Extensive variation in intracellular symbiont community composition among members of a single population of the wood-boring bivalve Lyrodus pedicellatus (Bivalvia: Teredinidae).

TitleExtensive variation in intracellular symbiont community composition among members of a single population of the wood-boring bivalve Lyrodus pedicellatus (Bivalvia: Teredinidae).
Publication TypeJournal Article
Year of Publication2006
AuthorsLuyten YA, Thompson JR, Morrill W, Polz MF, Distel DL
JournalAppl Environ Microbiol
Volume72
Issue1
Pagination412-7
Date Published2006 Jan
ISSN0099-2240
KeywordsAnimals, Bacteria, Bivalvia, Cloning, Molecular, DNA Primers, DNA, Bacterial, DNA, Ribosomal, Ecosystem, Electrophoresis, Capillary, Gene Library, Genetic Variation, Gills, Molecular Sequence Data, Phylogeny, Polymerase Chain Reaction, Ribotyping, RNA, Ribosomal, 16S, Sequence Analysis, DNA, Symbiosis
Abstract

Shipworms (wood-boring bivalves of the family Teredinidae) harbor in their gills intracellular bacterial symbionts thought to produce enzymes that enable the host to consume cellulose as its primary carbon source. Recently, it was demonstrated that multiple genetically distinct symbiont populations coexist within one shipworm species, Lyrodus pedicellatus. Here we explore the extent to which symbiont communities vary among individuals of this species by quantitatively examining the diversity, abundance, and pattern of occurrence of symbiont ribotypes (unique 16S rRNA sequence types) among specimens drawn from a single laboratory-reared population. A total of 18 ribotypes were identified in two clone libraries generated from gill tissue of (i) a single specimen and (ii) four pooled specimens. Phylogenetic analysis assigned all of the ribotypes to a unique clade within the gamma subgroup of proteobacteria which contained at least five well-supported internal clades (phylotypes). By competitive quantitative PCR and constant denaturant capillary electrophoresis, we estimated the number and abundance of symbiont phylotypes in gill samples of 13 individual shipworm specimens. Phylotype composition varied greatly; however, in all specimens the numerically dominant symbiont belonged to one of two nearly mutually exclusive phylotypes, each of which was detected with similar frequencies among specimens. A third phylotype, containing the culturable symbiont Teredinibacter turnerae, was identified in nearly all specimens, and two additional phylotypes were observed more sporadically. Such extensive variation in ribotype and phylotype composition among host specimens adds to a growing body of evidence that microbial endosymbiont populations may be both complex and dynamic and suggests that such genetic variation should be evaluated with regard to physiological and ecological differentiation.

DOI10.1128/AEM.72.1.412-417.2006
Alternate JournalAppl. Environ. Microbiol.
PubMed ID16391072
PubMed Central IDPMC1352252