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Chronobiology International
The Journal of Biological and Medical Rhythm Research
Volume 36, 2019 - Issue 7
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Original Articles

Host population related variations in circadian clock gene sequences and expression patterns in Chilo suppressalis

, , , , &
Pages 969-978 | Received 31 Jan 2019, Accepted 01 Apr 2019, Published online: 01 May 2019

References

  • Allada R, White NE, So WV, Hall JC, Rosbash M. 1998. A mutant Drosophila homolog of mammalian clock disrupts circadian rhythms and transcription of period and timeless. Cell. 93:791–804. doi:10.1016/S0092-8674(00)81440-3. PMID: 9630223.
  • Alt S, Ringo J, Talyn B, Bray W, Dowse H. 1998. The period gene controls courtship song cycles in Drosophila melanogaster. Anim Behav. 56:87–97. doi:10.1006/anbe. 1998.0743. PMID: 9710465.
  • Arbuthnott D, Crespi BJ. 2009. Courtship and mate discrimination within and between species of Timema walking-sticks. Anim Behav. 78:53–59. doi:10.1016/j.anbehav. 2009.02.028.
  • Baker TC, Cardé RT. 1979. Endogenous and exogenous factors affecting periodicities of female calling and male sex pheromone response in Grapholitha molesta (Busck). J Insect Physiol. 25:943–950.
  • Baylies MK, Bargiello TA, Jackson FR, Young MW. 1987. Changes in abundance or structure of the per gene product can alter periodicity of the Drosophila clock. Nature. 326:390–392. doi:10.1038/326390a0. PMID: 2436052.
  • Benna C, Bonaccorsi S, Wulbeck C, Helfrich-Forster C, Gatti M, Kyriacou CP, Costa R, Sandrelli F. 2010. Drosophila timeless2 is required for chromosome stability and circadian photoreception. Curr Biol. 20:346–352. doi:10.1016/j.cub.2009. 12.048. PMID: 20153199.
  • Benna C, Scannapieco P, Piccin A, Sandrelli F, Zordan M, Rosato E, Kyriacou CP, Valle G, Costa R. 2000. A second timeless gene in Drosophila shares greater sequence similarity with mammalian tim. Curr Biol. 10:512–513. doi:10.1016/S0960-9822(00)00594-7. PMID: 10899011.
  • Coyne JA, Orr HA. 2004. Speciation. Sunderland (MA): Sinauer Associates.
  • Darlington TK, Wager-Smith K, Ceriani MF, Staknis D, Gekakis N, Steeves TDL, Weitz CJ, Takahashi JS, Kay SA. 1998. Closing the circadian loop: CLOCK-induced transcription of its own inhibitors per and tim. Science. 280:1599–1603. doi:10.1126/science.280.5369.1599. PMID: 9616122.
  • Dauwalder B, Tsujimoto S, Moss J, Mattox W. 2002. The Drosophila takeout gene is regulated by the somatic sex-determination pathway and affects male courtship behavior. Gene Dev. 16:2879–2892. doi:10.1101/gad.1010302. PMID: 12435630.
  • Delisle J, McNeil JN. 1987. Calling behaviour and pheromone titre of the true armyworm Pseudaletia unipuncta (Haw.) (Lepidoptera: noctuidae) under different temperature and photoperiodic conditions. J Insect Physiol. 33:315–324.
  • Devries PJ, Austin GT, Martin NH. 2008. Diel activity and reproductive isolation in a diverse assemblage of Neotropical skippers (Lepidoptera: hesperiidae). Biol J Linn Soc. 94:723–736.
  • Dres M, Mallet J. 2002. Host races in plant-feeding insects and their importance in sympatric speciation. Philos Trans R Soc Lond B Biol Sci. 357:471–492. doi:10.1098/rstb.2002.1059. PMID: 12028786.
  • Emery P, So WV, Kaneko M, Hall JC, Rosbash M. 1998. CRY, a Drosophila clock and light-regulated cryptochrome, is a major contributor to circadian rhythm resetting and photosensitivity. Cell. 95:669–679. doi:10.1016/S0092-8674(00)81637-2. PMID: 9845369.
  • Emery P, Stanewsky R, Helfrich-Förster C, Emery-Lea M, Hall JC, Rosbash M. 2000. Drosophila CRY is a deep brain circadian photoreceptor. Neuron. 26:493–504. doi:10.1016/S0896-6273(00)81181-2. PMID: 10839367.
  • Engelen E, Janssens RC, Yagita K, Smits VAJ, van der Horst GTJ, Tamanini F. 2013. Mammalian TIMELESS is involved in period determination and DNA damage-dependent phase advancing of the circadian clock. PLoS One. 8:e56623. doi:10.1371/journal.pone.0056623. PMID: 23418588.
  • Fergus DJ, Shaw KL. 2013. Circadian rhythms and period expression in the Hawaiian cricket genus Laupala. Behav Genet. 43:241–253. doi:10.1007/s10519-012-9576-4. PMID: 23436058.
