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Characterization of cholyl-leu-val-phe-phe-ala-OH as an inhibitor of amyloid beta-peptide polymerization.

Cholyl-LVFFA-OH (1, PPI-368) is an organic-modified peptide based on the sequence of amyloid beta-peptide (A beta). It is a potent and selective inhibitor of A beta polymerization that blocks the formation of neurotoxic species of A beta. In a nucleation-dependent polymerization assay of 50 microM A beta(1-40), equimolar concentrations of PPI-368 block polymerization based on turbidity and electron microscopy. Monomeric A beta(1-40) and A beta(1-42) are non-toxic when incubated with neuronal cell lines, but become toxic during polymerization. PPI-368 coordinately delays the onset of polymerization and the formation of neurotoxic A beta species for both peptides. In a polymerization extension assay seeded with pre-formed A beta polymer, similar inhibition and dose-dependency phenomena are observed with PPI-368. Radiolabeled PPI-368 is incorporated into fibrils during polymerization demonstrating binding to A beta peptide within afibrillar structure. Gel-filtration studies show progressive disappearance of A beta monomer and concomitant appearance of soluble higher molecular weight oligomers. In the presence of submolar concentrations of PPI-368, monomeric A beta is still present and oligomers are not observed PPI-368 does not inhibit the polymerization of other amyloidogenic proteins such as transthyretin (TTR) or islet amyloid polypeptide (IAPP(20-29).

Alzheimer Disease↗

Measurement of linear polymerization contraction using digital laser interferometry.

Polymerization shrinkage is an unavoidable consequence of resin composite photopolymerization and is one of the most important factors in determining the clinical quality and durability of composite filling. Many different methods of measuring polymerization shrinkage are described in the literature. Digital laser interferometry is a method that enables direct observation of polymerization shrinkage in real time. This study used the digital holographic interferometry method to measure the linear polymerization contraction of composite materials: Tetric Ceram (Vivadent), Spectrum TPH (Dentsply) and Valux Plus (3M Dental Products) polymerized with three different curing modes of the Elipar Trilight (ESPE) halogen curing unit. The highest polymerization contraction was recorded by "standard mode" (ETS) (1.24 +/- 2.66% lin), and the lowest by "medium mode" (ETM) (0.40 +/- 0.41% lin) during 40 second illumination. The "exponentional mode" (ETE) showed the highest expansion during the first 10 seconds of illumination. Curing units with initial low intensity enable better inner adaptation of composite material, preventing the detachment of material from dentin during polymerization and avoiding the negative consequences of polymerization shrinkage.

Composite Resins↗

Glycosylated and nonglycosylated recombinant human granulocyte colony-stimulating factor differently modifies actin polymerization in neutrophils.

AIM: Several neutrophil functions can be modified by rhG-CSF administration. Neutrophil morphology changes in the course of treatment with Filgrastim (nonglycosylated rhG-CSF), along with impairment of chemotaxis. Both morphology and chemotaxis are not affected by treatment with Lenograstim (glycosylated rhG-CSF). Thus, we evaluated actin polymerization in neutrophils induced by treatment with the two forms of rhG-CSF. In fact, actin polymerization is crucial for neutrophil motility. MATERIALS AND METHODS: We evaluated twelve healthy subjects undergoing peripheral blood stem cells (PBSC) mobilization for allogeneic transplantation to HLA-identical siblings. Neutrophils were isolated by peripheral venous blood before and after administration of either Filgrastim (six PBSC donors) or Lenograstim (six PBSC donors). Actin polymerization was investigated by a flow cytometric assay, using FITC-phalloidin as a specific probe for F-actin, and two parameters were measured: spontaneous actin polymerization in resting neutrophils; fMLP-stimulated actin polymerization. Results were expressed as relative F-actin content. Fifteen blood donors were studied as a control group. RESULTS: Filgrastim administration induced an increased relative F-actin content in resting neutrophils; however, no further actin polymerization was observed after fMLP stimulation. Neutrophils from subjects treated with Lenograstim showed a normal behaviour in terms of both spontaneous and stimulated actin polymerization. CONCLUSIONS: Glycosylated and nonglycosylated rhG-CSF differently affect actin polymerization in newly generated neutrophils. Such effects may explain some previous findings concerning both morphology and chemotactic properties and may be due to different effects of the two forms of rhG-CSF on proteins involved in neutrophil motility regulation.

