Reversion of mutations in a live mycoplasma vaccine alters its metabolism
Sara M Klose1, David P De Souza2, Jillian F Disint1
1Asia-Pacific Centre for Animal Health, Melbourne Veterinary School, The University of Melbourne, Australia.
Abstract:
The live attenuated temperature sensitive vaccine strain MS-H (Vaxsafe® MS, Bioproperties Pty. Ltd., Australia) is widely used to control disease associated with M. synoviae infection in commercial poultry. MS-H was derived from a field strain (86079/7NS) through N-methyl-N'-nitro-N-nitrosoguanidine (NTG)-induced mutagenesis. Whole genomic sequence analysis of the MS-H and comparison with that of the 86079/7NS have found that MS-H contains 32 single nucleotide polymorphisms (SNPs). Three of these SNPs, found in the obgE, oppF and gapdh genes, have been shown to be prone to reversion under field condition, albeit at a low frequency. Three MS-H reisolates containing the 86079/7NS genotype in obgE (AS2), obgE and oppF (AB1), and obgE, oppF and gapdh (TS4), appeared to be more immunogenic and transmissible compared to MS-H in chickens. To investigate the influence of these reversions in the in vitro fitness of M. synoviae, the growth kinetics and steady state metabolite profiles of the MS-H reisolates, AS2, AB1 and TS4, were compared to those of the vaccine strain. Steady state metabolite profiling of the reisolates showed that changes in ObgE did not significantly influence the metabolism, while changes in OppF was associated with significant alterations in uptake of peptides and/or amino acids into the M. synoviae cell. It was also found that GAPDH plays a role in metabolism of the glycerophospholipids as well as an arginine deiminase (ADI) pathway. This study underscores the role of ObgE, OppF and GAPDH in M. synoviae metabolism, and suggests that the impaired fitness arising from variations in ObgE, OppF and GAPDH contributes to attenuation of MS-H.
Insights
Reversions in the MS-H vaccine strain of Mycoplasma synoviae, specifically in obgE, oppF, and gapdh genes, impact its metabolism and fitness. These genetic changes influence amino acid uptake and glycerophospholipid metabolism, contributing to vaccine attenuation.
Area of Science:
- Microbiology
- Poultry Health
- Vaccine Development
Background:
- The live attenuated temperature-sensitive vaccine strain MS-H is crucial for controlling Mycoplasma synoviae infections in poultry.
- MS-H was developed from a field strain using mutagenesis, resulting in 32 single nucleotide polymorphisms (SNPs).
- Three specific SNPs in obgE, oppF, and gapdh genes are prone to reversion, potentially affecting vaccine efficacy.
Purpose of the Study:
- To investigate the in vitro fitness and metabolic impact of MS-H vaccine strain reisolates with specific genetic reversions.
- To compare the growth kinetics and metabolite profiles of MS-H reisolates (AS2, AB1, TS4) with the original vaccine strain.
- To elucidate the roles of ObgE, OppF, and GAPDH in Mycoplasma synoviae metabolism.
Main Methods:
- Whole-genome sequencing to identify single nucleotide polymorphisms (SNPs) in MS-H and its reisolates.
- Growth kinetics analysis to assess in vitro replication rates.
- Steady-state metabolite profiling to analyze metabolic changes associated with genetic reversions.
Main Results:
- Reversions in obgE alone did not significantly alter M. synoviae metabolism.
- Changes in OppF were linked to significant alterations in peptide and/or amino acid uptake.
- GAPDH was found to be involved in glycerophospholipid metabolism and the arginine deiminase (ADI) pathway.
Conclusions:
- ObgE, OppF, and GAPDH play critical roles in Mycoplasma synoviae metabolism.
- Impaired fitness resulting from variations in these genes likely contributes to the attenuation of the MS-H vaccine strain.
- Understanding these metabolic contributions is vital for optimizing live attenuated vaccines for poultry.
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