Radiodonta

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Radiodonta
Temporal range: Cambrian Stage 3 – Early Devonian, 521–400  Ma
20191201 Radiodonta Amplectobelua Anomalocaris Aegirocassis Lyrarapax Peytoia Laggania Hurdia.png
Left to right, top to bottom: Amplectobelua symbrachiata, Anomalocaris canadensis, Aegirocassis benmoulai, Peytoia nathorsti , Lyrarapax unguispinus, Cambroraster falcatus, and Hurdia victoria
Scientific classification
Kingdom:
Phylum:
Class:
Order:
Radiodonta
Collins, 1996
Families

Radiodonta is an extinct order of stem-group arthropods that was successful worldwide during the Cambrian period. They may be referred to as radiodonts, [1] [2] [3] radiodontans, [4] [5] radiodontids, [6] anomalocarids, [7] or anomalocaridids, [8] [9] [10] although the last two originally refer to the family Anomalocarididae, which previously included all species of this order but is now restricted to only a few species. [7] Radiodonts are distinguished by their distinctive frontal appendages, which are morphologically diverse and used for a variety of functions. Radiodonts included the earliest large predators known, but they also included sediment sifters and filter feeders. [11] Some of the most famous species of radiodonts are the Cambrian taxa Anomalocaris canadensis , Hurdia victoria , Peytoia nathorsti , Titanokorys gainessii, Cambroraster falcatus and Amplectobelua symbrachiata , the Ordovician Aegirocassis benmoulai and the Devonian Schinderhannes bartelsi .

Contents

Etymology

The name Radiodonta (Latin for radius "spoke of a wheel" and Greek for odoús "tooth") refers to the radial arrangement of tooth plates (oral cone) surrounding the mouth, [6] although these features are suggested to be absent in some radiodont species. [4] [1]

Definition

The original diagnosis of order Radiodonta in 1996 is as follows: [6]

Radiodontids are bilaterally symmetrical, elongate arthropods with a nonmineralized cuticle typically most robust in the jaws and claws. The body is subdivided into two tagmata, much like the prosoma and opisthosoma of chelicerate arthropods. Typically, the front part shows no external segmentation, bears one pair of preoral claws, a pair of prominent eyes, and ventral jaws with radiating teeth. Some forms have additional rows of teeth and three or four postoral gnathobasic limb pairs. The trunk is metameric, typically with about 13 segments laterally developing imbricating lobes for swimming and gills for respiration, and may end in a prominent three-part tail. Some forms have gnathobasic trunk limbs.

In 2014, the clade Radiodonta was defined phylogenetically as a clade including any taxa closer to Anomalocaris canadensis than Paralithodes camtschaticus . [7] In 2019, it was redefined morphologically as animal bearing head carapace complex with central (H-) and lateral (P-) elements; outgrowths (endites) from frontal appendages bearing auxiliary spines; and reduced anterior flaps or bands of lamellae (setal blades) and strong tapering of body from anterior to posterior. [3]

Description

Size estimation and comparison of radiodont species known by nearly complete specimens 20210208 Radiodonta size comparison complete specimens.png
Size estimation and comparison of radiodont species known by nearly complete specimens

Most radiodonts were significantly larger than the other Cambrian fauna, with typical body lengths varying from 30 to 50 centimeters. [2] The largest described radiodont is the Ordovician species Aegirocassis benmoulai, which may have grown up to two meters long. [10] [2] A nearly complete specimen of a juvenile Lyrarapax unguispinus measured only 18 millimetres (0.71 in), making it among the smallest radiodont specimens known, though adults reached a length of 8 centimetres (3.1 in) [2] [12] An isolated frontal appendage of a hurdiid with a length less than half that of the juvenile Lyrarapax is known, but it is not known whether this specimen pertains to an adult. [13] The largest known Cambrian radiodont was Amplectobelua, reaching lengths of up to 90 cm (35 in) based on an incomplete specimen. [14] Anomalocaris and Laminacaris are also large ones, reached 37.8 centimetres (14.9 in) and 78 centimetres (31 in) (there was an estimation that Houcaris saron (previously Anomalocaris saron) reached 56 centimetres (22 in), but specimen used for estimating the body length no longer belongs to that species [15] ); the Cambrian hurdiid Titanokorys approached it in size, with an estimated body length of approximately 50 centimetres (20 in). [2] [16]

The body of a radiodont could be divided into two regions: head and trunk. The head is composed of only one body segment [17] known as the ocular somite, covered by sclerites (head carapace complex), bore arthropodized frontal appendages, ventral mouthparts (oral cone), and stalked compound eyes. The tapering trunk is composed of multiple body segments, each associated with pairs of flaps and gill-like structures (setal blades). [3]

Frontal appendage

20191213 Radiodonta frontal appendage Anomalocarididae Amplectobeluidae.png
20191213 Radiodonta frontal appendage Hurdiidae.png
Frontal appendages morphology of the radiodont families Anomalocarididae/Amplectobeluidae and Hurdiidae

The anterior structures on the head are a pair of frontal appendages which have been referred to as 'claws', 'grasping appendages', 'feeding appendages', or 'great appendages' in previous studies (the last term is discouraged since the homology between frontal appendages and the original, morphologically distinct megacheiran great appendages is questionable. [17] [18] ). They are sclerotized (hardened) and arthropodized (segmented), bearing ventral endites (spines) on most of their podomeres (segmental units), and the endites may bear additional rows of auxiliary spines on their anterior and posterior margins. [19] [3] The frontal appendage consists of two regions: the shaft ('peduncle', [2] 'base' [20] or 'promixal region' [2] in some studies) and the distal articulated region [19] (also referred to as 'claw' [20] ). A triangular region covered by soft cuticle (arthrodial membrane) may occur on the ventral side between podomeres and provide flexibility. [21] [11] Their purported pre-ocular and protocerebral origin suggest they are homologous to the primary antennae of Onychophora and the labrum of Euarthropoda (all arose from ocular somite), [17] [9] while subsequent studies also suggest a deutocerebral origin and homologous with the chelicerae of Chelicerata and the antennae or 'great appendages' of other arthropods (all arose from post-ocular somite 1). [22] Since the morphology of the frontal appendages, especially those of the spines, always differs between species, it is one of the most important means of species identification. [19] In fact, many radiodonts are only known from a handful of fossilized frontal appendages. [21] [19]

