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Weissberg, O.

Publications and source records attributed to Weissberg, O..

2 recordsLinked to original sources

Significant organic carbon acquisition by Prochlorococcus in the oceans

Marine phytoplankton are responsible for about half of the photosynthesis on Earth. Many are mixotrophs, combining photosynthesis with heterotrophic assimilation of organic carbon but the relative contribution of these two carbon sources is not well quantified. Here, single-cell measurements reveal that Prochlorococcus at the base of the photic zone in the Eastern Mediterranean Sea are obtaining only ~20% of carbon required for growth by photosynthesis. Consistently, laboratory-calibrated evaluations of Prochlorococcus photosynthesis indicate that carbon fixation is systematically too low to support published in situ growth rates in the deep photic layer of the Pacific Ocean. Furthermore, agent-based model simulations show that mixotrophic cells maintain realistic growth rates and populations 10s of meters deeper than obligate photo-autotrophs, deepening the nutricline and Deep Chlorophyll Maximum by ~20 m. Time-series of Prochlorococcus ecotype-abundance from the subtropical North Atlantic and North Pacific suggest that up to 30% of the Prochlorococcus cells live where light intensity is not enough to sustain obligate photo-autotrophic populations during warm, stratified periods. Together, these data and models suggest that mixotrophy underpins the ecological success of a large fraction of the global Prochlorococcus population and its collective genetic diversity.

microbiology↗

Phototroph-heterotroph interactions during growth and long-term starvation across Prochlorococcus and Alteromonas diversity

Microbial interactions such as those between phytoplankton and bacteria been studied intensively using specific model organisms, due to their potential impact on ecosystems and biogeochemistry. Yet, to what extent interactions differ between closely related organisms, or how these interactions change over time or culture conditions, remains unclear. Here, we characterize the interactions between five strains each of two globally abundant marine microorganisms, Prochlorococcus (a phototroph) and Alteromonas (a heterotroph), from the first encounter between individual strains and over more than a year of repeated cycles of exponential growth and long-term nitrogen starvation. Prochlorococcus-Alteromonas interactions had little effect on traditional growth parameters such as Prochlorococcus growth rate, maximal fluorescence or lag phase, affecting primarily the dynamics of culture decline, which we interpret as representing cell mortality and lysis. The shape of the Prochlorococcus decline curve and the carrying capacity of the co-cultures were determined by the phototroph and not the heterotroph strains involved. Comparing various mathematical models of culture mortality suggests that Prochlorococcus death rate increases over time in mono-cultures but decreases in co-cultures, with cells potentially becoming more resistant to stress. Our results demonstrate intra-species differences in ecologically-relevant co-culture outcomes. These include the recycling efficiency of N and whether the interactions are mutually synergistic or competitive. They also highlight the information-rich growth and death curves as a useful readout of the interaction phenotype. Significance StatementInteractions between phytoplankton and marine bacteria impact global ecosystems and biogeochemistry. Here, we explore how intra-species variability affects the interactions between Prochlorococcus, a globally abundant photosynthetic cyanobacetrium and Alteromonas, a heterotrophic bacterium that lives off and recycles organic matter. Under nitrogen starvation, Prochlorococcus growing alone increasingly accumulate damage and die, whereas in co-culture with Alteromonas they become increasingly resilient. The specific Prochlorococcus strain had a much larger effect on co-culture behavior than the Alteromonas strain, determining whether the interactions are mutually synergistic or potentially competitive. These results show how ecologically relevant outcomes of interactions may vary between closely related microorganisms, and highlight growth and death curves from laboratory (co)-cultures as information-rich views of microbial growth and death.

microbiology↗