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生物钟作用机制及其对动物年节律产生的影响

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  • 1.中国农业科学院北京畜牧兽医研究所,农业农村部动物遗传育种与繁殖重点实验室,北京 100193
    2.中国科学院遗传与发育生物学研究所,种子创新研究院,北京 100101
杨阳,硕士,专业方向:动物繁育原理与技术。E-mail: yy176362@163.com

收稿日期: 2023-01-09

  修回日期: 2023-04-14

  网络出版日期: 2023-04-24

基金资助

国家自然科学基金项目(32172704);中国农业科学院科技创新工程(CAAS-ZDRW202106);中国农业科学院科技创新工程(ASTIP-IAS13);财政部和农业农村部国家现代农业产业技术体系(CARS-38);中国科学院战略性先导科技专项(A类)(XDA24030205)

The mechanism of circadian clock and its influence on animal circannual rhythm

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  • 1. Key Laboratory of Animal Genetics, Breeding and Reproduction of Ministry of Agriculture and Rural Affairs, Institute of Animal Science, Chinese Academy of Agricultural Sciences, Beijing 100193, China
    2. Institute of Genetics and Developmental Biology, the Innovation Academy for Seed Design, Chinese Academy of Sciences, Beijing 100101, China

Received date: 2023-01-09

  Revised date: 2023-04-14

  Online published: 2023-04-24

Supported by

National Natural Science Foundation of China(32172704);Agricultural Science and Technology Innovation Program of China(CAAS-ZDRW202106);Agricultural Science and Technology Innovation Program of China(ASTIP-IAS13);China Agriculture Research System of MOF and MARA(CARS-38);Strategic Priority Research Program of Chinese Academy of Sciences(XDA24030205)

摘要

生物钟几乎存在于所有生命体,是生物适应外界环境的每日周期性变化而产生的内部活动。生物钟在体内受转录-翻译-负反馈环路调控,能调节组织、器官的活动,其正常维持对生物的健康、生长、繁殖等具有重要意义。与之相对,由于环境的四季变化,生物也形成了体内的年周期生理变化,如季节性发情、昆虫滞育等。生物的年节律在外部主要受光周期为主的环境因素影响,在体内则与基因表达、激素含量和细胞组织形态的变化有关。褪黑素是识别外部光周期变化的重要信号,而生物钟在垂体解析褪黑素信号并调控下游信号变化中扮演着重要角色,对环境年度变化的识别和机体年节律的产生具有重要指导作用。本文通过介绍昆虫和哺乳动物的昼夜节律和年节律产生的机制,并结合鸟类的年节律,综述了生物钟对年节律产生影响的作用机制研究进展,以期为今后研究年节律的影响机制提供更广泛的思路。

本文引用格式

杨阳, 储明星, 刘秋月 . 生物钟作用机制及其对动物年节律产生的影响[J]. 遗传, 2023 , 45(5) : 409 -424 . DOI: 10.16288/j.yczz.23-008

Abstract

The circadian clock exists in almost all life forms, and is an internal activity generated by organisms adapting to the daily periodic changes of the external environment. The circadian clock is regulated by the transcription-translation-negative feedback loop in the body, which can regulate the activities of tissues and organs. Its normal maintenance is important for the health, growth, and reproduction of organisms. In contrast, due to the season changes of the environment, organisms have also formed annual cycle physiological changes in their bodies, such as seasonal estrus, etc. The annual rhythm of living things is mainly affected by environmental factors such as photoperiod, and is related to gene expression, hormone content, morphological changes of cell and tissues in vivo. Melatonin is an important signal to recognize the changes of photoperiod, and the circadian clock plays an important role in the pituitary to interpret the signal of melatonin and regulate the changes of downstream signals, which plays an important guiding role in the recognition of annual changes in the environment and the generation of the body's annual rhythm. In this review, we summarize the progress of research on the mechanism of action of circadian clocks in influencing annual rhythms, by introducing the mechanisms of circadian and annual rhythms generation in insects and mammals, and in the context of annual rhythms in birds, with the aim of providing a broader range of ideas for future research on the mechanism of annual rhythms influence.

