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CfLec-3 from scallop: an entrance to non-self recognition mechanism of invertebrate C-type lectin

A C-type lectin (CfLec-3) from Chlamys farreri with three carbohydrate-recognition domains (CRDs) was selected to dissect the possible mechanisms of PAMP binding and functional differentiation of invertebrate lectins. CfLec-3 distributed broadly, and its mRNA expression in hemocytes increased signif...

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Autores principales: Yang, Jialong, Huang, Mengmeng, Zhang, Huan, Wang, Lingling, Wang, Hao, Wang, Leilei, Qiu, Limei, Song, Linsheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4432315/
https://www.ncbi.nlm.nih.gov/pubmed/25975813
http://dx.doi.org/10.1038/srep10068
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author Yang, Jialong
Huang, Mengmeng
Zhang, Huan
Wang, Lingling
Wang, Hao
Wang, Leilei
Qiu, Limei
Song, Linsheng
author_facet Yang, Jialong
Huang, Mengmeng
Zhang, Huan
Wang, Lingling
Wang, Hao
Wang, Leilei
Qiu, Limei
Song, Linsheng
author_sort Yang, Jialong
collection PubMed
description A C-type lectin (CfLec-3) from Chlamys farreri with three carbohydrate-recognition domains (CRDs) was selected to dissect the possible mechanisms of PAMP binding and functional differentiation of invertebrate lectins. CfLec-3 distributed broadly, and its mRNA expression in hemocytes increased significantly after stimulations with LPS, PGN or β-glucan, but not poly(I:C). The recombinant CfLec-3 (rCfLec-3) could bind PAMPs and several microbes. rCfLec-3 mediated hemocytes phagocytosis against Escherichia coli and encapsulation towards agarose beads. Obvious functional differentiation occurred among the three CRDs, as CRD1 exhibited higher activity to bind PAMPs, while CRD2/3 were expert in promoting hemocyte mediated opsonisation. The tertiary structural differences were suspected to be associated with such functional differentiation. PAMP binding abilities of CfLec-3 were determined by Ca(2+)-binding site 2 motif. When Pro in this motif of each CRD was mutated into Ser, their PAMP binding abilities were deprived absolutely. rCRD2 acquired mannan binding capability when its EPD was replaced by EPN, but lost when EPN in rCRD3 was changed into EPD. The Pro in Ca(2+)-binding site 2 was indispensable for PAMPs binding, while Asn was determinant for specific binding to mannan. It shed new insight into PAMPs binding mechanism of invertebrate C-type lectins and their functional differentiation.
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spelling pubmed-44323152015-05-22 CfLec-3 from scallop: an entrance to non-self recognition mechanism of invertebrate C-type lectin Yang, Jialong Huang, Mengmeng Zhang, Huan Wang, Lingling Wang, Hao Wang, Leilei Qiu, Limei Song, Linsheng Sci Rep Article A C-type lectin (CfLec-3) from Chlamys farreri with three carbohydrate-recognition domains (CRDs) was selected to dissect the possible mechanisms of PAMP binding and functional differentiation of invertebrate lectins. CfLec-3 distributed broadly, and its mRNA expression in hemocytes increased significantly after stimulations with LPS, PGN or β-glucan, but not poly(I:C). The recombinant CfLec-3 (rCfLec-3) could bind PAMPs and several microbes. rCfLec-3 mediated hemocytes phagocytosis against Escherichia coli and encapsulation towards agarose beads. Obvious functional differentiation occurred among the three CRDs, as CRD1 exhibited higher activity to bind PAMPs, while CRD2/3 were expert in promoting hemocyte mediated opsonisation. The tertiary structural differences were suspected to be associated with such functional differentiation. PAMP binding abilities of CfLec-3 were determined by Ca(2+)-binding site 2 motif. When Pro in this motif of each CRD was mutated into Ser, their PAMP binding abilities were deprived absolutely. rCRD2 acquired mannan binding capability when its EPD was replaced by EPN, but lost when EPN in rCRD3 was changed into EPD. The Pro in Ca(2+)-binding site 2 was indispensable for PAMPs binding, while Asn was determinant for specific binding to mannan. It shed new insight into PAMPs binding mechanism of invertebrate C-type lectins and their functional differentiation. Nature Publishing Group 2015-05-15 /pmc/articles/PMC4432315/ /pubmed/25975813 http://dx.doi.org/10.1038/srep10068 Text en Copyright © 2015, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Yang, Jialong
Huang, Mengmeng
Zhang, Huan
Wang, Lingling
Wang, Hao
Wang, Leilei
Qiu, Limei
Song, Linsheng
CfLec-3 from scallop: an entrance to non-self recognition mechanism of invertebrate C-type lectin
title CfLec-3 from scallop: an entrance to non-self recognition mechanism of invertebrate C-type lectin
title_full CfLec-3 from scallop: an entrance to non-self recognition mechanism of invertebrate C-type lectin
title_fullStr CfLec-3 from scallop: an entrance to non-self recognition mechanism of invertebrate C-type lectin
title_full_unstemmed CfLec-3 from scallop: an entrance to non-self recognition mechanism of invertebrate C-type lectin
title_short CfLec-3 from scallop: an entrance to non-self recognition mechanism of invertebrate C-type lectin
title_sort cflec-3 from scallop: an entrance to non-self recognition mechanism of invertebrate c-type lectin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4432315/
https://www.ncbi.nlm.nih.gov/pubmed/25975813
http://dx.doi.org/10.1038/srep10068
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