WO2006058326A2 - Stabilization of antioxidants - Google Patents
Stabilization of antioxidants Download PDFInfo
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- WO2006058326A2 WO2006058326A2 PCT/US2005/043070 US2005043070W WO2006058326A2 WO 2006058326 A2 WO2006058326 A2 WO 2006058326A2 US 2005043070 W US2005043070 W US 2005043070W WO 2006058326 A2 WO2006058326 A2 WO 2006058326A2
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08K—Use of inorganic or non-macromolecular organic substances as compounding ingredients
- C08K5/00—Use of organic ingredients
- C08K5/0008—Organic ingredients according to more than one of the "one dot" groups of C08K5/01 - C08K5/59
- C08K5/005—Stabilisers against oxidation, heat, light, ozone
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- the present invention relates generally to stabilization of antioxidants and particularly to compositions and methods in which at least one antioxidant moiety and at least one UV-absorbing moiety are co-localized to enhance the stability of the antioxidant moiety in an environment in which photooxidation can occur.
- Anatase type TiO 2 absorbs ultraviolet radiation (UV) having energy greater than its optical band gap of 3.2 eV and generates an electron-hole pair.
- UV ultraviolet radiation
- proteins are adsorbed onto TiO 2 via electrostatic interactions. See, for example, Klinger, A.; Steinberg, D.; Kohavi, D.; SeIa, M.N. J. Biomed. Mater.
- glucose oxidase exhibits a five-fold rate enhancement in the reduction of oxygen to hydrogen peroxide.
- Horseradish peroxidase-TiO 2 deposited on an electrode exhibited high rates of electron transfer from the enzyme to the electrode.
- Nicotinamide adenine dinucleotide (NAD + ) has been efficiently reduced to NADH by lipoamide dehydrogenase in the presence of viologen and TiO 2 -UV.
- NAD + Nicotinamide adenine dinucleotide
- Enzyme-TiO 2 -UV systems are also being considered for use in decontamination since the free radicals released by TiO 2 in the presence of UV-light exhibit bactericidal and fungicidal activity. See, Ibanez, J. A.; Litter, M.I.; Pizarro, R. A. J. Photochem. Photobiol. A: Chem. 2003, 157, 81-85 and Wolfram, EJ.; Huang, J.; Blake, D.M.; Maness, P-C, Huang, Z.; Fiest, J. Environ. ScL Technol. 2002, 36, 3412-3419, the disclosures of which are incorporated herein by reference.
- Enzymes such as diisopropylfluorophosphatase and organophosphorous hydrolase degrade active nerve agents. See, for example, Drevon G.F.; Karsten, D.; Federspiel, W.; Stolz, D.B.; Wicks, D. A.; Yu, P.C.; Russell, AJ. Biotechnol. Bioeng. 2002, 79, 785-794 and LeJeune, K.E.; Mesiano, AJ.; Bower, S.B.; Grimsley, J.K.; Wild, J.R.; Russell, AJ. Biotechnol. Bioeng. 1997, 54, 105-114, the disclosures of which are incorporated herein by reference.
- biocatalytic activity can be combined with photocatalytic activity to develop protective coatings against wide range of chemical and biological agents. All these novel applications suffer from the problem of rapid inactivation of proteins and nucleic acids by the hydroxyl and superoxide radicals produced on the surface of photoexcited TiO 2 . See, for example, Hancock-Chen, T.; Scaiano, J. C. J. Photochem. Photobiol. B: Biol. 2000, 57, 193-196 and Warner, W.G.; Yin, J-J.; Wei, R.R. Free Rad. Bio. Chem. 1997, 6, 851-858, the disclosures of which are incorporated herein by reference.
- Covalent modification of enzymes with polymeric stabilizers could protect the enzyme without affecting bulk TiO 2 activity. Indeed, covalent attachment of poly(ethylene glycol) (PEG) chains to proteins imparts steric stabilization against heat, pH and other deteriorating conditions. Poly(ethylene glycol) Chemistry: Biotechnical and Biomedical Applications. Harris, MJ. Ed. Plenum, New York, 1992, the disclosure of which is incorporated herein by reference. In the case of photooxidation, a UV-absorber and/or an antioxidant based polymer could stabilize the enzyme more efficiently than via PEGylation since PEG can be readily oxidized.