Actins↗

The relationship between polymerization of complement component C9 and membrane channel formation.

C9 was studied with the objective to clarify the relationship between the process of C9 polymerization and membrane channel formation. Conditions that favor C9 polymerization include low ionic strength and calcium ion in the buffer. Moreover, polymerization is dependent on the concentration of C9. Calcium ion evokes about a threefold increase in the affinity constant for C9 self-association, and at 0 degrees C it imparts reversible amphiphilic properties in the molecule. These were discerned by measuring increases in the degree of reversible nonspecific binding of C9 to hydrophobic (tyramine-zymosan) and hydrophilic (arginyl-glutamyl-zymosan) supports as well as to erythrocytes. At 0 degrees C the hydrophilic-to-amphiphilic alteration of C9 is reversible, but upon incubation at 37 degrees C this transition is rendered permanent with the formation of poly(C9). A functional relationship between C9 polymerization and cytolysis was demonstrated by showing that polymerizing C9 can lyse reduced and alkylated erythrocytes. By studying comparative radiolabeling of tyrosine side chains within thrombin-nicked C9 and its polymerized form, it was demonstrated that upon polymerization the membrane-binding site of C9 becomes exposed. It is concluded that the process of circular polymerization of C9 causes a hydrophilic-to-amphiphilic transition that is required for membrane perforation and channel formation.

Animals↗

Significance of natural polymerized albumin and its receptor in hepatitis B infection of hepatocytes.

Lack of information regarding the presence of native albumin polymer in serum and its structural similarity to the one produced by glutaraldehyde treatment casts doubt on the postulate that hepatitis B virus attachment to hepatocytes is mediated through polymerized albumin. We used a sandwich enzyme-linked immunosorbent assay with murine monoclonal antibodies raised against glutaraldehyde-polymerized albumin to detect native albumin polymer in human serum and its cross-reactivity with other albumin polymers. Presence of polymerized albumin receptor on the HepG2 cell was studied by radioreceptor assay. Purified hepatitis B virus and synthetic peptide analogous to part of pre-S2 sequence (120-145) were used to study polymerized albumin-dependent attachment of the virus to HepG2 cells. Antibodies raised against pre-S2 peptide were used to inhibit the pre-S2 and hepatitis B virus attachment to HepG2 cells. Glutaraldehyde-treated polymerized albumin was found to be immunologically cross-reactive with native albumin polymer. Its levels were found to be significantly raised in sera of patients with liver diseases. Polymerized albumin has specific saturable receptor on HepG2 cells with two classes of binding sites of different equilibrium dissociation constant (Kd1 = (16 +/- 9.6)pmol/L and Kd2 = (1,019 +/- 172)pmol/L. Albumin monomer was unable to compete for the polymerized albumin receptor sites on HepG2 cells. Anti-pre-S2 antibodies inhibit hepatitis B virus and pre-S2 binding to hepatocyte by 40% and 70%, respectively. Added extraneous polymerized albumin and the antibody against it did not interfere with virus attachment to HepG2 cells.

Cross Reactions↗

Polymerization of binary mixtures of hemoglobin S and carbamylated hemoglobin S.

To study the mode of interaction between hemoglobin (Hb) S and carbamylated Hb S, the kinetics of polymerization of various mixtures of deoxy-Hb S and NH2 termini carbamylated Hb S in concentrated phosphate buffer was determined. These mixtures were found to polymerize with a clear demonstration of a delay time as does each hemoglobin in its pure form. Both the delay and the polymerization times were prolonged as the fraction of carbamylated Hb S was increased. Electrophoretic analysis of the polymer fraction showed that the amount of carbamylated Hb S increased linearly in the polymer phase with increases in the fraction of carbamylated Hb S in the starting mixture. The ratio of Hb S to carbamylated Hb S in the polymer phase was slightly higher than that in the initial solution mixture, suggesting that Hb S polymerizes more easily than carbamylated Hb S. To examine the role of hybrid hemoglobin in the binary mixtures of carbamylated Hb S and Hb S, we compared the rate of polymerization under which hybrid formation may be prevented or allowed to take place. It was found that the rate of polymerization for the mixtures of carbamylated Hb S and Hb S mixed in the oxy state did not differ from that mixed in the deoxy state. In addition, polymerization occurred even when the critical concentration of each component in the mixture was lower than that of either pure Hb S or pure carbamylated Hb S. These results suggest that all hemoglobin species can participate in the nucleation and polymerization steps of mixtures of carbamylated Hb S and Hb S.