参考文献

[1] Shui K.Systematic study of the regulatory mechanism and function of circadian rhythm [Dissertation]. Huazhong University of Science and Technology, 2020.
[1] 税珂.近日节律的调控机理与功能的系统生物学研究[学位论文]. 华中科技大学, 2020.
[2] Roenneberg T, Merrow M. The circadian clock and human health. Curr Biol, 2016, 26(10): R432-R443.
[3] Virshup DM, Forger DB. After hours keeps clock researchers CRYing Overtime. Cell, 2007, 129(5): 857-859.
[4] Lowrey PL, Takahashi JS. Mammalian circadian biology: elucidating genome-wide levels of temporal organization. Annu Rev Genomics Hum Genet, 2004, 5: 407-441.
[5] Musiek ES, Holtzman DM. Mechanisms linking circadian clocks, sleep, and neurodegeneration. Science, 2016, 354(6315): 1004-1008.
[6] Huang RC. The discoveries of molecular mechanisms for the circadian rhythm: the 2017 Nobel Prize in Physiology or Medicine. Biomed J, 2018, 41(1): 5-8.
[7] Peschel N, Chen KF, Szabo G, Stanewsky R. Light-dependent interactions between the Drosophila circadian clock factors cryptochrome, jetlag, and timeless. Curr Biol, 2009, 19(3): 241-247.
[8] Kivim?e S, Saez L, Young MW. Activating PER repressor through a DBT-directed phosphorylation switch. PLoS Biol, 2008, 6(7): e183.
[9] Kloss B, Rothenfluh A, Young MW, Saez L. Phosphorylation of period is influenced by cycling physical associations of double-time, period, and timeless in the Drosophila clock. Neuron, 2001, 30(3): 699-706.
[10] Emery P, So WV, Kaneko M, Hall JC, Rosbash M. CRY, a Drosophila clock and light-regulated cryptochrome, is a major contributor to circadian rhythm resetting and photosensitivity. Cell, 1998, 95(5): 669-679.
[11] Krishnan B, Levine JD, Lynch MK, Dowse HB, Funes P, Hall JC, Hardin PE, Dryer SE. A new role for cryptochrome in a Drosophila circadian oscillator. Nature, 2001, 411(6835): 313-317.
[12] Jaumouillé E, Machado Almeida P, St?hli P, Koch R, Nagoshi E. Transcriptional regulation via nuclear receptor crosstalk required for the Drosophila circadian clock. Curr Biol, 2015, 25(11): 1502-1508.
[13] Lu H, Li YC, Huang XS. Mechanistic studies of post-translational modifications on the proteasome. Chin J Biochem Mol Biol, 2021, 37(6): 710-719.
[13] 卢慧, 李衍常, 黄学石. 蛋白酶体翻译后修饰功能机制研究. 中国生物化学与分子生物学报, 2021, 37(6): 710-719.
[14] Edery I, Zwiebel LJ, Dembinska ME, Rosbash M. Temporal phosphorylation of the Drosophila period protein. Proc Natl Acad Sci USA, 1994, 91(6): 2260-2264.
[15] Price JL, Blau J, Rothenfluh A, Abodeely M, Kloss B, Young MW. Double-time is a novel Drosophila clock gene that regulates PERIOD protein accumulation. Cell, 1998, 94(1): 83-95.
[16] Fang YS, Sathyanarayanan S, Sehgal A. Post-translational regulation of the Drosophila circadian clock requires protein phosphatase 1 (PP1). Genes Dev, 2007, 21(12): 1506-1518.
[17] Grima B, Dognon A, Lamouroux A, Chélot E, Rouyer F. CULLIN-3 controls TIMELESS oscillations in the Drosophila circadian clock. PLoS Biol, 2012, 10(8): e1001367.
[18] Koh K, Zheng XZ, Sehgal A. JETLAG resets the Drosophila circadian clock by promoting light-induced degradation of TIMELESS. Science, 2006, 312(5781): 1809-1812.
[19] Li MD, Ruan HB, Hughes ME, Lee JS, Singh JP, Jones SP, Nitabach MN, Yang XY. O-GlcNAc signaling entrains the circadian clock by inhibiting BMAL1/CLOCK ubiquitination. Cell Metab, 2013, 17(2): 303-310.
