectrophoresis demonstrates the presence of a small-sized Lp (a) major peak in the low density lipoprotein (LDL) zone and of a large-sized Lp (a) minor peak in the very low density lipoprotein (VLDL) zone.

Electrophoresis↗

Free mobility determination by electrophoresis in polyacrylamide containing agarose at a nonrestrictive concentration.

In the determination of the free mobility, related to the surface net charge, by quantitative gel electrophoresis, the previous arbitrary extrapolation of Ferguson plots from the lowest gel concentrations that give a mechanically stable gel to 0% T has recently been replaced by measurement of mobilities across that concentration range, using the addition of 0.5% agarose to polyacrylamide at the various low concentrations in application to a DNA fragment 155 bp in size (Orbán, L. et al., in preparation). The present study applies that approach to several proteins and DNA fragments smaller than 1300 bp, using 0.4% agarose in polyacrylamide gels of varying concentration. The intercepts of the plots with the mobility axis provide experimental data by which the free mobility in polyacrylamide gel electrophoresis can be estimated for molecules not significantly retarded in their migration at the agarose concentration admixed to polyacrylamide. Across the gel concentration range below 3% T, in the presence of agarose, the Ferguson plots of proteins and DNA fragments are convex. It was shown by mass spectrometry that this convex curvature of the plots in the mixed polymer is not significantly due to low polymerization efficiency in the concentration range of liquid polyacrylamide (below 3%T).

Chemical Phenomena↗

Dispersion coefficients of a protein and DNA fragment in polyacrylamide gel electrophoresis as a function of parameters defining the effective gel pore size and particle size.

The dispersion coefficient, D', of the representative homogeneous protein, conalbumin, decreases linearly as the polyacrylamide concentration increases from 4 to 14%T (2%C), and varies in a biphasic fashion as %C (Bis) is increased from 2 to 20%, with a broad peak between 5 and 15%C. D' increases linearly with the concentration of the initiator, potassium persulfate, in the range of 0.01-0.15%. D' remains constant when the field strength is varied from 5 to 15 V/cm. A DNA fragment (1857 bp) exhibits a constant D' in 4-6% polyacrylamide (2%C) at a field strength of 1 V/cm, and a linearly increasing D' at 5 V/cm, in analogy to its previously observed behavior in agarose gels. In solutions of uncrosslinked polyacrylamide, the decrease of the D' of conalbumin with polymer concentration is not significantly different from that in 2% N, N'-methylenebisacrylamide-crosslinked gels in the range of 4-14%T, while the decrease of mobility with polyacrylamide concentration is much steeper in 2% crosslinked compared to uncrosslinked polymer. Finally, delta (log D')/ delta T was found to be proportional to the retardation coefficient, KR (= -delta (log mu)/ delta T), in polyacrylamide gels. The ratio of -delta (log D')/ delta T over KR increases with field strength in the range of 5-15 V/cm.

Conalbumin↗

Electrophoretic separation of biopolymers in a matrix of polyacrylamide covalently linked to agarose.

A new type of agarose polyacrylamide mixed-bed gel, obtained by simultaneous gelation of a novel type of allyl-activated agarose and its copolymerization with acrylamide, has pore sizes intermediate between those of polyacrylamide and agarose. The process used to activate the agarose chains enables the substitution to be controlled. As indicated by nuclear magnetic resonance (NMR), only one allyl group was inserted per agarose basic unit. Several formulations of mixed-bed gels, containing different percentages of acrylamide, were compared with conventional polyacrylamide or agarose gels. Resolution, migration distance and band sharpness of different molecular mass fragments were evaluated, with two types of gel run side-by-side in a vertical or horizontal system. The faster electrophoretic mobility of DNA in dilute mix-bed gels and the improved separation of the component of high molecular mass (1 to 6 kbp) of the 1 kbp ladder indicate that these matrices have larger porosity than any dilute polyacrylamide formulations. Sodium dodecyl sulfate (SDS)-protein complexes migrate in the mixed gels faster than in polyacrylamide gels of the same %T.

Biopolymers↗

Protein electrophoresis in polyacrylamide gels with templated pores.

An approach is described for the synthesis of nanostructured hydrogels with defined size channels or pores for separations of biological macromolecules. Polyacrylamide gels (15-20% acrylamide) were cast in the presence of high concentrations (5%-28%) of hydrophilic, macromolecular cosolutes either semirigid, rod-like polyelectrolytes (short fragments of DNA or xanthan) or spherical micelles of sodium dodecyl sulfate (SDS). Polyanionic cosolutes were then removed by a combination of diffusion and electrophoresis. These processes are expected to yield gels with 'templated' channels having dimensions near those of the double helical polymers (diameters approximately 2-3 nm, lengths of 50-200 nm) or pores near the size of the spherical SDS micelles (approximately 4-5 nm). This hypothesis was tested by comparing the relative electrophoretic mobilities of proteins (3400 to 43,000 Da) complexed with SDS on templated and conventional gels. Differences in electrophoretic mobilities were observed between all templated gels and control normal gels, demonstrating that the templating process altered the polyacrylamide network. No evidence was found for phase separation of cosolutes from the polyacrylamide network during polymerization. Templated pores are expected to enhance the mobilities of molecules in a particular size range relative to smaller and larger molecules. Gels templated with DNA or xanthan (8-10% final concentration) exhibited little size selectivity, but selectivity was observed for gels templated with SDS varied with polyacrylamide concentration in a manner consistent with the creation of templated pores approximately the size of SDS micelles and larger than the average pore size in a surrounding polyacrylamide network.

Acrylamide↗

Isoelectric focusing in cyclic olefin copolymer microfluidic channels coated by polyacrylamide using a UV photografting method.

As an alternative material to glass or silicon, microfluidic devices made from a cyclic olefin copolymer (COC) were fabricated. This material is of interest because of the relative ease of fabrication, low costs, and solvent resistance. However, as a result of the strong hydrophobic interactions normally present, COC surfaces are not suitable for protein separations. To reduce the protein adsorption and make COC suitable for protein separations, UV-initiated grafting of polyacrylamide was used to coat the surface of COC devices. The change in surface properties caused by different graft times was studied. The surface hydrophilicity and electroosmotic mobility were characterized by contact angle and electroosmosis measurements. Isoelectric focusing was performed to test protein separations in polyacrylamide-coated COC microchannels. A single protein, carbonic anhydrase, was used to analyze the focusing effects and peak capacities in uncoated and polyacrylamide-coated COC devices. Peak capacities ranging from 75 to 190 were achieved with a polyacrylamide-coated surface. A mixture of two proteins, conalbumin labeled with Alexa Fluor 488 and beta-lactoglobulin A labeled with Alexa Fluor 546, was used to test protein separations. Linear and rapid separation of proteins was achieved in the polyacrylamide-coated COC microfluidic device.

Acrylic Resins↗