Amino Acid Sequence↗

A new protein factor that modulates both microtubule assembly and actin polymerization.

A 94,000-dalton protein that has been shown to modulate microtubule assembly in a Mg2+- or Ca2+-dependent manner (Nishida & Sakai (1980) J. Biochem. 88, 1577-1586) was here shown to inhibit actin polymerization. The protein factor inhibited the rate and the extent of actin polymerization under nearly physiological conditions (for example, in 3 mM MgCl2 plus 90 mM KCl at pH 6.8). The inhibitory effect was dependent on divalent cation concentration; the lower the Mg2+ concentration was, the weaker the inhibitory effect. The inhibition was stoichiometric; addition of the protein factor caused a linear decrease in the extent of actin polymerization as measured by the viscosity increase, and under optimal conditions for inhibition about an equimolar amount of the protein factor was sufficient to inhibit the actin polymerization completely. Furthermore, inclusion of the protein factor increased the critical concentration of actin required for polymerization by a concentration nearly equivalent to that of the added factor. These results suggest the formation of a 1 : 1 complex between actin and the protein factor, which does not polymerize at all. Another assay for actin polymerization, pelleting of actin filaments by ultracentrifugation, confirmed the inhibitory effect of the protein factor. In addition to the inhibitory effect on polymerization, the protein factor had the ability to depolymerize actin filaments. We have temporarily called this protein factor PI factor. It may play an important role in cell structure and function through its interactions with actin and microtubules.

Actins↗

Role of gamma 87 Gln in the inhibition of hemoglobin S polymerization by hemoglobin F.

Previous studies suggested that gamma 87 Gln in hemoglobin (Hb) F is an important site for promoting inhibition of Hb S (alpha 2 beta 2(6 Glu-->Val) polymerization by Hb F. We engineered and isolated the double mutant (Hb alpha 2 beta 2(6 Glu-->Val,87 Thr-->Gln) using a yeast expression system and characterized polymerization properties of this modified tetramer in an effort to clarify the role of Gln at position 87 in inhibiting Hb S polymerization. Electrophoretic mobility and absorption spectra of this double mutant were the same as that of Hb S, while oxygen affinity was higher, and effects of organic phosphates on oxygen affinity were reduced. The deoxy form of the double mutant showed a characteristic delay time prior to polymerization in vitro. The critical concentration for polymerization of the double mutant was about 1.5 times higher than Hb S, and delay and polymerization times were much longer than Hb S at the same hemoglobin concentrations. The logarithmic plot of delay time versus hemoglobin concentration for the double mutant showed a straight line that was intermediate between lines for AS and FS mixtures. These results and those of kinetics of polymerization of Hb S/double mutant mixtures indicate that substitution of Gln for Thr at beta 87 in Hb S prolongs delay time and inhibits polymerization, although the double mutant forms polymers like Hb S.

Amino Acid Sequence↗

Polymerization of recombinant hemoglobin F gamma E6V and hemoglobin F gamma E6V, gamma Q87T alone, and in mixtures with hemoglobin S.

