{"id":{"repo_id":"uhi-uk","oai_identifier":"oai:pure.atira.dk:studenttheses/08a0c865-6e72-4914-91a3-e7676ac2cefd"},"canonical_url":"https://search.dev.ndltd.org/etd/uhi-uk/oai:pure.atira.dk:studenttheses/08a0c865-6e72-4914-91a3-e7676ac2cefd","repository":{"repo_id":"uhi-uk","name":"University of the Highlands and Islands","base_url":"https://pureadmin.uhi.ac.uk/ws/oai"},"display":{"title":"Elucidating the evolution and diversity of the Southern Ocean ophiuroids with reference to present day ecosystem management","abstract":"The evolution of life on our small world has a long and tumultuous history,<br/>beginning as self-replicating molecules and evolving into complex organisms<br/>able to consciously and deliberately alter their planet’s natural order. Over the<br/>epochs, periods of slow, evolutionary development have been punctuated by<br/>explosive diversification and catastrophic collapse. After 3.8 billion years the<br/>bewildering array of life, and its ability to persist through the most difficult of<br/>circumstances, is facing another period of lineage extinction out-pacing lineage<br/>divergence. However, this time, the difference is that the primary cause is a<br/>single species, humans.<br/>A question asked in this thesis is, “will we be able to capture the extent of<br/>diversity loss?”. Given the unknowns regarding the number of species on Earth,<br/>and the increasing evidence that many species are likely to harbour<br/>unappreciated genetic diversity, it is probable that many lineages and species<br/>will not be recorded before their demise. Nowhere is this more likely than in the<br/>least studied areas, one of which is also one of the biologically richest areas on<br/>Earth, the seafloor of the Southern Ocean.<br/>The studies presented here delve into the genetic diversity of Southern Ocean<br/>brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura<br/>belgicae and Ophioplinthus gelida, both common across the Southern Ocean<br/>shelf regions, that have been sampled over several expeditions across a wide<br/>spatial scale. Mitochondrial DNA sequences were used to identify patterns of<br/>divergence that differ from expectations of what is expected from a good<br/>“biological species” and are directly compared with two other similar published<br/>studies on the species Astrotoma agassizii and Ophiuroglypha lymani.<br/>Some interesting, and consistent, patterns of diversity emerge. Genetic<br/>divergences, possibly consistent with being unrecognised or cryptic species, are<br/>found in all four species, indicating that each has undergone a recent radiation.<br/>Many of the clades had discrete geographical distributions, often limited to the<br/>shelf regions of a single Southern Ocean island or archipelago. In each<br/>radiation, one or more clades identified a priori as a sister species, or, in the The evolution of life on our small world has a long and tumultuous history,<br/>beginning as self-replicating molecules and evolving into complex organisms<br/>able to consciously and deliberately alter their planet’s natural order. Over the<br/>epochs, periods of slow, evolutionary development have been punctuated by<br/>explosive diversification and catastrophic collapse. After 3.8 billion years the<br/>bewildering array of life, and its ability to persist through the most difficult of<br/>circumstances, is facing another period of lineage extinction out-pacing lineage<br/>divergence. However, this time, the difference is that the primary cause is a<br/>single species, humans.<br/>A question asked in this thesis is, “will we be able to capture the extent of<br/>diversity loss?”. Given the unknowns regarding the number of species on Earth,<br/>and the increasing evidence that many species are likely to harbour<br/>unappreciated genetic diversity, it is probable that many lineages and species<br/>will not be recorded before their demise. Nowhere is this more likely than in the<br/>least studied areas, one of which is also one of the biologically richest areas on<br/>Earth, the seafloor of the Southern Ocean.<br/>The studies presented here delve into the genetic diversity of Southern Ocean<br/>brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura<br/>belgicae and Ophioplinthus gelida, both common across the Southern Ocean<br/>shelf regions, that have been sampled over several expeditions across a wide<br/>spatial scale. Mitochondrial DNA sequences were used to identify patterns of<br/>divergence that differ from expectations of what is expected from a good<br/>“biological species” and are directly compared with two other similar published<br/>studies on the species Astrotoma agassizii and Ophiuroglypha lymani.<br/>Some interesting, and consistent, patterns of diversity emerge. Genetic<br/>divergences, possibly consistent with being unrecognised or cryptic species, are<br/>found in all four species, indicating that each has undergone a recent radiation.