- PEG poly(ethylene glycol)
- Chymotrypsin-oligo(HBMA) conjugates (adsorbed on irradiated TiO 2 ) were stabilized because of the ability of HBMA moieties to compete with TiO 2 for the UV light thereby reducing the excitation of TiO 2 in the region of HBMA.
- the modified enzyme deactivated gradually because of the photooxidation of both HBMA and the enzyme by the free radicals. It is interesting to note that HBMA moieties did not absorb free radicals. Thus, the enzyme protection was derived solely from the reduction in the excitation of TiO 2 .
- Antioxidants also sometimes referred to as free radical absorbers
- free radical absorbers sacrificially stabilize materials against free radicals (for example, free radicals generated from photooxidation as a result of exposure to sunlight).
- compositions, systems and methods for stabilization of an antioxidant against photooxidation are provided wherein an antioxidant is localized or co-localized with an ultraviolet-absorber ("UV- absorber").
- UV- absorber ultraviolet-absorber
- the terms "localized” or “co-localized” refer to maintaining the antioxidant and the UV-absorber in relatively close proximity to each other (in volumetric space). The antioxidant and the UV-absorber are maintained in sufficiently close proximity such that a synergistic effect on stability is achieved.
- the UV-absorbing moiety can be maintained in sufficiently close proximity to the antioxidant moiety to enhance the stability of the antioxidant in an environment in which photooxidation can occur. Such localization or co-localization does not occur upon mere physical mixing of antioxidant and UV-absorber.
- the compositions and methods of the present invention thus provide enhanced stability as compared to compositions in which antioxidant and UV-absorber are merely physically mixed.
- the antioxidant can be localized with a UV-absorber within a single molecule (for example, within a single oligomeric or polymer chain).
- the antioxidant and the UV-absorber can, for example, be localized via covalent bonding in a reaction (for example, a copolymerization) of at least one monomer including or incorporating the antioxidant and at least one monomer including or incorporating the UV-absorber.
- Antioxidants and UV-absorbers can also be conjugated to a reactive polymer.
- compositions of the present invention can be mixed into such a composition or attached (via, for example, covalently bonding) to one or more components of the composition.
- the present invention provides a composition including at least one antioxidant moiety and at least one UV-absorbing moiety.
- the antioxidant moiety and the UV-absorbing moiety are maintained in proximity to each other.
- the UV-absorbing moiety and the antioxidant moiety can, for example, be attached to a common entity.
- the antioxidant moiety and the UV-absorbing moiety can, for example, be covalently attached within a single molecule.
- the UV-absorbing moiety can be attached sufficiently closely to the antioxidant moiety to enhance the stability of the antioxidant in an environment in which photooxidation can occur.
- the UV-absorbing moiety is attached to the molecule to be juxtapositioned to the antioxidant moiety.
- the UV-absorbing moiety and the antioxidant moiety can, for example, be attached to a single polymeric chain.
- the polymeric chain can be formed by reaction of at least a first monomer incorporating the UV-absorbing moiety and a second monomer incorporating the antioxidant moiety.
- the polymeric chain can also be formed by reacting a polymeric precursor with a first compound incorporating the UV-absorbing moiety and a second compound incorporating the antioxidant moiety.
- compositions of the present invention can be added to a material to stabilize the material.
- the composition physically mixed with the material or attached to the material, hi one embodiment, a single molecule including the antioxidant moiety and the UV-absorbing moiety is covalently attached to the material.
- the material can be virtually any material, including for example, be a polymeric material, a cosmetic, a sun screen, a protein or an enzyme.
- the enzyme can, for example, be supported on a free radical producing support.
- the support includes at least one species which is a photocatalytic oxidant.
- the enzyme is adsorbed on a particle of titanium dioxide.
- the present invention provides an enzyme having attached thereto at least one group including at least one antioxidant moiety and at least one UV- absorbing moiety, each of which is attached to the group.
- the group is covalently attached to the enzyme.
- the antioxidant moiety and the UV-absorbing moiety can, for example, be covalently attached to the group.