[20] Kaasik K, Kivim?e S, Allen JJ, Chalkley RJ, Huang Y, Baer K, Kissel H, Burlingame AL, Shokat KM, Ptá?ek LJ, Fu YH. Glucose sensor O-GlcNAcylation coordinates with phosphorylation to regulate circadian clock. Cell Metab, 17(2): 291-302.
[21] Kim EY, Jeong EH, Park S, Jeong HJ, Edery I, Cho JW. A role for O-GlcNAcylation in setting circadian clock speed. Genes Dev, 2012, 26(5): 490-502.
[22] Zhang R, Du J, Zhao X, Wei L, Zhao Z. Regulation of circadian behavioural output via clock-responsive miR-276b. Insect Mol Biol, 2021, 30(1): 81-89.
[23] Xia XJ, Fu XN, Du J, Wu BB, Zhao XG, Zhu JS, Zhao ZW.Regulation of circadian rhythm and sleep by miR-375-timeless interaction in Drosophila. FASEB J, 2020, 34(12): 16536-16551.
[24] Chen X, Rosbash M. Mir-276a strengthens Drosophila circadian rhythms by regulating timeless expression. Proc Natl Acad Sci USA, 2016, 113(21): E2965-E2972.
[25] Zhang Y, Lamba P, Guo PY, Emery P. MiR-124 regulates the phase of Drosophila circadian locomotor behavior. J Neurosci, 2016, 36(6): 2007-2013.
[26] Garaulet DL, Sun KL, Li WH, Wen JY, Panzarino AM, O'Neil JL, Hiesinger PR, Young MW, Lai EC.MiR-124 regulates diverse aspects of rhythmic behavior in Drosophila. J Neurosci, 2016, 36(12): 3414-3421.
[27] Liu ZX, Selby CP, Yang YY, Lindsey-Boltz LA, Cao XM, Eynullazada K, Sancar A. Circadian regulation of c-MYC in mice. Proc Natl Acad Sci USA, 2020, 117(35): 21609-21617.
[28] Griffin EA Jr, Staknis D, Weitz CJ. Light-independent role of CRY1 and CRY2 in the mammalian circadian clock. Science, 1999, 286(5440): 768-771.
[29] Kume K, Zylka MJ, Sriram S, Shearman LP, Weaver DR, Jin X, Maywood ES, Hastings MH, Reppert SM. mCRY1 and mCRY2 are essential components of the negative limb of the circadian clock feedback loop. Cell, 1999, 98(2): 193-205.
[30] Preitner N, Damiola F, Lopez-Molina L, Zakany J, Duboule D, Albrecht U, Schibler U. The orphan nuclear receptor REV-ERBalpha controls circadian transcription within the positive limb of the mammalian circadian oscillator. Cell, 2002, 110(2): 251-260.
[31] Vitaterna MH, Selby CP, Todo T, Niwa H, Thompson C, Fruechte EM, Hitomi K, Thresher RJ, Ishikawa T, Miyazaki J, Takahashi JS, Sancar A.Differential regulation of mammalian period genes and circadian rhythmicity by cryptochromes 1 and 2. Proc Natl Acad Sci USA, 1999, 96(21): 12114-12119.
[32] Matsuo T, Yamaguchi S, Mitsui S, Emi A, Shimoda F, Okamura H. Control mechanism of the circadian clock for timing of cell division in vivo. Science, 2003, 302(5643): 255-259.
[33] Kondratov RV, Shamanna RK, Kondratova AA, Gorbacheva VY, Antoch MP. Dual role of the CLOCK/ BMAL1 circadian complex in transcriptional regulation. FASEB J, 2006, 20(3): 530-532.
[34] Liu AC, Welsh DK, Ko CH, Tran HG, Zhang EE, Priest AA, Buhr ED, Singer O, Meeker K, Verma IM, Doyle FJ 3rd, Takahashi JS, Kay SA. Intercellular coupling confers robustness against mutations in the SCN circadian clock network. Cell, 2007, 129(3): 605-616.
[35] Etchegaray JP, Lee C, Wade PA, Reppert SM. Rhythmic histone acetylation underlies transcription in the mammalian circadian clock. Nature, 2003, 421(6919): 177-182.
[36] Crumbley C, Burris TP. Direct regulation of CLOCK expression by REV-ERB. PLoS One, 2011, 6(3): e17290.