To further understand determinants for Hemoglobin (Hb) S polymerization, as well as the inhibitory mechanism of Hb F on Hb S polymerization, Hb F variants containing Val-gamma 6 (Hb F gamma E6V) or Val-gamma 6, Thr-gamma 87 (Hb F gamma E6V, gamma Q87T) were expressed in yeast. The oxy form of Hb F gamma E6V was about 10-fold less stable to mechanical agitation than native oxy Hb F, which is similar to stability differences comparing oxy Hb S and oxy Hb A. Deoxy Hb F gamma E6V showed approximately 20-fold decreased solubility compared with native deoxy Hb F in high phosphate buffer and formed gels like deoxy Hb S in low phosphate buffer, indicating that the Val-gamma 6 substitution decreases solubility of Hb F like Val-beta 6 in deoxy Hb S. Oversaturated deoxy Hb F gamma E6V polymerized without a delay time in low and high phosphate buffers, in contrast to deoxy Hb S, which is accompanied by a distinct delay time before polymerization. Deoxy Hb F gamma E6V, gamma Q87T also polymerized without a delay time like deoxy Hb F gamma E6V. These results suggest that deoxy Hb F gamma E6V gamma Q87T polymers are different from those of deoxy Hb S, and that contact sites differ from those of deoxy Hb S, even though both have the same primary donor (A3) and acceptor sites in the EF helix. These results also suggest that other amino acids in addition to beta 6 Val and amino acids in the F helix are critical for nucleation-controlled polymerization of deoxy Hb S. 1:1 mixtures of deoxy Hb S and either Hb F variant polymerized with a delay time when the concentrations for the Hb S/Hb F gamma E6V and Hb S/Hb F gamma E6V, gamma Q87T mixtures were about 2- and 1.5-fold, respectively, higher than that for Hb S. Logarithmic plots of delay time versus concentration for Hb S/Hb F gamma E6V mixtures showed the same straight line as the line for Hb S/Hb S beta T87Q mixtures, but values for Hb S/Hb F gamma E6V, gamma Q87T mixtures were intermediate between those for Hb S and Hb S/Hb F gamma E6V mixtures. A 1:1 mixture of deoxy Hb A and Hb F gamma E6V, gamma Q87T also polymerized, but exhibited biphasic kinetics, when the concentration was increased to more than 3.5-fold higher than that required for Hb S polymer formation. These results suggest that Gin-gamma 87 is a critical amino acid for exclusion of FS hybrids (alpha 2 beta S gamma) from nuclei formation with Hb S. Our findings also show that Val-gamma 6 in hybrids that form in mixtures of the Hb F variants with either Hb S or Hb A interacts with the hydrophobic acceptor pocket on the EF helix of an adjacent tetramer containing Thr-beta 87.

Base Sequence↗

Free radicals and side products released during methylmethacrylate polymerization are cytotoxic for osteoblastic cells.

Polymerization of orthopedic cements makes use of a peroxide initiator which is decomposed by an accelerator to provide free radicals. Free radicals which act on the monomer molecules are also known to induce cell lesions and cell death. We used an in vitro model of cement polymerization to study the effects of free radicals release on osteoblast-like cells. Initiation of methylmethacrylate was done with benzoyl peroxide and acceleration by N,N-dimethylaniline. Bulk polymerization was done in calibrated test tubes which were left aging until use. Polymers (aged from J1 to J31 days after completion of the polymerization process) were sawed to produce slices. Slices were rinsed in distilled water and free radical release was measured by spectrophotometric titration with p-iodonitrotetrazolium. Saos-2 osteoblast-like cells were cultured in parallel on the slices. Cells appeared to be round and were altered when grown on slices prepared freshly after polymerization. Cytomorphometric analysis of the cell shape (surface area and form-factor polyethylene confirmed that they spread and flatten on slices prepared a long time after polymerization. Free radical release from polymethylmethacrylate cements is a long-lasting event that can induce bone cells alterations in their neighborhood. Two cytotoxic mechanisms were evidenced: (a) polymer slices released a stable toxic component which could be removed by extensive washing; (b) they released free radicals which were still detectable several days after the end of polymerization. The titration curve was a negative exponential.

Cell Line↗

Dexamethasone alters rapidly actin polymerization dynamics in human endometrial cells: evidence for nongenomic actions involving cAMP turnover.

