Literature DB >> 32789192

Large CRISPR-Cas-induced deletions in the oxamniquine resistance locus of the human parasite Schistosoma mansoni.

Geetha Sankaranarayanan1, Avril Coghlan1, Patrick Driguez1, Magda E Lotkowska1, Mandy Sanders1, Nancy Holroyd1, Alan Tracey1, Matthew Berriman1, Gabriel Rinaldi1.   

Abstract

Background. At least 250 million people worldwide suffer from schistosomiasis, caused by Schistosoma worms. Genome sequences for several Schistosoma species are available, including a high-quality annotated reference for Schistosoma mansoni. There is a pressing need to develop a reliable functional toolkit to translate these data into new biological insights and targets for intervention. CRISPR-Cas9 was recently demonstrated for the first time in S. mansoni, to produce somatic mutations in the omega-1 ( ω1) gene. Methods. We employed CRISPR-Cas9 to introduce somatic mutations in a second gene, SULT-OR, a sulfotransferase expressed in the parasitic stages of S. mansoni, in which mutations confer resistance to the drug oxamniquine. A 262-bp PCR product spanning the region targeted by the gRNA against SULT-OR was amplified, and mutations identified in it by high-throughput sequencing. Results. We found that 0.3-2.0% of aligned reads from CRISPR-Cas9-treated adult worms showed deletions spanning the predicted Cas9 cut site, compared to 0.1-0.2% for sporocysts, while deletions were extremely rare in eggs. The most common deletion observed in adults and sporocysts was a 34 bp-deletion directly upstream of the predicted cut site, but rarer deletions reaching as far as 102 bp upstream of the cut site were also detected. The CRISPR-Cas9-induced deletions, if homozygous, are predicted to cause resistance to oxamniquine by producing frameshifts, ablating SULT-OR transcription, or leading to mRNA degradation via the nonsense-mediated mRNA decay pathway. However, no SULT-OR knock down at the mRNA level was observed, presumably because the cells in which CRISPR-Cas9 did induce mutations represented a small fraction of all cells expressing SULT-OR. Conclusions. Further optimisation of CRISPR-Cas protocols for different developmental stages and particular cell types, including germline cells, will contribute to the generation of a homozygous knock-out in any gene of interest, and in particular the SULT-OR gene to derive an oxamniquine-resistant stable transgenic line. Copyright:
© 2021 Sankaranarayanan G et al.

Entities:  

Keywords:  Amplicon sequencing; CRISPR-Cas9; CRISPResso; Genome editing; Schistosoma mansoni; Sulfotransferase; Transfection; Transgenesis

Year:  2021        PMID: 32789192      PMCID: PMC7405262.2          DOI: 10.12688/wellcomeopenres.16031.2

Source DB:  PubMed          Journal:  Wellcome Open Res        ISSN: 2398-502X


  55 in total

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  10 in total

1.  Large CRISPR-Cas-induced deletions in the oxamniquine resistance locus of the human parasite Schistosoma mansoni.

Authors:  Geetha Sankaranarayanan; Avril Coghlan; Patrick Driguez; Magda E Lotkowska; Mandy Sanders; Nancy Holroyd; Alan Tracey; Matthew Berriman; Gabriel Rinaldi
Journal:  Wellcome Open Res       Date:  2021-01-20

Review 2.  Innovations and Advances in Schistosome Stem Cell Research.

Authors:  Hong You; Malcolm K Jones; Deanne J Whitworth; Donald P McManus
Journal:  Front Immunol       Date:  2021-03-05       Impact factor: 7.561

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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
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Review 5.  Vaccines for Human Schistosomiasis: Recent Progress, New Developments and Future Prospects.

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Review 7.  Transgenesis in parasitic helminths: a brief history and prospects for the future.

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Review 8.  Clustered Regularly Interspaced Short Palindromic Repeats/ CRISPR associated protein 9-mediated editing of Schistosoma mansoni genes: Identifying genes for immunologically potent drug and vaccine development.

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9.  Lost and Found: Piwi and Argonaute Pathways in Flatworms.

Authors:  Santiago Fontenla; Gabriel Rinaldi; Jose F Tort
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  10 in total

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