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Applied and Environmental Microbiology, April 2007, p. 2314-2323, Vol. 73, No. 7
0099-2240/07/$08.00+0 doi:10.1128/AEM.01986-06
Copyright © 2007, American Society for Microbiology. All Rights Reserved.

California Institute of Technology, Pasadena, California 91125,1 Monterey Bay Aquarium Research Institute, Moss Landing, California 950392
Received 23 August 2006/ Accepted 20 January 2007
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Although morphologically similar, Osedax species differ ecologically. For example, Osedax rubiplumus, a rapid colonizer of new whalebones, was completely replaced by Osedax frankpressi in less than 10 months (12; Braby et al., unpublished). Additionally, novel species of Osedax have been found at experimental whale falls implanted at various depths in Monterey Bay, each experiencing unique methane, sulfide, and oxygen levels and temperature regimens (Braby et al., unpublished; V. J. Orphan, personal communication). Thus, it is reasonable to suggest that physiochemical differences may play a role in the ecological distribution of Osedax species as they do for other species in Monterey Bay (10).
In this study, we examine symbiont diversity in Osedax isolates from Monterey Bay. Our goals were to characterize the symbiont identity and abundance and to explore the mechanisms of symbiont and nutrient acquisition in these worms. This study was stimulated by the discovery of two new Osedax species on whalebones from different depths: Osedax Monterey Bay species 3 (Osedax sp. MB3) from 1,017-m and Osedax Monterey Bay species 4 (Osedax sp MB4) from 381-m depths. The new species differ morphologically and genetically from previously described Osedax species, and formal descriptions are under way (G. Rouse, unpublished data). For now, we refer to the new worms as Osedax sp. MB3 and Osedax sp. MB4 (also called "rosy" and "yellow collar," respectively [Braby et al., unpublished]). Herein, we characterize the diversity and abundance of symbionts associated with the new species and compare them with associations previously observed for both O. rubiplumus and O. frankpressi. To learn more about the early development of Osedax symbiosis, we investigated juveniles of Osedax frankpressi that had recently colonized experimentally deployed whalebones. Additionally, we conducted a comparative study of all three species to determine their capacities for degrading collagen, a primary protein constituent of bony tissues.
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10 m from the natural whale fall at 2,891 m (Fig. 1E) (14). Osedax frankpressi adults (Fig. 1A) (collected at 36.63°N, 122.43°W at a 2,891-m depth, R/V Tiburon dives T742 and T932) were included for molecular and enzymatic comparisons. Representative samples were surface treated with 100% ethanol and frozen at 80°C or preserved directly in paraformaldehyde for fluorescence in situ hybridization (FISH)microscopy (see specifics below). |
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TABLE 1. Osedax species used in this studya
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FIG. 1. Osedax spp. (A) Adult O. frankpressi. (B) Osedax sp. MB3 ("rosy"). (C) Osedax sp. MB4 ("yellow collar"). (D) Juvenile O. frankpressi recruited to implanted whalebones. (E) Implanted whalebones (partial jawbone of a blue whale). All bars are 1 mm, except in E (bar, 70 cm).
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TABLE 2. Bacterial ribosomal 16S rRNA clone library results for Osedax spp.a
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FIG. 2. Phylogenetic relationships, based on 16S rRNA, between free-living members of the Oceanospirillales (Gammaproteobacteria) and the symbiont ribotypes associated with Osedax worms (boldfaced taxa designated by dive.individual.clone) (Table 2). The number following the dive represents an individual worm, and the following letter/number is a unique 16S sequence from clone libraries. GenBank accession numbers for sequences acquired during this study are DQ911529 to DQ911547. The maximum likelihood tree was generated from sequences treated with the GTR+I+G model. Arrows at nodes indicate support for the internal clade (phylotypes P1 to P6) designations. The numbers at the nodes represent bootstrap values (maximum likelihood)/posterior probability values (Bayesian).
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QPCR.