<br/>Many of the clades had discrete geographical distributions, often limited to the<br/>shelf regions of a single Southern Ocean island or archipelago. In each<br/>radiation, one or more clades identified a priori as a sister species, or, in theThe evolution of life on our small world has a long and tumultuous history,<br/>beginning as self-replicating molecules and evolving into complex organisms<br/>able to consciously and deliberately alter their planet’s natural order. Over the<br/>epochs, periods of slow, evolutionary development have been punctuated by<br/>explosive diversification and catastrophic collapse. After 3.8 billion years the<br/>bewildering array of life, and its ability to persist through the most difficult of<br/>circumstances, is facing another period of lineage extinction out-pacing lineage<br/>divergence. However, this time, the difference is that the primary cause is a<br/>single species, humans.<br/>A question asked in this thesis is, “will we be able to capture the extent of<br/>diversity loss?”. Given the unknowns regarding the number of species on Earth,<br/>and the increasing evidence that many species are likely to harbour<br/>unappreciated genetic diversity, it is probable that many lineages and species<br/>will not be recorded before their demise. Nowhere is this more likely than in the<br/>least studied areas, one of which is also one of the biologically richest areas on<br/>Earth, the seafloor of the Southern Ocean.<br/>The studies presented here delve into the genetic diversity of Southern Ocean<br/>brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura<br/>belgicae and Ophioplinthus gelida, both common across the Southern Ocean<br/>shelf regions, that have been sampled over several expeditions across a wide<br/>spatial scale. Mitochondrial DNA sequences were used to identify patterns of<br/>divergence that differ from expectations of what is expected from a good<br/>“biological species” and are directly compared with two other similar published<br/>studies on the species Astrotoma agassizii and Ophiuroglypha lymani.<br/>Some interesting, and consistent, patterns of diversity emerge. Genetic<br/>divergences, possibly consistent with being unrecognised or cryptic species, are<br/>found in all four species, indicating that each has undergone a recent radiation.<br/>Many of the clades had discrete geographical distributions, often limited to the<br/>shelf regions of a single Southern Ocean island or archipelago. In each<br/>radiation, one or more clades identified a priori as a sister species, or, in the case of O. gelida, where Ophioplinthus martensi was included as a more distant<br/>outgroup, the sister species (and O. martensi) were found to be an element of<br/>the radiating clades. This indicates that the depth of divergence of a recognised<br/>morphospecies was equivalent to the depth of divergence of the other<br/>geographically explicit clades. <br/>The key implications of these studies are that there is a large quantity of<br/>unappreciated diversity that may represent considerably higher species<br/>richness than recognised in the currently-available estimates. Furthermore, the<br/>current biogeographic paradigm of four Southern Ocean biogeographic regions<br/>– Antarctic, sub-Antarctic, shallow and deep – is a concerning simplification that<br/>has led to a generally unquestioned suggestion of large, well-connected<br/>populations in these regions with the implication of species resilience. The<br/>reality of much smaller populations being present in small, localised areas with<br/>little or no connectivity, implies vulnerability and the need for careful<br/>consideration from conservation managers and policy makers.<br/>Finally, the results of these studies question the current hypothesis explaining<br/>the unusually high diversity across the Southern Ocean benthic fauna. The<br/>biodiversity pump of the Milankovitch cycles implies that diversity increases with<br/>each glacial cycle, while the results presented here strongly suggest that the<br/>last diversification event predated the onset of Milankovitch cycles, and that<br/>there has likely been a net loss of lineages over the past one million years.","abstract_html":"The evolution of life on our small world has a long and tumultuous history,&lt;br/&gt;beginning as self-replicating molecules and evolving into complex organisms&lt;br/&gt;able to consciously and deliberately alter their planet’s natural order. Over the&lt;br/&gt;epochs, periods of slow, evolutionary development have been punctuated by&lt;br/&gt;explosive diversification and catastrophic collapse. After 3.8 billion years the&lt;br/&gt;bewildering array of life, and its ability to persist through the most difficult of&lt;br/&gt;circumstances, is facing another period of lineage extinction out-pacing lineage&lt;br/&gt;divergence. However, this time, the difference is that the primary cause is a&lt;br/&gt;single species, humans.