arthropod
Information about arthropod
| Arthropoda Fossil range: Cambrian or earlier - Recent | ||||||
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Mexican redknee tarantula Brachypelma smithi Mexican redknee tarantula Brachypelma smithi | ||||||
| Scientific classification | ||||||
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| Subphyla and Classes | ||||||
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More than 80% of described living animal species are arthropods,[1] with over a million modern species described and a fossil record reaching back to the late proterozoic era. Arthropods are common throughout marine, freshwater, terrestrial, and even aerial environments, as well as including various symbiotic and parasitic forms. They range in size from microscopic plankton (~¼ mm) up to forms several metres long. The largest living arthropod is the Japanese spider crab, with a leg span up to 3½ m (12 ft), and some prehistoric arthropods were even larger, such as Pterygotus and Arthropleura.
Basic arthropod structure
Blue crab (Callinectes sapidus), a crustacean
Harpaphe haydeniana, a myriapod
Mating water striders and their shadows
Arthropods have an open circulatory system. Haemolymph containing haemocyanin, a copper-based oxygen-carrying protein (the copper makes the blood blue, unlike humans that use hemoglobin which uses iron that makes it red), is propelled by a series of hearts into the body cavity where it comes in direct contact with the tissues. Arthropods are protostomes. There is a coelom, but it is reduced to a tiny cavity around the reproductive and excretory organs, and the dominant body cavity is a haemocoel, filled with haemolymph which bathes the organs directly. The arthropod body is divided into a series of distinct segments, plus a pre-segmental acron which usually supports compound and simple eyes and a post-segmental telson. These are grouped into distinct, specialised body regions called tagmata. Each segment, at least primitively, supports a pair of appendages.
The cuticle in arthropods forms a rigid exoskeleton, composed mainly of chitin, which is periodically shed as the animal grows. They contain an inner zone (procuticle) which is made of protein and chitin and is responsible for the strength of the exoskeleton. The outer zone (epicuticle) lies on the surface of the procuticle. It is nonchitinous and is a complex of proteins and lipids. It provides the moisture proofing and protection to the procuticle. The exoskeleton takes the form of plates called sclerites on the segments, plus rings on the appendages that divide them into segments separated by joints. This is in fact what gives arthropods their name — jointed feet — and separates them from their relatives, the Onychophora and Tardigrada, also called Lobopoda (and which is sometimes included in a group called Panarthropoda that also includes arthropods). The exoskeletons of arthropods strengthen them against attack by predators and are impermeable to water. In order to grow, an arthropod must shed its old exoskeleton and secrete a new one. This process, ecdysis, is expensive in terms of energy, and during the moulting period, an arthropod is vulnerable.
Classification of arthropods
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Arthropods are typically classified into five subphyla, of which one is extinct:[4]
- Trilobites are a group of formerly numerous marine animals that died in the mass extinction at the end of the Permian-Triassic extinction event.
- Chelicerates include spiders, mites, scorpions and related organisms. They are characterised by the presence of chelicerae.
- Myriapods comprise millipedes and centipedes and their relatives and have many body segments, each bearing one or two pairs of legs. They are sometimes grouped with the hexapods.
- Hexapods comprise insects and three small orders of insect-like animals with six thoracic legs. They are sometimes grouped with the myriapods, in a group called Uniramia, though genetic evidence tends to support a closer relationship between hexapods and crustaceans.
- Crustaceans are primarily marine (a notable exception being woodlice) and are characterised by having biramous appendages. They include lobsters, crabs, barnacles, and many others.
Aside from these major groups, there are also a number of fossil forms - mostly from the lower Cambrian - including anomalocarids, euthycarcinoids [5] and Arthrogyrinus which are difficult to place, either from lack of obvious affinity to any of the main groups or from clear affinity to several of them.
The phylogeny of the arthropods has been an area of considerable interest and dispute. The validity of many of the arthropod groups suggested by earlier authors is being questioned by recent studies; these include Mandibulata, Uniramia and Atelocerata. The most recent studies tend to suggest a paraphyletic Crustacea with different hexapod groups nested within it .[3][6] The remaining clade of Myriapoda and Chelicerata is referred to as Paradoxopoda or Myriochelata.
Since the International Code of Zoological Nomenclature recognises no priority above the rank of family, many of the higher groups can be referred to by a variety of different names .[7]
Evolution
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Arthropods are today almost universally considered to be monophyletic, i.e. they only arose once, a view supported by both morphological and molecular studies. Such a view contradicts the widespread view in the 1970s that the arthropods had evolved on several occasions from soft-bodied, annelid-like ancestors.
