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Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
An activity-resistance tradeoff constrains enzyme evolution
Abstract:
The presence of self-resistance genes in antibiotic-producing organisms poses a paradox: how can resistance evolve before the antibiotic exists, and how can an antibiotic producer arise without first evolving resistance? Here we examine the evolutionary origins of self-resistance to mycophenolic acid (MPA), an inhibitor of inosine monophosphate dehydrogenase (IMPDH). The MPA biosynthetic gene cluster (BGC) includes a resistant IMPDH-B. Homologs of IMPDH-B occur not only in MPA producers but also in many non-producing fungi, where remnants of the MPA BGC remain detectable. The phylogeny of IMPDH-B is incongruent with the fungal species tree, consistent with multiple horizontal gene transfer events between Aspergillus and Sordariomycetes. We characterized eleven extant IMPDH-Bs, five from MPA producers and six from nonproducers, along with seven resurrected ancestral enzymes (Anc1-Anc7). MPA resistance appeared between Anc2 and Anc3 and coincided with a loss of catalytic efficiency. Across both ancestral and extant enzymes, MPA resistance correlated strongly with reduced activity, revealing a robust activity-resistance trade-off that has persisted for millions of years. Unexpectedly, both the IMPDH-Bs and ancestral enzymes Anc3-Anc7 were also resistant to ribavirin-5'-monophosphate (RVP), an IMP-competitive inhibitor. Because MPA and RVP bind to similar enzyme conformations, the activity-resistance trade-off likely reflects a design constraint imposed by the need to maintain resistance to multiple inhibitors. Intriguingly, although Anc1 and Anc2 are equally sensitive to MPA, Anc2 shows reduced susceptibility to RVP. This pattern suggests that pre-existing resistance to another IMPDH inhibitor may have created a permissive background for the later evolution of MPA biosynthesis.
Significance:
Antibiotic producers must be resistant to the toxins that they produce, but how such self-resistance develops is a mystery. The mycophenolic acid (MPA) biosynthetic gene cluster (BGC) encodes a resistant variant of the MPA target IMPDH (IMPDH-B). Many fungi retain IMPDH-B although they have lost the ability to produce MPA. The IMPDH-B and species phylogenies are incongruent, suggesting evolution of the BGC was complicated. MPA resistance correlates with low catalytic efficiency in modern and ancestral IMPDHs, revealing a robust design constraint tradeoff. Surprisingly, IMPDH-Bs are also resistant to an IMP-competitive inhibitor (RVP). RVP resistance appears to have emerged before MPA resistance. Perhaps resistance to RVP created a background that permitted the genesis of a new toxin.
Insights
Antibiotic-producing fungi evolved self-resistance to mycophenolic acid (MPA) through a trade-off with enzyme efficiency. Pre-existing resistance to ribavirin-5'-monophosphate (RVP) may have paved the way for MPA resistance.
Area of Science:
- Biochemistry
- Evolutionary Biology
- Genetics
Background:
- Antibiotic producers must possess self-resistance mechanisms to survive their own toxins.
- The evolutionary origin of antibiotic self-resistance, particularly before antibiotic production, remains poorly understood.
- Mycophenolic acid (MPA) is an antibiotic produced by fungi that inhibits inosine monophosphate dehydrogenase (IMPDH).
Purpose of the Study:
- To investigate the evolutionary origins of self-resistance to MPA in antibiotic-producing organisms.
- To understand the relationship between MPA resistance and the catalytic efficiency of IMPDH.
- To explore the role of other IMPDH inhibitors in the evolution of MPA resistance.
Main Methods:
- Phylogenetic analysis of IMPDH-B genes and fungal species.
- Characterization of extant and resurrected ancestral IMPDH enzymes.
- Enzyme activity assays to assess MPA and ribavirin-5 extquotesingle-monophosphate (RVP) resistance and catalytic efficiency.
Main Results:
- MPA resistance in IMPDH-B evolved between ancestral enzymes Anc2 and Anc3, coinciding with a significant loss of catalytic efficiency.
- A persistent trade-off between MPA resistance and enzyme activity was observed across all tested enzymes.
- Both extant and ancestral IMPDH-Bs exhibited resistance to RVP, with RVP resistance potentially preceding MPA resistance.
Conclusions:
- The evolution of MPA resistance in fungi is constrained by a trade-off with IMPDH catalytic efficiency.
- Pre-existing resistance to RVP may have created a permissive evolutionary background for the subsequent development of MPA resistance.
- Horizontal gene transfer events likely played a significant role in the distribution of IMPDH-B genes across fungal lineages.
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