&lt;br/&gt;A question asked in this thesis is, “will we be able to capture the extent of&lt;br/&gt;diversity loss?”. Given the unknowns regarding the number of species on Earth,&lt;br/&gt;and the increasing evidence that many species are likely to harbour&lt;br/&gt;unappreciated genetic diversity, it is probable that many lineages and species&lt;br/&gt;will not be recorded before their demise. Nowhere is this more likely than in the&lt;br/&gt;least studied areas, one of which is also one of the biologically richest areas on&lt;br/&gt;Earth, the seafloor of the Southern Ocean.&lt;br/&gt;The studies presented here delve into the genetic diversity of Southern Ocean&lt;br/&gt;brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura&lt;br/&gt;belgicae and Ophioplinthus gelida, both common across the Southern Ocean&lt;br/&gt;shelf regions, that have been sampled over several expeditions across a wide&lt;br/&gt;spatial scale. Mitochondrial DNA sequences were used to identify patterns of&lt;br/&gt;divergence that differ from expectations of what is expected from a good&lt;br/&gt;“biological species” and are directly compared with two other similar published&lt;br/&gt;studies on the species Astrotoma agassizii and Ophiuroglypha lymani.&lt;br/&gt;Some interesting, and consistent, patterns of diversity emerge. Genetic&lt;br/&gt;divergences, possibly consistent with being unrecognised or cryptic species, are&lt;br/&gt;found in all four species, indicating that each has undergone a recent radiation.&lt;br/&gt;Many of the clades had discrete geographical distributions, often limited to the&lt;br/&gt;shelf regions of a single Southern Ocean island or archipelago. In each&lt;br/&gt;radiation, one or more clades identified a priori as a sister species, or, in the The evolution of life on our small world has a long and tumultuous history,&lt;br/&gt;beginning as self-replicating molecules and evolving into complex organisms&lt;br/&gt;able to consciously and deliberately alter their planet’s natural order. Over the&lt;br/&gt;epochs, periods of slow, evolutionary development have been punctuated by&lt;br/&gt;explosive diversification and catastrophic collapse. After 3.8 billion years the&lt;br/&gt;bewildering array of life, and its ability to persist through the most difficult of&lt;br/&gt;circumstances, is facing another period of lineage extinction out-pacing lineage&lt;br/&gt;divergence. However, this time, the difference is that the primary cause is a&lt;br/&gt;single species, humans.&lt;br/&gt;A question asked in this thesis is, “will we be able to capture the extent of&lt;br/&gt;diversity loss?”. Given the unknowns regarding the number of species on Earth,&lt;br/&gt;and the increasing evidence that many species are likely to harbour&lt;br/&gt;unappreciated genetic diversity, it is probable that many lineages and species&lt;br/&gt;will not be recorded before their demise. Nowhere is this more likely than in the&lt;br/&gt;least studied areas, one of which is also one of the biologically richest areas on&lt;br/&gt;Earth, the seafloor of the Southern Ocean.&lt;br/&gt;The studies presented here delve into the genetic diversity of Southern Ocean&lt;br/&gt;brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura&lt;br/&gt;belgicae and Ophioplinthus gelida, both common across the Southern Ocean&lt;br/&gt;shelf regions, that have been sampled over several expeditions across a wide&lt;br/&gt;spatial scale. Mitochondrial DNA sequences were used to identify patterns of&lt;br/&gt;divergence that differ from expectations of what is expected from a good&lt;br/&gt;“biological species” and are directly compared with two other similar published&lt;br/&gt;studies on the species Astrotoma agassizii and Ophiuroglypha lymani.&lt;br/&gt;Some interesting, and consistent, patterns of diversity emerge. Genetic&lt;br/&gt;divergences, possibly consistent with being unrecognised or cryptic species, are&lt;br/&gt;found in all four species, indicating that each has undergone a recent radiation.&lt;br/&gt;Many of the clades had discrete geographical distributions, often limited to the&lt;br/&gt;shelf regions of a single Southern Ocean island or archipelago. In each&lt;br/&gt;radiation, one or more clades identified a priori as a sister species, or, in theThe evolution of life on our small world has a long and tumultuous history,&lt;br/&gt;beginning as self-replicating molecules and evolving into complex organisms&lt;br/&gt;able to consciously and deliberately alter their planet’s natural order. Over the&lt;br/&gt;epochs, periods of slow, evolutionary development have been punctuated by&lt;br/&gt;explosive diversification and catastrophic collapse. After 3.8 billion years the&lt;br/&gt;bewildering array of life, and its ability to persist through the most difficult of&lt;br/&gt;circumstances, is facing another period of lineage extinction out-pacing lineage&lt;br/&gt;divergence. However, this time, the difference is that the primary cause is a&lt;br/&gt;single species, humans.