The closest relatives of the arthropods are usually considered to be the Tardigrada and Onychophora, together forming the monophyletic group Panarthropoda (the crustaceans, myriapods, chelicerates and insects are often referred to as "Euarthropoda" to distinguish them from their soft-bodied relatives). Comparison between these groups suggests that the euarthropods evolved from a soft-bodied ancestor not too dissimilar to the living onychophorans, a view that has found some support from the fossil record.
Traditionally the Annelida have been considered the closest relatives of these three phyla, on account of their common segmentation. Molecular data however, are strongly against this grouping (known as the Articulata), suggesting instead that the panarthropods belong in a clade including both the arthropods and various pseudocoelomates such as roundworms and priapulids that share with them growth by moulting, or ecdysis, from which its name, the Ecdysozoa. is derived. If this new grouping is correct, then segmentation of arthropods and annelids has either evolved through convergence, or has been inherited from a very deep ancestor, and has been subsequently lost in several other lineages, such as the non-arthropod members of the Ecdysozoa.
References
1. ^ Anna Thanukos. The Arthropod Story. University of California, Berkeley.
2. ^ "Do spiders have hydraulic legs?", The Straight Dope, 2004-09-27.
3. ^ Alexandre Hassanin (2006). Phylogeny of Arthropoda inferred from mitochondrial sequences: Strategies for limiting the misleading effects of multiple changes in pattern and rates of substitution. Molecular Phylogenetics and Evolution 38: 100–116.
4. ^ Arthropoda (TSN 82696). Integrated Taxonomic Information System. Accessed on August 15 2006.
5. ^ The Rhynie Chert Euthycarcinoids. University of Aberdeen. Retrieved on 2006-08-15.
6. ^ Giribet, G., S. Richter, G. D. Edgecombe & W. C. Wheeler (2005). The position of crustaceans within Arthropoda — Evidence from nine molecular loci and morphology. Crustacean Issues 16: 307–352.
7. ^ Campbell, Reece & Mitchell (2006-07-30). Arthropoda.
8. ^ Nielsen, C. (2001). Animal Evolution: Interrelationships of the Living Phyla. Second Edition. Oxford University Press, Oxford. ISBN 978-0-19-850681-2.
2. ^ "Do spiders have hydraulic legs?", The Straight Dope, 2004-09-27.
3. ^ Alexandre Hassanin (2006). Phylogeny of Arthropoda inferred from mitochondrial sequences: Strategies for limiting the misleading effects of multiple changes in pattern and rates of substitution. Molecular Phylogenetics and Evolution 38: 100–116.
4. ^ Arthropoda (TSN 82696). Integrated Taxonomic Information System. Accessed on August 15 2006.
5. ^ The Rhynie Chert Euthycarcinoids. University of Aberdeen. Retrieved on 2006-08-15.
6. ^ Giribet, G., S. Richter, G. D. Edgecombe & W. C. Wheeler (2005). The position of crustaceans within Arthropoda — Evidence from nine molecular loci and morphology. Crustacean Issues 16: 307–352.
7. ^ Campbell, Reece & Mitchell (2006-07-30). Arthropoda.
8. ^ Nielsen, C. (2001). Animal Evolution: Interrelationships of the Living Phyla. Second Edition. Oxford University Press, Oxford. ISBN 978-0-19-850681-2.
The Cambrian is a major division of the geologic timescale that begins about 542 ± 1.0 Ma (million years ago) at the end of the Proterozoic eon and ended about 488.3 ± 1.7 Ma with the beginning of the Ordovician period (ICS, 2004).
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B. smithi
Binomial name
Brachypelma smithi
F. O. Pickard-Cambridge, 1897
Synonyms
Eurypelma smithi Euathlus smithi
The Mexican redknee tarantula (
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Binomial name
Brachypelma smithi
F. O. Pickard-Cambridge, 1897
Synonyms
Eurypelma smithi Euathlus smithi
The Mexican redknee tarantula (
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Scientific classification or biological classification is a method by which biologists group and categorize species of organisms. Scientific classification also can be called scientific taxonomy, but should be distinguished from folk taxonomy, which lacks scientific basis.