Quantitative PCR (QPCR) reactions for all DNA extracts (described above) were conducted in triplicate and contained 10 µl SYBR green PCR master mix (Applied Biosystems), 6.5 µl RNase- and DNase-free deionized water, 1 µl DNA sample (DNA extracts ranged from 10 to 160 ng µl1 but were normalized to 10 ng µl1 and diluted 100 times), and final primer concentrations of 300 nM for bacterial 16S rRNA and 200 nM for eukaryote 18S rRNA. The 154-bp partial bacterial 16S rRNA gene target was amplified using primers 303F (5'-CACCGGCAGTCTCCTTAGAG-3') (melting temperature, 60.0°C) and 457R (5'-GAGATAGCTTGGTGCCTTCG-3') (melting temperature, 60.0°C), designed using Primer3 (27). These primers were empirically determined to amplify all clones from a 16S rRNA gene library of Osedax sp. MB3 microbes (n = 96) (Table 1) and were thus considered to be adequate to assess microbially diverse populations within these species. In addition, a 181-bp partial eukaryote 18S rRNA gene target was amplified using primers Euk338F and Euk519R (15). Serial dilutions of the pCR4 plasmid (Invitrogen) that contained either a representative partial symbiont 16S rRNA gene sequence (isolated from Osedax sp. MB3 using primers 27F and 1492R) (18) or a partial eukaryote 18S rRNA gene sequence (isolated from Osedax sp. MB4 using general primers 82F and 1520R) (19) were used as standards for the QPCR assays. Plasmids used as standards for the QPCR assays were purified using a QIAGEN Mini plasmid prep kit (QIAGEN, Valencia, CA). Additionally, quantified E. coli DNA was used as a negative control for the eukaryote 18S rRNA gene assay and a positive control for the bacterial 16S rRNA gene assay. Slopes of standard curves (regression lines of cycle threshold [CT] versus log N, the log of the initial DNA concentration in standard templates) were used to estimate amplification efficiency in our QPCR assays. Primer set efficiencies were
120% for both sets (slope of CT versus concentration = 2.9). QPCR assays were run on an ABI Prism 7700 sequence detector system under the following thermal conditions: incubation for 2 min at 50°C and Taq activation for 10 min at 95°C, followed by 40 cycles of 15 s of denaturation at 95°C and 60 s of annealing/extension at 55°C. A dissociation curve from each QPCR reaction was examined to further ensure proper target sequence amplification. DNA abundance was calculated from the number of cycles necessary for the fluorescence to exceed a set threshold value (CT) relative to standard controls with known DNA concentrations. Average numbers of 16S rRNA operons per symbiont genome and genome copies per symbiont cell are not known for Osedax. For invertebrate hosts from reducing habitats, estimates of total symbiont rRNA gene copy abundance range from
1 x 1010 to 9 x 1010 g1 (wet weight), while cell abundance estimates usually range from 109 to 1011 cells g1 (wet weight) symbiont-containing tissue (20). In this study, the ratios of bacteria 16S rRNA to eukaryote 18S rRNA are given in Table 3, after subtracting the difference from the negative control.
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TABLE 3. Weights, QPCR results, and collagenolytic activity for whole individuals of various Osedax speciesa
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FIG. 3. Phylogenetic relationships, based on 16S rRNA, between free-living members of the Epsilonproteobacteria and bacterial ribotypes associated with Osedax sp. MB3 (boldfaced taxa designated by dive.individual.clone) (Table 2). The number following the dive represents an individual worm, and the following letter/number is a unique 16S sequence from clone libraries. GenBank accession numbers for sequences acquired during this study are EF100881 to EF100889. The numbers at the nodes represent bootstrap values (neighbor joining/parsimony).
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FIG. 4. Osedax species symbionts. Images of FISH microscopy of the primary symbiont within the roots of Osedax sp. MB3 (A and D), Osedax sp. MB4 (B and E), and juvenile recruits of O. frankpressi (C and F) are shown. A to F are hybridizations with the symbiont-specific sym435 probe labeled with Cy3 (shown in red). C and F are dual stained with a eukaryote-specific Cy5-labeled probe (shown in green). All images are embedded sections (7 to 20 µm thick) that were also stained with DAPI prior to imaging (shown in blue, except in D). Images were captured with softWoRx 3.4.4 (Applied Precision). Intact bacteriocytes (arrowheads) and the external surface of root tissue (arrows) are shown. s, symbiont. All bars are 50 µm, except in E (bar, 10 µm).
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Statistics.
The Wilcoxon Mann-Whitney test was used to test for differences in distribution between data sets for QPCR, collagenolytic activity, and weight measurements. Similarly, Kendall's
nonparametric test was used to test for correlations between data sets (JMP v6.0; SAS Institute Inc.). Simpson's diversity index (D) was used to estimate overall microbial diversity associated with each host species.
Nucleotide sequence accession numbers.
GenBank accession numbers for sequences acquired during this study are DQ911529 to DQ911547, EF100881 to EF100889, and EF11724 to EF117251.