Oral cone

Oral cones of various radiodonts 20210520 Radiodonta oral cone.png
Oral cones of various radiodonts

The mouth is on the ventral side of the head, behind the attachment point of frontal appendages and is surrounded by a ring of tooth plates, forming the mouthpart known as oral cone ('jaws' in previous studies [6] ). 3 or 4 tooth plates might be enlarged, giving the oral cone a triradial (e.g. Anomalocaris , Echidnacaris ) or tetraradial (e.g. Hurdiidae, Lyrarapax ) appearance. [23] [12] [24] The inner margin of tooth plates have spikes facing towards the mouth opening. Additional rows of internal tooth plates may occur in some hurdiid genera. [8] [3] Detail reconstruction of some amplectobeluid oral cones are speculative, but they possibly did not present a typical radial arrangement. [4] [1]

Head sclerites, eyes and trunk

Head sclerite complexes of various radiodonts 20210516 Radiodonta head sclerites.png
Head sclerite complexes of various radiodonts

Three head sclerite (carapace) complex formed by a central H-element (anterior sclerite or head shield) and a pair of P-elements (lateral sclerites) cover the dorsal and laterovental surface of the animal's head. [3] The P-elements may connect to each other as well as the H-element by a narrow anterior extension (P-element neck or 'beak'). [8] [3] The head sclerites are small and ovoid in Anomalocarididae and Amplectobeluidae, [4] [3] but often enlarged in Hurdiidae, corresponded to their distinct body shapes (streamlined in Anomalocarididae/Amplectobeluidae but often compact in Hurdiidae). [3] The head bore two stalked compound eyes, which may have had mobility, [25] and are located between the gaps formed by the posterior regions of the H-element and P-elements. [8] [3] The compound eyes of Echidnacaris are exceptionally unstalked. [13] Some species possess an additional median eye behind the H-element. [22]

20190908 Radiodonta Anomalocaris Anterior.png
20190908 Radiodonta Hurdiidae Anterior.png
Anterior region of two generized Anomalocaris and Hurdiid radiodont, showing distinct morphology A: Dorsal view, B: Ventral view, Fa: Frontal appendage, He: H-element, Pe: P-element, Ey: Eye, Oc: Oral cone, Af: Anterior (neck) flap, Bf/Vf:, Ventral flap, Sb: Setal blade

Contrary to the original diagnosis, the division of body segments (segmental boundaries) can be visible externally [10] [5] [3] and no known member of Radiodonta (except the putative radiodont Cucumericrus [10] [26] ) is known to have pediform trunk appendages (legs). [27] The trunk has numerous body segments (somites), tapering from anterior to posterior, with the anterior three or four segments significantly constricted into a neck region. [3]

The trunk appendages were fin-like body flaps ('lateral flaps' or 'lobes' in some studies), usually one pair of ventral flaps per body segment, each slightly overlapping the one more anterior to it, but additional, non-overlapping sets of small dorsal flaps may occur in some Hurdiid species. [10] The flaps may have numerous vein-like structures (referred to as 'strengthening rays', [5] 'flap rays', [3] 'tranverse rods', [10] 'transverse lines' [28] or 'veins' [29] ). The flaps on the neck region (referred to as 'reduced flaps', [4] 'neck flaps', [5] 'head flaps', [27] 'anterior flaps' [30] or 'differentiated flaps' [18] ) are significantly reduced. In some species, jaw-like feeding appendages called gnathobase-like structures (GLSs) arose from each of the bases of their reduced neck flaps. [4] [1] Numerous elongated blade-like extensions (referred to as lanceolate blades or lamellae [3] ) arranged in a row, forming bands of gill-like structures known as setal blades, covered the dorsal surface of each body segment. [10] At least in Aegirocassis , each of the lanceolate blades are covered in wrinkles. [10] The ventral flaps may be homologous to the endopod of the biramous limbs of euarthropods and lobopodous limbs (lobopods) of gilled lobopodians, and the dorsal flaps and setal blades may be homologous to the exite and gill-bearing dorsal flaps of the former taxa. [31] [10] The trunk may end either with a tail fan compose of 1 to 3 pairs of blades, [29] [27] [3] a pair of long furcae, [29] [12] [3] an elongated terminal structure, [27] or a featureless blunt tip. [10]

Internal structures

digestive system of a radiodont 20220719 Radiodonta digestive system.png
digestive system of a radiodont
Various interpretations of radiodont brain. A: after Cong et al. 2014, B: after Moysiuk & Caron 2022 20220715 Radiodonta brain interpretations.png
Various interpretations of radiodont brain. A: after Cong et al. 2014, B: after Moysiuk & Caron 2022

Traces of muscles, digestive system and nervous system were described from some radiodont fossils. Pairs of well-developed muscles were connected to the ventral flaps located at the lateral cavities of each body segment. [27] [9] Between the lateral muscles is a sophisticated digestive system, formed by a widening of the foregut and hindgut, both connected by a narrow midgut associated with six pairs of gut divercula (digestive glands). [27] [5] [32]

The brain of radiodonts was simpler than the three-segmented (compose of pro-, deuto- and tritocerebrum) brains of euarthropods, but further interpretations differ between studies. Based on Cong et al. 2014, the brain composed of only one brain segment originating from the ocular somite, the protocerebrum. The nerves of the frontal appendages and compound eyes arose from the anterior and lateral regions of the brain. [9] [17] Based on Moysiuk & Caron 2022, the frontal appendage nerves arose from the ventral deutocerebrum, the second brain segment. The previous "frontal appendage nerves" actually represent median eye nerve. [22] In both interpretations, posterior to the brain was a pair of apparently unfused ventral nerve cords which ran through the animal's neck region. [9] [22]

