Abhilash, L, Sheeba, V (2019) RhythmicAlly: your r and shiny–based open-source ally for the analysis of biological rhythms. J Biol Rhythms 34:551-561.
Google Scholar |
SAGE Journals |
ISI
Abhilash, L, Shindey, R, Sharma, VK (2017) To be or not to be rhythmic? A review of studies on organisms inhabiting constant environments. Biol Rhythm Res 48:677-691.
Google Scholar |
Crossref
Alagaili, AN, Bennett, NC, Amor, NM, Hart, DW (2020) The locomotory activity patterns of the arid-dwelling desert hedgehog, Paraechinus aethiopicus, from Saudi Arabia. J Arid Environ 177:104141.
Google Scholar |
Crossref
Allali, K, El Achaâban, MR, Bothorel, B, Piro, M, Bouâouda, H, Allouchi, M, El Ouassat, M, Malan, A, Pévet, P (2013) Entrainment of the circadian clock by daily ambient temperature cycles in the camel (Camelus dromedarius). Am J Physiol Integr Comp Physiol 304:R1044-R1052.
Google Scholar |
Crossref |
Medline
Aschoff, J (1966) Circadian activity pattern with two peaks. Ecology 47:657-662.
Google Scholar |
Crossref |
ISI
Aschoff, J, Tokura, H (1986) Circadian activity rhythms in squirrel monkeys: entrainment by temperature cycles. J Biol Rhythms 1:91-99.
Google Scholar |
SAGE Journals
Bates, D, Maechler, M, Bolker, B, Walker, S (2015) Fitting linear mixed-effects models using lme4. J Stat Softw 67:1-48.
Google Scholar |
Crossref |
ISI
Beale, AD, Whitmore, D, Moran, D (2016) Life in a dark biosphere: a review of circadian physiology in ‘arrhythmic’ environments. J Comp Physiol B 186:947-968.
Google Scholar |
Crossref |
Medline
Bennett, NC (2009) African mole-rats (family bathyergidae): models for studies in animal physiology. African Zool 44:263-270.
Google Scholar |
Crossref
Bennett, NC, Faulkes, CG (2000) African mole-rats: ecology and eusociality. Cambridge (UK): Cambridge University Press.
Google Scholar
Bennett, NC, Jarvis, JUM (1995) Coefficients of digestibility and nutritional values of geophytes and tubers eaten by southern African mole-rats (Rodentia: Bathyergidae). J Zool 236:189-198.
Google Scholar |
Crossref
Bennett, NC, Jarvis, JUM, Davies, KC (1988) Daily and seasonal temperatures in the burrows of African rodent moles. South African J Zool 23:189-195.
Google Scholar |
Crossref
Bittman, EL (2021) Entrainment is NOT synchronization: an important distinction and its implications. J Biol Rhythms 36:196-199.
Google Scholar |
SAGE Journals |
ISI
Boulos, Z, Terman, M (1980) Food availability and daily biological rhythms. Neurosci Biobehav Rev 4:119-131.
Google Scholar |
Crossref |
Medline
Boulos, Z, Frim, DM, Dewey, LK, Moore-Ede, MC (1989) Effects of restricted feeding schedules on circadian organisation in squirrel monkeys. Physiol Behav 45:507-515.
Google Scholar |
Crossref |
Medline
Boyles, JG, Verburgt, L, Mckechnie, AE, Bennett, NC (2012) Heterothermy in two mole-rat species subjected to interacting thermoregulatory challenges. J Exp Zool Part A Ecol Genet Physiol 317A:73-82.
Google Scholar |
Crossref
Buffenstein, R, Yahav, S (1991) Is the naked mole-rat Hererocephalus glaber an endothermic yet poikilothermic mammal? J Therm Biol 16:227-232.
Google Scholar |
Crossref
Cloudsley-Thompson, JL (1961) Rhythmic activity in animal physiology and behaviour. New York: Academic Press.
Google Scholar
Daan, S, Aschoff, J (1975) Circadian rhythms of locomotor activity in captive birds and mammals: their variations with season and latitude. Oecologia 18:269-316.
Google Scholar |
Crossref |
Medline |
ISI
Daan, S, Aschoff, J (2001) The entrainment of circadian systems. In: Takahashi, JS, Turek, FW, Moore, RY, editors, Circadian clocks. Boston (MA): Springer. p. 7-43.