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Ecdysozoa
Aguinaldo et al., 1997
Phyla
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Aguinaldo et al., 1997
Phyla
- Scalidophora (288 species)
- Priapulida (16 species)
- Kinorhyncha (150 species)
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Pierre André Latreille (November 20, 1762 - February 6, 1833) was a French entomologist. His works describing insects assigned many of the insect taxa still in use today.
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Trilobitomorpha
Classes
Trilobita
The Trilobitomorpha is a subphylum of the phylum Arthropoda that includes the trilobites. Originally a variety of peculiar forms, mostly from the lower Cambrian, were included as the Class Trilobitoidea.
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Classes
Trilobita
The Trilobitomorpha is a subphylum of the phylum Arthropoda that includes the trilobites. Originally a variety of peculiar forms, mostly from the lower Cambrian, were included as the Class Trilobitoidea.
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Trilobita
Walch, 1771
Orders
Trilobites
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Walch, 1771
Orders
- Agnostida
- Nectaspida
- Redlichiida
- Corynexochida
- Lichida
- Phacopida
- Proetida
- Asaphida
- Harpetida
- Ptychopariida
Trilobites
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Chelicerata
Heymons, 1901
Classes
Arachnida
Merostomata
Pycnogonida
†Eurypterida
The Subphylum Chelicerata constitutes one of the major subdivisions of the Phylum Arthropoda, including the arachnids, horseshoe crabs, and related
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Heymons, 1901
Classes
Arachnida
Merostomata
Pycnogonida
†Eurypterida
The Subphylum Chelicerata constitutes one of the major subdivisions of the Phylum Arthropoda, including the arachnids, horseshoe crabs, and related
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Arachnida
Cuvier, 1812
Extant orders
Acarina
Amblypygi
Araneae
Opiliones
Palpigradi
Pseudoscorpionida
Ricinulei
Schizomida
Scorpiones
Solifugae
Uropygi
Arachnids are a class (Arachnida
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Cuvier, 1812
Extant orders
Acarina
Amblypygi
Araneae
Opiliones
Palpigradi
Pseudoscorpionida
Ricinulei
Schizomida
Scorpiones
Solifugae
Uropygi
Arachnids are a class (Arachnida
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Araneae
Clerck, 1757
Diversity
111 families, 40,000 species
Suborders
Mesothelae
Mygalomorphae
Araneomorphae
See table of families
Spiders
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Clerck, 1757
Diversity
111 families, 40,000 species
Suborders
Mesothelae
Mygalomorphae
Araneomorphae
See table of families
Spiders
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Scorpiones
C. L. Koch, 1837
Superfamilies
Pseudochactoidea
Buthoidea
Chaeriloidea
Chactoidea
Iuroidea
Scorpionoidea
See classification for families.
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C. L. Koch, 1837
Superfamilies
Pseudochactoidea
Buthoidea
Chaeriloidea
Chactoidea
Iuroidea
Scorpionoidea
See classification for families.
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Merostomata
Orders
Merostomata is a class of marine Chelicerata which includes horseshoe crabs and eurypterids.
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Orders
- Order Eurypterida
- Order Xiphosura
Merostomata is a class of marine Chelicerata which includes horseshoe crabs and eurypterids.
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Limulus
Species: L. polyphemus
Binomial name
Limulus polyphemus
Linnaeus, 1758
The horseshoe crab, horsefoot, king crab
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Species: L. polyphemus
Binomial name
Limulus polyphemus
Linnaeus, 1758
The horseshoe crab, horsefoot, king crab
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Pycnogonida
Latreille, 1810
Order: Pantopoda
Families
may not be a complete list:
Ammotheidae
Austrodecidae
Callipallenidae
Colossendeidae
Nymphonidae
Phoxichilidiidae
Pycnogonidae
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Latreille, 1810
Order: Pantopoda
Families
may not be a complete list:
Ammotheidae
Austrodecidae
Callipallenidae
Colossendeidae
Nymphonidae
Phoxichilidiidae
Pycnogonidae
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Eurypterida
Orders
†Stylonuroidea Diener, 1924
†Eurypteroidea Burmeister, 1843
The eurypterid (sea scorpion) was the largest known arthropod that ever lived (with the possible exception of Arthropleuridae).
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Orders
†Stylonuroidea Diener, 1924
†Eurypteroidea Burmeister, 1843
The eurypterid (sea scorpion) was the largest known arthropod that ever lived (with the possible exception of Arthropleuridae).