&lt;br/&gt;A question asked in this thesis is, “will we be able to capture the extent of&lt;br/&gt;diversity loss?”. Given the unknowns regarding the number of species on Earth,&lt;br/&gt;and the increasing evidence that many species are likely to harbour&lt;br/&gt;unappreciated genetic diversity, it is probable that many lineages and species&lt;br/&gt;will not be recorded before their demise. Nowhere is this more likely than in the&lt;br/&gt;least studied areas, one of which is also one of the biologically richest areas on&lt;br/&gt;Earth, the seafloor of the Southern Ocean.&lt;br/&gt;The studies presented here delve into the genetic diversity of Southern Ocean&lt;br/&gt;brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura&lt;br/&gt;belgicae and Ophioplinthus gelida, both common across the Southern Ocean&lt;br/&gt;shelf regions, that have been sampled over several expeditions across a wide&lt;br/&gt;spatial scale. Mitochondrial DNA sequences were used to identify patterns of&lt;br/&gt;divergence that differ from expectations of what is expected from a good&lt;br/&gt;“biological species” and are directly compared with two other similar published&lt;br/&gt;studies on the species Astrotoma agassizii and Ophiuroglypha lymani.&lt;br/&gt;Some interesting, and consistent, patterns of diversity emerge. Genetic&lt;br/&gt;divergences, possibly consistent with being unrecognised or cryptic species, are&lt;br/&gt;found in all four species, indicating that each has undergone a recent radiation.&lt;br/&gt;Many of the clades had discrete geographical distributions, often limited to the&lt;br/&gt;shelf regions of a single Southern Ocean island or archipelago. In each&lt;br/&gt;radiation, one or more clades identified a priori as a sister species, or, in the case of O. gelida, where Ophioplinthus martensi was included as a more distant&lt;br/&gt;outgroup, the sister species (and O. martensi) were found to be an element of&lt;br/&gt;the radiating clades. This indicates that the depth of divergence of a recognised&lt;br/&gt;morphospecies was equivalent to the depth of divergence of the other&lt;br/&gt;geographically explicit clades. &lt;br/&gt;The key implications of these studies are that there is a large quantity of&lt;br/&gt;unappreciated diversity that may represent considerably higher species&lt;br/&gt;richness than recognised in the currently-available estimates. Furthermore, the&lt;br/&gt;current biogeographic paradigm of four Southern Ocean biogeographic regions&lt;br/&gt;– Antarctic, sub-Antarctic, shallow and deep – is a concerning simplification that&lt;br/&gt;has led to a generally unquestioned suggestion of large, well-connected&lt;br/&gt;populations in these regions with the implication of species resilience. The&lt;br/&gt;reality of much smaller populations being present in small, localised areas with&lt;br/&gt;little or no connectivity, implies vulnerability and the need for careful&lt;br/&gt;consideration from conservation managers and policy makers.&lt;br/&gt;Finally, the results of these studies question the current hypothesis explaining&lt;br/&gt;the unusually high diversity across the Southern Ocean benthic fauna. The&lt;br/&gt;biodiversity pump of the Milankovitch cycles implies that diversity increases with&lt;br/&gt;each glacial cycle, while the results presented here strongly suggest that the&lt;br/&gt;last diversification event predated the onset of Milankovitch cycles, and that&lt;br/&gt;there has likely been a net loss of lineages over the past one million years.","abstract_has_math":false,"creators":["Sands, Chester J"],"institution":"University of the Highlands and Islands","degree_name":"Doctor of Philosophy (awarded by UHI)","degree_level":"Doctoral Thesis","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Narayanaswamy, Bhavani"],"committee_chairs":[],"committee_members":[],"year":2025,"date_issued":"2025-12-9","date_published":"2025-12-9","updated_at":"2026-07-24T05:12:10Z","subjects":[],"languages":["eng"],"rights":[],"rights_urls":[],"identifier_entries":[{"key":"dc:identifier","label":"Identifier","values":["oai:pure.atira.dk:studenttheses/08a0c865-6e72-4914-91a3-e7676ac2cefd"],"render_values":[{"text":"oai:pure.atira.dk:studenttheses/08a0c865-6e72-4914-91a3-e7676ac2cefd","href":null,"code":true}]}]},"links":{"outbound_url":"https://pure.uhi.ac.uk/en/studentTheses/08a0c865-6e72-4914-91a3-e7676ac2cefd","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Narayanaswamy, Bhavani"]},{"key":"dc:contributor.sponsor","label":"Sponsor","values":["British Antarctic Survey"]},{"key":"dc:creator","label":"Author","values":["Sands, Chester