Paleoecology

Physiology

Paleoecological reconstruction of a group of Cambroraster swimming over a brine seep Cambroraster.jpg
Paleoecological reconstruction of a group of Cambroraster swimming over a brine seep

Radiodonts were interpreted as nektonic or nektobenthic animals, with their morphology suggesting an active swimming lifestyle. The muscular, overlapping ventral flaps may have propelled the animal through the water, possibly by moving in a wave-like formation resembling modern rays and cuttlefish. [33] [34] Pairs of dorsal flaps, which make up a tail fan in some species, may have helped steering and/or stabilizing the animal during locomotion. [10] [35] In Anomalocaris , morphology of the tail fan even suggests it could rapidly change its swimming direction efficiently. [36] On the other hand, some hurdiids have features significantly specialized for a nektobenthic lifestyle, such as Cambroraster with its dome-like H-element similar to the carapace of a horseshoe crab. [3] Bands of setal blades with wrinkling lanceolate blades may have increased the surface area, suggesting they were gills, providing the animal's respiratory function. [27] [10] Abundance of the remains of scleritzed structures such as disarticulated frontal appendages and head sclerite complexes, suggest that mass moulting events may have occurred among radiodonts, [10] [3] a behavior which also has been reported in some other Cambrian arthropods such as trilobites. [37]

Diet

Suggested frontal appendage mobility and movement of various radiodonts [21] [11]

Radiodonts had diverse feeding strategies, which could be categorized as raptorial predators, sediment sifters, or suspension, filter feeders. [2] [38] [11] [39] [40] For example, raptorial predators like Anomalocaris and Amplectobeluids might have been able to catch agile prey by using their raptorial frontal appendages; the latter even bore a robust endite for holding prey like a pincer. [26] [21] [4] [11] With the smaller head carapace complex and large surface of arthrodial membranes, frontal appendages of these taxa had greater flexibility. [12] Stout frontal appendages of sediment sifters like Hurdia and Peytoia have serrated endites with mesial curvature, which could form a basket-like trap for raking through sediment and passing food items towards the well-developed oral cone. [3] [11] Endites of frontal appendages from suspension/filter feeders like Tamisiocaris and Aegirocassis have flexible, densely-packed auxiliary spines, which could filter out organic components such as mesozooplankton and phytoplankton down to 0.5mm. [7] [10] Frontal appendages of Caryosyntrips , which are unusual for radiodonts in having the direction of endite-bearing surfaces opposing one another and may have been able to manipulate and crush prey in a scissor-like slicing or grasping motion. [21] [41]

Oral cones of radiodonts may have been used for suction and/or biting. [23] [38] [3] Together with the great variety of frontal appendages in different species of radiodonts, differentiation of oral cones between species suggests preferences of different diets as well. [38] [11] For example, the triradial oral cone of Anomalocaris with irregular, tuberculated toothplates and a small opening may have been adapted to small and nektonic prey, [23] [11] while the rigid tetraradial oral cones of Peytoia , Titanokorys , Hurdia , and one isolated oral cone attributed to Cambroraster with a larger opening and sometimes additional tooth plates may have been capable to consume larger food items relative to their body size and probably benthic or endobenthic prey. [23] [38] [3]

Classification

Taxonomic affinities

Ecdysozoa
Cycloneuralia

Priapulida Ottoia reconstruction.jpg and relatives

Panarthropoda

Onychophora Velvet worm.jpg

Tardigrada SEM image of Milnesium tardigradum in active state - journal.pone.0045682.g001-2.png

Lobopodian grade
(paraphyletic) 20210000 Lobopodia lobopodians lobopods.png

Siberiid lobopodians 20191217 Siberiida Siberion Megadictyon Jianshanopodia.png

Pambdelurion 20191112 Pambdelurion whittingtoni.png

Kerygmachela 21091022 Kerygmachela kierkegaardi.png

Opabiniidae 20220213 Opabiniidae Opabiniids.png

Radiodonta 20191201 Radiodonta Amplectobelua Anomalocaris Aegirocassis Lyrarapax Peytoia Laggania Hurdia.png

Euarthropoda Arthropoda.jpg

Summarized phylogeny between Radiodonta and other Ecdysozoan taxa [42]

Most phylogenetic analyses suggest that radiodonts, alongside opabiniids ( Opabinia and Utaurora [43] ), are stem-group arthropods just basal to deuteropoda, [42] a clade including upper stem (e.g. fuxianhuiids and bivalved arthropods) and crown Euarthropoda (e.g. Artiopoda, Chelicerata and Mandibulata). [8] [44] [45] [46] [47] [48] [7] [9] [10] [2] [3] [30] [18] [39] [40] [49] [50] [43] This interpretation is supported by numerous arthropod groundplan found on radiodonts and opabiniids, such as stalked compound eyes, [25] digestive glands, [32] trunk appendages forming by dorsal and ventral elements (precursor of arthropod biramous appendages). [10] [50] Compared to opabiniids, which possess posterior mouth opening and fused frontalmost appendages (comparable to euarthropod posterior-facing labrum/hypostome complex), [17] [43] radiodonts on the other hand featured euarthropod-like dorsal sclerite (H-element) and arthropodization (frontal appendages) on their head regions, [51] [17] [43] alongside cuticularized gut termini. [27] The fact that both radiodonts and opabiniids lack exoskeleton on their trunk region suggests that the origin of compound eyes and arthropodization (segmented appendages) precede arthrodization (full set of trunk exoskeleton) in the arthropod stem lineage. [42] [52] [53] The constricted neck region with feeding appendicular structures of some radiodont may also shed light on the origin of the sophisticated arthropod head, which was formed by the fusion of multiple anterior body segments. [4] [17] Basal deuteropods that possess a mixture of radiodont/opabiniid characters like Kylinxia and Erratus , may represent intermediate forms between radiodonts, opabiniids and other euarthropods. [18] [50]

