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1

Fahrein, Kathrin, Susan E. Masta, and Lars Podsiadlowski. "The first complete mitochondrial genome sequences of Amblypygi (Chelicerata: Arachnida) reveal conservation of the ancestral arthropod gene order." Genome 52, no. 5 (May 2009): 456–66. http://dx.doi.org/10.1139/g09-023.

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Amblypygi (whip spiders) are terrestrial chelicerates inhabiting the subtropics and tropics. In morphological and rRNA-based phylogenetic analyses, Amblypygi cluster with Uropygi (whip scorpions) and Araneae (spiders) to form the taxon Tetrapulmonata, but there is controversy regarding the interrelationship of these three taxa. Mitochondrial genomes provide an additional large data set of phylogenetic information (sequences, gene order, RNA secondary structure), but in arachnids, mitochondrial genome data are missing for some of the major orders. In the course of an ongoing project concerning arachnid mitochondrial genomics, we present the first two complete mitochondrial genomes from Amblypygi. Both genomes were found to be typical circular duplex DNA molecules with all 37 genes usually present in bilaterian mitochondrial genomes. In both species, gene order is identical to that of Limulus polyphemus (Xiphosura), which is assumed to reflect the putative arthropod ground pattern. All tRNA gene sequences have the potential to fold into structures that are typical of metazoan mitochondrial tRNAs, except for tRNA-Ala, which lacks the D arm in both amblypygids, suggesting the loss of this feature early in amblypygid evolution. Phylogenetic analysis resulted in weak support for Uropygi being the sister group of Amblypygi.
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2

PROUS, Xavier, Thadeu PIETROBON, Mariane S. RIBEIRO, and Robson de A. ZAMPAULO. "Bat necrophagy by a whip-spider (Arachnida, Amblypygi, Phrynidae) in a cave in the eastern Brazilian Amazon." Acta Amazonica 47, no. 4 (December 2017): 365–68. http://dx.doi.org/10.1590/1809-4392201700993.

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ABSTRACT Amblypygids are among the main predators in the ferriferous caves in Carajás National Forest, state of Pará (Amazon region of Brazil). One of the most common amblypygid species in this region is Heterophrynus longicornis (Butler 1873), and its most frequent prey are crickets of the family Phalangopsidae, which are abundant in the caves of Pará. Because they are primarily predators, necrophagy by amblypygids is not frequent in nature, and there are only two literature records of necrophagy of bats by Amblypygi. On December 11th, 2013, we observed an individual H. longicornis eating a bat carcass in a Pará ferriferous cave. The amblypygid exhibited considerable interest in the bat’s carcass, and it did not interrupt its meal even when lamps or a camera’s flash were pointed in its direction. The availability of nutrients in the carcass must promote this opportunistic behavior in caves, especially considering the habitual scarcity of trophic resources in underground environments when compared to epigean environments.
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3

Miranda, Gustavo Silva de, and Ana Sofia P. S. Reboleira. "Amblypygids of Timor-Leste: first records of the order from the country with the description of a remarkable new species of Sarax (Arachnida, Amblypygi, Charinidae)." ZooKeys 820 (January 28, 2019): 1–12. http://dx.doi.org/10.3897/zookeys.820.30139.

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The whip spider genus Sarax Simon, 1892 is widely distributed throughout Southeast Asia and part of the Indo-Malayan region. The genus is recorded from several Indonesian islands, but no species are known from inside the area that comprises the biogeographical region of Wallacea, despite being recorded from both sides of the area. An expedition to survey the biology of caves in Timor-Leste (formerly East-Timor) discovered populations of amblypygids living underground and including a remarkable new species of Sarax, S.timorensissp. n., the first Amblypygi known from the island of Timor. The new species is here described bears the unique character state of two pairs of lateral eyes, instead of three or none as in all other living species of Amblypygi, and expands the biogeographic range of the genus. New records of amblypygids are given for two caves in Timor-Leste. A detailed description and a discussion of its distribution and the species characters are also provided.
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4

Hebets, Eileen A., Eben J. Gering, Verner P. Bingman, and Daniel D. Wiegmann. "Nocturnal homing in the tropical amblypygid Phrynus pseudoparvulus (Class Arachnida, Order Amblypygi)." Animal Cognition 17, no. 4 (December 17, 2013): 1013–18. http://dx.doi.org/10.1007/s10071-013-0718-8.

