A toolbox for manipulating the genome of the major goat pathogen, Mycoplasma capricolum subsp. capripneumoniae

Author:

Gourgues Géraldine1,Manso-Silván Lucía23ORCID,Chamberland Catherine4,Sirand-Pugnet Pascal1ORCID,Thiaucourt François23ORCID,Blanchard Alain1ORCID,Baby Vincent5ORCID,Lartigue Carole1ORCID

Affiliation:

1. Université de Bordeaux, INRAE, BFP, UMR 1332, F-33140 Villenave d'Ornon, France

2. ASTRE, Université de Montpellier, CIRAD, INRAE, F-34398, Montpellier, France

3. CIRAD, UMR ASTRE, F-34398, Montpellier, France

4. Université de Sherbrooke, Département de biologie, Sherbrooke, Québec, J1K 2R1, Canada

5. Université de Montréal, Faculté de médecine vétérinaire, Saint-Hyacinthe, Québec, J2S 2M2, Canada

Abstract

Mycoplasma capricolum subspecies capripneumoniae (Mccp) is the causative agent of contagious caprine pleuropneumonia (CCPP), a devastating disease listed by the World Organisation for Animal Health (WOAH) as a notifiable disease and threatening goat production in Africa and Asia. Although a few commercial inactivated vaccines are available, they do not comply with WOAH standards and there are serious doubts regarding their efficacy. One of the limiting factors to comprehend the molecular pathogenesis of CCPP and develop improved vaccines has been the lack of tools for Mccp genome engineering. In this work, key synthetic biology techniques recently developed for closely related mycoplasmas were adapted to Mccp. CReasPy-Cloning was used to simultaneously clone and engineer the Mccp genome in yeast, prior to whole-genome transplantation into M. capricolum subsp. capricolum recipient cells. This approach was used to knock out an S41 serine protease gene recently identified as a potential virulence factor, leading to the generation of the first site-specific Mccp mutants. The Cre–lox recombination system was then applied to remove all DNA sequences added during genome engineering. Finally, the resulting unmarked S41 serine protease mutants were validated by whole-genome sequencing and their non-caseinolytic phenotype was confirmed by casein digestion assay on milk agar. The synthetic biology tools that have been successfully implemented in Mccp allow the addition and removal of genes and other genetic features for the construction of seamless targeted mutants at ease, which will pave the way for both the identification of key pathogenicity determinants of Mccp and the rational design of novel, improved vaccines for the control of CCPP.

Publisher

Microbiology Society

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