- the UV-absorbing moiety can be attached sufficiently closely to the antioxidant moiety to enhance the stability of the antioxidant in an environment in which photooxidation can occur.
- the UV-absorbing moiety can, for example, be attached to be juxtapositioned to the antioxidant moiety.
- the UV-absorbing moiety and the antioxidant moiety are attached to a single polymeric chain.
- a precursor to the polymeric chain can be formed by reaction of at least a first monomer incorporating the UV-absorbing moiety and a second monomer incorporating the antioxidant moiety.
- a precursor to the polymeric chain can also formed by reacting a polymeric precursor with a first compound incorporating the UV- absorbing moiety and a second compound incorporating the antioxidant moiety.
- the present invention provides a composition including an enzyme supported on a free radical producing support.
- the enzyme has attached thereto at least one group comprising at least one antioxidant moiety and at least one UV-absorbing moiety as described above.
- the support can, for example, include at least one species which is a photocatalytic oxidant.
- the enzyme is adsorbed on a particle of titanium dioxide.
- the present invention provides a composition including at least one antioxidant moiety and at least one UV-absorbing moiety wherein the antioxidant moiety and the UV-absorbing moiety are tethered to be localized.
- the UV-absorbing moiety can be tethered sufficiently closely to the antioxidant moiety to enhance the stability of the antioxidant in an environment in which photooxidation can occur.
- the UV-absorbing moiety can, for example, be tethered to the antioxidant moiety by attachment of the UV-absorbing moiety and the antioxidant moiety to a molecule as described above.
- the UV-absorbing moiety can also, be tethered to the antioxidant moiety by attachment to a common support.
- the present invention provides a method of stabilizing an antioxidant moiety including the step maintaining at least one antioxidant moiety and at least one UV-absorbing moiety sufficiently closely to enhance the stability of the antioxidant moiety in an environment in which photooxidation can occur.
- the at least one antioxidant moiety and at least one UV-absorbing moiety are attached to a common entity to enhance the stability of the antioxidant moiety in an environment in which photooxidation can occur.
- the antioxidant moiety and the UV-absorbing moiety can, for example, be covalently attached to a single molecule.
- the UV-absorbing moiety can be attached to the molecule to be juxtapositioned to the antioxidant moiety.
- the UV-absorbing moiety and the antioxidant moiety are attached to a single polymeric chain.
- the polymeric chain can be formed by reaction of at least a first monomer incorporating the UV-absorbing moiety and a second monomer incorporating the antioxidant moiety.
- the polymeric chain can also be formed by reacting a polymeric precursor with a first compound incorporating the UV-absorbing moiety and a second compound incorporating the antioxidant moiety.
- the present invention provides a method of synthesis of a polymer including antioxidant and UV-absorber including the step of copolymerizing polymerizable antioxidants and polymerizable UV-absorbers.
- the present invention provides a method of synthesis of a polymer including antioxidant and UV-absorber including the step of conjugating antioxidants and UV-absorbers to a reactive polymer.
- the present invention provides a composition including at least one antioxidant moiety and at least one UV-absorbing moiety.
- the antioxidant moiety and the UV-absorbing moiety are covalently attached within a single molecule wherein the UV-absorbing moiety is attached sufficiently closely to the antioxidant moiety to enhance the stability of the antioxidant in an environment in which photooxidation can occur.
- the present invention provides a method of adding an antioxidant to a material including the step of adding to the composition an antioxidant composition including at least one antioxidant moiety and at least one UV-absorbing moiety.
- the antioxidant moiety and the UV-absorbing moiety are covalently attached within a single molecule, wherein the UV-absorbing moiety is attached sufficiently closely to the antioxidant moiety to enhance the stability of the antioxidant in an environment in which photooxidation can occur.
- the antioxidant composition can, for example, be mixed into the material.
- the antioxidant composition can also be attached to a component of the material. In one embodiment, the antioxidant composition is covalently bonded to the component of the material.
- Antioxidants and UV-absorbers can be co-localized in a wide variety of polymers in the present invention.
- various types of vinyl polymer backbones are suitable.