Google Scholar |
Crossref
Darden, TR (1972) Respiratory adaptations of a fossorial mammal, the pocket gopher (Thomomys bottae). J Comp Physiol 78:121-137.
Google Scholar |
Crossref
De Vries, JL, Oosthuizen, MK, Sichilima, AM, Bennett, NC (2008) Circadian rhythms of locomotor activity in Ansell’s mole-rat: are mole-rat’s clocks ticking? J Zool 276:343-349.
Google Scholar |
Crossref |
ISI
DeCoursey, G, DeCoursey, PJ (1964) Adaptive aspects of activity rhythms in bats. Biol Bull 126:14-27.
Google Scholar |
Crossref
Erkert, HG, Nagel, B, Stephani, I (1986) Light and social effects on the free-running circadian activity rhythm in common marmosets (Callithrix jacchus; Primates): social masking, pseudo-splitting, and relative coordination. Behav Ecol Sociobiol 18:443-452.
Google Scholar |
Crossref
Fagir, DM, Bennett, NC, Ueckermann, EA, Howard, A, Hart, DW (2021) Ectoparasitic community of the Mahali mole-rat, Cryptomys hottentotus mahali: potential host for vectors of medical importance in South Africa. Parasites Vectors 14:24.
Google Scholar |
Crossref |
Medline
Farsi, H, Harti, D, Achaâban, MR, Piro, M, Raverot, V, Bothorel, B, Ouassat, M, Challet, E, Pévet, P, El Allali, K (2020) Melatonin rhythm and other outputs of the master circadian clock in the desert goat (Capra hircus) are entrained by daily cycles of ambient temperature. J Pineal Res 68:e12634.
Google Scholar |
Crossref |
Medline
Finn, K, Voigt, C, van Jaarsveld, B, Hart, DW, Jorna, J (2020) PSEUDASPIS CANA (mole snake). Herpetol Rev 51:626-627.
Google Scholar
Goldman, BD (1999) The circadian timing system and reproduction in mammals. Steroids 64:679-685.
Google Scholar |
Crossref |
Medline |
ISI
Golombek, DA, Rosenstein, RE (2010) Physiology of circadian entrainment. Physiol Rev 90:1063-1102.
Google Scholar |
Crossref |
Medline |
ISI
Hart, DW, Medger, K, van Jaarsveld, B, Bennett, NC (2020) Is the Mahali mole-rat (Cryptomys hottentotus mahali) a spontaneous or induced ovulator? Can J Zool 98:299-305.
Google Scholar |
Crossref
Hart, DW, Medger, K, van Jaarsveld, B, Bennett, NC (2021) Filling in the holes: the reproductive biology of the understudied Mahali mole-rat (Cryptomys hottentotus mahali). Can J Zool. doi:10.1139/cjz-2020-0158
Google Scholar
Haupt, M, Bennett, NC, Oosthuizen, MK (2017) Locomotor activity and body temperature patterns over a temperature gradient in the Highveld mole-rat (Cryptomys hottentotus pretoriae). PLoS ONE 12:e0169644.
Google Scholar |
Crossref |
Medline
Hickman, GC (1979) A live-trap and trapping technique for fossorial mammals. South African J Zool 14:9-12.
Google Scholar |
Crossref
Holtze, S, Braude, S, Lemma, A, Koch, R, Morhart, M, Szafranski, K, Platzer, M, Alemayehu, F, Goeritz, F, Hildebrandt, TB (2018) The microenvironment of naked mole-rat burrows in East Africa. Afr J Ecol 56:279-289.
Google Scholar |
Crossref
Ivy, CM, Sprenger, RJ, Bennett, NC, van Jaarsveld, B, Hart, DW, Kirby, AM, Yaghoubi, D, Storey, KB, Milsom, WK, Pamenter, ME (2020) The hypoxia tolerance of eight related African mole-rat species rivals that of naked mole-rats, despite divergent ventilatory and metabolic strategies in severe hypoxia. Acta Physiol 228:e13436.
Google Scholar |
Crossref |
Medline
Kennerly, TE (1964) Microenvironmental conditions of pocket gopher burrow. Texas J Sci 16:395-441.
Google Scholar
Lima, SL, Dill, LM (1990) Behavioral decisions made under the risk of predation: a review and prospectus. Can J Zool 68:619-640.