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5

Hebets, Eileen A. "Relating the unique sensory system of amblypygids to the ecology and behavior of Phrynus parvulus from Costa Rica (Arachnida, Amblypygi)." Canadian Journal of Zoology 80, no. 2 (February 1, 2002): 286–95. http://dx.doi.org/10.1139/z02-006.

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While the unique sensory system and neuroanatomy of amblypygids suggest that olfaction is important in their lives, to date no behavioral data exist to support this suggestion. To gain insight into amblypygid ecology and behavior, an individual mark–recapture study was conducted on the Costa Rican amblypygid Phrynus parvulus. Within two 50 by 25 m plots, the distribution and movement patterns of individual amblypygids were recorded for over 2 months. A total of 88 adult individuals (60 males and 28 females) were marked, with an average 51% resighted. Females were resighted more frequently than males (75% females, 40% males). The sexes did not differ in their frequency or movement distance, but females were more likely to be seen on the same tree over time. While both sexes potentially wander in search of mates, females may also be searching for a good crevice, or diurnal hideout. Once a female has mated and laid eggs, she likely remains stationary. Movement patterns and tree choice seem to be dictated by both the presence of conspecifics and environmental factors such as tree surface area, moss cover, and the presence of buttressing. Cumulative observational data collected over 3 years suggest that the main breeding season for this species is October-January. Both mate attraction and navigation may be facilitated by the olfactory capabilities of amblypygids, while their giant interneurons may be involved in their foraging behavior.
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6

Dunlop, Jason A., George R. S. Zhou, and Simon J. Braddy. "The affinities of the Carboniferous whip spider Graeophonus anglicus Pocock, 1911 (Arachnida: Amblypygi)." Earth and Environmental Science Transactions of the Royal Society of Edinburgh 98, no. 02 (June 2007): 165–78. http://dx.doi.org/10.1017/s1755691007006159.

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ABSTRACTThe Late Carboniferous whip spiderGraeophonus anglicusPocock, 1911 (Arachnida: Amblypygi), is redescribed on the basis of the holotype and nine other specimens all preserved in sideritic nodules from the British Middle Coal Measures of Coseley, Staffordshire, UK. This species is clearly basal with respect to most living whip spiders, expressing numerous plesiomorphic character states and can be referred to both the suborder Paleoamblypygi and the ‘living fossil’ family Paracharontidae (with one Recent species), the latter based on an explict character of dorsal spination on the pedipalp femur. This suggests that crown-group Amblypygi originated by at least the mid-Palaeozoic.
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7

Teruel, Rolando. "FIRST RECORD OF THE WHIP-SPIDER PARAPHRYNUS CUBENSIS QUINTERO, 1983 (AMBLYPYGI: PHRYNIDAE) FROM EASTERN CUBA." Ecologica Montenegrina 15 (November 30, 2017): 17–21. http://dx.doi.org/10.37828/em.2017.15.3.

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8

Hebets, Eileen A., Alfonso Aceves-Aparicio, Samuel Aguilar-Argüello, Verner P. Bingman, Ignacio Escalante, Eben J. Gering, David R. Nelsen, et al. "Multimodal sensory reliance in the nocturnal homing of the amblypygid Phrynus pseudoparvulus (Class Arachnida, Order Amblypygi)?" Behavioural Processes 108 (October 2014): 123–30. http://dx.doi.org/10.1016/j.beproc.2014.09.014.