J"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2025-12-9"]},{"key":"dc:date.issued","label":"Date","values":["2025-12-9"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["The Scottish Association for Marine Science, Scottish Marine Institute"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["University of the Highlands and Islands"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://pure.uhi.ac.uk/en/studentTheses/08a0c865-6e72-4914-91a3-e7676ac2cefd"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["Doctoral Thesis"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Doctor of Philosophy (awarded by UHI)"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["eng"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["oai:pure.atira.dk:studenttheses/08a0c865-6e72-4914-91a3-e7676ac2cefd","https://pure.uhi.ac.uk/en/studentTheses/08a0c865-6e72-4914-91a3-e7676ac2cefd"]},{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://pure.uhi.ac.uk/files/65248419/SANDS_C_PhD.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["The evolution of life on our small world has a long and tumultuous history,<br/>beginning as self-replicating molecules and evolving into complex organisms<br/>able to consciously and deliberately alter their planet’s natural order. Over the<br/>epochs, periods of slow, evolutionary development have been punctuated by<br/>explosive diversification and catastrophic collapse. After 3.8 billion years the<br/>bewildering array of life, and its ability to persist through the most difficult of<br/>circumstances, is facing another period of lineage extinction out-pacing lineage<br/>divergence. However, this time, the difference is that the primary cause is a<br/>single species, humans.<br/>A question asked in this thesis is, “will we be able to capture the extent of<br/>diversity loss?”. Given the unknowns regarding the number of species on Earth,<br/>and the increasing evidence that many species are likely to harbour<br/>unappreciated genetic diversity, it is probable that many lineages and species<br/>will not be recorded before their demise. Nowhere is this more likely than in the<br/>least studied areas, one of which is also one of the biologically richest areas on<br/>Earth, the seafloor of the Southern Ocean.<br/>The studies presented here delve into the genetic diversity of Southern Ocean<br/>brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura<br/>belgicae and Ophioplinthus gelida, both common across the Southern Ocean<br/>shelf regions, that have been sampled over several expeditions across a wide<br/>spatial scale. Mitochondrial DNA sequences were used to identify patterns of<br/>divergence that differ from expectations of what is expected from a good<br/>“biological species” and are directly compared with two other similar published<br/>studies on the species Astrotoma agassizii and Ophiuroglypha lymani.<br/>Some interesting, and consistent, patterns of diversity emerge. Genetic<br/>divergences, possibly consistent with being unrecognised or cryptic species, are<br/>found in all four species, indicating that each has undergone a recent radiation.<br/>Many of the clades had discrete geographical distributions, often limited to the<br/>shelf regions of a single Southern Ocean island or archipelago. In each<br/>radiation, one or more clades identified a priori as a sister species, or, in the The evolution of life on our small world has a long and tumultuous history,<br/>beginning as self-replicating molecules and evolving into complex organisms<br/>able to consciously and deliberately alter their planet’s natural order. Over the<br/>epochs, periods of slow, evolutionary development have been punctuated by<br/>explosive diversification and catastrophic collapse. After 3.8 billion years the<br/>bewildering array of life, and its ability to persist through the most difficult of<br/>circumstances, is facing another period of lineage extinction out-pacing lineage<br/>divergence. However, this time, the difference is that the primary cause is a<br/>single species, humans.<br/>A question asked in this thesis is, “will we be able to capture the extent of<br/>diversity loss?”. Given the unknowns regarding the number of species on Earth,<br/>and the increasing evidence that many species are likely to harbour<br/>unappreciated genetic diversity, it is probable that many lineages and species<br/>will not be recorded before their demise. Nowhere is this more likely than in the<br/>least studied areas, one of which is also one of the biologically richest areas on<br/>Earth, the seafloor of the Southern Ocean.<br/>The studies presented here delve into the genetic diversity of Southern Ocean<br/>brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura<br/>belgicae and Ophioplinthus gelida, both common across the Southern Ocean<br/>shelf regions, that have been sampled over several expeditions across a wide<br/>spatial scale. Mitochondrial DNA sequences were used to identify patterns of<br/>divergence that differ from expectations of what is expected from a good<br/>“biological species” and are directly compared with two other similar published<br/>studies on the species Astrotoma agassizii and Ophiuroglypha lymani.