Literature DB >> 23643514

Identification and characterisation of functional expressed sequence tags-derived simple sequence repeat (eSSR) markers for genetic linkage mapping of Schistosoma mansoni juvenile resistance and susceptibility loci in Biomphalaria glabrata.

Wannaporn Ittiprasert1, André Miller, Xin-zhuan Su, Jianbing Mu, Ganlayarat Bhusudsawang, Kitipat Ukoskit, Matty Knight.   

Abstract

Biomphalaria glabrata susceptibility to Schistosoma mansoni has a strong genetic component, offering the possibility for investigating host-parasite interactions at the molecular level, perhaps leading to novel control approaches. The identification, mapping and molecular characterisation of genes that influence the outcome of parasitic infection in the intermediate snail host is, therefore, seen as fundamental to the control of schistosomiasis. To better understand the evolutionary processes driving disease resistance/susceptibility phenotypes, we previously identified polymorphic random amplification of polymorphic DNA and genomic simple sequence repeats from B. glabrata. In the present study we identified and characterised polymorphic expressed simple sequence repeats markers (Bg-eSSR) from existing B. glabrata expressed sequence tags. Using these markers, and with previously identified genomic simple sequence repeats, genetic linkage mapping for parasite refractory and susceptibility phenotypes, the first known for B. glabrata, was initiated. Data mining of 54,309 expressed sequence tag, produced 660 expressed simple sequence repeats of which dinucleotide motifs (TA)n were the most common (37.88%), followed by trinucleotide (29.55%), mononucleotide (18.64%) and tetranucleotide (10.15%). Penta- and hexanucleotide motifs represented <3% of the Bg-eSSRs identified. While the majority (71%) of Bg-eSSRs were monomorphic between resistant and susceptible snails, several were, however, useful for the construction of a genetic linkage map based on their inheritance in segregating F2 progeny snails derived from crossing juvenile BS-90 and NMRI snails. Polymorphic Bg-eSSRs assorted into six linkage groups at a logarithm of odds score of 3. Interestingly, the heritability of four markers (Prim1_910, Prim1_771, Prim6_1024 and Prim7_823) with juvenile snail resistance were, by t-test, significant (P<0.05) while an allelic marker, Prim24_524, showed linkage with the juvenile snail susceptibility phenotype. On the basis of our results it is possible that the gene(s) controlling juvenile resistance and susceptibility to S. mansoni infection in B. glabrata are not only on the same linkage group but lie within a short distance (42cM) of each other.
Copyright © 2013 Australian Society for Parasitology Inc. Published by Elsevier Ltd. All rights reserved.

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Year:  2013        PMID: 23643514      PMCID: PMC4038333          DOI: 10.1016/j.ijpara.2013.03.007

Source DB:  PubMed          Journal:  Int J Parasitol        ISSN: 0020-7519            Impact factor:   3.981


  49 in total

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Journal:  Am J Trop Med Hyg       Date:  1972-07       Impact factor: 2.345

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Authors:  Anne E Lockyer; Aidan M Emery; Richard A Kane; Anthony J Walker; Claus D Mayer; Guillaume Mitta; Christine Coustau; Coen M Adema; Ben Hanelt; David Rollinson; Leslie R Noble; Catherine S Jones
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Journal:  Int J Parasitol       Date:  2014-03-28       Impact factor: 3.981

Review 2.  Comparative immunogenomics of molluscs.

Authors:  Jonathan H Schultz; Coen M Adema
Journal:  Dev Comp Immunol       Date:  2017-03-18       Impact factor: 3.636

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Authors:  Jacob A Tennessen; Kaitlin M Bonner; Stephanie R Bollmann; Joel A Johnstun; Jan-Ying Yeh; Melanie Marine; Hannah F Tavalire; Christopher J Bayne; Michael S Blouin
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4.  The population genetic structure of Biomphalaria choanomphala in Lake Victoria, East Africa: implications for schistosomiasis transmission.

Authors:  Claire J Standley; Sara L Goodacre; Christopher M Wade; J Russell Stothard
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5.  A Targeted Capture Linkage Map Anchors the Genome of the Schistosomiasis Vector Snail, Biomphalaria glabrata.

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6.  PIWI silencing mechanism involving the retrotransposon nimbus orchestrates resistance to infection with Schistosoma mansoni in the snail vector, Biomphalaria glabrata.

Authors:  Michael Smith; Swara Yadav; Olayemi G Fagunloye; Nana Adjoa Pels; Daniel A Horton; Nashwah Alsultan; Andrea Borns; Carolyn Cousin; Freddie Dixon; Victoria H Mann; Clarence Lee; Paul J Brindley; Najib M El-Sayed; Joanna M Bridger; Matty Knight
Journal:  PLoS Negl Trop Dis       Date:  2021-09-08
  6 in total

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