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Staphylococcus aureus Small Colony Variants (SCVs): a road map for the metabolic pathways involved in persistent
Richard A Proctor1, André Kriegeskorte2, Barbara C Kahl2
1Departments of Medical Microbiology/Immunology and Medicine, University of Wisconsin School of Medicine and Public Health Madison, WI, USA.
Abstract:
Persistent and relapsing infections, despite apparently adequate antibiotic therapy, occur frequently with many pathogens, but it is an especially prominent problem with Staphylococcus aureus infections. For the purposes of this review, persistence will encompass both of the concepts of long term survival within the host, including colonization, and the concept of resisting antibiotic therapy even when susceptible in the clinical microbiology laboratory. Over the past two decades, the mechanisms whereby bacteria achieve persistence are slowly being unraveled. S. aureus small colony variants (SCVs) are linked to chronic, recurrent, and antibiotic-resistant infections, and the study of SCVs has contributed significantly to understanding of persistence. In our earlier work, defects in electron transport and thymidylate biosynthesis were linked to the development of the SCV phenotype (reviewed in 2006), thus this work will be discussed only briefly. Since 2006, it has been found that persistent organisms including SCVs are part of the normal life cycle of bacteria, and often they arise in response to harsh conditions, e.g., antibiotics, starvation, host cationic peptides. Many of the changes found in these early SCVs have provided a map for the discovery mechanisms (pathways) for the development of persistent organisms. For example, changes in RNA processing, stringent response, toxin-antitoxin, ribosome protein L6 (RplF), and cold shock protein B (CspB) found in SCVs are also found in other persisters. In addition, many classic persister organisms also show slow growth, hence SCVs. Recent work on S. aureus USA300 has elucidated the impact of aerobic expression of arginine deiminase genes on its ability to chronically colonize the skin and survive in abscesses. S. aureus SCVs also express arginine deiminase genes aerobically as well. Thus, many pathways found activated in electron transport type of SCVs are also increased in persisters that have intact electron transport. Many of these changes in metabolism result in slow growth; hence, small colonies are formed. Another common theme is that slow growth is also associated with reduced expression of virulence factors and enhanced uptake/survival within host cells. These adaptations to survive within the host are rooted in responses that were required for organisms to survive in a harsh environment long before they were mammals on the earth.
Insights
Persistent Staphylococcus aureus infections are often linked to small colony variants (SCVs). Understanding SCV mechanisms reveals how bacteria persist and resist antibiotics, aiding new treatment strategies.
Area of Science:
- Microbiology
- Infectious Diseases
- Bacterial Persistence
Background:
- Persistent and relapsing infections, particularly with Staphylococcus aureus, pose significant challenges despite antibiotic treatment.
- Bacterial persistence, defined as long-term survival and resistance to antibiotics, is a critical factor in recurrent infections.
- Small colony variants (SCVs) of S. aureus are strongly associated with chronic, relapsing, and antibiotic-resistant infections.
Purpose of the Study:
- To review and synthesize current understanding of the mechanisms underlying bacterial persistence, with a focus on Staphylococcus aureus small colony variants (SCVs).
- To explore how environmental stressors, including antibiotics, trigger persistence mechanisms.
- To highlight the role of specific metabolic pathways and genetic changes in bacterial survival and adaptation within the host.
Main Methods:
- Review of existing literature on bacterial persistence and S. aureus SCVs.
- Analysis of genetic and metabolic alterations associated with persistence phenotypes.
- Integration of findings from studies on SCVs and classic persister organisms.
Main Results:
- SCVs are linked to chronic infections and exhibit altered metabolism, including defects in electron transport and thymidylate biosynthesis.
- Persistence mechanisms, including those in SCVs, are part of the bacterial life cycle, often induced by environmental stress.
- Shared pathways like RNA processing, stringent response, toxin-antitoxin systems, and arginine deiminase gene expression are implicated in persistence across different bacterial types.
Conclusions:
- SCVs provide a model for understanding bacterial persistence, revealing conserved mechanisms of survival and antibiotic resistance.
- Adaptations for persistence, such as slow growth and altered metabolism, enhance bacterial survival within the host environment.
- Understanding these survival strategies is crucial for developing novel therapeutic approaches against persistent bacterial infections.
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