<br/>Some interesting, and consistent, patterns of diversity emerge. Genetic<br/>divergences, possibly consistent with being unrecognised or cryptic species, are<br/>found in all four species, indicating that each has undergone a recent radiation.<br/>Many of the clades had discrete geographical distributions, often limited to the<br/>shelf regions of a single Southern Ocean island or archipelago. In each<br/>radiation, one or more clades identified a priori as a sister species, or, in theThe evolution of life on our small world has a long and tumultuous history,<br/>beginning as self-replicating molecules and evolving into complex organisms<br/>able to consciously and deliberately alter their planet’s natural order. Over the<br/>epochs, periods of slow, evolutionary development have been punctuated by<br/>explosive diversification and catastrophic collapse. After 3.8 billion years the<br/>bewildering array of life, and its ability to persist through the most difficult of<br/>circumstances, is facing another period of lineage extinction out-pacing lineage<br/>divergence. However, this time, the difference is that the primary cause is a<br/>single species, humans.<br/>A question asked in this thesis is, “will we be able to capture the extent of<br/>diversity loss?”. Given the unknowns regarding the number of species on Earth,<br/>and the increasing evidence that many species are likely to harbour<br/>unappreciated genetic diversity, it is probable that many lineages and species<br/>will not be recorded before their demise. Nowhere is this more likely than in the<br/>least studied areas, one of which is also one of the biologically richest areas on<br/>Earth, the seafloor of the Southern Ocean.<br/>The studies presented here delve into the genetic diversity of Southern Ocean<br/>brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura<br/>belgicae and Ophioplinthus gelida, both common across the Southern Ocean<br/>shelf regions, that have been sampled over several expeditions across a wide<br/>spatial scale. Mitochondrial DNA sequences were used to identify patterns of<br/>divergence that differ from expectations of what is expected from a good<br/>“biological species” and are directly compared with two other similar published<br/>studies on the species Astrotoma agassizii and Ophiuroglypha lymani.<br/>Some interesting, and consistent, patterns of diversity emerge. Genetic<br/>divergences, possibly consistent with being unrecognised or cryptic species, are<br/>found in all four species, indicating that each has undergone a recent radiation.<br/>Many of the clades had discrete geographical distributions, often limited to the<br/>shelf regions of a single Southern Ocean island or archipelago. In each<br/>radiation, one or more clades identified a priori as a sister species, or, in the case of O. gelida, where Ophioplinthus martensi was included as a more distant<br/>outgroup, the sister species (and O. martensi) were found to be an element of<br/>the radiating clades. This indicates that the depth of divergence of a recognised<br/>morphospecies was equivalent to the depth of divergence of the other<br/>geographically explicit clades. <br/>The key implications of these studies are that there is a large quantity of<br/>unappreciated diversity that may represent considerably higher species<br/>richness than recognised in the currently-available estimates. Furthermore, the<br/>current biogeographic paradigm of four Southern Ocean biogeographic regions<br/>– Antarctic, sub-Antarctic, shallow and deep – is a concerning simplification that<br/>has led to a generally unquestioned suggestion of large, well-connected<br/>populations in these regions with the implication of species resilience. The<br/>reality of much smaller populations being present in small, localised areas with<br/>little or no connectivity, implies vulnerability and the need for careful<br/>consideration from conservation managers and policy makers.<br/>Finally, the results of these studies question the current hypothesis explaining<br/>the unusually high diversity across the Southern Ocean benthic fauna. The<br/>biodiversity pump of the Milankovitch cycles implies that diversity increases with<br/>each glacial cycle, while the results presented here strongly suggest that the<br/>last diversification event predated the onset of Milankovitch cycles, and that<br/>there has likely been a net loss of lineages over the past one million years."]