Published November 12, 2020 | Version v1
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Respiration by jumping spiders (Araneae: Salticidae)

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Hill, David E. (2020): Respiration by jumping spiders (Araneae: Salticidae). Peckhamia 225 (1): 1-28, DOI: 10.5281/zenodo.7171310

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References

  • Anderson, J. F. 1968. Metabolic rates in spiders. Ph. D. dissertation, University of Florida: i-vi, 1-66.
  • Anderson, J. F. and K. N. Prestwich. 1980. Scaling of subunit structures in book lungs of spiders. Journal of Morphology 165: 167-174.
  • Ballweber, P., J. Markl and T. Burmester. 2002. Complete hemocyanin subunit sequences of the hunting spider Cupiennius salei. The Journal of Biological Chemistry 277 (17): 14451-14457.
  • Boardman, L., J. S. Terblanche, S. K. Hetz, E. Marais and S. L. Chown. 2011. Reactive oxygen species production and discontinuous gas exchange in insects. Proceedings of the Royal Society B (doi:10.1098/rspb.2011.1243): 1- 9.
  • Brunelli, E., P. Rizzo, A. Guardia, F. Coscarelli, S. Sesti and S. Tripepi. 2015. The ultrastructure of the book lungs of the Italian trap-door spider Cteniza sp. (Araneae, Mygalomorphae, Ctenizidae). Arthropod Structure and Development 44 (3): 228-236.
  • Burmester, T. 2013. Evolution and adaptation of hemocyanin within spiders. Spider Ecophysiology (Springer, ed. W. Nentwig): 3-14.
  • Canals, M., M. J. Salazar, C. Duran, D. Figeroa and C. Veloso. 2007. Respiratory refinements in the mygalomorph spider Grammostola rosea Walckenaer 1837 (Araneae, Theraphosidae). The Journal of Arachnology 35: 481-486.
  • Canals, M., C. Veloso and R. Solis. 2015. Adaptation of the spiders to the environment: the case of some Chilean species. Frontiers in Physiology 6 (220): 1-9.
  • Chown, S. L. 2011. Discontinuous gas exchange: new perspectives on evolutionary origins and ecological implications. Functional Ecology 25: 1163-1168.
  • Comstock, J. H. 1912. The Spider Book. Doubleday, Doran and Company. i-ix, 1-729.
  • Contreras, H. L. and T. J. Bradley. 2009. Metabolic rate controls respiratory pattern in insects. The Journal of Experimental Biology 212: 424-428.
  • Dunlop, J. A. and J. C. Lamsdell. 2017. Segmentation and tagmosis in Chelicerata. Arthropod Structure and Development 46: 395-418.
  • Edwards, G. B. 2020. Description of Phidippus pacosauritus sp. nov. (Salticidae: Salticinae: Dendryphantini: Dendryphantina), with a reanalysis of related species in the mystaceus group. Peckhamia 221.1: 1-18.
  • Farley, R. D. 1990. Regulation of air and blood flow through the booklungs of the desert scorpion, Paruroctonus mesaensis. Tissue and Cell 22 (4): 547-569.
  • Farley, R. D. 2008. Development of respiratory structures in embryos and first and second instars of the bark scorpion, Centruroides gracilis (Scorpiones: Buthidae). Journal of Morphology 269: 1134-1156.
  • Farley, R. D. 2015. Book lung development in the embryo, postembryo and first instar of the cobweb spider, Parasteatoda tepidariorum C. L Koch, 1841 (Araneomorphae, Theridiidae). Arthropod Structure and Development 44: 355-377.
  • Paul, R. J. and S. Bihlmayer. 1995. Circulatory physiology of a tarantula (Eurypelma californicum). Zoology 98: 69-81.
  • Paul, R. J., S. Bihlmayer, M. Colmorgen and S. Zahler. 1994. The open circulatory system of spiders (Eurypelma californicum, Pholcus phalangoides). Physiological Zoology 67: 1360-1382.
  • Paul, R. J., T. Fincke and B. Linzen. 1987. Respiration in the tarantula Eurypelma californicum: evidence for diffusion lungs. Journal of Comparative Physiology B 157: 209-217.
  • Paul, R. J., K. Tiling, P. Focke and B. Linzen. 1989. Heart and circulatory functions in a spider (Eurypelma californicum): the effects of hydraulic force generation. Journal of Comparative Physiology B 158: 673-687.
  • Peckham, G. W. and E. G. Peckham. 1883. Descriptions of new or little known spiders of the family Attidae from various parts of the United States of North America. Milwaukee. 1-35.
  • Peckham, G. W. and E. G. Peckham. 1901. Spiders of the Phidippus group of the family Attidae. Transactions of the Wisconsin Academy of Sciences, Arts and Letters 13: 282-358
  • Purcell, W. F., 1909. Development and origin of the respiratory organs in Araneae. The Quarterly Journal of Microscopical Science 54 (1): 1-110.