Taxa just basal to the radiodont, opabiniid and euarthropod branch are 'gilled lobopodians' like Pambdelurion and Kerygmachela , which occasionally united under the class Dinocaridida with opabibiids and radiodonts. [54] [46] They have body flaps, digestive glands, large (presumely compound) eyes and specialized frontal appendages like the former taxa, but their frontal appendages are not arthropodized nor fused, eyes sessile, gill-like structures less prominent, and certainlly bore lobopod underneath each of their flaps. [55] [10] [56] [43] Taxa even basal to 'gilled lobopodians' are siberiids like Megadictyon and Jianshanopodia , [42] a group of lobopodians that bore robust frontal appendages and digestive glands, but no body flaps. Such intermediate forms between lobopodian and radiodont/euarthropod suggest that the total-group Arthropoda arose from a paraphyletic lobopodian grade, alongside the other two extant panarthropod phyla Tardigrada and Onychophora. [57] [42] [17] [58] [52] [53]

Previous studies may suggest radiodonts as a group other than stem-arthropods, such as a hitherto unknown phylum; [33] cycloneuralia n worms undergone convergent with arthropods (based on the cycloneuralian-like radial mouthparts); [59] [54] stem chelicerate euarthropods alongside megacheira ns also known as great appendage arthropods (based on the similarity between radiodont frontal appendages, megacheiran great appendages and chelicerae); [60] or Schinderhannes bartelsi, which resolved as a hurdiid radiodont in recent analyses, [42] [7] [10] [2] [3] [39] [40] as a species more closely related to euarthropods than other radiodonts (based on some putative euarthropod-like features found on Schinderhannes). [35] However, neither each of them were supported by later investigations. The radial mouthparts are not cycloneuralian-exclusive and more likely present result of convergent evolution or ecdysozoa n plesimorphy, since they also have been found in panarthropods such as tardigrade and some lobopodia ns; [61] radiodonts lacking definitive euarthropod features such as trunk tergites and multiple head appendages, [42] and the megacheiran great appendages were considered to be deutocerebral, [62] [63] which could be non-homologous to the radiodont protocerebral frontal appendages; [9] [17] putative euarthropod characters found on the single Schinderhannes fossil is questionable and may present other radiodont-like structures. [42]

Interrelationships

Caryosyntrips 20191221 Radiodonta frontal appendage Caryosyntrips serratus.png

Tamisiocarididae

Houcaris saron 20191221 Radiodonta frontal appendage Anomalocaris saron.png

"Anomalocaris" briggsi 20191228 Radiodonta frontal appendage Anomalocaris briggsi.png

Tamisiocaris 20191228 Radiodonta frontal appendage Tamisiocaris borealis.png

Anomalocarididae+
Amplectobeluidae

Laminacaris 20191221 Radiodonta frontal appendage Laminacaris.png

Houcaris magnabasis 20191221 Radiodonta frontal appendage Anomalocaris magnabasis.png

Anomalocaris 20210626 Anomalocaris.png

Lyrarapax 20191018 Lyrarapax unguispinus.png

Amplectobelua 20191201 Amplectobelua symbrachiata.png

"Anomalocaris" kunmingensis 20210212 Radiodonta frontal appendage Guanshancaris kunmingensis.png

Ramskoeldia consimilis 20191221 Radiodonta frontal appendage Ramskoeldia consimilis.png

Ramskoeldia platyacantha 20191221 Radiodonta frontal appendage Ramskoeldia platyacantha.png

Paranomalocaris 20191221 Radiodonta frontal appendage Paranomalocaris multisegmentalis.png

Hurdiidae

Peytoia 20191021 Peytoia nathorsti Laggania cambria.png

cf. Peytoia USNM PAL 57490.jpg

Stanleycaris 20220716 Stanleycaris hirpex.png

Schinderhannes 20210708 Schinderhannes bartelsi diagrammatic reconstruction.png

Aegirocassis 20191205 Aegirocassis benmoulai Aegirocassis benmoulae.png

Hurdia 20210619 Hurdia.png

Pahvantia 20210516 Radiodonta head sclerites Pahvantia hastata.png

Cambroraster 20200329 Cambroraster falcatus.png

Titanokorys 20210909 Radiodonta head sclerites Titanokorys gainesi.png

Cordaticaris 20210516 Radiodonta head sclerites Cordaticaris striatus.png

Euarthropoda

Phylogeny of Radiodonta after Moysiuk & Caron 2021 [39]

Traditionally, all radiodont species have been placed within one family, Anomalocarididae, [6] hence the previous common name 'anomalocaridid' [26] [8] and it was still occasionally used to refer the whole order even after reclassification. [9] [10] Since the reassignment done by Vinther et al. 2014, most of the radiodont species were reclassified within three new families: Amplectobeluidae, Tamisiocarididae [2] [3] (formerly Cetiocaridae [7] ), and Hurdiidae. [7] [10] [2] [3] Including Anomalocarididae, the four recent radiodont families may form the clade Anomalocarida. [7]

The original description of the order Radiodonta included Anomalocaris , Laggania (later known as Peytoia ), Hurdia , Proboscicaris , Amplectobelua , Cucumericrus , and Parapeytoia . [6] However, Proboscicaris is now regarded as a junior synonym of Hurdia , and Parapeytoia is considered to be a Megacheiran. [8] [27] [10] Due to the limited discovery, The position of Cucumericrus within Radiodonta is unclear, as it was either unselected by phylogenetic analysis [7] [3] [2] [39] [40] or resolved in a polytomy with Radiodonta and Euarthropoda. [10] [12]