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9

El-Hennawy, Hisham K. "THE FIRST RECORD OF AMBLYPYGI FROM EGYPT." Journal of Arachnology 30, no. 2 (August 2002): 452–53. http://dx.doi.org/10.1636/0161-8202(2002)030[0452:tfroaf]2.0.co;2.

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10

McArthur, Iain W., Gustavo Silva de Miranda, Michael Seiter, and Kenneth James Chapin. "Global patterns of sexual dimorphism in Amblypygi." Zoologischer Anzeiger 273 (March 2018): 56–64. http://dx.doi.org/10.1016/j.jcz.2018.02.005.

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11

Seiter, Michael, and Jonas Wolff. "Description ofSarax buxtoni(Gravely 1915) (Arachnida: Amblypygi: Charinidae) and a new case of parthenogenesis in Amblypygi from Singapore." Journal of Arachnology 42, no. 3 (November 2014): 233–39. http://dx.doi.org/10.1636/ha14-13.1.

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12

Kury, Adriano B., Amazonas Chagas-Jr, Alessandro P. L. Giupponi, and Abel Pérez González. "Amblypygi, Opiliones, Schizomida, Scorpiones and Chilopoda, Tocantins, Brazil." Check List 6, no. 4 (October 1, 2010): 564. http://dx.doi.org/10.15560/6.4.564.

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The Tocantins 2007 Expedition of the Project “Aracnídeos e Miriápodes da Mata Atlântica” (AMMA) produced many new records of arachnids and centipedes, with 61 morphotypes identified. Among the results are: OPILIONES: 30 morphotypes with six new records of families and one of subfamily from Tocantins state; discovery of two undescribed species of Roquettea Mello-Leitão, 1931; Saramacia alvarengai Kury, 1997 is newly considered a junior subjective synonym of Saramacia annulata (Mello-Leitão, 1931); Brotasus Roewer, 1928 is transferred to Escadabiidae; the gonyleptid genera Parapachyloides Roewer, 1913 and Schubartesia B. Soares, 1944 are transferred to Gonyleptinae; SCHIZOMIDA: one species, new record of the order from Tocantins and from the Cerrado biome; SCORPIONES: seven species, one of them new record from Tocantins and two morphotypes; Chilopoda: 19 morphotypes, SCUTIGEROMORPHA: a widespread species Sphendononema guildingii (Newport, 1845) and another morphotype; GEOPHILOMORPHA: one morphotype; SCOLOPENDROMORPHA: 16 morphotypes, seven of them new records.
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13

Tripepi, Sandro, and Abele Saita. "Ultrastructural analysis of spermiogenesis inAdmetus pomilio (Arachnida, amblypygi)." Journal of Morphology 184, no. 2 (May 1985): 111–20. http://dx.doi.org/10.1002/jmor.1051840203.

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14

Ortega-Escobar, Joaquín. "Homing in the arachnid taxa Araneae and Amblypygi." Animal Cognition 23, no. 6 (September 7, 2020): 1189–204. http://dx.doi.org/10.1007/s10071-020-01424-w.

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15

Seiter, Michael, Marie Christine Moser, and Thomas Schwaha. "Mating behavior and spermatophore morphology of the whip scorpion Typopeltis dalyi Pocock, 1900 (Uropygi, Thelyphonida)." Animal Biology 71, no. 1 (September 29, 2020): 115–22. http://dx.doi.org/10.1163/15707563-bja10019.

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Abstract Whip scorpions are an enigmatic group of terrestrial raptorial arachnids that show remarkable mating and courtship behavior in which the male forms a complex spermatophore. While whip spiders (Amblypygi) are relatively well-studied, whip scorpions (Uropygi) are poorly known. The two orders form the Pedipalpi, whip scorpions (Uropygi include Thelyphonida and Schizomida) and whip spiders (Amblypygi). Two major groups have been described based on the mode of sperm transfer that differ in the duration and mode of the typical female–male tandem mating dance. Because comprehensive studies are lacking, in this study we add to our knowledge of the reproductive biology of whip scorpions by analyzing the mating behavior and spermatophore morphology of the previously unstudied species Typopeltis dalyi Pocock, 1900. Our observations show that this species belongs to the second group and supports the hypothesis of P. Weygoldt that their mode of sperm transfer appears more effective than that of the first group and that sufficient sperm can be supplied with one mating. The mating behavior and spermatophore morphology in T. dalyi are similar to those of closely related species and add additional characters applicable for species classification and phylogenetic inferences.
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16