  • Quinlan, M. C. and A. G. Gibbs. 2006. Discontinuous gas exchange in insects. Respiratory Physiology and Neurobiolog 154: 18-29.
  • Ramirez, M. J. 2000. Respiratory system morphology and the phylogeny of haplogyne spiders (Araneae, Araneomorphae). The Journal of Arachnology 28: 149-157.
  • Reisinger, P. W. M., P. Focke and B. Linzen. 1990. Lung morphology of the tarantula, Eurypelma californicum Ausserer, 1871 (Araneae: Theraphosidae). Bulletin of the British Arachnological Society 8 (6): 165-170.
  • Robinson, G. L. and U. Paim. 1969. Opisthosmal musculature of female Araneus diadematus (Araneae: Argiopidae). The Canadian Entomologist 101 (4): 337-352.
  • Schimph, N. G., P. G. D. Matthews, R. S. Wilson and C. R. White. 2009. Cockroaches breathe discontinuously to reduce respiratory water loss. The Journal of Experimental Biology 212: 2773-2780.
  • Schmitz, A. 2004. Metabolic rates during rest and activity in differently tracheated spiders (Arachnida, Araneae): Pardosa lugubris (Lycosidae) and Marpissa muscosa (Salticidae). Journal of Comparative Physiology B 174: 519-526.
  • Schmitz, A. 2005. Spiders on a treadmill: influence of running activity on metabolic rates in Pardosa lugubris (Araneae, Lycosidae) and Marpissa muscosa (Araneae, Salticidae). The Journal of Experimental Biology 208: 1401-1411.
  • Schmitz, A. 2013. Tracheae in spiders: repiratory organs for special functions. Spider Ecophysiology (Springer, ed. W. Nentwig): 29-39.
  • Schmitz, A. and S. F. Perry. 2000. Respiratory system of arachnids I: morphology of the respiratory system of Salticus scenicus and Euophrys lanigera (Arachnida, Araneae, Salticidae). Arthropod Structure and Development 29: 3-12.
  • Schmitz, A. and S. F. Perry. 2001. Bimodal breathing in jumping spiders: morphometric partitioning of the lungs and tracheae in Salticus scenicus (Arachnida, Araneae, Salticidae). The Journal of Experimental Biology 204: 4321-4334.
  • Sibul, I, A. Kuuski, A. Luik and K. Voolma. 2006. Influence of environmental conditions on the breathing rhythms of the pine weevil Hylobius abietus (Coleoptera: Curculionidae). Agronomy Research 4 (1): 63-67.
  • Slama, K. 1995. Respiratory cycles of Chelifer cancroides (Pseudoscorpiones) and Galeodes sp. (Solifugae). European Journal of Entomology 92: 543-552.
  • Snodgrass, R. E. 1952. A Textbook of Arthropod Anatomy. Comstock Publishing Associates, Ithaca, New York. 1-363.
  • Socha, J. J., T. Foerster and K. J. Greenlee. 2010. Issues of convection in insect respiration: Insights from synchrotron X-ray imaging and beyond. Respiratory Physiology and Neurobiology 173: S65-S73.
  • Socha, J. J, W.-K. Lee, J. F. Harrison, J. S. Waters, K. Fezzaa and M. W. Westneat. 2008. Correlated patterns of tracheal compression and convective gas exchange in a carabid beetle. The Journal of Experimental Biology 211: 3409-3420.
  • Stewart, D. M. and A.W. Martin. 1974. Blood pressure in the tarantula, Dugesiella hentzi. Journal of Comparative Physiology 88: 141-172.
  • Walckenaer, C. A. 1837. Histoire naturelle des insectes. ApteXres. Tome premier. Roret, Paris. 1-682, pl. 1-15.
  • Weiss, S. 1923. Untersuchungen uQber die Lunge und die Atmung der Spinnen. Zoologische JahrbuQcher, Abteilung fuQr allgemeine Zoologie und Physiologie der Tiere 39: 535-545.
  • Westneat, M. W., O. Betz, R. W. Blob, K. Fezzaa, W. J. Cooper and W.-K. Lee. 2003. Tracheal respiration in insects visualized with synchotron x-ray imaging. Science 299: 558-560.
  • Whitehead, W. F. and J. G. Rempel. 1959. A study of the musculature of the black widow spider, Latrodectus mactans (Fabr.). Canadian Journal of Zoology 37: 831-870.
  • Willem, V. 1918. Observations sur la circulation sanguine et la respiration pulmonaire chez les Araignees. Archives nePerlandaises de physiologie de l´homme et des animaux 1: 226-256.
  • Williams, C. M., S. L. Pelini, J. J. Hellmann and B. J. Sinclair. 2010. Intra-individual variation allows an explicit test of the hygric hypothesis for discontinuous gas exchange in insects. Biology Letters 6: 274-277.
  • Wirkner, C. S. and K. Huckstorf. 2013. The circulatory system of spiders. Spider Ecophysiology (Springer, ed. W. Nentwig): 15-27.
  • Woods, H. A. 2011. Breathing, bugs, and brains: conceptual unification. Functional Ecology 25: 1161-1162.
  • Woods, H. A. and J. N. Smith. 2010. Universal model for water costs of gas exchange by animals and plants. Proceedings of the National Academy of Science, USA 107 (18): 8469-8474.