Search bioRxiv⌕ Search

Biology subjects

Werne, J. P.

Publications and source records attributed to Werne, J. P..

2 recordsLinked to original sources

Abundance-activity decoupling in sulfur-cycling bacteria reflects viral infection types in meromictic lakes

Meromictic lakes serve as analogs for redox-stratified ancient oceans with well-mixed surface waters and anoxic bottoms. Purple and green sulfur bacteria (PSB, GSB) dominate the anoxic zones where light penetrates, and their biosignatures can be used to guide interpretations of geologic records. However, PSB and GSB biosignatures do not directly reflect the microbial community composition of modern lakes, posing a challenge for their interpretation. Here, we investigate this decoupling by integrating metagenomics, metatranscriptomics, and metaHi-C virus-host linkages with the geochemical profiles of three meromictic lakes. In the phototrophic microbial plates, PSBs transcriptional activity far exceeded their abundance (73% of the total microbial community activity versus 30% of the abundance), while GSBs displayed the opposite pattern. Concurrently, PSBs were exclusively associated with temperate viruses, while GSBs were targeted by lytic infections. Sulfate-reducing bacteria (SRB) and viruses encoding genes for sulfate reduction were most active where sulfide concentration was lowest. These results reveal that viral replication strategies are associated with the decoupling between abundance and activity in anoxygenic phototrophs and sulfate reducers. These relationships could accelerate sulfur regeneration, contribute to sustaining phototrophy, and ultimately reflect in the lakes bulk biosignatures.

microbiology↗

Genomics of viruses infecting green and purple sulfur bacteria in two euxinic lakes

Viral infections of marine bacteria modulate the rates of primary production and the cycling of organic and inorganic matter in the worlds oceans. Here, we investigated the hypothesis that viral infections influence the ecology of purple and green sulfur bacteria (PSB and GSB) in anoxic and sulfidic (euxinic) lakes, modern analogs of early Earth oceans. Over 200 high and medium quality viral contigs were identified in long-read metagenomes from the sediments and water column of Lime Blue and Poison Lake, respectively. We compared these sequences with 94 predicted prophages identified in the complete genomes of PSB (n = 213) and GSB (n = 33). Viral genomes carrying psbA, encoding the small subunit of photosystem II protein, were present in all three datasets (sediment, water column, and complete genomes). The ubiquity of these genes suggests that PSB and GSB viruses interfere with the light reactions of sulfur-oxidizing autotrophs in a process similar to viral modulation of photosynthesis in Cyanobacteria. Viruses predicted to infect PSB and GSB also encoded auxiliary metabolic genes involved in reductive sulfur assimilation as cysteine, a pathway not yet described in these sulfur bacteria, as well as genes involved in pigment production (crtF) and carbon fixation (CP12, zwf, PGD). These observations highlight the potential for viral modulation of metabolic markers used as proxies to interpret biogeochemical processes in early Earth oceans.

microbiology↗