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Myriapoda
Latreille, 1802
Classes [1]
Chilopoda
Diplopoda
Pauropoda
Symphyla
Myriapoda is a subphylum of arthropods containing millipedes, centipedes and others.
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Latreille, 1802
Classes [1]
Chilopoda
Diplopoda
Pauropoda
Symphyla
Myriapoda is a subphylum of arthropods containing millipedes, centipedes and others.
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Chilopoda
Latreille, 1817
Orders and Families
See text
Centipedes (Class Chilopoda') are fast-moving, venomous, predatory, terrestrial arthropods that have long bodies and many jointed legs.
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Latreille, 1817
Orders and Families
See text
Centipedes (Class Chilopoda') are fast-moving, venomous, predatory, terrestrial arthropods that have long bodies and many jointed legs.
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Chilopoda
Latreille, 1817
Orders and Families
See text
Centipedes (Class Chilopoda') are fast-moving, venomous, predatory, terrestrial arthropods that have long bodies and many jointed legs.
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Latreille, 1817
Orders and Families
See text
Centipedes (Class Chilopoda') are fast-moving, venomous, predatory, terrestrial arthropods that have long bodies and many jointed legs.
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Diplopoda
De Blainville in Gervais, 1844 [1]
Subclasses, orders and families
See text
Millipedes (Class Diplopoda
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De Blainville in Gervais, 1844 [1]
Subclasses, orders and families
See text
Millipedes (Class Diplopoda
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Diplopoda
De Blainville in Gervais, 1844 [1]
Subclasses, orders and families
See text
Millipedes (Class Diplopoda
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De Blainville in Gervais, 1844 [1]
Subclasses, orders and families
See text
Millipedes (Class Diplopoda
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Pauropoda
Lubbock, 1868
Order: Pauropodina
Families
Afrauropodidae
Brachypauropodidae
Millotauropodidae
Pauropodidae
Pauropods are small, pale, centipede-like arthropods.
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Lubbock, 1868
Order: Pauropodina
Families
Afrauropodidae
Brachypauropodidae
Millotauropodidae
Pauropodidae
Pauropods are small, pale, centipede-like arthropods.
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Symphyla
Ryder, 1880
Families
Scutigerellidae
Scolopendrellidae
Symphylans, also known as garden centipedes or glasshouse symphylans, are soil-dwelling arthropods of the class Symphyla in the subphylum Myriapoda.
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Ryder, 1880
Families
Scutigerellidae
Scolopendrellidae
Symphylans, also known as garden centipedes or glasshouse symphylans, are soil-dwelling arthropods of the class Symphyla in the subphylum Myriapoda.
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Hexapoda
Latreille, 1825
Classes & Orders
Class Insecta (insects)
Class Entognatha
The subphylum Hexapoda (from the Greek for six legs
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Latreille, 1825
Classes & Orders
Class Insecta (insects)
Class Entognatha
The subphylum Hexapoda (from the Greek for six legs
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Insecta
Linnaeus, 1758
Orders
Subclass Apterygota
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Linnaeus, 1758
Orders
Subclass Apterygota
- * Archaeognatha (bristletails)
- * Thysanura (silverfish)
- * Infraclass Paleoptera (Probably paraphyletic)
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Diplura
Börner, 1904
Families [1]
Campodeidae
Procampodeidae
Projapygidae
Anajapygidae
Japygidae
Heterojapygidae
Dinjapygidae
Evalljapygidae
Parajapygidae
The order Diplura
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Börner, 1904
Families [1]
Campodeidae
Procampodeidae
Projapygidae
Anajapygidae
Japygidae
Heterojapygidae
Dinjapygidae
Evalljapygidae
Parajapygidae
The order Diplura
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Protura
Silvestri, 1907
Families [1]
Acerentomata
The Protura
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Silvestri, 1907
Families [1]
Acerentomata
- Hesperentomidae
- Protentomidae
- Acerentomidae
- Antelientomidae
- Eosentomidae
- Sinentomidae
The Protura
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crustaceans (Crustacea) are a large group of arthropods, comprising approximately 52,000 described species [1], and are usually treated as a subphylum [2].
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Branchiopoda
Latreille, 1817
Orders
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Latreille, 1817
Orders
- Subclass Sarsostraca
- :Anostraca
- Subclass Phyllopoda
- ::Lipostraca?
- ::Notostraca
- :Infraclass Diplostraca
- ::Laevicaudata
- ::Spinicaudata
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