  • Fuchikawa T, Sanada S, Nishio R, Matsumoto A, Matsuyama T, Yamagishi M, Tomioka K, Tanimura T, Miyatake T. 2010. The clock gene cryptochrome of Bactrocera cucurbitae (Diptera: tephritidae) in strains with different mating times. Heredity. 104:387–392. doi:10.1038/hdy.2009.167. PMID: 20010960.
  • Goto SG, Denlinger DL. 2002. Short-day and long-day expression patterns of genes involved in the flesh fly clock mechanism: period, timeless, cycle and cryptochrome. J Insect Physiol. 48:803–816. doi:10.1016/S0022-1910(02)00108-7. PMID: 12770058.
  • Groot AT. 2014. Circadian rhythms of sexual activities in moths: a review. Front Ecol Evol. 2:43.
  • Hanniger S, Dumas P, Schofl G, Gebauer-Jung S, Vogel H, Unbehend M, Heckel DG, Groot AT. 2017. Genetic basis of allochronic differentiation in the fall armyworm. BMC Evol Biol. 17:68. doi:10.1186/s12862-017-0911-5. PMID: 28264650.
  • Hardin PE. 2005. The circadian timekeeping system of Drosophila. Curr Biol. 15:R714–22.
  • Hood GR, Egan SP, Feder JL. 2012. Evidence for sexual isolation as a prezygotic barrier to gene flow between morphologically divergent species of Rhagoletis fruit flies. Ecol Entomol. 37:521–528.
  • Hou ML, Lin W, Han YQ. 2009. Seasonal changes in supercooling points and glycerol content in overwintering larvae of the Asiatic rice borer from rice and water-oat plants. Environ Entomol. 38:1182–1188. doi:10.1603/022.038.0427. PMID: 19689898.
  • Krupp JJ, Billeter JC, Wong A, Choi C, Nitabach MN, Levine JD. 2013. Pigment-dispersing factor modulates pheromone production in clock cells that influence mating in Drosophila. Neuron. 79:54–68. doi:10.1016/j.neuron. 2013.05.019. PMID: 23849197.
  • Levy RC, Kozak GM, Dopman EB. 2018. Non-pleiotropic coupling of daily and seasonal temporal isolation in the European corn borer. Genes. 9:180. doi:10.3390/genes9040180. PMID: 29587435.
  • Livak KJ, Schmittgen TD. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2−ΔΔCT method. Methods. 25:402–408. doi:10.1006/meth. 2001.1262. PMID: 11846609.
  • Maki Y, Yamashita M. 1956. Ecological difference of rice stem borer, Chilo suppressalis Walker in the various host plants. Bull Hyogo Pref Agric Exp Stn. 3:47–50.
  • Matsumoto A, Ohta Y, Itoh TQ, Sanada-Morimura S, Matsuyama T, Fuchikawa T, Tanimura T, Miyatake T. 2008. Period gene of Bactrocera cucurbitae (Diptera: tephritidae) among strains with different mating times and sterile insect technique. Ann Entomol Soc Am. 101:1121–1130.
  • Miyatake T, Matsumoto A, Matsuyama T, Ueda HR, Toyosato T, Tanimura T. 2002. The period gene and allochronic reproductive isolation in Bactrocera cucurbitae. P Roy Soc B-Biol Sci. 269:2467–2472. doi:10.1098/rspb.2002.2152. PMID: 12495490.
  • Myers MP, Wager-Smith K, Wesley CS, Young MW, Sehgal A. 1995. Positional cloning and sequence analysis of the Drosophila clock gene, timeless. Science. 270:805–808. doi:10.1126/science.270.5237.805. PMID: 7481771.
  • Nose M, Tokuoka A, Bando T, Tomioka K. 2018. timeless2 plays an important role in reproduction and circadian rhythms in the cricket Gryllus bimaculatus. J Insect Physiol. 105:9–17. doi:10.1016/j.jinsphys.2017.12.007. PMID: 29287788.
  • Pashley DP, Hammond AM, Hardy TN. 1992. Reproductive isolating mechanisms in fall armyworm host strains (Lepidoptera, Noctuidae). Ann Entomol Soc Am. 85:400–405.
  • Phelan PL, Baker TC. 1990. Comparative-study of courtship in 12 phycitine moths (Lepidoptera, Pyralidae). J Insect Behav. 3:303–326.
  • Quan WL, Liu W, Zhou RQ, Qureshi SR, Ding N, Ma WH, Lei CL, Wang XP. 2016. Do differences in life-history traits and the timing of peak mating activity between host-associated populations of Chilo suppressalis have a genetic basis? Ecol Evol. 6:4478–4487. doi:10.1002/ece3.2227. PMID: 27386090.
  • Rona LD, Carvalho-Pinto CJ, Gentile C, Grisard EC, Peixoto AA. 2009. Assessing the molecular divergence between Anopheles (Kerteszia) cruzii populations from Brazil using the timeless gene: further evidence of a species complex. Malaria J. 8:60. doi:10.1186/1475-2875-8-60. PMID: 19358734.