[37] Dierickx P, Zhu K, Carpenter BJ, Jiang CJ, Vermunt MW, Xiao Y, Luongo TS, Yamamoto T, Martí-Pàmies í, Mia S, Latimer M, Diwan A, Zhao JJ, Hauck AK, Krusen B, Nguyen HCB, Blobel GA, Kelly DP, Pei LM, Baur JA, Young ME, Lazar MA. Circadian REV-ERBs repress E4bp4 to activate NAMPT-dependent NAD+ biosynthesis and sustain cardiac function. Nat Cardiovasc Res, 2022, 1(1): 45-58.
[38] Yamajuku D, Shibata Y, Kitazawa M, Katakura T, Urata H, Kojima T, Takayasu S, Nakata O, Hashimoto S. Cellular DBP and E4BP4 proteins are critical for determining the period length of the circadian oscillator. FEBS Lett, 2011, 585(14): 2217-2222.
[39] Ohno T, Onishi Y, Ishida N.A novel E4BP 4 element drives circadian expression of mPeriod2. Nucleic Acids Res, 2007, 35(2): 648-655.
[40] Yoshitane H, Asano Y, Sagami A, Sakai S, Suzuki Y, Okamura H, Iwasaki W, Ozaki H, Fukada Y. Functional D-box sequences reset the circadian clock and drive mRNA rhythms. Commun Biol, 2019, 2: 300.
[41] Chen K, Cheng HH, Zhou RJ. Molecular mechanisms and functions of autophagy and the ubiquitin-proteasome pathway. Hereditas (Beijing), 2012, 34(1): 5-18.
[41] 陈科, 程汉华, 周荣家. 自噬与泛素化蛋白降解途径的分子机制及其功能. 遗传, 2012, 34(1): 5-18.
[42] St John PC, Hirota T, Kay SA, Doyle FJ 3rd. Spatiotemporal separation of PER and CRY posttranslational regulation in the mammalian circadian clock. Proc Natl Acad Sci USA, 2014, 111(5): 2040-2045.
[43] Lee C, Etchegaray JP, Cagampang FR, Loudon AS, Reppert SM. Posttranslational mechanisms regulate the mammalian circadian clock. Cell, 2001, 107(7): 855-867.
[44] Busino L, Bassermann F, Maiolica A, Lee C, Nolan PM, Godinho SIH, Draetta GF, Pagano M. SCFFbxl3 controls the oscillation of the circadian clock by directing the degradation of cryptochrome proteins. Science, 2007, 316(5826): 900-904.
[45] Dardente H, Mendoza J, Fustin JM, Challet E, Hazlerigg DG. Implication of the F-Box protein FBXL21 in circadian pacemaker function in mammals. PLoS One, 2008, 3(10): e3530.
[46] Lamia KA, Sachdeva UM, DiTacchio L, Williams EC, Alvarez JG, Egan DF, Vasquez DS, Juguilon H, Panda S, Shaw RJ, Thompson CB, Evans RM. AMPK regulates the circadian clock by cryptochrome phosphorylation and degradation. Science, 2009, 326(5951): 437-440.
[47] Schmalen I, Reischl S, Wallach T, Klemz R, Grudziecki A, Prabu JR, Benda C, Kramer A, Wolf E. Interaction of circadian clock proteins CRY1 and PER2 is modulated by zinc binding and disulfide bond formation. Cell, 2014, 157(5): 1203-1215.
[48] Berthier A, Vinod M, Porez G, Steenackers A, Alexandre J, Yamakawa N, Gheeraert C, Ploton M, Maréchal X, Dubois-Chevalier J, Hovasse A, Schaeffer-Reiss C, Cianférani S, Rolando C, Bray F, Duez H, Eeckhoute J, Lefebvre T, Staels B, Lefebvre P. Combinatorial regulation of hepatic cytoplasmic signaling and nuclear transcripttional events by the OGT/REV-ERBα complex. Proc Natl Acad Sci USA, 2018, 115(47): E11033-E11042.
[49] Chen R, D'Alessandro M, Lee C. MiRNAs are required for generating a time delay critical for the circadian oscillator. Curr Biol, 2013, 23(20): 1959-1968.
[50] Yoo SH, Kojima S, Shimomura K, Koike N, Buhr ED, Furukawa T, Ko CH, Gloston G, Ayoub C, Nohara K, Reyes BA, Tsuchiya Y, Yoo OJ, Yagita K, Lee C, Chen Z, Yamazaki S, Green CB, Takahashi JS. Period 2 3'-UTR and microRNA-24 regulate circadian rhythms by repressing PERIOD2 protein accumulation. Proc Natl Acad Sci USA, 2017, 114(42): E8855-E8864.