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6 mm in height) for Osedax sp. MB3 and 0.01 ± 0.01 g (
4 mm in height) for Osedax sp. MB4 (Table 3). They are much smaller than adult O. frankpressi (0.34 ± 0.17 g;
15 mm in height) and O. rubiplumus (1.2 ± 0.5 g;
25 mm in height) isolates from Monterey Canyon but comparable to Osedax mucofloris isolates recovered from off the coast of Sweden (
5.5 mm in height) (9). The root tissue of recruits of O. frankpressi appeared to be morphologically different from those of adults. Juvenile root tissues were yellow, instead of the brilliant green, as seen in adults, and the structural complexity of this tissue appeared to be less developed (e.g., fewer convolutions and less vascularization) (Fig. 1D versus an adult in A).
Oceanospirillales-symbiont diversity.
Osedax sp. MB3 and MB4 hosted bacterial 16S rRNA ribotypes (Table 2) that were 91 to 98% similar to Oceanospirillales ribotypes previously associated, intracellularly, with O. frankpressi (Osedax_sym1) (GenBank accession number AY549004) and O. rubiplumus (Osedax_sym2) (GenBank accession number AY549005). Together, these ribotypes, along with several free-living ribotypes (for example, UMB6E and UMB8C, isolated from Boston Harbor), form a group within the Gammaproteobacteria (Fig. 2). Within this group, we refer to well-supported internal clades as phylogenetic types or phylotypes (P1 to P6) (Fig. 2). The Oceanospirillales phylotypes (P5 and P6) recovered from Osedax sp. MB4 (dive T933) differed by 6 to 9% from other Oceanospirillales compared in this study (Fig. 2). Together, Oceanospirillales phylotypes comprised 94% of the 90 16S ribotypes recovered from Osedax sp. MB4 (Table 2). The Oceanospirillales phylotype (P1) recovered from Osedax sp. MB3 (dives T776 and T931) differed by 2 to 4% from the previously described phylotypes (Fig. 2), but they comprised only 37% of the total bacterial diversity observed in this host species (other microbes are considered below). Oceanospirillales recovered from juvenile O. frankpressi (T769r) differed by <0.4% from the Osedax_sym1 phylotype (P4; from adult O. frankpressi) and comprised 84% of the clones recovered from this species (Table 2). Phylotypes P2, P3, and P4 represent diversity observed in O. frankpressi symbionts (dive T742, September 2004) collected after the initial individuals described previously by Goffredi et al. (dive T486, October 2002) (14).
The diversity of Oceanospirillales found in Osedax worms varied among host species and across time. The Oceanospirillales associated with Osedax sp. MB4 were the most divergent (average intraspecific divergence of 4%) (Table 1 and Fig. 2). For example, both individuals T933_1 and T933_2 hosted two phylotypes (P5 and P6) (Fig. 2). Osedax sp. MB3 hosted ribotypes (within phylotype P1) that differed by as much as 3.2% in individual T931_1 (average intraspecific divergence of 1.2%) (Table 1 and Fig. 2). Additionally, Osedax sp. MB3, obtained in January 2006 (dive T931), possessed Oceanospirillales ribotypes that differed by
2.0% 16S rRNA divergence from the previous collection (January 2005, dive T776), with the exception of one ribotype (T931_1_E6). Individual worms from dive T776 did not reveal evidence of multiple infections (i.e., divergence) by Oceanospirillales. Similarly, Osedax frankpressi juveniles sampled for this study (T69r) also exhibited no evidence of multiple infections, but ribotypes found in the juveniles differed from those of adult O. frankpressi individuals sampled from the same whale carcass 2 months earlier (T742). Two adult O. frankpressi individuals (T742_7 and T742_10) were infected by Oceanospirillales strains that differed by as much as 3.3% for 16S rRNA (average intraspecific divergence of 2%) (Table 1 and Fig. 2).
Overall microbial diversity.