The first in-depth phylogenetic analysis of Radiodonta was conducted by Vinther et al. in 2014, [7] followed by a handful of subsequest studies with more or less modified results. [9] [10] [2] [12] [3] [39] [40] [43] In most analysis, Caryosyntrips is the basal-most genus, but either resolved in a polytomy with other radiodonts and Euarthropoda (alongside Cucumericrus if included [10] [12] ) or outside of Radiodonta, casting doubt on its radiodont affinity. [64] With the exclusion of questionable Caryosyntrips and Cucumericrus, the monophyly of Radiodonta is widely supported, [7] [9] [10] [2] [12] [3] [39] [40] with a few results suggest possible paraphyly (either the Anomalocarididae+Amplectobeluidae clade or Hurdiidae sister to Euarthropoda). [30] [43] Putative synapomorphies of monophyletic Radiodonta including tripartite head sclerite complex and differentiated neck region. [3] The genus Anomalocaris in a broader sense always found to be polyphyletic, usually with "Anomalocaris" kunmingensis and "Anomalocaris" briggsi resolved as a member of Amplectobeluidae and Tamisiocarididae respectively. [7] [9] [10] [2] [3] [39] [40] Interrelationship of Amplectobeluidae is uncertain, as the amplectobeluid affinities of Lyrarapax and Ramskoeldia were occasionally questioned. [1] [3] [40] Monophyly of the speciose family Hurdiidae was recovered by most analysis and well-supported by several synapomorphies (e.g. distal articulated region of frontal appendage with proximal 5 podomeres bearing subequal endites [19] [3] ). Tamisiocarididae was often suggested to be sister group of Hurdiidae in 2010s, [7] [10] [2] [3] but this position became questionable in subsequent studies. [22] [24]