[51] Zhou L, Miller C, Miraglia LJ, Romero A, Mure LS, Panda S, Kay SA. A genome-wide microRNA screen identifies the microRNA-183/96/182 cluster as a modulator of circadian rhythms. Proc Natl Acad Sci USA, 2021, 118(1): e2020454118.
[52] Bu Y, Yoshida A, Chitnis N, Altman BJ, Tameire F, Oran A, Gennaro V, Armeson KE, McMahon SB, Wertheim GB, Dang CV, Ruggero D, Koumenis C, Fuchs SY, Diehl JA.A PERK-miR-211 axis suppresses circadian regulators and protein synthesis to promote cancer cell survival. Nat Cell Biol, 2018, 20(1): 104-115.
[53] Cha S, Wang JY, Lee SM, Tan Z, Zhao Q, Bai D.Clock-modified mesenchymal stromal cells therapy rescues molecular circadian oscillation and age-related bone loss via miR142 -3 p/Bmal1/YAP signaling axis. Cell Death Discov, 2022, 8(1): 111.
[54] Gao Q, Zhou L, Yang SY, Cao JM. A novel role of microRNA17-5p in the modulation of circadian rhythm. Sci Rep, 2016, 6: 30070.
[55] Cheng QY, Fan XY, Liu YT, Xu LR, Dong PJ, Song LW, Qian RZ. MiR-455-5p regulates circadian rhythms by accelerating the degradation of clock mRNA. IUBMB Life, 2022, 74(3): 245-258.
[56] Guh YJ, Tamai TK, Yoshimura T. The underlying mechanisms of vertebrate seasonal reproduction. Proc Jpn Acad Ser B Phys Biol Sci, 2019, 95(7): 343-357.
[57] Ko?tál V, ?tětina T, Poupardin R, Korbelová J, Bruce AW. Conceptual framework of the eco-physiological phases of insect diapause development justified by transcriptomic profiling. Proc Natl Acad Sci USA, 2017, 114(32): 8532-8537.
[58] Ren S. Mechanism of summer diapause induction of Delia antiqua (Diptera: Anthomyiidae) [Dissertation]. Chongqing University, 2018.
[58] 任爽. 葱蝇Delia antiqua(Diptera: Anthomyiidae)夏滞育诱导机理研究[学位论文]. 重庆大学, 2018.
[59] Saeed MM, Tougeron K, Raza ABM, Afzal M, Aqueel A, Le Goff GJ, Renoz F, Pirotte J, Hance T. Transgenerational phenotypic plasticity of diapause induction and related fitness cost in a commercial strain of the parasitoid Aphidius ervi Haliday. Insect Sci, 2021, 28(3): 780-792.
[60] Abrieux A, Xue YB, Cai Y, Lewald KM, Nguyen HN, Zhang Y, Chiu JC. EYES ABSENT and TIMELESS integrate photoperiodic and temperature cues to regulate seasonal physiology in Drosophila. Proc Natl Acad Sci USA, 2020, 117(26): 15293-15304.
[61] Ikeno T, Tanaka SI, Numata H, Goto SG. Photoperiodic diapause under the control of circadian clock genes in an insect. BMC Biol, 2010, 8: 116.
[62] Yamashita O. Diapause hormone of the silkworm, Bombyx mori: structure, gene expression and function. J Insect Physiol, 1996, 42(7): 669-679.
[63] Xu WH, Denlinger DL. Molecular characterization of prothoracicotropic hormone and diapause hormone in Heliothis virescens during diapause, and a new role for diapause hormone. Insect Mol Biol, 2003, 12(5): 509-516.
[64] Jindra M, Palli SR, Riddiford LM. The juvenile hormone signaling pathway in insect development. Annu Rev Entomol, 2013, 58: 181-204.
[65] Ma HY, Li YY, Li L, Tan Y, Pang BP. Juvenile hormone regulates the reproductive diapause through Methoprene- tolerant gene in Galeruca daurica. Insect Mol Biol, 2021, 30(4): 446-458.
[66] Batz ZA, Brent CS, Marias MR, Sugijanto J, Armbruster PA.Juvenile hormone III but not 20-hydroxyecdysone regulates the embryonic diapause of aedes albopictus. Front Physiol, 2019, 10: 1352.
[67] Dong YC, Chen ZZ, Clarke AR, Niu CY. Changes in energy metabolism trigger pupal diapause transition of bactrocera minax after 20-hydroxyecdysone application. Front Physiol, 2019, 10: 1288.
