首页 > 分享 > 隐花色素

隐花色素

[1]Boles L C, Lohmann K J.True navigation and magnetic maps in spiny lobsters[J].Nature, 2003, 421(6918):60-63

[2]Walker M M, Dennis T E, Kirschvink JL.The magnetic sense and its use in long-distance navigation by animals[J].Curr Opin Neurobiol, 2002, 12(6):735-744

[3]Williams M N, Wild J M.Trigeminally innervated iron-containing structures in the beak of homing pigeons,and other birds[J].Brain Res, 2001, 889(1-2):243-246

[4]Hanzlik M, Heunemann C, Holtkamp-Rotzler E, et al.Superparamagnetic magnetite in the upper beak tissue of homing pigeons[J].Biometals, 2000, 13(4):325-331

[5]Maeda K, Henbest K B, Cintolesi F, et al.Chemical compass model of avian magnetoreception[J].Nature, 2008, 453(7193):387-390

[6]Mouritsen H, Hore P J.The magnetic retina: light-dependent and trigeminal magnetoreception in migratory birds[J].Curr Opin Neurobiol, 2012, 22(2):343-352

[7] Gressel J.Blue light photoreception[J]. Photochem Photobiol, Jan 2, 2008 [Article first published online, Doi 10.1111/J.1751-1097.1970.tb07209.x]

[8]Ahmad M, Cashmore AR.HY4 gene of Athaliana encodes a protein with characteristics of a blue-light photoreceptor[J].Nature, 1993, 366(6451):162-166

[9]Guo H W, Duong H, Ma N, et al.The Arabidopsis blue light receptor cryptochrome 2 is a nuclear protein regulated by a blue light-dependent post-transcriptional mechanism[J].Plant J, 1999, 19(3):279-287

[10]Lin C T.Plant blue-light receptors[J].Trends in Plant Sci, 2000, 5(8):337-342

[11]Todo T.Functional diversity of the DNA photolyaseblue light receptor family[J].Mutat Res, 1999, 434(2):89-97

[12]Malhotra K, Kim S T, Batschauer A, et al.Putative blue-light photoreceptors from Arabidopsis thaliana and Sinapis alba with a high degree of sequence homology to DNA photolyase contain the two photolyase cofactors but lack DNA repair activity[J].Biochemistry, 1995, 34(20):6892-6899

[13]Park H W, Kim S T, Sancar A, et al.Crystal structure of DNA photolyase from Escherichia coli[J].Science, 1995, 268(5219):1866-1872

[14]Lin C, Todo T.The cryptochromes[J].Genome Biol, 2005, 6(5):220-

[15]Muller M, Carell T.Structural biology of DNA photolyases and cryptochromes[J].Curr Opin Struct Biol, 2009, 19(3):277-285

[16]Cashmore AR.Cryptochromes: enabling plants and animals to determine circadian time[J].Cell, 2003, 114(5):537-543

[17]Yuan Q, Metterville D, Briscoe AD, et al.Insect cryptochromes: Gene duplication and loss define diverse ways to construct insect circadian clocks[J].Mol Biol Evol, 2007, 24(4):948-955

[18]Griffin EA, Jr, Staknis D, Weitz CJ.Light-independent role of CRY1 and CRY2 in the mammalian circadian clock[J].Science, 1999, 286(5440):768-771

[19]Gekakis N, Staknis D, Nguyen HB, et al.Role of the CLOCK protein in the mammalian circadian mechanism[J].Science, 1998, 280(5369):1564-1569

[20]Kelleher FC, Rao A, Maguire A.Circadian molecular clocks and cancer[J].Cancer Lett, 2014, 342(1):9-18

[21]Kiyohara YB, Tagao S, Tamanini F, et al.The BMAL1 C terminus regulates the circadian transcription feedback loop[J].Proc Natl Acad Sci U S A, 2006, 103(26):10074-10079

[22]Peschel N, Chen KF, Szabo G, et al.Light-dependent interactions between the Drosophila circadian clock factors cryptochrome,jetlag,and timeless[J].Curr Biol, 2009, 19(3):241-247

[23]Maeda K, Robinson AJ, Henbest KB, et al.Magnetically sensitive light-induced reactions in cryptochrome are consistent with its proposed role as a magnetoreceptor[J].Proc Natl Acad Sci U S A, 2012, 109(13):4774-4779

