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Structural Studies of the Spinosyn Forosaminyltransferase, SpnP

[Image: see text] Spinosyns A and D (spinosad) are complex polyketide natural products biosynthesized through the cooperation of a modular polyketide synthase and several tailoring enzymes. SpnP catalyzes the final tailoring step, transferring forosamine from a TDP-d-forosamine donor substrate to a...

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Autores principales: Isiorho, Eta A., Jeon, Byung-Sun, Kim, Nam Ho, Liu, Hung-wen, Keatinge-Clay, Adrian T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4095934/
https://www.ncbi.nlm.nih.gov/pubmed/24945604
http://dx.doi.org/10.1021/bi5003629
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author Isiorho, Eta A.
Jeon, Byung-Sun
Kim, Nam Ho
Liu, Hung-wen
Keatinge-Clay, Adrian T.
author_facet Isiorho, Eta A.
Jeon, Byung-Sun
Kim, Nam Ho
Liu, Hung-wen
Keatinge-Clay, Adrian T.
author_sort Isiorho, Eta A.
collection PubMed
description [Image: see text] Spinosyns A and D (spinosad) are complex polyketide natural products biosynthesized through the cooperation of a modular polyketide synthase and several tailoring enzymes. SpnP catalyzes the final tailoring step, transferring forosamine from a TDP-d-forosamine donor substrate to a spinosyn pseudoaglycone acceptor substrate. Sequence analysis indicated that SpnP belongs to a small group of glycosyltransferases (GTs) that require an auxiliary protein for activation. However, unlike other GTs in this subgroup, no putative auxiliary protein gene could be located in the biosynthetic gene cluster. To learn more about SpnP, the structures of SpnP and its complex with TDP were determined to 2.50 and 3.15 Å resolution, respectively. Binding of TDP causes the reordering of several residues in the donor substrate pocket. SpnP possesses a structural feature that has only been previously observed in the related glycosyltransferase EryCIII, in which it mediates association with the auxiliary protein EryCII. This motif, H-X-R-X(5)-D-X(5)-R-X(12–20)-D-P-X(3)-W-L-X(12–18)-E-X(4)-G, may be predictive of glycosyltransferases that interact with an auxiliary protein. A reverse glycosyl transfer assay demonstrated that SpnP possesses measurable activity in the absence of an auxiliary protein. Our data suggest that SpnP can bind its donor substrate by itself but that the glycosyl transfer reaction is facilitated by an auxiliary protein that aids in the correct folding of a flexible loop surrounding the pseudoaglycone acceptor substrate-binding pocket.
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spelling pubmed-40959342015-06-19 Structural Studies of the Spinosyn Forosaminyltransferase, SpnP Isiorho, Eta A. Jeon, Byung-Sun Kim, Nam Ho Liu, Hung-wen Keatinge-Clay, Adrian T. Biochemistry [Image: see text] Spinosyns A and D (spinosad) are complex polyketide natural products biosynthesized through the cooperation of a modular polyketide synthase and several tailoring enzymes. SpnP catalyzes the final tailoring step, transferring forosamine from a TDP-d-forosamine donor substrate to a spinosyn pseudoaglycone acceptor substrate. Sequence analysis indicated that SpnP belongs to a small group of glycosyltransferases (GTs) that require an auxiliary protein for activation. However, unlike other GTs in this subgroup, no putative auxiliary protein gene could be located in the biosynthetic gene cluster. To learn more about SpnP, the structures of SpnP and its complex with TDP were determined to 2.50 and 3.15 Å resolution, respectively. Binding of TDP causes the reordering of several residues in the donor substrate pocket. SpnP possesses a structural feature that has only been previously observed in the related glycosyltransferase EryCIII, in which it mediates association with the auxiliary protein EryCII. This motif, H-X-R-X(5)-D-X(5)-R-X(12–20)-D-P-X(3)-W-L-X(12–18)-E-X(4)-G, may be predictive of glycosyltransferases that interact with an auxiliary protein. A reverse glycosyl transfer assay demonstrated that SpnP possesses measurable activity in the absence of an auxiliary protein. Our data suggest that SpnP can bind its donor substrate by itself but that the glycosyl transfer reaction is facilitated by an auxiliary protein that aids in the correct folding of a flexible loop surrounding the pseudoaglycone acceptor substrate-binding pocket. American Chemical Society 2014-06-19 2014-07-08 /pmc/articles/PMC4095934/ /pubmed/24945604 http://dx.doi.org/10.1021/bi5003629 Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Isiorho, Eta A.
Jeon, Byung-Sun
Kim, Nam Ho
Liu, Hung-wen
Keatinge-Clay, Adrian T.
Structural Studies of the Spinosyn Forosaminyltransferase, SpnP
title Structural Studies of the Spinosyn Forosaminyltransferase, SpnP
title_full Structural Studies of the Spinosyn Forosaminyltransferase, SpnP
title_fullStr Structural Studies of the Spinosyn Forosaminyltransferase, SpnP
title_full_unstemmed Structural Studies of the Spinosyn Forosaminyltransferase, SpnP
title_short Structural Studies of the Spinosyn Forosaminyltransferase, SpnP
title_sort structural studies of the spinosyn forosaminyltransferase, spnp
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4095934/
https://www.ncbi.nlm.nih.gov/pubmed/24945604
http://dx.doi.org/10.1021/bi5003629
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