[68] Thrun LA, Moenter SM, O'Callaghan D, Woodfill CJ, Karsch FJ. Circannual alterations in the circadian rhythm of melatonin secretion. J Biol Rhythms, 1995, 10(1): 42-54.
[69] Karsch FJ, Bittman EL, Foster DL, Goodman RL, Legan SJ, Robinson JE. Neuroendocrine basis of seasonal reproduction. Recent Prog Horm Res, 1984, 40: 185-232.
[70] Butler MP, Turner KW, Park JH, Schoomer EE, Zucker I, Gorman MR. Seasonal regulation of reproduction: altered role of melatonin under naturalistic conditions in hamsters. Proc Biol Sci, 2010, 277(1695): 2867-2874.
[71] Casao A, Cebrián I, Asump??o ME, Pérez-Pé R, Abecia JA, Forcada F, Cebrián-Pérez JA, Mui?o-Blanco T. Seasonal variations of melatonin in ram seminal plasma are correlated to those of testosterone and antioxidant enzymes. Reprod Biol Endocrinol, 2010, 8: 59.
[72] Weems PW, Goodman RL, Lehman MN. Neural mechanisms controlling seasonal reproduction: principles derived from the sheep model and its comparison with hamsters. Front Neuroendocrinol, 2015, 37: 43-51.
[73] Ralph MR, Foster RG, Davis FC, Menaker M. Transplanted suprachiasmatic nucleus determines circadian period. Science, 1990, 247(4945): 975-978.
[74] Xu P, Berto S, Kulkarni A, Jeong B, Joseph C, Cox KH, Greenberg ME, Kim TK, Konopka G, Takahashi JS. NPAS4 regulates the transcriptional response of the suprachiasmatic nucleus to light and circadian behavior. Neuron, 2021, 109(20): 3268-3282.
[75] Pandi-Perumal SR, Srinivasan V, Maestroni GJM, Cardinali DP, Poeggeler B, Hardeland R. Melatonin: nature's most versatile biological signal? FEBS J, 2006, 273(13): 2813-2838.
[76] Brainard GC, Hanifin JP, Greeson JM, Byrne B, Glickman G, Gerner E, Rollag MD. Action spectrum for melatonin regulation in humans: evidence for a novel circadian photoreceptor. J Neurosci, 2001, 21(16): 6405-6412.
[77] Xia Q, Liu QY, Wang XY, Hu WP, Li CY, He XY, Chu MX, Di R. The molecular mechanism of sheep seasonal breeding and artificial regulatory techniques for estrus and mating in anestrus. Hereditas (Beijing), 2018, 40(5): 369-377.
[77] 夏青, 刘秋月, 王翔宇, 胡文萍, 李春艳, 贺小云, 储明星, 狄冉. 绵羊季节性繁殖分子机制及休情季节诱导绵羊发情配种技术. 遗传, 2018, 40(5): 369-377.
[78] Kang SW, Thayananuphat A, Bakken T, El Halawani ME. Dopamine-melatonin neurons in the avian hypothalamus controlling seasonal reproduction. Neuroscience, 2007, 150(1): 223-233.
[79] Johnston JD, Tournier BB, Andersson H, Masson-Pévet M, Lincoln GA, Hazlerigg DG. Multiple effects of melatonin on rhythmic clock gene expression in the mammalian pars tuberalis. Endocrinology, 2006, 147(2): 959-965.
[80] Von Gall C, Garabette ML, Kell CA, Frenzel S, Dehghani F, Schumm-Draeger PM, Weaver DR, Korf HW, Hastings MH, Stehle JH. Rhythmic gene expression in pituitary depends on heterologous sensitization by the neurohormone melatonin. Nat Neurosci, 2002, 5(3): 234-238.
[81] Dardente H, Lomet D, Robert V, Decourt C, Beltramo M, Pellicer-Rubio MT. Seasonal breeding in mammals: from basic science to applications and back. Theriogenology, 2016, 86(1): 324-332.
[82] Hanon EA, Lincoln GA, Fustin JM, Dardente H, Masson-Pévet M, Morgan PJ, Hazlerigg DG. Ancestral TSH mechanism signals summer in a photoperiodic mammal. Curr Biol, 2008, 18(15): 1147-1152.