Rahmadi, Cahyo, and Mark S. Harvey. "THE FEMALE OF PHRYNUS EXSUL (AMBLYPYGI, PHRYNIDAE) FROM INDONESIA." Journal of Arachnology 35, no. 1 (April 2007): 137–42. http://dx.doi.org/10.1636/sh06-21.1.

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17

Dunlop, Jason A., and Boris Mrugalla. "Redescription of the Chiapas amber whip spiderElectrophrynus mirus(Amblypygi)." Journal of Arachnology 43, no. 2 (August 2015): 220–23. http://dx.doi.org/10.1636/h15-07.

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18

Maquart, P. O., F. Réveillion, L. Prendini, M. Burger, B. L. Fisher, and S. van Noort. "New Distribution Records for African Whip Spiders (Arachnida: Amblypygi)." African Entomology 24, no. 1 (March 2016): 245–46. http://dx.doi.org/10.4001/003.024.0245.

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19

Wolff, Jonas O., Michael Seiter, and Stanislav N. Gorb. "The water-repellent cerotegument of whip-spiders (Arachnida: Amblypygi)." Arthropod Structure & Development 46, no. 1 (January 2017): 116–29. http://dx.doi.org/10.1016/j.asd.2016.10.010.

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20

Dunlop, Jason A. "Systematics of the Coal Measures whip spiders (Arachnida: Amblypygi)." Zoologischer Anzeiger 273 (March 2018): 14–22. http://dx.doi.org/10.1016/j.jcz.2017.11.004.

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21

Ribeirinho Vidal, Vanessa Carolinna, Fernando da Silva Carvalho Filho, and Gustavo Silva de Miranda. "Amblypygi parthenogenesis, embryonic and post-embryonic development: a case study with the Amazonian species Charinus guto Giupponi and Miranda, 2016 (Amblypygi: Charinidae)." Journal of Natural History 55, no. 17-18 (May 3, 2021): 1113–29. http://dx.doi.org/10.1080/00222933.2021.1936678.

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22

Lücker, Hubert, Christoph Miehe, and Michael Schichtel. "Haltung und Zucht der Geißelspinne (Damon variegatus) (Phrynichidae) (Chelicerata: Amblypygi)." Der Zoologische Garten 78, no. 1 (January 2008): 1–16. http://dx.doi.org/10.1016/j.zoolgart.2008.09.007.

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23

BLICK, THEO, and MICHAEL SEITER. "Whip spiders (Amblypygi, Arachnida) of the Western Palaearctic—a review." Zootaxa 4161, no. 4 (September 7, 2016): 586. http://dx.doi.org/10.11646/zootaxa.4161.4.11.

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24

Seiter, Michael, Patrick Lemell, Rosa Gredler, and Jonas O. Wolff. "Strike kinematics in the whip spider Charon sp. (Amblypygi: Charontidae)." Journal of Arachnology 47, no. 2 (September 16, 2019): 260. http://dx.doi.org/10.1636/joa-s-18-089.

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25

Weygoldt, Peter. "Parthenogenesis and Reproduction inCharinus ioanniticus(Kritscher, 1959) (Chelicerata, Amblypygi, Charinidae)." Arachnology 14, no. 2 (July 2007): 81–82. http://dx.doi.org/10.13156/arac.2007.14.2.81.

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26

Terblanche, John S., C. Jaco Klok, Elrike Marais, and Steven L. Chown. "Metabolic rate in the whip-spider, Damon annulatipes (Arachnida: Amblypygi)." Journal of Insect Physiology 50, no. 7 (July 2004): 637–45. http://dx.doi.org/10.1016/j.jinsphys.2004.04.010.