In addition to the "primary" Oceanospirillales symbiont, root tissues of Osedax sp. MB3 included a number of other microbial ribotypes, including members of the Epsilonproteobacteria (43% of clone library representatives), Cytophaga-Bacteroides (8%), and fusobacteria (3%) (Table 2). This pattern was observed in different individuals collected 1 year apart, in January 2005 (during dive T776) and January 2006 (T931) (comparison not shown), and for an individual adult of Osedax sp. MB3 that grew on cow bones deployed near the 1,081-m whale fall (30% Oceanospirillales, 44% Epsilonproteobacteria, and 16% Cytophaga-related bacteria, based on clone libraries) (W. J. Jones, personal communication). The majority of the epsilonproteobacterial ribotypes were related to sulfur-oxidizing Arcobacter (53 of 111 clones) and Sulfurimonas (45 of 111 clones) species and relatives of Sulfurospirillum (15 of 111 clones) (Table 2 and Fig. 3) (see reference 4 for groupings). Many of these ribotypes are most closely related to specific ribotypes previously recovered from the whale fall bones themselves (14), including the Arcobacter relatives C3A6 (GenBank accession number AY548993) and C13A7 (accession number AY548997) and the Sulfurospirillum-related strain C3F4 (accession number AY548994) (Fig. 3). Similarly, many Cytophaga strains recovered from the worms were most closely related to C3D9 (accession number AY548988) and C3C8 (accession number AY548984) and the low-G+C relative strain C3C9 (accession number AY548990). FISH microscopy, however, was negative for the presence of Cytophaga-related bacteria associated with Osedax sp. MB3 (Table 2).
Measures of Simpson's diversity index (D) reflected the increased overall microbial diversity within Osedax sp. MB3, the host species with the highest observed diversity of rRNA sequences (Simpson's D = 5.7) compared to Osedax sp. MB4 and juvenile O. frankpressi, with lower bacterial diversities and Simpson's D values of 1.1 and 1.4, respectively.
Symbiont abundance in host tissues.
The ratio of bacterial to eukaryote rRNA in whole Osedax individuals was estimated by QPCR analysis. Ratios varied from
0.4 to 1.6 among Osedax species (Table 3), with the lowest values observed in both adult and juvenile O. frankpressi individuals and the highest ratios found in Osedax sp. MB4. A significant inverse correlation existed (P = 0.0075, Kendall's
) between the abundance of bacterial DNA and adult host size. The highest ratio (1.6) occurred in the smallest species, Osedax sp. MB4, an intermediate value (0.57) occurred in Osedax sp. MB3, and the lowest value (0.38) occurred in the largest species, O. frankpressi (Table 3). It should be noted that O. frankpressi recruits had a ratio similar to that of the adults (ratio of 0.44; P = 0.38, Wilcoxon test) (Table 3), despite their small size. Thus, the inverse correlation between adult size and bacterial loads appears to be a species-level trait and not directly a function of individual size.
FISH microscopy, using the sym435 probe targeting the Oceanospirillales symbiont, corroborated the patterns seen in clone libraries and QPCR analysis. Root tissues from Osedax sp. MB4 demonstrated high numbers of symbiont-containing cells (i.e., bacteriocytes) (Fig. 4B and E). In contrast, the Oceanospirillales symbiont sparsely populated root tissues of Osedax sp. MB3, although it was concentrated within similar, yet scattered, bacteriocytes (Fig. 4A and D). For both of the new species and O. frankpressi juveniles, the Oceanospirillales symbionts were concentrated mostly in a distinct zone along the inner margins of the root tissue. This was particularly apparent when host tissue was stained in addition to the symbiont (Fig. 4C and F). Consistent with the clone libraries, Osedax sp. MB3 also had high numbers of bacteria that were unrelated to Oceanospirillales; negative results were obtained with the sym435 and Gam42 probes. These other bacteria were always external, some in intimate contact with the epithelial margin, but also concentrated in mucous surrounding the animal (Fig. 5A to D).
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FIG. 5. Additional bacteria associated with Osedax sp. MB3. All are hybridizations with a general bacterial EUB338 probe labeled with Cy3 (shown in red). Bars, 50 µm (A) and 10 µm (B to D). m, mucous layer; b, bacteria.
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Osedax sp. MB4 was significantly different from the other species when the degradations of collagen types I and IV were considered together (P < 0.09, Wilcoxon test). Osedax frankpressi and Osedax sp. MB3 possessed similar intermediate collagenolytic activities (P = 0.4 to 0.5, Wilcoxon test). The rate of collagenase activity in Clostridium, the positive standard, was three times faster than that of the Osedax species. This finding suggests that the enzymes responsible for this activity in Osedax may not be true collagenases but rather may be proteases with the capability of cleaving amino acids from the very tightly wound collagen molecule (32). Unfortunately, due to small sample sizes, general protease activity could not be measured directly in Osedax tissues.
