Literature DB >> 25024226

Microspatial gene expression patterns in the Amazon River Plume.

Brandon M Satinsky1, Byron C Crump2, Christa B Smith3, Shalabh Sharma3, Brian L Zielinski4, Mary Doherty5, Jun Meng3, Shulei Sun6, Patricia M Medeiros3, John H Paul4, Victoria J Coles5, Patricia L Yager3, Mary Ann Moran7.   

Abstract

We investigated expression of genes mediating elemental cycling at the microspatial scale in the ocean's largest river plume using, to our knowledge, the first fully quantitative inventory of genes and transcripts. The bacterial and archaeal communities associated with a phytoplankton bloom in Amazon River Plume waters at the outer continental shelf in June 2010 harbored ∼ 1.0 × 10(13) genes and 4.7 × 10(11) transcripts per liter that mapped to several thousand microbial genomes. Genomes from free-living cells were more abundant than those from particle-associated cells, and they generated more transcripts per liter for carbon fixation, heterotrophy, nitrogen and phosphorus uptake, and iron acquisition, although they had lower expression ratios (transcripts ⋅ gene(-1)) overall. Genomes from particle-associated cells contributed more transcripts for sulfur cycling, aromatic compound degradation, and the synthesis of biologically essential vitamins, with an overall twofold up-regulation of expression compared with free-living cells. Quantitatively, gene regulation differences were more important than genome abundance differences in explaining why microenvironment transcriptomes differed. Taxa contributing genomes to both free-living and particle-associated communities had up to 65% of their expressed genes regulated differently between the two, quantifying the extent of transcriptional plasticity in marine microbes in situ. In response to patchiness in carbon, nutrients, and light at the micrometer scale, Amazon Plume microbes regulated the expression of genes relevant to biogeochemical processes at the ecosystem scale.

Entities:  

Keywords:  biogeochemistry; gene expression ratios; marine bacteria; metagenomics; metatranscriptomics

Mesh:

Year:  2014        PMID: 25024226      PMCID: PMC4121788          DOI: 10.1073/pnas.1402782111

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  17 in total

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7.  Expression patterns of elemental cycling genes in the Amazon River Plume.

Authors:  Brandon M Satinsky; Christa B Smith; Shalabh Sharma; Marine Landa; Patricia M Medeiros; Victoria J Coles; Patricia L Yager; Byron C Crump; Mary Ann Moran
Journal:  ISME J       Date:  2017-04-07       Impact factor: 10.302

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