},{"key":"dc:title","label":"Title","values":["Elucidating the evolution and diversity of the Southern Ocean ophiuroids with reference to present day ecosystem management"]}]}],"canonical_facts":{"dc:contributor.advisor":["Narayanaswamy, Bhavani"],"dc:contributor.sponsor":["British Antarctic Survey"],"dc:creator":["Sands, Chester J"],"dc:date":["2025-12-9"],"dc:date.issued":["2025-12-9"],"dc:description.abstract":["The evolution of life on our small world has a long and tumultuous history,<br/>beginning as self-replicating molecules and evolving into complex organisms<br/>able to consciously and deliberately alter their planet’s natural order. Over the<br/>epochs, periods of slow, evolutionary development have been punctuated by<br/>explosive diversification and catastrophic collapse. After 3.8 billion years the<br/>bewildering array of life, and its ability to persist through the most difficult of<br/>circumstances, is facing another period of lineage extinction out-pacing lineage<br/>divergence. However, this time, the difference is that the primary cause is a<br/>single species, humans.<br/>A question asked in this thesis is, “will we be able to capture the extent of<br/>diversity loss?”. Given the unknowns regarding the number of species on Earth,<br/>and the increasing evidence that many species are likely to harbour<br/>unappreciated genetic diversity, it is probable that many lineages and species<br/>will not be recorded before their demise. Nowhere is this more likely than in the<br/>least studied areas, one of which is also one of the biologically richest areas on<br/>Earth, the seafloor of the Southern Ocean.<br/>The studies presented here delve into the genetic diversity of Southern Ocean<br/>brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura<br/>belgicae and Ophioplinthus gelida, both common across the Southern Ocean<br/>shelf regions, that have been sampled over several expeditions across a wide<br/>spatial scale. Mitochondrial DNA sequences were used to identify patterns of<br/>divergence that differ from expectations of what is expected from a good<br/>“biological species” and are directly compared with two other similar published<br/>studies on the species Astrotoma agassizii and Ophiuroglypha lymani.<br/>Some interesting, and consistent, patterns of diversity emerge. Genetic<br/>divergences, possibly consistent with being unrecognised or cryptic species, are<br/>found in all four species, indicating that each has undergone a recent radiation.<br/>Many of the clades had discrete geographical distributions, often limited to the<br/>shelf regions of a single Southern Ocean island or archipelago. In each<br/>radiation, one or more clades identified a priori as a sister species, or, in the The evolution of life on our small world has a long and tumultuous history,<br/>beginning as self-replicating molecules and evolving into complex organisms<br/>able to consciously and deliberately alter their planet’s natural order. Over the<br/>epochs, periods of slow, evolutionary development have been punctuated by<br/>explosive diversification and catastrophic collapse. After 3.8 billion years the<br/>bewildering array of life, and its ability to persist through the most difficult of<br/>circumstances, is facing another period of lineage extinction out-pacing lineage<br/>divergence. However, this time, the difference is that the primary cause is a<br/>single species, humans.<br/>A question asked in this thesis is, “will we be able to capture the extent of<br/>diversity loss?”. Given the unknowns regarding the number of species on Earth,<br/>and the increasing evidence that many species are likely to harbour<br/>unappreciated genetic diversity, it is probable that many lineages and species<br/>will not be recorded before their demise. Nowhere is this more likely than in the<br/>least studied areas, one of which is also one of the biologically richest areas on<br/>Earth, the seafloor of the Southern Ocean.<br/>The studies presented here delve into the genetic diversity of Southern Ocean<br/>brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura<br/>belgicae and Ophioplinthus gelida, both common across the Southern Ocean<br/>shelf regions, that have been sampled over several expeditions across a wide<br/>spatial scale. Mitochondrial DNA sequences were used to identify patterns of<br/>divergence that differ from expectations of what is expected from a good<br/>“biological species” and are directly compared with two other similar published<br/>studies on the species Astrotoma agassizii and Ophiuroglypha lymani.<br/>Some interesting, and consistent, patterns of diversity emerge. Genetic<br/>divergences, possibly consistent with being unrecognised or cryptic species, are<br/>found in all four species, indicating that each has undergone a recent radiation.