Described species of Radiodonta
SpeciesOriginal descriptionYear namedFamilyAgeLocationFrontal appendageHead sclerite complex
Cucumericrus decoratusHou, Bergström, & Ahlberg1995 [26] (unassigned) Cambrian Stage 3 Flag of the People's Republic of China.svg  China UnknownUnknown
Caryosyntrips serratusDaley & Budd2010 [21] (unassigned) WuliuanDrumian Flag of Canada (Pantone).svg  Canada Flag of the United States.svg  United States 20191221 Radiodonta frontal appendage Caryosyntrips serratus.png Unknown
Caryosyntrips camurusPates & Daley2017 [41] (unassigned) Wuliuan Flag of Canada (Pantone).svg  Canada Flag of the United States.svg  United States 20191221 Radiodonta frontal appendage Caryosyntrips camurus.png Incomplete [74]
Caryosyntrips durusPates & Daley2017 [41] (unassigned) Drumian Flag of the United States.svg  United States 20191221 Radiodonta frontal appendage Caryosyntrips durus.png Unknown
Paranomalocaris multisegmentalisWang, Huang, & Hu2013 [66] Anomalocarididae? Cambrian Stage 4 Flag of the People's Republic of China.svg  China 20191221 Radiodonta frontal appendage Paranomalocaris.png Unknown
Paranomalocaris simplexJiao, Pates, Lerosey-Aubril, Ortega-Hernandez, Yang, Lan, Zhang2021 [67] Anomalocarididae? Cambrian Stage 4 Flag of the People's Republic of China.svg  China 20210707 Radiodonta frontal appendage Paranomalocaris simplex.png Unknown
Laminacaris chimeraGuo, Pates, Cong, Daley, Edgecombe, Chen, & Hou2018 [68] (controversial) Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20191221 Radiodonta frontal appendage Laminacaris.png Unknown
Innovatiocaris maotianshanensisZeng, Zhao, Zhu2022 [69] (unassigned) Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20210531 Anomalocaris sp. ELRC 20001.png P-element unknown [69]
Innovatiocaris ? multispiniformisZeng, Zhao, Zhu2022 [69] (unassigned) Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20220916 Innovatiocaris multispiniformis.png Unknown
Anomalocaris canadensisWhiteaves1892 [75] Anomalocarididae Wuliuan Flag of the United States.svg  United States 20191221 Radiodonta frontal appendage Anomalocaris canadensis.png 20210516 Radiodonta head sclerites Anomalocaris canadensis.png
Lenisicaris pennsylvanica (formerly Anomalocaris pennsylvanica) [20] Resser1929 Anomalocarididae Cambrian Stage 3 Flag of the United States.svg  United States 20191221 Radiodonta frontal appendage Anomalocaris pennsylvanica.png Unknown
Lenisicaris lupataWu, Ma, Lin, Sun, Zhang, & Fu2021 [20] Anomalocarididae Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20210513 Radiodonta frontal appendage Lenisicaris lupata.png Unknown
Anomalocaris daleyaePaterson, García-Bellidob & Edgecombe2023 Anomalocarididae Cambrian Stage 4 Flag of Australia (converted).svg  Australia 20210211 Radiodonta frontal appendage Anomalocaris daleyae.png Unknown
Houcaris magnabasis (formerly Anomalocaris magnabasis) [15] Pates, Daley, Edgecombe, Cong & Lieberman2019(controversial) Cambrian Stage 4 Flag of the United States.svg  United States 20191221 Radiodonta frontal appendage Anomalocaris magnabasis.png Unknown
Houcaris saron (formerly Anomalocaris saron) [15] Hou, Bergström, & Ahlberg1995(controversial) Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20191221 Radiodonta frontal appendage Anomalocaris saron.png Unknown
Echidnacaris briggsi [24] Nedin1995 Tamisiocarididae Cambrian Stage 4 Flag of Australia (converted).svg  Australia 20191228 Radiodonta frontal appendage Anomalocaris briggsi.png Possible H-element and unique lateral sclerites associated with compound eyes [13] [24]
Ramskoeldia platyacanthaCong, Edgecombe, Daley, Guo, Pates, & Hou2018 [1] Amplectobeluidae Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20191221 Radiodonta frontal appendage Ramskoeldia platyacantha.png Incomplete [1]
Ramskoeldia consimilisCong, Edgecombe, Daley, Guo, Pates, & Hou2018 [1] Amplectobeluidae Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20191221 Radiodonta frontal appendage Ramskoeldia consimilis.png Incomplete [1]
Lyrarapax unguispinusCong, Ma, Hou, Edgecombe, & Strausfield2014 [9] Amplectobeluidae Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20191221 Radiodonta frontal appendage Lyrarapax unguispinus.png P-element neck unknown
Lyrarapax trilobusCong, Daley, Edgecombe, Hou, & Chen2016 [5] Amplectobeluidae Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20191221 Radiodonta frontal appendage Lyrarapax trilobus.png P-element unknown
Amplectobelua symbrachiataHou, Bergström, & Ahlberg1995 [26] Amplectobeluidae Cambrian Stage 3 Flag of the People's Republic of China.svg  China 20191221 Radiodonta frontal appendage Amplectobelua symbrachiata.png 20210516 Radiodonta head sclerites Amplectobelua symbrachiata.png
Amplectobelua stephenensisDaley & Budd2010 [21] Amplectobeluidae Wuliuan Flag of the United States.svg  United States 20191221 Radiodonta frontal appendage Amplectobelua stephenensis.png Unknown
Guanshancaris kunmingensisZhang et al.2023 [70] Amplectobeluidae Cambrian Stage 4 Flag of the People's Republic of China.svg  China 20210212 Radiodonta frontal appendage Guanshancaris kunmingensis.png Unknown
Tamisiocaris borealisDaley & Peel2010 Tamisiocarididae Cambrian Stage 3 Flag of Greenland.svg  Greenland 20191228 Radiodonta frontal appendage Tamisiocaris borealis.png Incomplete [7]
Ursulinacaris grallaePates, Daley & Butterfield2019 Hurdiidae Wuliuan Flag of Canada (Pantone).svg  Canada 20191229 Radiodonta frontal appendage Ursulinacaris grallae.png Unknown
Schinderhannes bartelsi Kühl, Briggs, & Rust2009 [35] Hurdiidae Emsian Flag of Germany.svg  Germany Incomplete [3] Incomplete [3]
Stanleycaris hirpexPates, Daley, & Ortega-Hernández2018 [72] Hurdiidae Wuliuan Flag of Canada (Pantone).svg  Canada 20210518 Radiodonta frontal appendage Stanleycaris hirpex.png P-element is unknown, possibly absent [22]
Peytoia nathorsti Walcott1911 [76] Hurdiidae WuliuanDrumian Flag of Canada (Pantone).svg  Canada Flag of the United States.svg  United States 20191229 Radiodonta frontal appendage Peytoia nathorsti Laggania cambria.png Incomplete [3]
Peytoia infercambriensis (formerly Cassubia infercambriensis) [77] Lendzion1975 Hurdiidae Cambrian Stage 3 Flag of Poland.svg  Poland 20210218 Peytoia infercambriensis Cassubia infercambriensis id1.png Unknown
Aegirocassis benmoulaiVan Roy, Daley, & Briggs2015 [10] Hurdiidae (Aegirocassisinae) Tremadocian Flag of Morocco.svg  Morocco 20191229 Radiodonta frontal appendage Aegirocassis benmoulai Aegirocassis benmoulae.png 20210516 Radiodonta head sclerites Aegirocassis benmoulai Aegirocassis benmoulae.png
Hurdia victoriaWalcott1912 [78] Hurdiidae WuliuanDrumian Flag of Canada (Pantone).svg  Canada Flag of the Czech Republic.svg  Czechia 20191229 Radiodonta frontal appendage Hurdia.png 20210516 Radiodonta head sclerites Hurdia victoria.png
Hurdia triangulataWalcott1912 [78] Hurdiidae Wuliuan Flag of Canada (Pantone).svg  Canada 20191229 Radiodonta frontal appendage Hurdia.png 20210516 Radiodonta head sclerites Hurdia triangulata.png
Cambroraster falcatusMoysiuk & Caron2019 [3] Hurdiidae Wuliuan Flag of Canada (Pantone).svg  Canada 20191229 Radiodonta frontal appendage Cambroraster falcatus.png 20210516 Radiodonta head sclerites Cambroraster falcatus.png
Pahvantia hastataRobison & Richards1981Hurdiidae Drumian Flag of the United States.svg  United States 20210909 Radiodonta frontal appendage Pahvantia hastata.png 20210516 Radiodonta head sclerites Pahvantia hastata.png
Cordaticaris striatusSun, Zeng, & Zhao2020 [73] Hurdiidae Drumian Flag of the People's Republic of China.svg  China Incomplete [73] 20210516 Radiodonta head sclerites Cordaticaris striatus.png
Zhenghecaris shankouensisVanner, Chen, Huang, Charbonnier, & Wang2006Hurdiidae Cambrian Stage 3 Flag of the People's Republic of China.svg  China Unknown
20210708 Zhenghecaris shankouensis sclerite.png
Buccaspinea cooperiPates, Lerosey-Aubril, Daley, Kier, Bonino & Ortega-Hernández2021 [74] Hurdiidae Drumian Flag of the United States.svg  United States 20210718 Radiodonta frontal appendage Buccaspinea cooperi.png Unknown
Titanokorys gainesiCaron & Moysiuk2021 [40] Hurdiidae Wuliuan Flag of Canada (Pantone).svg  Canada 20210909 Radiodonta frontal appendage Titanokorys gainesi.png 20210909 Radiodonta head sclerites Titanokorys gainesi.png
Pseudoangustidontus duplospineusVan Roy & Tetlie2006 Hurdiidae (Aegirocassisinae) Tremadocian Flag of Morocco.svg  Morocco 20230828 Radiodonta frontal appendage Pseudoangustidontus duplospineus.png Unknown
Pseudoangustidontus izdiguaPotin, Gueriau & Daley2023 Hurdiidae (Aegirocassisinae) Tremadocian Flag of Morocco.svg  Morocco 20230828 Radiodonta frontal appendage Pseudoangustidontus izdigua.png Incomplete [71]

History

Body specimen of Peytoia nathorsti, the original "Laggania cambria" Laggania cambria Peytoia nathorsti USNM 57555.jpg
Body specimen of Peytoia nathorsti , the original "Laggania cambria"

The history of radiodonts is complex. Incomplete specimens pertaining to different body parts of the same species had historically been interpreted as belonging to different species and even different phyla. [6] [8] Prior to their recognition as a group, radiodont specimens had been assigned to five different phyla: Porifera, Cnidaria, Echinodermata, Annelida, and Arthropoda. [6]