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Although both new species of Osedax possess an Oceanospirillales-type symbiont within intracellular bacteriocytes, differences in bacterial abundance exist among the Osedax species investigated in this study. Osedax sp. MB4 is the smallest species in Monterey Bay, and symbiont abundance represented a proportionally greater fraction of the host. Symbiont abundance relative to the host varies dramatically in other associations and is influenced by a number of factors, including environmental variation, nutritional source, and developmental stage of the host (5, 6, 11, 34). Greater relative symbiont abundance might contribute to greater nutrition and more rapid growth rates, which might be critical for species that exploit unevenly distributed ephemeral resources. The transfer of symbiont nutrients to the host, whether via digestion of the symbionts directly or via translocation of nutrients from the symbionts, may also be related to microbial proliferation rates and abundance (33). Two previous studies provided evidence for the direct digestion of symbionts by Osedax. First, the incorporation of membrane-bound symbiont-produced fatty acids into host cellular components (e.g., wax esters), a process that would require symbiont digestion by the host, has been demonstrated previously (14). Second, there is new evidence of degradation of entire symbiont-containing bacteriocytes as an initiation to symbiont digestion in both O. rubiplumus and O. frankpressi (S. Katz and M. Bright, unpublished data).
Unlike Osedax sp. MB4, Osedax sp. MB3 possessed additional external bacteria that were distinct from the primary internal Oceanospirillales symbiont. FISH microscopy identified all internal bacteria as the Oceanospirillales symbiont, which was supported by a dominance of this ribotype in the clone libraries (Table 2). FISH microscopy, however, also revealed numerous bacteria associated with the outer mucous layer of Osedax sp. MB3 that did not hit with the gammaproteobacterial or Oceanospirillales symbiont-specific probes but that did hit with a general bacterial probe (Fig. 5). Clone libraries for whole animals revealed that
63% of the recovered ribotypes consisted of phylogenetically distinct groups, including Epsilonproteobacteria and Cytophaga/Fusobacterium (Table 2). These groups are possibly associated with the exterior of this particular worm species (although initial FISH microscopy using a Cytophaga-specific probe was negative); however, additional FISH microscopy is necessary to confirm this.
The presence of external bacteria on Osedax sp. MB3 was consistent for individual worms collected 12 months apart as well as for an individual adult of Osedax sp. MB3 that grew on cow bones deployed nearby, suggesting a persistent association (W. J. Jones, personal communication). This was demonstrated both microscopically and by the presence of non-Oceanospirillales bacteria in the clone libraries, with consistent percentages of the dominant groups, including Epsilonproteobacteria (43 to 44% of recovered ribotypes) and Cytophaga/Fusobacterium (8 to 16%). Previously, bacteria other than Oceanospirillales endosymbionts were found to comprise less than 10% of the microbes associated with Osedax hosts (14). The greater fraction of external bacteria associated with Osedax sp. MB3 is unique to this species. Many of the recovered bacterial phylotypes, however, are related to those recovered within the whale fall environment itself (i.e., bones and surrounding sediment) (14; V. J. Orphan, personal communication). It is not known whether these external bacteria confer an additional nutritional capability or another unknown influence on the worm. The association of invertebrate hosts with both internal and external bacteria is not unprecedented. For example, a recently discovered snail from hydrothermal vents in the Indian Ocean demonstrates partnerships with a diverse community of epibionts and a single endosymbiont (13). The epibionts of this snail belong to several distinct assemblages of bacteria, including Epsilonproteobacteria, while the endosymbiont is a member of the Gammaproteobacteria. Like Osedax, the exact role of these diverse bacteria, and their influence on the host, is not yet known.
Vestimentiferan tubeworms, siboglinid relatives of Osedax, are infected each generation with symbionts from the local environment in which the worm larvae settle (23; R. C. Vrijenhoek, M. Duhaime, and W. J. Jones, unpublished data). It is not known whether Osedax acquires symbionts in a similar manner; however, preliminary microscopic and molecular investigations have revealed negative evidence for the presence of symbionts associated with the eggs of mature Osedax females (S. K. Goffredi, unpublished data). Similarly, the diversity of Oceanospirillales symbiont ribotypes associated within and among individuals of three Osedax species is consistent with the hypothesis that these worms acquire their symbionts from the environment. Several individuals of Osedax sp. MB4 hosted symbiont ribotypes that differed by as much as 6% for the small-subunit (16S) rRNA. Furthermore, a recently discovered population of O. rubiplumus (at a depth of 1,700 m in Monterey Canyon) (unpublished data) possesses a gammaproteobacterial symbiont that is
20% divergent for 16S rRNA from the O. rubiplumus symbionts discovered in 2002 (Goffredi, unpublished).