Google Scholar |
Crossref |
ISI
Logan, SM, Szereszewski, KE, Bennett, NC, Hart, DW, van Jaarsveld, B, Pamenter, ME, Storey, KB (2020) The brains of six African mole-rat species show divergent responses to hypoxia. J Exp Biol 223:jeb215905.
Google Scholar |
Medline
Lovegrove, BG (1987) Thermoregulation in the subterranean rodent Georychus capensis (Rodentia: Bathyergidae). Physiol Zool 60:174-180.
Google Scholar |
Crossref
Lovegrove, BG, Papenfus, ME (1995) Circadian activity rhythms in the solitary Cape mole-rat (Georychus capensis: Bathyergidae) with some evidence of splitting. Physiol Behav 58:679-685.
Google Scholar |
Crossref |
Medline
Luna, F, Šumbera, R, Okrouhlík, J, Mladěnková, N, Antenucci, CD (2020) Evaporative water loss in seven species of fossorial rodents: does effect of degree of fossoriality and sociality exist? J Therm Biol 89:102564.
Google Scholar |
Crossref |
Medline
McNab, BK (1974) The energetics of endotherms. Ohio J Sci 74:370-380.
Google Scholar
Mahoney, M, Bult, A, Smale, L (2001) Phase response curve and light-induced fos expression in the suprachiasmatic nucleus and adjacent hypothalamus of Arvicanthis niloticus. J Biol Rhythms 16:149-162.
Google Scholar |
SAGE Journals |
ISI
Mohawk, JA, Green, CB, Takahashi, JS (2012) Central and peripheral circadian clocks in mammals. Annu Rev Neurosci 35:445-462.
Google Scholar |
Crossref |
Medline |
ISI
Okamura, H, Yamaguchi, S, Yagita, K (2002) Molecular machinery of the circadian clock in mammals. Cell Tissue Res 309:47-56.
Google Scholar |
Crossref |
Medline
Okrouhlík, J, Šumbera, R, Gardner, B, Schoemann, K, Lövy, M, Bennett, NC (2021) Are southern African solitary mole-rats homeothermic or heterothermic under natural field conditions? J Therm Biol 95:102810.
Google Scholar |
Crossref |
Medline
Oosthuizen, MK, Cooper, HM, Bennett, NC (2003) Circadian rhythms of locomotor activity in solitary and social species of African mole-rats (family: bathyergidae). J Biol Rhythms 18:481-490.
Google Scholar |
SAGE Journals |
ISI
Oosthuizen, MK, Robb, G, Harrison, A, Froneman, A, Joubert, K, Bennett, NC (2021) Flexibility in body temperature rhythms of free-living natal mole-rats (Cryptomys hottentotus natalensis). J Therm Biol 99:102973.
Google Scholar |
Crossref
O’Reilly, H, Armstrong, SM, Coleman, GJ (1986) Restricted feeding and circadian activity rhythms of a predatory marsupial, Dasyuroides byrnei. Physiol Behav 38:471-476.
Google Scholar |
Crossref |
Medline
Pálková, M, Sigmund, L, Erkert, HG (1999) Effect of ambient temperature on the circadian activity rhythm in common marmosets, Callithrix j. jacchus (primates). Chronobiol Int 16:149-161.
Google Scholar |
Crossref |
Medline
Patel, VR, Eckel-Mahan, K, Sassone-Corsi, P, Baldi, P (2014) How pervasive are circadian oscillations? Trends Cell Biol 24:329-331.
Google Scholar |
Crossref |
Medline |
ISI
Piersma, T, Drent, J (2003) Phenotypic flexibility and the evolution of organismal design. Trends Ecol Evol 18:228-233.
Google Scholar |
Crossref
R Development Core Team (2018) R: a language and environment for statistical computing. Vienna (Austria): R Foundation for Statistical Computing.
Google Scholar
Rajaratnam, SMW, Redman, JR (1998) Entrainment of activity rhythms to temperature cycles in diurnal palm squirrels. Physiol Behav 63:271-277.
Google Scholar |
Crossref |
Medline
Refinetti, R (2010) Entrainment of circadian rhythm by ambient temperature cycles in mice. J Biol Rhythms 25:247-256.
Google Scholar |
SAGE Journals |
ISI
Refinetti, R (2015) Comparison of light, food, and temperature as environmental synchronizers of the circadian rhythm of activity in mice. J Physiol Sci 65:359-366.
Google Scholar |
Crossref |
Comments (0)