The first known radiodont specimens were collected from the trilobite beds of Mount Stephen by Richard G. McConnell of the Geological Survey of Canada in 1886 [6] or 1888. [75] These specimens were named Anomalocaris canadensis in 1892 by GSC paleontologist Joseph Whiteaves. [75] Whiteaves interpreted the specimens, now known to be isolated frontal appendages, as the abdomen of a phyllocarid crustacean. [75] Additional radiodont specimens were described in 1911 by Charles Walcott. [76] He interpreted an isolated oral cone, which he named Peytoia nathorsti , as a jellyfish, and a poorly-preserved but relatively complete specimen, which he named Laggania cambria, as a holothurian. [76] In 1912 Walcott named Hurdia victoria and H. triangulata based on isolated H-elements, which he interpreted as the carapaces of crustaceans. [78] Isolated frontal appendages of Peytoia and Hurdia, collectively known as "Appendage F" in Briggs 1979, were all identified as those of Sidneyia at that time. [76] A Hurdia P-element was named Proboscicaris in 1962, and interpreted as the carapace of a bivalved arthropod. [79]

The Geological Survey of Canada initiated a revision of Burgess Shale fossils in 1966, overseen by Cambridge University paleontologist Harry B. Whittington. [6] This revision would ultimately lead to the discovery of the complete radiodont body plan. In 1978, Simon Conway Morris recognized that the mouthparts of Laggania were Peytoia-like, but he interpreted this as evidence that it was a composite fossil made up of a Peytoia jellyfish and a sponge. [80] In 1979, Derek Briggs recognized that the fossils of Anomalocaris were appendages, not abdomens, but interpreted them as walking legs alongside "Appendage F". [81] It was not until 1985 that the true nature of the fossils of Anomalocaris, Laggania, and Peytoia was recognized, and they were all assigned to a single genus, Anomalocaris. [33] Subsequently, it was recognized that Anomalocaris was a distinct form from the other two, resulting in a split into two genera, the latter of which was variously named Laggania and Peytoia until it was determined that both represent the same species and Peytoia had priority. [23] It was later recognized that some of the fossils assigned to these taxa belonged to another form, which was recognized as bearing a carapace made up of Hurdia and Proboscicaris elements. Finally, in 2009, these specimens were redescribed as Hurdia. [8] Even after these recognitions, partial misidentifications (e.g. oral cone and frontal appendages of Peytoia had been assigned to Anomalocaris [6] and Hurdia, [8] respectively) had been revealed by subsequent studies as well. [23] [82]

The taxon Radiodonta itself was coined in 1996 by Desmond Collins, after it was established that Anomalocaris and its kin represented a distinctive lineage with arthropod affinities rather than a hitherto unknown phylum. [6] Collins also established the class Dinocarida to contain the order Radiodonta as well as the Opabiniidae, which he recognized as distinct due to its lacking the distinctive oral cone structure of radiodonts. [6] Radiodonta was first given a phylogenetic definition in 2014. [7] Radiodonta was originally viewed as containing a single family, Anomalocarididae, but it was divided into four families in 2014: Amplectobeluidae, Anomalocarididae, Cetiocaridae, and Hurdiidae. [7] The name Cetiocaridae did not conform to the International Code of Zoological Nomenclature and so was renamed Tamisiocarididae in 2019. [83]

Until the 2010s, radiodonts were typically considered to be uniformly large apex predators, but discoveries of new species over the course of that decade led to a considerable increase in the known ecological and morphological diversity of the group. [7] [10] [2] [3] [84] [74] [39] [40]

Related Research Articles

<span class="mw-page-title-main">Dinocaridida</span> Extinct class of basal arthropods

Dinocaridida is a proposed fossil taxon of basal arthropods that flourished in the Cambrian period with occasional Ordovician and Devonian records. Characterized by a pair of frontal appendages and series of body flaps, the name of Dinocaridids refers to the suggested role of some of these members as the largest marine predators of their time. Dinocaridids are occasionally referred to as the 'AOPK group' by some literatures, as the group compose of Radiodonta, Opabiniidae, and the "gilled lobopodians" Pambdelurion and Kerygmachelidae. It is most likely paraphyletic, with Kerygmachelidae and Pambdelurion more basal than the clade compose of Opabiniidae, Radiodonta and other arthropods.

<i>Anomalocaris</i> Extinct genus of cambrian radiodont

Anomalocaris is an extinct genus of radiodont, an order of early-diverging stem-group arthropods.

<i>Peytoia</i> Extinct genus of radiodont

Peytoia is a genus of hurdiid radiodont, an early diverging order of stem-group arthropods, that lived in the Cambrian period, containing two species, Peytoia nathorsti from the Miaolingian of Canada and Peytoia infercambriensis from Poland, dating to Cambrian Stage 3. Its two frontal appendages had long bristle-like spines, it had no fan tail, and its short stalked eyes were behind its large head.

<i>Amplectobelua</i> Extinct genus of radiodont

Amplectobelua is an extinct genus of late Early Cambrian amplectobeluid radiodont, a group of stem arthropods that mostly lived as free-swimming predators during the first half of the Paleozoic Era.

<span class="mw-page-title-main">Anomalocarididae</span> Clade of extinct arthropods

Anomalocarididae is an extinct family of Cambrian radiodonts, a group of stem-group arthropods.

<i>Pambdelurion</i> Extinct genus of Arthropod

Pambdelurion is an extinct genus of panarthropod from the Cambrian aged Sirius Passet site in northern Greenland. Like the morphologically similar Kerygmachela from the same locality, Pambdelurion is thought to be closely related to arthropods, combining characteristics of "lobopodians" with those of primitive arthropods.

<i>Parapeytoia</i> Extinct genus of arthropods

Parapeytoia is a genus of Cambrian arthropod. The type and only described species is Parapeytoia yunnanensis, lived over 518 million years ago in the Maotianshan shales of Yunnan, China. Unidentified fossils from the same genus also had been discovered from the nearby Wulongqing Formation.