  • Rutila JE, Suri V, Le M, So WV, Rosbash M, Hall JC. 1998. CYCLE is a second bHLH-PAS clock protein essential for circadian rhythmicity and transcription of Drosophila period and timeless. Cell. 93:805–814. doi:10.1016/s0092-8674(00)81441-5. PMID: 9630224.
  • Sakai T, Ishida N. 2001. Circadian rhythms of female mating activity governed by clock genes in Drosophila. P Natl Acad Sci U S A. 98:9221–9225. doi:10.1073/pnas.151443298. PMID: 11470898.
  • Samudra IM, Emura K, Hoshizaki S, Ishikawa Y, Tatsuki S. 2002. Temporal differences in mating behavior between rice- and water-oats-populations of the striped stem borer, Chilo suppressalis (Walker) (Lepidoptera: crambidae). Appl Entomol Zool. 37:503.
  • Sangoram AM, Saez L, Antoch MP, Gekakis N, Staknis D, Whiteley A, Fruechte EM, Vitaterna MH, Shimomura K, King DP, et al. 1998. Mammalian circadian autoregulatory loop: A timeless ortholog and mPer1 interact and negatively regulate CLOCK-BMAL1-induced transcription. Neuron. 21:1101–1113. doi:10.1016/S0896-6273(00)80627-3. PMID: 9856465.
  • Saunders DS, Steel CGH, Vafopoulou X, Lewis RD. 2002. Insect Clocks. Amsterdam (NL): Elsevier Science.
  • Schofl G, Heckel DG, Groot AT. 2009. Time-shifted reproductive behaviours among fall armyworm (Noctuidae: spodoptera frugiperda) host strains: evidence for differing modes of inheritance. J Evolution Biol. 22:1447–1459. doi:10.1111/j.1420-9101.2009.01759.x. PMID: 19467132.
  • Stanewsky R, Kaneko M, Emery P, Beretta B, Wager-Smith K, Kay SA, Rosbash M, Hall JC. 1998. The cryb mutation identifies cryptochrome as a circadian photoreceptor in Drosophila. Cell. 95:681–692. doi:10.1016/S0092-8674(00)81638-4. PMID: 9845370.
  • Stehlik J, Zavodska R, Shimada K, Sauman I, Kostal V. 2008. Photoperiodic induction of diapause requires regulated transcription of timeless in the larval brain of Chymomyza costata. J Biol Rhythm. 23:129–139. doi:10.1177/0748730407313364. PMID: 18375862.
  • Tanner DA, Gonzalez JM, Matthews RW, Vinson SB, Pitts JP. 2011. Evolution of the courtship display of Melittobia (Hymenoptera: eulophidae). Mol Phylogenet Evol. 60:219–227. doi:10.1016/j.ympev.2011.04.014. PMID: 21539925.
  • Tauber E, Roe H, Costa R, Hennessy JM, Kyriacou PC. 2003. Temporal mating isolation driven by a behavioral gene in Drosophila. Curr Biol. 13:140–145. doi:10.1016/s0960-9822(03)00004-6. PMID: 12546788.
  • Tobback J, Boerjan B, Vandersmissen HP, Huybrechts R. 2012. Male reproduction is affected by RNA interference of period and timeless in the desert locust Schistocerca gregaria. Insect Biochem Molec. 42:109–115. doi:10.1016/j.ibmb.2011.11.003. PMID: 22154754.
  • Ueno H, Furukawa S, Tsuchida K. 2006. Difference in the time of mating activity between host-associated populations of the rice stem borer, Chilo suppressalis (Walker). Entomol Sci. 9:255–259.
  • Xia YH, Zhang YN, Hou XQ, Li F, Dong SL. 2015. Large number of putative chemoreception and pheromone biosynthesis genes revealed by analyzing transcriptome from ovipositor-pheromone glands of Chilo suppressalis. Sci Rep. 5:7888. doi:10.1038/srep07888. PMID: 25601555.
  • Xu K, Zheng X, Sehgal A. 2008. Regulation of feeding and metabolism by neuronal and peripheral clocks in Drosophila. Cell Metab. 8:289–300. doi:10.1016/j.cmet. 2008.09.006. PMID: 18840359.
  • Zhan S, Merlin C, Boore JL, Reppert SM. 2011. The monarch butterfly genome yields insights into long-distance migration. Cell. 147:1171–1185. doi:10.1016/j.cell. 2011.09.05.PMID: 22118469.
  • Zhong HY, Li FB, Chen JM, Zhang JF, Li F. 2017. Comparative transcriptome analysis reveals host-associated differentiation in Chilo suppressalis (Lepidoptera: crambidae). Sci Rep. 7:13778. doi:10.1038/s41598-017-14137-x. PMID: 29062034.
  • Zhu L, Liu W, Tan QQ, Lei CL, Wang XP. 2017. Differential expression of circadian clock genes in two strains of beetles reveals candidates related to photoperiodic induction of summer diapause. Gene. 603:9–14. doi:10.1016/j.gene.2016.12.004. PMID: 27956169.

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