- poly(acrylate)s, poly(methacrylate)s, poly(acrylamide)s, poly(methacrylamide)s, poly(allylic)s and other polymers are also suitable.
- Polymerizable antioxidant and UV-absorbers can, for example, be prepared by conjugation reaction between functional monomers such as 2-hydroethyl methacrylate, 2- amioethyl methacrylate, 3 -aminopropyl methacrylamide, UV absorber and antioxidant.
- chain-end-functionalized co-oligomers of UV-absorber and antioxidant can, for example, be conjugated to high molecular weight reactive polymers such of poly(N- acryloxysuccinimide), poly(N-methacryloyloxysuccinimide), or poly(2-hydroxyethyl methacrylate).
- polymer or “polymeric” refer to a compound or group having multiple repeat units (or monomer units) and includes the term “oligomer,” which is a polymer that has only a few repeat units (for example, dimer, trimer etc.).
- oligomer which is a polymer that has only a few repeat units (for example, dimer, trimer etc.).
- the term polymer also includes copolymers which are polymers including two or more dissimilar repeat units (including terpolymers - comprising three dissimilar repeat units - etc.).
- antioxidants can be used in the present invention.
- various plasma antioxidants such as ascorbic acid, alpha tocopherol, glutathione, and uric acid can, for example, be stabilized.
- antioxidants include, but are not limited to, carotenoids (for example, beta carotene and lycopene); flavanones (for example, cyanidin, catachin, naringenin, malvidin, delphinidin, and anthocyanidin); flavon-3-ols (for example, quecetin and kaempferol); hydroxycinnamates (for example, ferulic acid, p-coumaric acid, and caffeic acid).
- Synthetic antioxidants that can be stabilized include, but are not limited to, various tert-butyl phenols and catachols.
- UV absorbers are suitable for use in the present invention, hi addition to other UV absorbers described herein, UV-absorbers that can be used to stabilize antioxidants in the present invention include, but are not limited to, functionalized derivatives of triazine, benzophenone, and hindered aromatic amines.
- Figure IA illustrates a hypothesized representation of the mechanism of deactivation of enzyme and antioxidant in the case of modified chymotrypsins against TiO 2 - UV when the UV-absorber and antioxidant are not co-localized.
- Figure IB illustrates a hypothesized representation of the mechanism of enhanced stabilization of modified chymotrypsins against TiO 2 -UV as a result of the co- localization of the UV-absorber and antioxidant within a single chain.
- Figure 2A illustrates an ESI-APCI mass spectrum of oligo(HBMA)-COOH.
- Figure 2B illustrates an ESI-APCI mass spectrum of oligo(HBMA-co-Trolox- HEMA)-COOH.
- Figure 3 A illustrates a MALDI-TOF spectra of native chymotrypsin.
- Figure 3B illustrates a MALDI-TOF spectra chymotrypsin-oligo(HBMA).
- Figure 3C illustrates a MALDI-TOF spectra of CTM-separate (chymotrypsin modified at separate positions on the enzyme).
- Figure 3D illustrates a MALDI-TOF spectra of CTM-single (chymotrypsin modified with HBMA and Trolox within a single chain attached to the enzyme).
- Figure 4 illustrates a schematic representation of the synthetic strategies used to obtain enzyme modifications.
- Figure 5A illustrates the effect of conjugated modifiers on the stability of chymotrypsins exposed to TiO 2 -UV wherein the data reported are average of duplicate experiments.
- Figure 5B illustrates the stabilization of Trolox activity in single-chain modified enzyme upon exposure to TiO 2 -UV.
- Figure 6 illustrates the retention of antioxidant activity by Trolox upon exposure to TiO 2 -UV in the presence or absence of adjacent UV-absorber wherein the data reported are average of duplicate experiments.
- Figure 7A illustrates CD spectra of native chymotrypsin.
- Figure 7B illustrates CD spectra of CTM-separate.
- Figure 7C illustrates CD spectra of CTM-single.
- Stabilization is achieved by conjugating the enzyme with an oligomeric adduct of UV- absorbing (2-[3-(2H-benzotriazol-2-yl)-4-hydroxyphenyl]ethyl methacrylate) ( ⁇ BMA) and free radical-absorbing 2-methacryloyloxyethyl-6-hydroxy-2,5,7,8-tetramethylchroman-2- carboxylate (TROLOX®- ⁇ EMA).
