A holistic approach to understanding CAZy families through reductionist methods

  In a time when the amount of biological data present in the public domain is becoming increasingly vast, the need for good classification systems has never been greater. In the field of glycoscience the necessity of a good classification for the enzymes involved in the biosynthesis, modification a...

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Main Author: Eklöf, Jens
Format: Others
Language:English
Published: KTH, Glykovetenskap 2009
Subjects:
XET
PME
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-10183
http://nbn-resolving.de/urn:isbn:978-91-7415-269-2
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spelling ndltd-UPSALLA1-oai-DiVA.org-kth-101832013-01-08T13:10:30ZA holistic approach to understanding CAZy families through reductionist methodsengEklöf, JensKTH, GlykovetenskapStockholm : KTH2009Carbohydrate esterase family 8XETPMEYbhCBiochemistryBiokemi  In a time when the amount of biological data present in the public domain is becoming increasingly vast, the need for good classification systems has never been greater. In the field of glycoscience the necessity of a good classification for the enzymes involved in the biosynthesis, modification and degradation of polysaccharides is even more pronounced than in other fields. This is due to the complexity of the substrates, the polysaccharides, as the theoretical number of possible hexa-oligosaccharides from only hexoses exceeds 1012 isomers!  An initiative to classify enzymes acting on carbohydrates began around 1990 by the French scientist Bernard Henrissat. The resulting database, the Carbohydrate Active enzymes database (CAZy), classifies enzymes by sequence similarity into families allowing the inference of structure and catalytic mechanism. What CAZy does not provide however, are means to understand how members of a family are related, and in what way they differ from each other. The top-down approach used in this thesis, combining phylogenetic analysis of whole CAZy families, or sub-families, with structural determinations and detailed kinetic analysis allows for exactly that.   Finding determinants for transglycosylation versus hydrolysis within the xth gene product family of GH16 as well as restricting the hydrolytic enzymes to a well defined clade are integral parts of paper I. In paper II a new bacterial sub-clade within CE8 was discovered. The structural determination of theEscherichia coli outer membrane lipoprotein YbhC from from the new sub-clade explained the difference in specificity. The information provided in the two papers of this thesis gives a better understanding of the development of different specificities of diverse CAZY families as well as it aids in future gene product annotations. Furthermore this work has begun to fill the white spots uncovered in the phylogenetic trees.     Licentiate thesis, comprehensive summaryinfo:eu-repo/semantics/masterThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-10183urn:isbn:978-91-7415-269-2Trita-BIO-Report, 1654-2312 ; 2009:5application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic Carbohydrate esterase family 8
XET
PME
YbhC
Biochemistry
Biokemi
spellingShingle Carbohydrate esterase family 8
XET
PME
YbhC
Biochemistry
Biokemi
Eklöf, Jens
A holistic approach to understanding CAZy families through reductionist methods
description   In a time when the amount of biological data present in the public domain is becoming increasingly vast, the need for good classification systems has never been greater. In the field of glycoscience the necessity of a good classification for the enzymes involved in the biosynthesis, modification and degradation of polysaccharides is even more pronounced than in other fields. This is due to the complexity of the substrates, the polysaccharides, as the theoretical number of possible hexa-oligosaccharides from only hexoses exceeds 1012 isomers!  An initiative to classify enzymes acting on carbohydrates began around 1990 by the French scientist Bernard Henrissat. The resulting database, the Carbohydrate Active enzymes database (CAZy), classifies enzymes by sequence similarity into families allowing the inference of structure and catalytic mechanism. What CAZy does not provide however, are means to understand how members of a family are related, and in what way they differ from each other. The top-down approach used in this thesis, combining phylogenetic analysis of whole CAZy families, or sub-families, with structural determinations and detailed kinetic analysis allows for exactly that.   Finding determinants for transglycosylation versus hydrolysis within the xth gene product family of GH16 as well as restricting the hydrolytic enzymes to a well defined clade are integral parts of paper I. In paper II a new bacterial sub-clade within CE8 was discovered. The structural determination of theEscherichia coli outer membrane lipoprotein YbhC from from the new sub-clade explained the difference in specificity. The information provided in the two papers of this thesis gives a better understanding of the development of different specificities of diverse CAZY families as well as it aids in future gene product annotations. Furthermore this work has begun to fill the white spots uncovered in the phylogenetic trees.    
author Eklöf, Jens
author_facet Eklöf, Jens
author_sort Eklöf, Jens
title A holistic approach to understanding CAZy families through reductionist methods
title_short A holistic approach to understanding CAZy families through reductionist methods
title_full A holistic approach to understanding CAZy families through reductionist methods
title_fullStr A holistic approach to understanding CAZy families through reductionist methods
title_full_unstemmed A holistic approach to understanding CAZy families through reductionist methods
title_sort holistic approach to understanding cazy families through reductionist methods
publisher KTH, Glykovetenskap
publishDate 2009
url http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-10183
http://nbn-resolving.de/urn:isbn:978-91-7415-269-2
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