Juvenile recruits of O. frankpressi appeared almost identical to adults in both the composition and identity of associated microbes. The root tissue of recruits, however, appeared to be morphologically different from those of adults, with less complexity in structure and color. The timing of symbiont acquisition is not known for Osedax, and we expect that future collections of these recruits may reveal a different stage of symbiont integration and development as the worms mature.
The Oceanospirillales symbionts associated with Osedax belong to a diverse bacterial group known for the heterotrophic degradation of complex organic compounds. Genes necessary for autotrophic CO2 fixation, including both Rubisco and ATP citrate lyase, were not detected in O. rubiplumus or O. frankpressi symbionts (14). A similar, presumably heterotrophic, strategy of organic carbon utilization by the symbionts is assumed for other Osedax species as well. The dominant carbon source available to the intracellular Oceanospirillales symbionts includes collagen and cholesterol, which are abundant in whalebones. Previously measured bulk
13C values for O. frankpressi tissues (12.5 to 13.5
) were consistent with
13C values for the collagen fraction in modern and fossil whalebones (14 to 17
) rather than the cholesterol fraction (22 to 26
) (29), suggesting a primary reliance on whalebone collagen.
Our observation of collagenolytic enzyme activity in three species of Osedax suggests the use of this protein as a source of organic carbon. Many pathogenic bacteria and free-living marine microbes, including Vibrio and Clostridium spp., are able to metabolize collagen (16, 22, 36). Most collagenase-like enzymes are zinc-containing metalloproteases that are localized extracellularly (32). Preliminary elemental analysis of the green symbiont-containing root tissue of O. rubiplumus revealed high concentrations of zinc (696 ppm) (Goffredi, unpublished), especially compared to other marine invertebrates (e.g., Mytilus californianus contains
20 ppm zinc) (J. Goetzl, Moss Landing Marine Labs, personal communication). We presently cannot exclude the possibility that the host produces the collagenase activity, as eukaryotes possess collagenases that are used for normal development. Nevertheless, two of our results suggest that the bacteria are responsible for this activity. First, collagenase activity was restricted to root tissues that house the bacteria, and second, collagenase activity generally corresponded with the abundance of Oceanospirillales symbionts in Osedax (Table 3). One can imagine a scenario in which an extracellular enzyme, like collagenase, might help the Osedax symbiosis exploit complex organic carbons in the external environment. Additional studies to investigate the specific sources of collagenolytic activity are under way, including an attempt to sequence the O. frankpressi symbiont genome (Moore Foundation, in progress).
Conclusion.
Despite apparently similar nutritional strategies in all known Osedax species, ecological differences exist. The two newly discovered species observed in this study (Osedax sp. MB3 and MB4) differ from each other and from previously described species, O. rubiplumus and O. frankpressi, in the identities and biomasses of their symbiotic populations. Differences in symbiont biomass can influence nutrient transfer and specific functional capabilities and could contribute to ecological differences among Osedax species. Conversely, Osedax lineages settling at different depths harbor distinct Oceanospirillales symbiont lineages (phylotypes). It is possible that ecological differences within and among the habitats occupied by Osedax species are responsible for the high diversity of Oceanospirillales symbionts observed in this study, especially if the symbionts are acquired each generation from the environment.
Osedax worms possess a large number of closely related symbionts from a single lineage of Gammaproteobacteria. This is similar to what has been previously shown for shipworms yet different for animals, such as mussels and gutless oligochaetes, that harbor multiple bacterial species. These invertebrates generally host phylogenetically distinct bacteria, commonly only a single phylotype of each symbiont species, i.e., a single thiotrophic or single methanotrophic 16S rRNA phylotype. The question then arises as to whether heterotrophic degradation of organic compounds, found in Osedax and shipworms, results in symbioses that are fundamentally different in diversity than those more well-studied, yet generally monospecific, chemoautotrophic associations.
We thank the Tiburon pilots and Western Flyer crew, W. J. Jones for laboratory and shipboard support, R. Young for help with phylogenetic analyses, A. Pernthaler for advice regarding FISH analyses, J. Leadbetter for laboratory space at the California Institute of Technology, and V. Orphan for use of both sequencing and microscopy facilities (also at Caltech).
Published ahead of print on 2 February 2007. ![]()
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13C analysis of cholesterol in fossil bones. Org. Geochem. 26:99-103.[CrossRef]This article has been cited by other articles:
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