- TROLOX®- ⁇ EMA 2-methacryloyloxyethyl-6-hydroxy-2,5,7,8-tetramethylchroman-2- carboxylate
- compositions of the present invention can, for example, be physically mixed with a composition or attached to a composition (for example, via covalent bonding) to enhance the stability thereof against photooxidation.
- compositions or materials which can be stabilized by the compositions of the present invention include, but are not limited to, polymers (both synthetic polymers and biopolymers such as proteins or enzymes), cosmetics, sun screens, surface treatments and colorants.
- chymotrypsin conjugates were studied to assess the interaction between Trolox and HBMA in the positioning strategy of the present invention.
- chymotrypsin was modified with oligo(HBMA)-COOH and Trolox in a stepwise manner so that the UV-absorber and the antioxidant were attached at separate locations on the enzyme.
- CTM- separate we designate the chymotrypsin modified at separate positions on the enzyme.
- chymotrypsin was modified with the carboxyl functionalized co-oligomer, ensuring the presence of HBMA and Trolox within a single chain attached to the enzyme.
- CTM-single Schematic representations of the two enzyme-conjugates and their hypothesized stabilizing effects against photooxidation are shown in Figures IA and IB.
- Trolox was chosen as an antioxidant because of its well known ability to absorb free radicals and the availability of carboxyl group in its structure for covalent modifications. See, for example, Wu, T. W.; Pristupa, Z. B; Zeng, L.H.; Au, J.X.; Wu, J.; Sugiyama, H.; Carey, D. Hepatology 1992, 15, 454-458, the disclosure of which is incorporated herein by reference.
- Oligo(HBMA)-COOH was synthesized as described previously in LeIe, B. S.; Russell, AJ. Biomacromolecules 2004, 5, 1947-1955.
- ESI/ APCI mass spectrometric characterization showed the formation of an approximately 60: 40 mixture of two oligomers having molecular weights 662 and 772 Da, respectively ( Figure 2A).
- the peak at 772 can be assigned to the dimer of HBMA formed by the oligomerization initiated with 'C(CH 3 )(CN)- CH 2 -CH 2 -COOH.
- the peak at 662 can be assigned to the dimer of HBMA formed by the oligomerization initiated with methyl radical, which was probably generated from the decomposition of the initiator. This latter oligomer has no reactive end group and can be filtered out after the enzyme-conjugation reaction.
- the oligo(HBMA)-COOH mixture was NHS- activated and used to modify chymotrypsin.
- OHgO(HBMA-Co-TrOlOX-HEMA)-COOH was synthesized by ACV-initiated co-oligomerization of HBMA and Trolox-HEMA. Copolymerization of two or more monomers can result in the formation of compositionally different mixtures of individual polymer chains. Surprisingly, the mass spectrum of our co-oligomer showed formation of only one major product having molecular weight of 1190 Da ( Figure 2 (b)). Successful co- oligomerization was confirmed from 1 H-NMR spectrum of the product.
- the Trolox to HBMA ratio was found to be 2:1 from the ratio of the number of protons in the peaks at 2.0 ⁇ (characteristic to -CH 3 substituted phenol moiety in Trolox) and at 7.0-8.0 ⁇ (characteristic to aromatic moiety in HBMA).
- the co-oligomer was activated with NHS and used to modify chymotrypsin. ⁇
- CTM-separate is the conjugate in which chymotrypsin is modified with a UV-absorber and an antioxidant in separate locations.
- This conjugate was synthesized by stepwise conjugation reactions of native chymotrypsin first with oligo(HBM A)-COONHS and then with Trolox-NHS.
- MALDI-TOF spectra demonstrate that the first modification of native chymotrypsin increases molecular weight from 25,187 Da to 26,400 Da. Thus, at least 2 molecules of oligo(HBMA) are present on each molecule of the enzyme after the first modification ( Figure 3A and 3B).
- CTM-single is the conjugate in which chymotrypsin is modified with a single chain comprising both the UV-absorber and the antioxidant.
