Abstract
Coastal aquatic environments are typically more highly productive and dynamic than open ocean ones. Despite these differences, cyanobacteria from the genus Synechococcus are important primary producers in both types of ecosystems. We have found that the genome of a coastal cyanobacterium, Synechococcus sp. strain CC9311, has significant differences from an open ocean strain, Synechococcus sp. strain WH8102, and these are consistent with the differences between their respective environments. CC9311 has a greater capacity to sense and respond to changes in its (coastal) environment. It has a much larger capacity to transport, store, use, or export metals, especially iron and copper. In contrast, phosphate acquisition seems less important, consistent with the higher concentration of phosphate in coastal environments. CC9311 is predicted to have differences in its outer membrane lipopolysaccharide, and this may be characteristic of the speciation of some cyanobacterial groups. In addition, the types of potentially horizontally transferred genes are markedly different between the coastal and open ocean genomes and suggest a more prominent role for phages in horizontal gene transfer in oligotrophic environments.
MeSH Terms
Adaptation, Physiological
Base Pairing
Base Sequence
Chromosomes, Bacterial
Environment
Frameshift Mutation
Genome, Bacterial
Models, Biological
Molecular Sequence Data
Open Reading Frames
Operon
Phylogeny
Point Mutation
RNA, Transfer
Synechococcus/genetics,physiology
Authors & Affiliations
17 authors, click to expand affiliations / ORCID
Palenik Brian
Scripps Institution of Oceanography, University of California at San Diego, La Jolla, CA 92093, USA.
Ren Qinghu
Dupont Chris L
Myers Garry S
Heidelberg John F
Badger Jonathan H
Madupu Ramana
Nelson William C
Brinkac Lauren M
Dodson Robert J
Durkin A Scott
Daugherty Sean C
Sullivan Stephen A
Khouri Hoda
Mohamoud Yasmin
Halpin Rebecca
Paulsen Ian T
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