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27

Wolff, Jonas O., Michael Seiter, and Stanislav N. Gorb. "Functional anatomy of the pretarsus in whip spiders (Arachnida, Amblypygi)." Arthropod Structure & Development 44, no. 6 (November 2015): 524–40. http://dx.doi.org/10.1016/j.asd.2015.08.014.

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28

Haug, Carolin, and Joachim T. Haug. "The fossil record of whip spiders: the past of Amblypygi." PalZ 95, no. 3 (March 31, 2021): 387–412. http://dx.doi.org/10.1007/s12542-021-00552-z.

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AbstractWhip spiders (Amblypygi), as their name suggests, resemble spiders (Araneae) in some aspects, but differ from them by their heart-shaped (prosomal) dorsal shield, their prominent grasping pedipalps, and their subsequent elongate pair of feeler appendages. The oldest possible occurrences of whip spiders, represented by cuticle fragments, date back to the Devonian (c. 385 mya), but (almost) complete fossils are known from the Carboniferous (c. 300 mya) onwards. The fossils include specimens preserved on slabs or in nodules (Carboniferous, Cretaceous) as well as specimens preserved in amber (Cretaceous, Eocene, Miocene). We review here all fossil whip spider specimens, figure most of them as interpretative drawings or with high-quality photographs including 3D imaging (stereo images) to make the three-dimensional relief of the specimens visible. Furthermore, we amend the list by two new specimens (resulting in 37 in total). The fossil specimens as well as modern whip spiders were measured to analyse possible changes in morphology over time. In general, the shield appears to have become relatively broader and the pedipalps and walking appendages have become more elongate over geological time. The morphological details are discussed in an evolutionary framework and in comparison with results from earlier studies.
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29

Reveillion, Florian, Remi Wattier, Sophie Montuire, Leonardo Sousa Carvalho, and Loïc Bollache. "Cryptic diversity within three South American whip spider species (Arachnida, Amblypygi)." Zoological Research 41, no. 5 (2020): 595–98. http://dx.doi.org/10.24272/j.issn.2095-8137.2020.068.

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30

Agapakis, Georgios, and Gustavo Silva de Miranda. "First record of Charinus ioanniticus (Arachnida, Amblypygi: Charinidae) from continental Europe." Arachnologische Mitteilungen: Arachnology Letters 58, no. 1 (August 16, 2019): 13. http://dx.doi.org/10.30963/aramit5805.

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31

Gouvêa, Edilson Pires de. "Reencontro e "ocorrência curiosa" de Trichodamon froesi Mello-Leitão (Arachnida, Amblypygi)." Revista Brasileira de Zoologia 10, no. 3 (1993): 383–88. http://dx.doi.org/10.1590/s0101-81751993000300002.

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32

Chapin, Kenneth James. "Guano deposition predicts top predator (Amblypygi: Phrynidae) abundance in subtropical caves." Journal of Arachnology 47, no. 3 (December 16, 2019): 385. http://dx.doi.org/10.1636/0161-8202-47.3.385.

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33

Hu, Xueying, Xiaojie Lei, Cihang Luo, E. A. Jarzembowski, Bo Wang, and Chuantao Xiao. "A new whip spider (Arachnida: Amblypygi) in mid-Cretaceous Kachin amber." Cretaceous Research 116 (December 2020): 104596. http://dx.doi.org/10.1016/j.cretres.2020.104596.

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34

Shakhatreh, Mohammad R., Gustavo Silva de Miranda, Ahmad Bader-Katbeh, Mohammad A. Abu Baker, and Zuhair S. Amr. "Charinus ioanniticus (Amblypygi: Charinidae), first record of a whip spider from Jordan." Arachnologische Mitteilungen: Arachnology Letters 59, no. 1 (March 6, 2020): 35. http://dx.doi.org/10.30963/aramit5906.