- Figure 4 summarizes the synthetic strategy used to obtain first the single chain oligo(HBMA-co-Trolox-HEMA)-COOH and its conjugate with chymotrypsin (CTM-single).
- the modified enzymes retained > 90 % activity of native chymotrypsin as determined from an end point activity assay of hydrolysis of N-succinyl-Ala-Ala-Pro-Phe-p-nitroanilide.
- Enzyme stability against photoexcited TiO 2 can also be increased by addition of electron acceptor e.g. oxygen purging and/or hole acceptor e.g. methanol or formic acid.
- electron acceptor e.g. oxygen purging
- hole acceptor e.g. methanol or formic acid.
- FIG. 5A shows the data for activity retention of the modified enzymes synthesized as described above, upon their exposure to TiO 2 -UV.
- native unprotected chymotrypsin loses all its activity within 3 hrs. The short lag in activity loss is believed to be a result of the non-specific oxidation of the enzyme that occurs before the active site is damaged sufficiently to impair the enzyme activity.
- the chymotrypisn- oligo(HBMA) with no antioxidant activity had a significantly decreased rate of eventual inactivation, but, importantly, the length of the lag phase was not increased.
- CTM-separate exhibits an almost doubled inactivation lag phase during exposure to TiO 2 -UV.
- CTM-single After the lag phase the rate of inactivation was not slowed. In the case of CTM-single the inactivation lag phase is further increased to four hrs of exposure to TiO 2 -UV. After this marked enhancement in the lag phase stability, the subsequent rate of inactivation was not decreased. Thus, CTM-single exhibited a significantly higher stabilization impact than CTM-separate under photooxidizing conditions.
- TiO 2 -UV inactivates enzyme and how the UV- absorber and antioxidants protect the enzyme. Changes in the secondary structure of proteins during inactivation can be observed by circular dichroism (CD).
- CD circular dichroism
- TiO 2 -UV induces two distinct changes in the secondary structure of native chymotrypsin. LeIe, B. S.; Russell, AJ. Biomacromolecules 2004, 5, 1947-1955.
- Figures 7A-7C illustrate CD spectra of native and modified chymotrypsins exhibiting different levels of resistance to changes in the secondary structure caused by TiO 2 -UV for Native chymotrypsin; CTM-separate and CTM-single. respectively.
- the first change is the perturbation and degradation of tryptophan residues as reflected in the disappearance of the characteristic minimum at 230 nm and the second change is the transition towards random coil formation as reflected in the blue shift in the peak at 202 nm ( Figure 7A).
- CTM-single After exposure to TiO 2 -UV, CTM-single exhibited minimal changes in its secondary structure ( Figures 7B and 7C).
- Both the antioxidant and the UV-absorber were eventually oxidized by TiO 2 -UV, followed by enzyme deactivatoon.
- the modified enzyme systems studied in the present invention were not optimized. Nonetheless, a stabilization effect of up to 4 hrs was been induced by only two molecules of oligomeric modifiers conjugated to the enzyme.
- Extended enzyme stability against the photooxidative degradation is, for example, achievable by either increasing the degree of modification or by conjugating high molecular weight copolymers of antioxidant and UV-absorber to the enzyme. Enhancing stability of enzyme against photooxidation is, for example, particularly useful in developing bio-inorganic hybrid materials for decontamination applications.
- the modified enzyme systems of the present invention can be used in protective coatings that simultaneously use photocatalysis and biocatalysis to decontaminate organophosphates.
- HBMA HBMA, Trolox (6-hydroxy-2,5,7,8-tetramethylchroman-2-carboxylic acid), 2-hydroxyethyl methacrylate (HEMA), 1 ,3-(dimethylaminopropyl)-3-ethylcarbodiimide.hydrochloride (EDC), 1,3-dicyclohexylcarbodiimide (DCC), 4,4'-azobis(cyanovaleric acid), anhydrous tetrahydrofuran (THF), anhydrous N,N-dimethylformamide (DMF), dichloromethane, n- hexane and dioxane were purchased from Aldrich Chemical Company (Milwaukee, WI).