<br/>Many of the clades had discrete geographical distributions, often limited to the<br/>shelf regions of a single Southern Ocean island or archipelago. In each<br/>radiation, one or more clades identified a priori as a sister species, or, in theThe evolution of life on our small world has a long and tumultuous history,<br/>beginning as self-replicating molecules and evolving into complex organisms<br/>able to consciously and deliberately alter their planet’s natural order. Over the<br/>epochs, periods of slow, evolutionary development have been punctuated by<br/>explosive diversification and catastrophic collapse. After 3.8 billion years the<br/>bewildering array of life, and its ability to persist through the most difficult of<br/>circumstances, is facing another period of lineage extinction out-pacing lineage<br/>divergence. However, this time, the difference is that the primary cause is a<br/>single species, humans.<br/>A question asked in this thesis is, “will we be able to capture the extent of<br/>diversity loss?”. Given the unknowns regarding the number of species on Earth,<br/>and the increasing evidence that many species are likely to harbour<br/>unappreciated genetic diversity, it is probable that many lineages and species<br/>will not be recorded before their demise. Nowhere is this more likely than in the<br/>least studied areas, one of which is also one of the biologically richest areas on<br/>Earth, the seafloor of the Southern Ocean.<br/>The studies presented here delve into the genetic diversity of Southern Ocean<br/>brittle stars (Class Ophiuroidea), based on two exemplar species, Amphiura<br/>belgicae and Ophioplinthus gelida, both common across the Southern Ocean<br/>shelf regions, that have been sampled over several expeditions across a wide<br/>spatial scale. Mitochondrial DNA sequences were used to identify patterns of<br/>divergence that differ from expectations of what is expected from a good<br/>“biological species” and are directly compared with two other similar published<br/>studies on the species Astrotoma agassizii and Ophiuroglypha lymani.<br/>Some interesting, and consistent, patterns of diversity emerge. Genetic<br/>divergences, possibly consistent with being unrecognised or cryptic species, are<br/>found in all four species, indicating that each has undergone a recent radiation.<br/>Many of the clades had discrete geographical distributions, often limited to the<br/>shelf regions of a single Southern Ocean island or archipelago. In each<br/>radiation, one or more clades identified a priori as a sister species, or, in the case of O. gelida, where Ophioplinthus martensi was included as a more distant<br/>outgroup, the sister species (and O. martensi) were found to be an element of<br/>the radiating clades. This indicates that the depth of divergence of a recognised<br/>morphospecies was equivalent to the depth of divergence of the other<br/>geographically explicit clades. <br/>The key implications of these studies are that there is a large quantity of<br/>unappreciated diversity that may represent considerably higher species<br/>richness than recognised in the currently-available estimates. Furthermore, the<br/>current biogeographic paradigm of four Southern Ocean biogeographic regions<br/>– Antarctic, sub-Antarctic, shallow and deep – is a concerning simplification that<br/>has led to a generally unquestioned suggestion of large, well-connected<br/>populations in these regions with the implication of species resilience. The<br/>reality of much smaller populations being present in small, localised areas with<br/>little or no connectivity, implies vulnerability and the need for careful<br/>consideration from conservation managers and policy makers.<br/>Finally, the results of these studies question the current hypothesis explaining<br/>the unusually high diversity across the Southern Ocean benthic fauna. The<br/>biodiversity pump of the Milankovitch cycles implies that diversity increases with<br/>each glacial cycle, while the results presented here strongly suggest that the<br/>last diversification event predated the onset of Milankovitch cycles, and that<br/>there has likely been a net loss of lineages over the past one million years."],"dc:identifier":["oai:pure.atira.dk:studenttheses/08a0c865-6e72-4914-91a3-e7676ac2cefd","https://pure.uhi.ac.uk/en/studentTheses/08a0c865-6e72-4914-91a3-e7676ac2cefd"],"dc:identifier.uri":["https://pure.uhi.ac.uk/files/65248419/SANDS_C_PhD.pdf"],"dc:language":["eng"],"dc:publisher.department":["The Scottish Association for Marine Science, Scottish Marine Institute"],"dc:publisher.institution":["University of the Highlands and Islands"],"dc:relation.isreferencedby":["https://pure.uhi.ac.uk/en/studentTheses/08a0c865-6e72-4914-91a3-e7676ac2cefd"],"dc:title":["Elucidating the evolution and diversity of the Southern Ocean ophiuroids with reference to present day ecosystem management"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["Doctoral Thesis"],"dc:type.qualificationname":["Doctor of Philosophy (awarded by UHI)"]},"updated_at":"2026-07-24T05:12:10Z"}