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35

Hebets, Eileen A., and Reginald F. Chapman. "Electrophysiological studies of olfaction in the whip spider Phrynus parvulus (Arachnida, Amblypygi)." Journal of Insect Physiology 46, no. 11 (November 2000): 1441–48. http://dx.doi.org/10.1016/s0022-1910(00)00068-8.

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36

Weygoldt, P. "Evolutionary morphology of whip spiders: towards a phylogenetic system (Chelicerata: Arachnida: Amblypygi)*." Journal of Zoological Systematics and Evolutionary Research 34, no. 4 (April 27, 2009): 185–202. http://dx.doi.org/10.1111/j.1439-0469.1996.tb00825.x.

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37

Harvey, Mark S. "THE FIRST OLD WORLD SPECIES OF PHRYNIDAE (AMBLYPYGI): PHRYNUS EXSUL FROM INDONESIA." Journal of Arachnology 30, no. 3 (December 2002): 470–74. http://dx.doi.org/10.1636/0161-8202(2002)030[0470:tfowso]2.0.co;2.

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38

Jiménez, María-Luisa, and Jorge Llinas-Gutiérrez. "DESCRIPTION OF MALE PHRYNUS ASPERATIPES (AMBLYPYGI, PHRYNIDAE) FROM BAJA CALIFORNIA SUR, MEXICO." Journal of Arachnology 33, no. 3 (December 2005): 862–65. http://dx.doi.org/10.1636/h03-42.1.

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39

TORRES, Richard A., Luis F. de ARMAS, and José TOVAR-MÁRQUEZ. "Aspects of the natural history of Phrynus barbadensis (Pocock, 1893) (Amblypygi: Phrynidae)." Revista de la Sociedad Entomológica Argentina 78, no. 1 (March 28, 2019): 12–21. http://dx.doi.org/10.25085/rsea.780102.

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40

Bastawade, D. B., K. Thulsi Rao, S. M. Maqsood Javed, and I. Siva Rama Krishna. "A new species of whip-spider (Phrynichidae: Amblypygi) from Andhra Pradesh, India." Zoos' Print Journal 20, no. 12 (November 21, 2005): 2091–93. http://dx.doi.org/10.11609/jott.zpj.1361.2091-3.

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41

Casto, Patrick, Daniel D. Wiegmann, Vincent J. Coppola, Daniele Nardi, Eileen A. Hebets, and Verner P. Bingman. "Vertical-surface navigation in the Neotropical whip spider Paraphrynus laevifrons (Arachnida: Amblypygi)." Animal Cognition 23, no. 6 (August 26, 2020): 1205–13. http://dx.doi.org/10.1007/s10071-020-01420-0.

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42

Santer, Roger D., and Eileen A. Hebets. "Tactile learning by a whip spider, Phrynus marginemaculatus C.L. Koch (Arachnida, Amblypygi)." Journal of Comparative Physiology A 195, no. 4 (February 7, 2009): 393–99. http://dx.doi.org/10.1007/s00359-009-0417-8.

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43

Harms, Danilo. "A new species of Charinus (Amblypygi: Charinidae) from Ghana, with notes on West African whip spiders." Evolutionary Systematics 2, no. 1 (April 3, 2018): 45–53. http://dx.doi.org/10.3897/evolsyst.2.24505.

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Анотація:
The fauna of whip spiders (Amblypygi) in Western Africa is poorly known but probably diverse. Here, I describe the new speciesCharinuskakumsp. n.based on female morphology, and accompanied by DNA sequence data. The species is small and differs from other African species ofCharinusin the low number of pseudosegments on leg IV, female genital features, spination patterns of the pedipalp, and small body size. It was collected from wet tropical rainforest in Kakum National Park, Ghana and is only the fourth species ofCharinusto be recorded from the highly diverse Western African biodiversity hotspot. With a total body length of not even 6 mm it is also one of the smallest whip spiders in the world.
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44

Giupponi, Alessandro P. L., and Gustavo S. Miranda. "A new species of Sarax Simon, 1892 from the Philippines (Arachnida: Amblypygi: Charinidae)." Anais da Academia Brasileira de Ciências 84, no. 1 (March 2012): 165–74. http://dx.doi.org/10.1590/s0001-37652012000100017.