[83] Ono H, Hoshino Y, Yasuo S, Watanabe M, Nakane Y, Murai A, Ebihara S, Korf HW, Yoshimura T. Involvement of thyrotropin in photoperiodic signal transduction in mice. Proc Natl Acad Sci USA, 2008, 105(47): 18238-18242.
[84] Dupré SM, Miedzinska K, Duval CV, Yu L, Goodman RL, Lincoln GA, Davis JR, McNeilly AS, Burt DD, Loudon AS. Identification of EYA3 and TAC1 as long-day signals in the sheep pituitary. Curr Biol, 2010, 20(9): 829-835.
[85] Henson JR, Carter SN, Freeman DA. Exogenous T-elicits long day-like alterations in testis size and the RFamides Kisspeptin and gonadotropin-inhibitory hormone in short-day Siberian hamsters. J Biol Rhythms, 2013, 28(3): 193-200.
[86] Masumoto KH, Ukai-Tadenuma M, Kasukawa T, Nagano M, Uno KD, Tsujino K, Horikawa K, Shigeyoshi Y, Ueda HR. Acute induction of Eya3 by late-night light stimulation triggers TSHβ expression in photoperiodism. Curr Biol, 2010, 20(24): 2199-2206.
[87] Castle-Miller J, Bates DO, Tortonese DJ. Mechanisms regulating angiogenesis underlie seasonal control of pituitary function. Proc Natl Acad Sci USA, 2017, 114(12): E2514-E2523.
[88] Carcangiu V, Vacca GM, Mura MC, Dettori ML, Pazzola M, Luridiana S, Bini PP. Relationship between MTNR1A melatonin receptor gene polymorphism and seasonal reproduction in different goat breeds. Anim Reprod Sci, 2009, 110(1-2): 71-78.
[89] Huang DW, Wang JX, Liu QY, Chu MX, Di R, He JN, Cao GL, Fang L, Feng T, Li N. Analysis on DNA sequence of TSHB gene and its association with reproductive seasonality in goats. Mol Biol Rep, 2013, 40(2): 1893-1904.
[90] He XY, Zhang ZB, Liu QY, Chu MX. Polymorphisms of the melatonin receptor 1A gene that affects the reproductive seasonality and litter size in Small Tail Han sheep. Reprod Domest Anim, 2019, 54(10): 1400-1410.
[91] Simonneaux V. A Kiss to drive rhythms in reproduction. Eur J Neurosci, 2020, 51(1): 509-530.
[92] Woller A, Gonze D. The bird circadian clock: insights from a computational model. J Biol Rhythms, 2013, 28(6): 390-402.
[93] Siopes TD, Wilson WO. Extraocular modification of photoreception in intact and pinealectomized coturnix. Poult Sci, 1974, 53(6): 2035-2041.
[94] Halford S, Pires SS, Turton M, Zheng L, González- Menéndez I, Davies WL, Peirson SN, García-Fernández JM, Hankins MW, Foster RG. VA opsin-based photoreceptors in the hypothalamus of birds. Curr Biol, 2009, 19(16): 1396-1402.
[95] Nakane Y, Ikegami K, Ono H, Yamamoto N, Yoshida S, Hirunagi K, Ebihara S, Kubo Y, Yoshimura T. A mammalian neural tissue opsin (Opsin 5) is a deep brain photoreceptor in birds. Proc Natl Acad Sci USA, 2010, 107(34): 15264-15268.
[96] Chaurasia SS, Rollag MD, Jiang G, Hayes WP, Haque R, Natesan A, Zatz M, Tosini G, Liu C, Korf HW, Iuvone PM, Provencio I. Molecular cloning, localization and circadian expression of chicken melanopsin (Opn4): differential regulation of expression in pineal and retinal cell types. J Neurochem, 2005, 92(1): 158-170.
[97] Di R, He JN, Song SH, Tian DM, Liu QY, Liang XJ, Ma Q, Sun M, Wang JD, Zhao WM, Cao GL, Wang JX, Yang ZM, Ge Y, Chu MX. Characterization and comparative profiling of ovarian microRNAs during ovine anestrus and the breeding season. BMC Genom, 2014, 15(1): 899.
[98] Tamai TK, Yoshimura T. Molecular and neuroendocrine mechanisms of avian seasonal reproduction. Adv Exp Med Biol, 2017, 1001: 125-136.
[99] Pittendrigh CS. Circadian surfaces and the diversity of possible roles of circadian organization in photoperiodic induction. Proc Natl Acad Sci USA, 1972, 69(9): 2734-2737.