- EDC 1,3-dicyclohexylcarbodiimide
- DMF 1,3-dicyclohexylcarbodiimide
- DMF 1,3-dicyclohexylcarbodiimide
- DMF 1,3-dicyclohexy
- Centrifugal dialysis-filtration tubes (Centricon ® Plus-20) with 10,000 Da molecular weight cut off (MWCO) were purchased from Millipore Co. (Bedford, MA).
- TiO 2 (Degussa P25) was obtained from Degussa A. G., Frankfurt, Germany.
- NMR spectroscopy 1 H-NMR spectra of oligomeric modifiers were recorded on a Bruker spectrometer operating at 300 MHz.
- ESI-APCI mass spectroscopy Molecular weights of oligomeric modifiers were determined using Finnigan LCQ quadrupole field ion trap mass spectrometer with electrospray ionization (ESI) and atmospheric pressure chemical ionization (APCI) sources. Samples were dissolved in dichloromethane (1 mg / rnL) and injected into the ionization chamber of the spectrometer.
- MALDI-TOF spectrometry Modified enzymes were characterized by analyses performed on a Perseptive Biosystems Voyager elite MALDI-TOF. The acceleration voltage was set at 20 kV in a linear mode. Enzyme solution (0.5-1.0 mg / mL) was mixed with an equal volume of matrix (0.5 mL water, 0.5 mL acetonitrile, 2 ⁇ L trifluoroacetic acid and 8 mg ⁇ -cyano-4-hydroxycinnamic acid) and 2 ⁇ L of the resulting mixture were spotted on the plate target. Spectra were recorded after solvent evaporation.
- matrix 0.5 mL water, 0.5 mL acetonitrile, 2 ⁇ L trifluoroacetic acid and 8 mg ⁇ -cyano-4-hydroxycinnamic acid
- CD spectroscopy At 60 min intervals, 0.3 mL aliquots were removed from UV-irradiated enzyme-TiO 2 suspensions and filtered through 0.2 ⁇ m filters. Protein solutions were diluted to obtain concentrations of 0.1 mg / mL. 400 ⁇ L of the sample (0.1 mg / mL) were placed in a quartz cuvette (path length, 1 mm) inside an Aviv CD spectrometer (model 202). Each spectrum was accumulated by averaging 10 scans between 190 to 260 nm. All spectra were corrected for background signals of the buffer. Mean residual ellipticity ([ ⁇ ] ⁇ deg.cm 2 .dmor') values were obtained from ⁇ O b se rv e d using the equation (1).
- M w is the molecular weight of chymotrypsin
- 1 is the path length (0.1 cm)
- n is the total number of amino acid residues in chymotrypsin (241)
- c is the concentration (g / mL).
- the UV irradiance at 365 nm was 8 mW / cm 2 (determined using a BLAK-RAY ® UV meter (Model No. J-221). It was also verified that there was no thermal denaturation of the enzyme during irradiation and the temperature of the enzyme-TiO 2 suspension remained constant (25 ⁇ 2 0 C) throughout.
- the TiO 2 -enzyme-substrate suspension was filtered through a 0.2 ⁇ m filter and the absorbance of hydrolyzed p- nitroaniline measured at 412 nm using a Perkin-Elmer spectrophotometer (model Lambda 45). Hydrolysis of the substrate by the buffer was negligible during the assay time. Original activities of native and modified chymotrypsins were also determined as described above. It was also confirmed that TiO 2 alone did not cause hydrolysis of the substrate.
- Oligo(HBMA-co-Trolox-HEMA)-COOH (0.03 mg / mL) or a physical mixture of oligo(HBMA)-COOH (0.01 mg / mL) and Trolox (0.02 mg / mL) were dissolved in a 50: 50 binary solvent mixture of DMF and phosphate buffer (25 mM, pH 7.5). TiO 2 (0.25 mg / mL) was added to these solutions, irradiated with UV and aliquots filtered as described above.
- Equal volumes of ABTS (1.8 mM) and potassium persulfate (0.63 mM) were mixed together and kept in the dark for 16 hrs at 25 0 C to obtain a stable blue colored ABTS + radical.
- the ABTS + solution was diluted four times to obtain an absorbance of 0.6 at 734 nm.