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Анотація:
A new species of the genus Sarax Simon, 1892 is described from Panay Island, Philippines. Sarax curioi sp. n. is the second species of the genus from the country and can be distinguished from the other Philippine species (Sarax brachydactylus Simon, 1892) by the sclerotized granules of the pedipalp surface, the spines of the pedipalp distitibia, the number of denticles of the chelicerae claw and the shape of the denticles of the chelicerae basal segment. Sarax newbritainensis Rahmadi and Kojima, 2010 is newly recorded from New Ireland Island, Papua New Guinea.
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45

Esposito, Lauren A., Trevor Bloom, Laura Caicedo-Quiroga, Angela M. Alicea-Serrano, Jose A. Sánchez-Ruíz, Laura J. May-Collado, Greta J. Binford, and Ingi Agnarsson. "Islands within islands: Diversification of tailless whip spiders (Amblypygi, Phrynus) in Caribbean caves." Molecular Phylogenetics and Evolution 93 (December 2015): 107–17. http://dx.doi.org/10.1016/j.ympev.2015.07.005.

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46

RAHMADI, CAHYO, MARK S. HARVEY, and JUN-ICHI KOJIMA. "Whip spiders of the genus Sarax Simon 1892 (Amblypygi: Charinidae) from Borneo Island." Zootaxa 2612, no. 1 (September 15, 2010): 1. http://dx.doi.org/10.11646/zootaxa.2612.1.1.

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Анотація:
Five species of the whip spider genus Sarax are recognized from Borneo, with the following four species newly described: Sarax yayukae sp. nov. from Sabah (Malaysia), West and Central Kalimantan (Indonesia), and three species from East Kalimantan, S. cavernicola sp. nov., S. sangkulirangensis sp. nov., and S. mardua sp. nov.. Sarax mardua and S. cavernicola have pale coloration, reduced eyes and elongate legs suggesting troglomorphic adaptations to cave environments. The characters diagnosing the family Charinidae and the genus Sarax are discussed and revised. The distribution patterns of Sarax species in Southeast Asia, especially in Borneo Island, are discussed in relation to their habitat preferences. The generic status of Stygophrynus moultoni Gravely 1915 (Charontidae) is briefly discussed.
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47

Fowler-Finn, Kasey D., and Eileen A. Hebets. "AN EXAMINATION OF AGONISTIC INTERACTIONS IN THE WHIP SPIDER PHRYNUS MARGINEMACULATUS (ARACHNIDA, AMBLYPYGI)." Journal of Arachnology 34, no. 1 (August 2006): 62–76. http://dx.doi.org/10.1636/s04-104.1.

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48

Dias, Sidclay C., and Glauco Machado. "MICROHABITAT USE BY THE WHIP SPIDER HETEROPHRYNUS LONGICORNIS (AMBLYPYGI, PHRYNIDAE) IN CENTRAL AMAZON." Journal of Arachnology 34, no. 3 (December 2006): 540–44. http://dx.doi.org/10.1636/st05-82.1.

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49

RUZICKA, V., and J. BUCHAR. "BOOK REVIEW: Weygoldt P.: Whip Spiders (Chelicerata: Amblypygi). Their Biology, Morphology and Systematics." European Journal of Entomology 98, no. 3 (October 31, 2001): 286. http://dx.doi.org/10.14411/eje.2001.047.

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50

Weygoldt, Peter. "Reproductive Biology of Phrynichus dhofarensis Weygoldt, Pohl & Polak, 2002 (Chelicerata, Amblypygi, Phrynichidae)." Zoologischer Anzeiger - A Journal of Comparative Zoology 241, no. 4 (January 2002): 305–15. http://dx.doi.org/10.1078/0044-5231-00074.

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