[100] Lincoln G, Messager S, Andersson H, Hazlerigg D. Temporal expression of seven clock genes in the suprachiasmatic nucleus and the pars tuberalis of the sheep: evidence for an internal coincidence timer. Proc Natl Acad Sci USA, 2002, 99(21): 13890-13895.
[101] Ikegami K, Yoshimura T. Circadian clocks and the measurement of daylength in seasonal reproduction. Mol Cell Endocrinol, 2012, 349(1): 76-81.
[102] Si FL.Cloning and expression of the DaHSP23 gene during diapause in the maggot, Delia antiqua [Dissertation]. Chongqing Normal University, 2011.
[102] 司风玲.葱蝇HSP23基因的克隆及在滞育时期的表达[学位论文]. 重庆师范大学, 2011.
[103] Pegoraro M, Gesto JS, Kyriacou CP, Tauber E. Role for circadian clock genes in seasonal timing: testing the Bünning hypothesis. PLoS Genet, 2014, 10(9): e1004603.
[104] Ueda H, Tamaki S, Miki T, Uryu O, Kamae Y, Nose M, Shinohara T, Tomioka K. Cryptochrome genes mediate photoperiodic responses in the cricket Modicogryllus siamensis. Physiol Entomol, 2018, 43(4): 285-294.
[105] Cui WZ, Qiu JF, Dai TM, Chen Z, Li JL, Liu K, Wang YJ, Sima YH, Xu SQ. Circadian clock gene Period contributes to diapause via GABAeric-diapause hormone pathway in Bombyx mori. Biology (Basel), 2021, 10(9): 842.
[106] Coomans CP, Ramkisoensing A, Meijer JH. The suprachiasmatic nuclei as a seasonal clock. Front Neuroendocrinol, 2015, 37: 29-42.
[107] Nishiwaki-Ohkawa T, Yoshimura T. Molecular basis for regulating seasonal reproduction in vertebrates. J Endocrinol, 2016, 229(3): R117-R127.
[108] Bittman EL, Bartness TJ, Goldman BD, DeVries GJ. Suprachiasmatic and paraventricular control of photoperiodism in Siberian hamsters. Am J Physiol, 1991, 260(<W>1 Pt 2):R90-R101.
[109] Maurel D, Boissin-Agasse L, Roch G, Herbuté S, Boissin J. Suprachiasmatic nucleus lesions abolish photoperiod- induced changes in the testis function and GnRH immunoreactivity in the mink, a short-day breeder. Neuroendocrinology, 1991, 54(2): 103-110.
[110] Dardente H, Wyse CA, Birnie MJ, Dupré SM, Loudon ASI, Lincoln GA, Hazlerigg DG. A molecular switch for photoperiod responsiveness in mammals. Curr Biol, 2010, 20(24): 2193-2198.
[111] Shi GS.The roles of FBXL3 in regulating circadian clock[Dissertation]. Nanjing University, 2014.
[111] 时广森.FBXL3对近日节律作用机制的研究[学位论文]. 南京大学, 2014.
[112] Wood SH, Hindle MM, Mizoro Y, Cheng Y, Saer BRC, Miedzinska K, Christian HC, Begley N, McNeilly J, McNeilly AS, Meddle SL, Burt DW, Loudon ASI. Circadian clock mechanism driving mammalian photoperiodism. Nat Commun, 2020, 11(1): 4291.
[113] Yang Y, Zhong YJ, Jiang Y, Chu MX, Liu QY. FBXL3 gene expression and correlation analysis between its polymorphism and seasonal estrus in sheep (Ovis aries). J Agric Biotechnol, 2022, 30(1): 75-84.
[113] 杨阳, 钟英杰, 姜雨, 储明星, 刘秋月. 绵羊FBXL3基因表达及其多态性与季节性发情的相关性分析. 农业生物技术学报, 2022, 30(1): 75-84
[114] Naval-Sanchez M, Nguyen Q, McWilliam S, Porto-Neto LR, Tellam R, Vuocolo T, Reverter A, Perez-Enciso M, Brauning R, Clarke S, McCulloch A, Zamani W, Naderi S, Rezaei HR, Pompanon F, Taberlet P, Worley KC, Gibbs RA, Muzny DM, Jhangiani SN, Cockett N, Daetwyler H, Kijas J. Sheep genome functional annotation reveals proximal regulatory elements contributed to the evolution of modern breeds. Nat Commun, 2018, 9(1): 859.
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