<i>Schinderhannes bartelsi</i> Extinct species of radiodont

Schinderhannes bartelsi is a species of hurdiid radiodont (anomalocaridid) known from one specimen from the lower Devonian Hunsrück Slates. Its discovery was astonishing because previously, radiodonts were known only from exceptionally well-preserved fossil beds (Lagerstätten) from the Cambrian, 100 million years earlier.

<i>Hurdia</i> Extinct genus of radiodonts

Hurdia is an extinct genus of hurdiid radiodont that lived 505 million years ago during the Cambrian Period. Fossils have been found in North America, China and the Czech Republic.

<i>Stanleycaris</i> Extinct genus of basal hurdiid radiodonts

Stanleycaris is an extinct, monotypic genus of hurdiid radiodont from the middle Cambrian (Miaolingian). The type species is Stanleycaris hirpex. Stanleycaris was described from the Stephen Formation near the Stanley Glacier and Burgess Shale locality of Canada, as well as Wheeler Formation of United States. The genus was characterized by the rake-like frontal appendages with robust inner spines.

<i>Cucumericrus</i> Extinct genus of arthropod

Cucumericrus ("cucumber-leg") is an extinct genus of stem-arthropod. The type and only species is Cucumericrus decoratus, with fossils discovered from the Maotianshan Shales of Yunnan, China.

<i>Caryosyntrips</i> Extinct genus of arthropod

Caryosyntrips ("nutcracker") is an extinct genus of stem-arthropod which known from Canada, United States and Spain during the middle Cambrian.

<span class="mw-page-title-main">Amplectobeluidae</span> Extinct clade of Cambrian organisms

Amplectobeluidae is a clade of Cambrian radiodonts. It currently includes five definitive genera, Amplectobelua, Lyrarapax, Ramskoeldia, Guanshancaris and a currently unnamed genus from the lower Cambrian aged Sirius Passet site in Greenland. There is also a potential fifth genus, Houcaris, but that genus has become problematic in terms of its taxonomic placement.

<i>Lyrarapax</i> Extinct genus of Amplectobeluid radiodont

Lyrarapax is a radiodont genus of the family Amplectobeluidae that lived in the early Cambrian period 520 million years ago. Its neural tissue indicates that the radiodont frontal appendage is protocerebral, resolving parts of the arthropod head problem and showing that the frontal appendage is homologous to the antennae of Onychophorans and labrum of euarthropods. Its fossilized remains were found in Yunnan in southwestern China. A second species was described in 2016, differing principally in the morphology of its frontal appendages. It is a small animal, measuring up to 8 cm (3.1 in) in total body length.

<i>Aegirocassis</i> Extinct genus of radiodonts

Aegirocassis is an extinct genus of giant radiodont arthropod belonging to the family Hurdiidae that lived 480 million years ago during the early Ordovician in the Fezouata Formation of Morocco. It is known by a single species, Aegirocassis benmoulai. Van Roy initiated scientific study of the fossil, the earliest known of a "giant" filter-feeder discovered to date. Aegirocassis is considered to have evolved from early predatory radiodonts. This animal is characterized by its long, forward facing head sclerite, and the endites on its frontal appendages that bore copious amounts of baleen-like auxiliary spines. This animal evolving filter-feeding traits was most likely a result of the Great Ordovician Biodiversification Event, when environmental changes caused a diversification of plankton, which in turn allowed for the evolution of new suspension feeding lifeforms. Alongside the closely related Pseudoangustidontus, an unnamed hurdiid from Wales, the middle Ordovician dinocaridid Mieridduryn, and the Devonian hurdiid Schinderhannes this radiodont is one of the few dinocaridids known from post-Cambrian rocks.

<span class="mw-page-title-main">Hurdiidae</span> Extinct family of arthropods

Hurdiidae is an extinct cosmopolitan family of radiodonts, a group of stem-group arthropods, which lived during the Paleozoic Era. It is the most long-lived radiodont clade, lasting from the Cambrian period to the Devonian period.

<i>Ramskoeldia</i> Extinct genus of Amplectobeluid radiodont

Ramskoeldia is a genus of amplectobeluid radiodont described in 2018. It was the second genus of radiodont found to possess gnathobase-like structures and an atypical oral cone after Amplectobelua. It was discovered in the Chengjiang biota of China, the home of numerous radiodontids such as Amplectobelua and Lyrarapax.

<i>Houcaris</i> Genus of radiodonts

Houcaris is a possibly paraphyletic radiodont genus, tentatively assigned to either Amplectobeluidae, Anomalocarididae or Tamisiocarididae, known from Cambrian Series 2 of China and the United States. It contains two species, Houcaris saron and Houcaris magnabasis, both of which were originally named as species of the related genus Anomalocaris. The genus Houcaris was established for the two species in 2021 and honors Hou Xianguang, who had discovered and named the type species Anomalocaris saron in 1995 along with his colleagues Jan Bergström and Per E. Ahlberg.

<i>Erratus</i> Extinct genus of Cambrian arthropod

Erratus is an extinct genus of marine arthropod from the Cambrian of China. Its type and only species is Erratus sperare. Erratus is likely one of the most basal known arthropods, and its discovery has helped scientists understand the early evolution of arthropod trunk appendages. Some of the stem-arthropods like radiodonts did not have legs, instead they had flap like appendages that helped them swim. Erratus on the other hand had not only flaps but also a set of primitive legs. It also supported the theory that the gills of aquatic arthropods probably evolved into the wings and lungs of terrestrial arthropods later in the Paleozoic.

<i>Laminacaris</i> Genus of extinct arthropods

Laminacaris is a genus of extinct stem-group arthropods (Radiodonta) that lived during the Cambrian period. It is monotypic with a single species Laminacaris chimera, the fossil of which was described from the Chengjiang biota of China in 2018. Around the same time, two specimens that were similar or of the same species were discovered at the Kinzers Formation in Pennsylvania, USA. The first specimens from China were three frontal appendages, without the other body parts.

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