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Unraveling the Unseen Players in the Ocean - A Field Guide to Water Chemistry and Marine Microbiology
Published on: November 5, 2014
Iron limitation differentially affects viral replication in key marine microbes
Charmaine C M Yung1,2, Rachel L Kelly3, Kathryn M Kauffman4
1Ocean Ecosystems Biology Unit, GEOMAR Helmholtz Centre for Ocean Research Kiel, Kiel 24148, Germany.
Abstract:
Viral lysis accounts for much of microbial mortality in the ocean, and iron (Fe) is a critical micronutrient that can limit phytoplankton growth. However, interactions between Fe nutrition of microbes, including both heterotrophic bacteria and phytoplankton, and viral lysis are not well known. Here, we present viral infection dynamics under Fe-limited and Fe-replete conditions for isolates of three types of marine picoplankton, the photosynthetic picoeukaryote Ostreococcus, the cyanobacterium Synechococcus, and the heterotrophic bacterium Vibrio. Iron limitation of Ostreococcus resulted in slowed growth and reduced viral burst sizes; this is similar to prior results from studies of larger eukaryotic phytoplankton, where reduced viral replication under Fe limitation is attributed to the viral reliance on host metabolism and replication machinery. Fe limitation of one Vibrio impacted dynamics of its virus similarly, lengthening the latent period before infected cells burst to release new viruses, and reducing the number of infective particles released upon lysis. In contrast, for another Vibrio isolate, Fe limitation had no discernible effect on replication of its virus. Furthermore, dynamics of three cyanophages that infect the same Synechococcus isolate were not affected by Fe limitation of the host, either in terms of latent period or burst size. The results show that some marine viruses, particularly cyanophages, can replicate efficiently even when host growth is compromised. These findings have implications for marine ecology and carbon cycling in Fe-limited regions of the global ocean.
Insights
Iron limitation affects marine virus-host dynamics differently across microbes. Some viruses, like cyanophages, can replicate even when their hosts
Area of Science:
- Marine microbiology
- Virology
- Biogeochemical cycles
Background:
- Viral lysis is a major driver of microbial mortality in marine ecosystems.
- Iron (Fe) is an essential micronutrient limiting phytoplankton productivity.
- The interplay between microbial iron nutrition and viral lysis dynamics is poorly understood.
Purpose of the Study:
- To investigate how iron availability influences viral infection dynamics in key marine picoplankton.
- To compare the effects of iron limitation on viruses infecting different host types: eukaryotic algae, cyanobacteria, and heterotrophic bacteria.
Main Methods:
- Culturing of marine picoplankton isolates (Ostreococcus, Synechococcus, Vibrio) under iron-limited and iron-replete conditions.
- Monitoring viral infection parameters including latent period and burst size.
- Analyzing viral replication efficiency in relation to host iron status.
Main Results:
- Iron limitation slowed Ostreococcus growth and reduced viral burst sizes, consistent with reliance on host metabolism.
- One Vibrio isolate showed altered viral dynamics (longer latent period, smaller burst size) under iron limitation.
- Another Vibrio isolate and its virus, as well as Synechococcus and its infecting cyanophages, showed no significant impact of iron limitation on viral replication.
- Cyanophages demonstrated efficient replication despite host iron limitation.
Conclusions:
- Viral replication strategies vary significantly in response to host iron availability.
- Certain marine viruses, notably cyanophages, can maintain high replication rates independently of host iron status.
- These findings have implications for understanding microbial population dynamics and carbon cycling in iron-limited oceans.
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