Literature DB >> 22006188

A novel C-type lectin identified by EST analysis in tissue migratory larvae of Ascaris suum.

Ayako Yoshida1, Eiji Nagayasu, Yoichiro Horii, Haruhiko Maruyama.   

Abstract

C-type lectins (CTLs) are a group of proteins which bind to carbohydrate epitopes in the presence of Ca(2+), which have been described in a wide range of species. In this study, a cDNA sequence coding a putative CTL has been identified from the cDNA library constructed from the pig round worm Ascaris suum lung L3 (LL3) larvae, which was designated as A. suum C-type lectin-1 (As-CTL-1). The 510 nucleotide open reading frame of As-CTL-1 cDNA encoded the predicted 169 amino acid protein including a putative signal peptide of 23 residues and C-type lectin/C-type lectin-like domain (CLECT) at residue 26 to 167. As-CTL-1 was most similar to Toxocara canis C-type lectin-1 and 4 (Tc-CTL-1 and 4), and highly homologous to namatode CTLs and mammalian CTLs as well, such as human C-type lectin domain family 4 member G (CLECG4). In addition, As-CTL-1 was strongly expressed in tissue migrating LL3 and the L4 larvae, which were developmental larvae stages within the mammalian host. These results suggest that A. suum larvae might utilize As-CTL-1 to avoid pathogen recognition mechanisms in mammalian hosts due to it is similarity to host immune cell receptors.

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Year:  2011        PMID: 22006188     DOI: 10.1007/s00436-011-2677-9

Source DB:  PubMed          Journal:  Parasitol Res        ISSN: 0932-0113            Impact factor:   2.289


  31 in total

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Authors:  Alex N Zelensky; Jill E Gready
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Review 3.  Two distinct classes of carbohydrate-recognition domains in animal lectins.

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Review 4.  NK cell development, homeostasis and function: parallels with CD8⁺ T cells.

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6.  A survey of genes expressed in adults of the human hookworm, Necator americanus.

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Review 8.  Specificity of the innate immune system and diversity of C-type lectin domain (CTLD) proteins in the nematode Caenorhabditis elegans.

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Review 9.  Genomic analysis of C-type lectins.

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Journal:  Biochem Soc Symp       Date:  2002

10.  Ascaris infections in humans from North America: molecular evidence for cross-infection.

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5.  Proteomic analysis of the excretory-secretory products from larval stages of Ascaris suum reveals high abundance of glycosyl hydrolases.

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6.  Phylogenetic Analysis of C Type Lectin from Toxocara canis Infective Larvae and Comparison with the C Type Lectin Family in the Immune System of Mouse and Human.

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