- Equal volumes (0.5 mL) of ABTS + and TiO 2 -UV exposed enzyme solution (0.8 mg protein / mL) were mixed together. The change in absorbance at 734 nm was recorded 1 min after the mixing.
- Trolox equivalent antioxidant capacities (TEAC) (defined as the antioxidant activity of 1 mM modified enzyme equivalent to that of the 1 mM free Trolox) were calculated using the standard plot created for the concentration of Trolox versus the change in absorbance OfABTS + .
- Oligo(HBMA-co-Trolox-HEMA)-COOH was isolated by precipitation of the DMF solution into 1 L distilled water (pH 1.5). The product was purified by first extraction in acetone and then reprecipitation from dichloromethane into n-hexane. Yield Ig (56 %).
- oligo(HBMA)-COOH Synthesis of oligo(HBMA)-COOH.
- HBMA 4.0 g, 12 mmol
- 4,4'-azobis(cyanovaleric acid) (0.34 g, 1.2 mmol) were dissolved in 40 mL DMF. Nitrogen gas was purged through the DMF solution for 30 minutes at room temperature. Polymerization was conducted at 80 0 C for 12 hrs under the continuous purging of nitrogen.
- Oligo(HBMA)-COOH was isolated by precipitation of the DMF solution into 1 L distilled water (pH 1.5). The product was purified by reprecipitation from dichloromethane into n-hexane.
- the reaction mixture was stirred at 25 0 C for 2 hrs and filtered through 0.45 ⁇ m filter to remove the precipitated oligo(HBMA-co-Trolox -HEMA)- COOH.
- the clear solution was lyophilized to remove dioxane. Lyophilized powder containing the enzyme and salts was dissolved in 50 mL phosphate buffer (25 mM, pH 7.5).
- the enzyme solution was placed in centrifugal dialysis-filtration tubes (Centricon ® Plus-20; 10,000 Da MWCO) and centrifuged at 4,000 rpm for 15 minutes.
- the concentrated retentate was diluted to 20 mL with phosphate buffer (25 mM, pH 7.5) and dial-filtered again as described above.
- the amount of conjugate obtained was estimated by bicinchoninic acid protein assay. Yield 20-30 %.
- CTM-separate chymotrypsin modified with oligo(HBMA) and Trolox.
- the conjugate was synthesized in two steps. In the first step, ⁇ -chymotrypsin (100 mg) was reacted with oligo(HBMA)-COONHS (200 mg). Purified chymotrypsin- oligo(HBMA) (100 mg) was reacted with Trolox-NHS (100 mg) as described above. Yield 20-30 %.
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| Publication Number | Publication Date |
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| WO2006058326A2 true WO2006058326A2 (en) | 2006-06-01 |
| WO2006058326A3 WO2006058326A3 (en) | 2009-05-14 |
Family
ID=36498625
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2005/043070 Ceased WO2006058326A2 (en) | 2004-11-29 | 2005-11-29 | Stabilization of antioxidants |
Country Status (2)
| Country | Link |
|---|---|
| US (1) | US20060116451A1 (en) |
| WO (1) | WO2006058326A2 (en) |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US5665334A (en) * | 1995-12-21 | 1997-09-09 | 3V Inc. | Benzofuran derivatives and methods for their use as stabilizers and sunscreens against HIV radiations |
| US6319507B1 (en) * | 1997-05-02 | 2001-11-20 | Kobo Products, Inc. | Agar gel bead composition and method |
| US5917185A (en) * | 1997-06-26 | 1999-06-29 | Iowa State University Research Foundation, Inc. | Laser vaporization/ionization interface for coupling microscale separation techniques with mass spectrometry |
| DE19816268A1 (en) * | 1998-04-11 | 1999-10-14 | Clariant Gmbh | Cholesteric liquid crystal polymers with increased weather stability |
-
2005
- 2005-11-29 US US11/288,925 patent/US20060116451A1/en not_active Abandoned
- 2005-11-29 WO PCT/US2005/043070 patent/WO2006058326A2/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| WO2006058326A3 (en) | 2009-05-14 |
| US20060116451A1 (en) | 2006-06-01 |
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