Diverse Virus Populations Coexist on Single Strains of Gut Bacteria
Viral "Social Lives" Key to Developing Treatments for Bacterial Infections
Published online
The researchers found that, despite competition between the viruses, different phage species preferred slower or faster growing cells that randomly appeared in the population. In this way, each phage species was able to find a separate niche on the same host, leading to stable coexistence. Lack of local access to nutrients (starvation), for instance, may slow the growth of some cells to preserve scarce resources. In the current study, two species of phage, labeled N and S, co-existed because N was more fit to survive in fast-growing bacterial cells, while phage S was better in slow-growing cells.
The designers of phage therapies hope to avert the problem in treatment with antibiotics, where a certain drug kills bacteria but leaves alive the fraction that by chance are the most resistant to that drug's mechanism of action. These survivors are a major concern because they have become resistant to available treatments.
"Knowing how more than one kind of phage can survive over time on a single bacterium could help in designing next-generation phage cocktails," said first study author
"No phage therapies have yet become standard treatments for bacterial infections, either because in past attempts a single phage did not kill all the targeted bacteria or because the bacteria evolved to be resistant, similar to the evolution of antibiotic resistance," adds
Labs are already testing phage treatments as an alternative to antibiotics. A co-author of the current paper,
Importance of Phage Ecology
Understanding species diversity is a fundamental question in ecology and evolutionary biology. A major factor enabling diversity, from birds to plants to bacteria, is that species find ways to coexist while still competing for resources. However, viruses were not traditionally thought of in this "social" context.
The current research team experimentally tested the long-held assumption that the genetic diversity of bacteria limits the diversity of viral species. This led to an expectation that one phage type would outcompete all others to be the lone survivor. However, just as multicellular organisms host a wide array of bacterial species within their microbiome, the new results show that a single bacterial strain can, itself, host a diverse community of phage species.
"Our study contributes to the burgeoning field of studying the social lives of viruses," adds
Interestingly, the presence of a diverse population of bacteria in the human gut is a sign of health, as the diverse set of species (microbiome) is better able to resist attempts at dominance by any invading, disease-causing species. By the same token, the population of viruses occupying the bacteria that live in the gut is also emerging as an important regulator of health, with abnormal phage mixes thought to contribute to conditions like sepsis.
"This work represents a shift in our understanding of phage ecology," said
Along with Drs. Pyenson and Schluter at NYU Langone, and
Funding for parts of the work was through the Life Science Research Foundation and the Simons Foundation provided to
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SOURCE NYU Langone Health System
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