Glucocorticoids, in addition to their well characterized effects on the genome, may affect cell function in a manner not involving genomic pathways. The mechanisms by which the latter is achieved are not yet clear. A possible means for this action may involve the actin cytoskeleton, since the dynamic equilibrium of actin polymerization changes rapidly following exposure to several stimuli, including hormones. The aim of the present work was to find out if glucocorticoids exert rapid, nongenomic effects on actin polymerization in Ishikawa human endometrial cells, which represent a well characterized in vitro cell model expressing functional glucocorticoid receptors. Short term exposure of the cells to the synthetic glucocorticoid dexamethasone resulted in an overall decrease of the G/total-actin ratio in a time- and dose-dependent manner. Specifically, in untreated Ishikawa cells the G/total-actin ratio was 0.48 +/- 0.01 (n = 26). It became 0.35 +/- 0.01 (n = 13, P < 0.01) following exposure to 10(-7) M dexamethasone for 15 min. This was induced by a significant decrease of the cellular G-actin level, without affecting the total actin content, indicating a rapid actin polymerization. This conclusion was fully confirmed by direct fluorimetry measurements, that showed a significant increase of the F-actin content by 44% (n = 6, P < 0.001) in cells treated with dexamethasone (10(-7)M, 15 min). The rapid dexamethasone-induced alterations of the state of actin polymerization were further supported by fluorescence microscopy. The latter studies showed that the microfilaments of cells pretreated with 10(-7)M dexamethasone for 15 min were more resistant to various concentrations of the antimicrofilament drug cytochalasin B, compared to untreated cells, implying microfilament stabilization. The action of dexamethasone on actin polymerization seems to be mediated via specific glucocorticoid binding sites, since the addition of the glucocorticoid antagonist RU486 completely abolished its effect. Moreover, it appears to act via non-transcriptional pathways, since actinomycin D did not block the dexamethasone-induced actin polymerization. In addition, cell treatment with 10(-7)M dexamethasone for 15 min fully reversed the forskolin-, but not the 8-bromo-cAMP-induced actin depolymerization. In line with these findings, the cAMP content of Ishikawa cells was decreased by 29.2% after a 15 min treatment with 10(-7)M dexamethasone (n = 4, P < 0.01). In conclusion, our results showed that dexamethasone induces rapid, time-, and dose-dependent changes in actin polymerization dynamics in Ishikawa cells. This action seems to be mediated via cAMP, involving probably nongenomic pathways. The above findings offer new perspectives for the understanding of the early cellular responses to glucocorticoids.

Actin Cytoskeleton↗

Stereocontrol in radical polymerization.

The stereospecific radical polymerization of vinyl esters, methacrylates, and alpha-substituted acrylates was studied. Fluoroalcohols, as a solvent, have remarkable effects on the stereoregularity of the radical polymerizations of vinyl acetate, vinyl pivalate, and vinyl benzoate, affording polymers rich in syndiotacticity, heterotacticity, and isotacticity, respectively. This method was successfully applied to the polymerization of methacrylates to give syndiotactic polymers. The steric repulsion between the entering monomer and the chain-end monomeric unit bound by the solvent through hydrogen bonding is important for the stereochemical control in these systems. Lewis acid catalysts, such as lanthanide trifluoromethanesulfonates and zinc salts, were also effective for the stereocontrol during the radical polymerization of methyl methacrylate, to reduce the syndiotacticity and alpha-(alkoxymethyl)acrylates to synthesize isotactic and syndiotactic polymers. Radical polymerization of the methacrylates bearing a bulky ester group, such as the triphenylmethyl methacrylate derivatives, gave highly isotactic polymers, as in the case of anionic polymerization. In addition, the control of one-handed helical conformation was attained in the radical polymerization of 1-phenyldibenzosuberyl methacrylate using chiral neomenthanethiol or cobalt(II) complexes as an additive.

Journal Article↗

A natural compound (reuterin) produced by Lactobacillus reuteri for hemoglobin polymerization as a blood substitute.

