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dc.contributor.authorBelogorcev Niklasson, Ida
dc.date.accessioned2013-10-31T09:05:20Z
dc.date.available2013-10-31T09:05:20Z
dc.date.issued2013-10-31
dc.identifier.isbn978-91-628-8817-6
dc.identifier.urihttp://hdl.handle.net/2077/33972
dc.description.abstractChemicals in our environment with which we have repeated skin contact can cause skin sensitisation (contact allergy). To trigger an immune response a compound (hapten) must be able to penetrate the skin, where it needs to be reactive enough to bind to proteins and form immunogenic complexes that are recognised as foreign. Electrophilicity has been identified as an important characteristic, which enables haptens to react with nucleophilic amino acids in proteins. In this thesis, a specific type of electrophiles, epoxides, have been investigated. Skin sensitising potencies related to physicochemical parameters have been investigated using structure-activity relationship (SAR) data. Studies on the formation of epoxides by abiotic (air oxidation) and biotic (metabolically in skin) activation from unsaturated compounds and the impact on the sensitising potency of such compounds were also performed. Cinnamic alcohol, a fragrance and flavouring compound, is a well-known contact allergen. However, it lacks the necessary structural alerts to function as a hapten and must be activated to be able to act as a sensitiser. In this thesis, cinnamic alcohol was used to study the formation of allergenic oxidation products (i.e. epoxides) by air exposure and metabolically. The autoxidation study was performed to gain knowledge regarding stability of cinnamic alcohol upon air exposure, oxidation products and sensitising potencies. The sensitising potency (as examined by the murine local lymph node assay) of cinnamic alcohol after two weeks of air exposure was enhanced about four-fold. Two strongly sensitising compounds, epoxy cinnamic alcohol and cinnamic aldehyde, were detected in the formed oxidation mixture. Thus, for the first time, it was shown that cinnamic alcohol acts as a prehapten. The bioactivation of cinnamic alcohol, using human liver microsomes, resulted in the same oxidation products although the mechanism for their formation is completely different. In addition, epoxy cinnamic aldehyde was detected. Most likely, the two epoxides and cinnamic aldehyde are all contributing to the sensitising potency of cinnamic alcohol whether they are formed outside the skin or in the skin. Up to now, the contact allergenic effect seen from cinnamic alcohol has only been associated with cinnamic aldehyde formed as a metabolite from cinnamic alcohol. The present findings shed new light on the mechanism behind the allergenic effect of cinnamic alcohol and offer explanations to the many clinical cases of contact allergy to cinnamic alcohol not reacting to the aldehyde. Terminal epoxides are known contact sensitisers present in compounds used in epoxy resin systems (ERS). The most commonly used epoxy resin monomer (ERM), diglycidyl ether of bisphenol A (DGEBA), is causing high rates of occupational contact allergy. Thus, it would be highly advantageous to replace this strongly sensitising compound with less hazardous alternatives, since even a single accidental exposure may induce primary sensitisation to ERM. In this thesis, specially-designed analogues of phenyl glycidyl ether (PGE) and DGEBA, with terminal epoxides intact, were investigated. The results reveal that the design of series of well-defined compounds can give important insights into the SARs thereof and increased knowledge about the structural basis for sensitisation potential. It has been demonstrated, for the first time, how the chemical reactivity and the sensitising potency of terminal epoxides vary with the overall structure of the compound. Using this knowledge regarding SARs of terminal epoxides novel epoxy resin monomers with reduced sensitising potency were achieved for the first time without compromising the technical properties. By modifying the intrinsic reactivity of ERMs, the fundamental and underlying causes of contact allergy to ERS have been addressed. Using these modified analogues with reduced sensitising potency, in addition to regulations and protective clothing, would reduce occupational contact allergy in the future.sv
dc.language.isoengsv
dc.relation.haspartI. Cinnamyl alcohol oxidizes rapidly upon air exposure Ida B. Niklasson, Tamara Delaine, M. Nurul Islam, Roger Karlsson, Kristina Luthman and Ann-Therese Karlberg Contact Dermatitis, 2013, 68, 129-138 ::doi::10.1111/cod.12009sv
dc.relation.haspartII. Bioactivation of Cinnamic Alcohol Forms Several Strong Skin Sensitizers Ida B. Niklasson, David J. Ponting, Kristina Luthman and Ann-Therese Karlberg Manuscriptsv
dc.relation.haspartIII. Reduced Sensitizing Capacity of Epoxy Resin Systems: A Structure-Activity Relationship Study Ida B. Niklasson, Kerstin Broo, Charlotte Jonsson, Kristina Luthman and Ann-Therese Karlberg Chemical Research in Toxicology, 2009, 22, 1787-1794 ::doi::10.1021/tx900193ssv
dc.relation.haspartIV. The Impact of a Heteroatom in a Structure-Activity Relationship Study on Analogues of Phenyl Glycidyl Ether (PGE) from Epoxy Resin Systems Ida B. Niklasson, Tamara Delaine, Kristina Luthman and Ann-Therese Karlberg Chemical Research in Toxicology, 2011, 24, 542-548 ::doi::10.1021/tx100417rsv
dc.relation.haspartV. Improvements in Epoxy Resin Polymer Systems: New Monomers with Reduced Skin Sensitizing Potency Niamh M. O’Boyle, Ida B. Niklasson, Ali R. Tehrani-Bagha, Tamara Delaine, Krister Holmberg, Kristina Luthman and Ann-Therese Karlberg Manuscriptsv
dc.subjectAllergic contact dermatitissv
dc.subjectAutoxidationsv
dc.subjectBioactivationsv
dc.subjectCinnamic alcoholsv
dc.subjectDiglycidyl ether of bisphenol A (DGEBA)sv
dc.subjectEpoxidesv
dc.subjectEpoxy resinsv
dc.subjectLocal lymph node assaysv
dc.subjectPolymerisationsv
dc.subjectPeptide reactivitysv
dc.subjectPrehaptensv
dc.subjectProhaptensv
dc.subjectSensitisationsv
dc.subjectSkinsv
dc.subjectStructure-Activity Relationshipsv
dc.subjectThermogravimetric Analysissv
dc.titleEpoxides as Contact Allergens - Formation, Sensitising Potency and Structure-Activity Relationshipssv
dc.typeTextswe
dc.type.svepDoctoral thesiseng
dc.gup.mailidan@chem.gu.sesv
dc.type.degreeDoctor of Philosophysv
dc.gup.originUniversity of Gothenburg. Faculty of Sciencesv
dc.gup.departmentDepartment of Chemistry and Molecular Biology ; Institutionen för kemi och molekylärbiologisv
dc.gup.defenceplaceTorsdagen den 21 november 2013, kl. 10.00, Sal KB, Kemigården 4sv
dc.gup.defencedate2013-11-21
dc.gup.dissdb-fakultetMNF


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