[24]Dodson CA, Hore PJ, Wallace MI.A radical sense of direction: signalling and mechanism in cryptochrome magnetoreception[J].Trends Biochem Sci, 2013, 38(9):435-446

[25]Zoltowski BD, Vaidya AT, Top D, et al.Structure of full-length Drosophila cryptochrome[J].Nature, 2011, 480(7377):396-399

[26]Solov'yov IA, Mouritsen H, Schulten K.Acuity of a cryptochrome and vision-based magnetoreception system in birds[J].Biophys J, 2010, 99(1):40-49

[27]Ritz T, Yoshii T, Helfrich-Foerster C, et al.Cryptochrome: A photoreceptor with the properties of a magnetoreceptor?[J].Commun Integr Biol, 2010, 3(1):24-27

[28]Ritz T, Adem S, Schulten K.A model for photoreceptor-based magnetoreception in birds[J].Biophys J, 2000, 78(2):707-718

[29]Ritz T, Thalau P, Phillips JB, et al.Resonance effects indicate a radical-pair mechanism for avian magnetic compass[J].Nature, 2004, 429(6988):177-180

[30]Wiltschko W, Traudt J, Gunturkun O, et al.Lateralization of magnetic compass orientation in a migratory bird[J].Nature, 2002, 419(6906):467-470

[31]Zapka M, Heyers D, Hein CM, et al.Visual but not trigeminal mediation of magnetic compass information in a migratory bird[J].Nature, 2009, 461(7268):1274-1277

[32] Ritz T, Ahmad M, Mouritsen H, et al.Photoreceptor-based magnetoreception: optimal design of receptor molecules, cells, and neuronal processing[J]. J R Soc Interface, 2010, 7 Suppl 2: S135-146

[33]Mouritsen H, Janssen-Bienhold U, Liedvogel M, et al.Cryptochromes and neuronal-activity markers colocalize in the retina of migratory birds during magnetic orientation[J].Proc Natl Acad Sci U S A, 2004, 101(39):14294-14299

[34]Moller A, Sagasser S, Wiltschko W, et al.Retinal cryptochrome in a migratory passerine bird: a possible transducer for the avian magnetic compass[J].Naturwissenschaften, 2004, 91(12):585-588

[35]Niessner C, Denzau S, Gross JC, et al.Avian ultravioletviolet cones identified as probable magnetoreceptors[J].PLoS One, 2011, 6(5):e20091-

[36]Liedvogel M, Feenders G, Wada K, et al.Lateralized activation of Cluster N in the brains of migratory songbirds[J].Eur J Neurosci, 2007, 25(4):1166-1173

[37]Prior H, Wiltschko R, Stapput K, et al.Visual lateralization and homing in pigeons[J].Behav Brain Res, 2004, 154(2):301-310

[38]Miyamoto Y, Sancar A.Vitamin B2-based blue-light photoreceptors in the retinohypothalamic tract as the photoactive pigments for setting the circadian clock in mammals[J].Proc Natl Acad Sci U S A, 1998, 95(11):6097-6102

[39]Thompson CL, Bowes Rickman C, Shaw SJ, et al.Expression of the blue-light receptor cryptochrome in the human retina[J].Invest Ophthalmol Vis Sci, 2003, 44(10):4515-4521

[40] Foley LE, Gegear RJ, Reppert SM.Human cryptochrome exhibits light-dependent magnetosensitivity[J]. Nat Commun, 2011, 2:356.doi:10.1038/ncomms 1364

相关知识

动物隐花色素研究进展
植物隐花色素及其分子调控机制
小麦隐花色素基因TaCRYs的克隆及功能分析
马铃薯隐花色素基因克隆及表达分析
水稻蓝光受体隐花色素CRY1的功能研究
利用拟南芥隐花色素 2 光遗传学诱导 caspase
金针菇光受体隐花色素Ffcry基因的鉴定及其表达模式
隐花色素1(CRY1)重组蛋白品牌:HZbscience中国/美国
隐花色素CRY2基因片段克隆及RNAi植物表达载体的构建
隐花色素对磁场依赖性改善果蝇睡眠质量、寿命和运动功能的作用,Genes to Cells

网址: 隐花色素 https://m.huajiangbk.com/newsview1158925.html

所属分类:花卉
上一篇: 使用电容式感应原理设计的4键触摸
下一篇: 触摸台灯的工作原理