Stroma-free hemoglobin (Hb) has been modified by pyridoxylation and followed by polymerization with glutaraldehyde as a blood substitute. Nevertheless, the reaction rate of pyridoxylated Hb (PLP-Hb) with glutaraldehyde is too fast to control its molecular weight distribution. Additionally, it was reported that glutaraldehyde is cytotoxic even at low doses. To overcome these problems, another aldehyde, beta-hydroxypropionaldehyde (beta-HPA), was used in the study to polymerize hemoglobin (PLP-Hb). beta-HPA is a natural compound (reuterin) produced by Lactobacillus reuteri. It was found that the maximum degree of PLP-Hb polymerization by reuterin (RR-PLP-Hb) was approximately 40% if the formation of high molecular (> 500 kDa) polymers should be prevented. In contrast, at the same reaction condition, the glutaraldehyde-polymerized PLP-Hb solution became gel-like, due to overpolymerization. This indicated that the rate of PLP-Hb polymerization by reuterin was significantly slower than that by glutaraldehyde. With increasing the reaction temperature, PLP-Hb concentration, or reuterin-to-PLP-Hb molar ratio, the time to reach the maximum degree of PLP-Hb polymerization by reuterin became significantly shorter. Removal of unpolymerized PLP-Hb from the RR-PLP-Hb solution can be effectively achieved by a gel-filtration column. The P(50) value of the unmodified Hb solution was 14 torr, while that of the RR-PLP-Hb solution was 20 torr, an indication of lower oxygen affinity. Additionally, the oxygen-Hb dissociation curves for both test solutions had a sigmodial shape and a nearly 100% saturation at 100 torr. In the in vivo study, it was found that the animals treated with the RR-PLP-Hb solution all survived and remained healthy more than 3 months. In contrast, only one out of six rats survived for the control group treated with the unmodified Hb solution. Furthermore, it was found that the RR-PLP-Hb solution resulted in a significantly longer circulation time ( approximately 12 h) than the unmodified Hb solution ( approximately 1.5 h). These results suggest that the reuterin-polymerized PLP-Hb solution may be a new option in the development of blood substitutes.

Aldehydes↗

Study on isohexenylnaphthazarins polymerization in alkaline media.

The chiral pair alkannin and shikonin (A/S) and their isohexenylnaphthazarin (IHN) esters, which are naturally occurring hydroxynaphthoquinones (HNQ), are potent pharmaceutical substances with a wide spectrum of biological activity. The stability of A/S and their derivatives during process and storage is crucial to their use as drugs, cosmetics and food additives. The influence of alkaline media and of IHN esters hydrolysis was experimentally investigated on IHN polymerization by size exclusion chromatography (SEC). It was proved that during IHN esters hydrolysis, polymeric A/S and IHN are formed. An optimization of the hydrolysis conditions of IHN esters was also approached in terms of polymerization. Hydrolysis of IHN from a pure mixture of pigments proved preferable to that of preliminary root extracts by means of IHN polymerization, even for analytical determination; non-polar solvents are proposed for the extraction of IHN from roots, followed by hydrolysis, aiming to minimize the polymeric IHN and A/S formed. It was also proved that polymerization of IHN in alkaline media and during hydrolysis of IHN esters proceeds through the intermediate formation of semiquinones; after acidification, coupling of semiquinones with phenoxyl radicals results in polymeric IHN structures.

Boraginaceae↗

Effect of fragmin on actin polymerization: evidence for enhancement of nucleation and capping of the barbed end.

As reported previously, fragmin isolated from Physarum plasmodia restricts the polymerization of actin to produce short F-actin filaments in the presence of Ca2+ ions. Here it is shown that when actin is polymerized at low concentrations of salts, fragmin increases the critical concentration of actin for polymerization. This effect of fragmin on the critical concentration is independent of the molar ratio of fragmin to actin. The addition of actin monomers onto heavy meromyosin-decorated F-actin fragments treated with fragmin occurs unidirectionally at the pointed end of each fragment. These results suggest that fragmin binds to the barbed ends of F-actin filaments and inhibits association and dissociation of actin monomers at this end. Fragmin accelerates the initial stage of polymerization of actin. When a constant amount of G-actin is polymerized in the presence of small amounts of fragmin, the inverse of the half-polymerization time increases in proportion to the square root of the amount of fragmin added. This means that fragmin acts as a potent promoter of the nucleation step in actin polymerization. Both functions of fragmin--promotion of nucleation and capping at the barbed end of F-actin--require micromolar concentrations of Ca2+.

Actins↗

Stringent thiol-mediated retention in B lymphocytes and Xenopus oocytes correlates with inefficient IgM polymerization.

Thiol-dependent retention mechanisms involving the microsecond chain Cys575 ensure that only polymeric IgM are secreted. B lymphocytes are unable to polymerize IgM and degrade unpolymerized precursors intracellularly. Since several non-lymphoid transfectants secrete hexameric IgM, specific mechanism(s) inhibiting IgM polymerization/secretion may be active in B cells. Here, we show that Xenopus laevis oocytes are also unable to polymerize IgM and retain this isotype via Cys575 as efficiently as B cells. The mechanisms and the hierarchy of the thiol-dependent pre-Golgi retention are conserved in amphibian oocytes, as indicated by the efficient retention of secretory IgA and the slow secretion of unassembled J558 lambda chains. We also show that B cells do not lack any structural component necessary to polymerize IgM: after retention has been weakened by 2-mercaptoethanol, polymerization can occur if oxidizing conditions are restored. Since release from retention can result in polymerization, stringent retention in B cells and oocytes might be at the basis of their common inability to polymerize secretory IgM. Our findings suggest that disulfide interchange reactions in the exocytic compartment can be modulated during B cell differentiation to control IgM secretion.

Animals↗

Hemagglutination and immunofluorescence studies on polymerized human serum albumin binding activity in chronic hepatitis B virus infection.

The binding activity of polymerized human serum albumin was determined in 202 HBsAg carriers. The presence of polymerized human serum albumin receptor sites was tested by hemagglutination and differentiated from antihuman albumin antibodies by immunofluorescence, isolation of IgG and IgM fractions and testing of HBsAg anti-HBs immune complexes. A granular pattern with anti-HBs was specific for polymerized human serum albumin receptor sites as demonstrated with purified HBsAg. In addition, a linear pattern with fluoresceinated antihuman immunoglobulins might suggest the presence of antihuman albumin antibodies (which was generally due to an IgG antibody). However, a granular pattern with fluoresceinated antihuman immunoglobulins may indicate the presence of HBsAg anti-HBs immune complexes. A weak linear pattern was also observed simultaneously in these cases, probably due to IgM antihuman albumin antibodies or an antipolymerized human serum albumin receptor site antibody. Of 202 HBsAg-positive patients, 71 showed polymerized human serum albumin receptor sites activity. The highest percentage of polymerized human serum albumin receptor sites was found among patients showing HBeAg and hepatitis B virus DNA polymerase positivity (96%), followed by HBeAg positivity and hepatitis B virus DNA polymerase negativity (48%), and anti-HBe positivity and hepatitis B virus DNA polymerase negativity (17%). In addition, a significant correlation between polymerized human serum albumin titers and hepatitis B virus DNA polymerase was found (r = 0.573, p less than 0.01). However, at similar HBeAg titer, patients who were positive for hepatitis B virus DNA polymerase had a higher polymerized human serum albumin receptor sites titer than those who were negative for hepatitis B virus DNA polymerase.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent↗

A method to protect sensitive molecules from a light-induced polymerizing environment.

Systems that can be polymerized in situ upon exposure to light radiation may have significant applications in tissue engineering and drug delivery. However, the light-induced polymerization step, which is the requisite for this technology, could be potentially deleterious to sensitive bioactive agents (e.g., enzymes, cytokines, matrix metalloproteinases) being entrapped. In this study, a method to protect sensitive molecules from a light-induced polymerizing environment is proposed. This method is based on the idea that nonaccessible substances cannot interact with the polymerizing species. To examine this concept, two model enzymes-namely, horseradish peroxidase and alpha-glucosidase-were protected by gelatin-based wet granulation and incorporated within a cured polyethylene glycol dimethacrylate, a photocurable monomer, under different conditions. Unprotected enzymes were used as controls. Enzymes were then allowed to diffuse out of the polymerized matrices. The activity and total enzyme recovered from these matrices by passive diffusion were compared to ascertain the extent of activity retention. Matrix assisted laser desorption ionization mass spectrometry combined with time of flight mass spectrometry (MALDI-TOF) was used to determine changes in enzyme molecular weight. During the first 24 h of diffusion from the polymerized matrices, unprotected enzymes consistently showed a loss of activity ranging from 10-66%, depending on the matrix composition and enzyme properties. In contrast, protected enzymes retained over 94% of their activity irrespective of the experimental setting. The loss of activity appears to be a direct consequence of the polymerizing environment.

Acrylates↗