Connecting Circadian Genes to Neurodegenerative Pathways in Fruit Flies
article has not abstract
Vyšlo v časopise:
Connecting Circadian Genes to Neurodegenerative Pathways in Fruit Flies. PLoS Genet 11(6): e32767. doi:10.1371/journal.pgen.1005266
Kategorie:
Perspective
prolekare.web.journal.doi_sk:
https://doi.org/10.1371/journal.pgen.1005266
Souhrn
article has not abstract
Zdroje
1. Means JC, Venkatesan A, Gerdes B, Fan J-Y, Bjes ES, Price JL. (2015) Drosophila Spaghetti and Doubletime Link the Circadian Clock and Light to Caspases, Apoptosis and Tauopathy. PLoS Genet 11(5): e1005171. doi: 10.1371/journal.pgen.1005171 25951229
2. Videnovic A, Lazar AS, Barker RA, Overeem S (2014) 'The clocks that time us'—circadian rhythms in neurodegenerative disorders. Nat Rev Neurol 10: 683–693. doi: 10.1038/nrneurol.2014.206 25385339
3. Velazquez-Perez L, Voss U, Rodriguez-Labrada R, Auburger G, Canales Ochoa N, et al. (2011) Sleep disorders in spinocerebellar ataxia type 2 patients. Neurodegener Dis 8: 447–454. doi: 10.1159/000324374 21494015
4. Rodriguez-Labrada R, Velazquez-Perez L, Ochoa NC, Polo LG, Valencia RH, Cruz GS, et al. (2011) Subtle rapid eye movement sleep abnormalities in presymptomatic spinocerebellar ataxia type 2 gene carriers. Mov Disord 26: 347–350. doi: 10.1002/mds.23409 20960485
5. Zhang Y, Ling J, Yuan C, Dubruille R, Emery P (2013) A role for Drosophila ATX2 in activation of PER translation and circadian behavior. Science 340: 879–882. doi: 10.1126/science.1234746 23687048
6. Lim C, Allada R (2013) ATAXIN-2 activates PERIOD translation to sustain circadian rhythms in Drosophila. Science 340: 875–879. doi: 10.1126/science.1234785 23687047
7. Zhang Y, Emery P (2012) Molecular and Neural Control of Insects Circadian Rhythms. In: Gilbert LI, editor. Insect Molecular Biology and Biochemistry: Academic Press. pp. 513–551.
8. Benbahouche Nel H, Iliopoulos I, Torok I, Marhold J, Henri J, Kajava AV, et al. (2014) Drosophila Spag is the homolog of RNA polymerase II-associated protein 3 (RPAP3) and recruits the heat shock proteins 70 and 90 (Hsp70 and Hsp90) during the assembly of cellular machineries. J Biol Chem 289: 6236–6247. doi: 10.1074/jbc.M113.499608 24394412
9. Paul S, Mahanta S (2014) Association of heat-shock proteins in various neurodegenerative disorders: is it a master key to open the therapeutic door? Mol Cell Biochem 386: 45–61. doi: 10.1007/s11010-013-1844-y 24096700
10. Zhang S, Binari R, Zhou R, Perrimon N (2010) A genomewide RNA interference screen for modifiers of aggregates formation by mutant Huntingtin in Drosophila. Genetics 184: 1165–1179. doi: 10.1534/genetics.109.112516 20100940
11. Quinn LM, Dorstyn L, Mills K, Colussi PA, Chen P, Coombe M, et al. (2000) An essential role for the caspase dronc in developmentally programmed cell death in Drosophila. J Biol Chem 275: 40416–40424. 10984473
12. Dorstyn L, Colussi PA, Quinn LM, Richardson H, Kumar S (1999) DRONC, an ecdysone-inducible Drosophila caspase. Proc Natl Acad Sci U S A 96: 4307–4312. 10200258
13. Rohn TT, Rissman RA, Davis MC, Kim YE, Cotman CW, Head E. (2002) Caspase-9 activation and caspase cleavage of tau in the Alzheimer's disease brain. Neurobiol Dis 11: 341–354. 12505426
14. Stoleru D, Peng Y, Nawathean P, Rosbash M (2005) A resetting signal between Drosophila pacemakers synchronizes morning and evening activity. Nature 438: 238–242. 16281038
15. Shang Y, Griffith LC, Rosbash M (2008) Light-arousal and circadian photoreception circuits intersect at the large PDF cells of the Drosophila brain. Proc Natl Acad Sci U S A 105: 19587–19594. doi: 10.1073/pnas.0809577105 19060186
16. Sheeba V, Fogle KJ, Kaneko M, Rashid S, Chou YT, Sharma VK, et al. (2008) Large ventral lateral neurons modulate arousal and sleep in Drosophila. Curr Biol 18: 1537–1545. doi: 10.1016/j.cub.2008.08.033 18771923
17. Cusumano P, Klarsfeld A, Chelot E, Picot M, Richier B, Rouyer F. (2009) PDF-modulated visual inputs and cryptochrome define diurnal behavior in Drosophila. Nat Neurosci 12: 1431–1437. doi: 10.1038/nn.2429 19820704
18. Fogle KJ, Parson KG, Dahm NA, Holmes TC (2011) CRYPTOCHROME is a blue-light sensor that regulates neuronal firing rate. Science 331: 1409–1413. doi: 10.1126/science.1199702 21385718
Štítky
Genetika Reprodukčná medicínaČlánok vyšiel v časopise
PLOS Genetics
2015 Číslo 6
- Je „freeze-all“ pro všechny? Odborníci na fertilitu diskutovali na virtuálním summitu
- Gynekologové a odborníci na reprodukční medicínu se sejdou na prvním virtuálním summitu
Najčítanejšie v tomto čísle
- Non-reciprocal Interspecies Hybridization Barriers in the Capsella Genus Are Established in the Endosperm
- Translational Upregulation of an Individual p21 Transcript Variant by GCN2 Regulates Cell Proliferation and Survival under Nutrient Stress
- Exome Sequencing of Phenotypic Extremes Identifies and as Interacting Modifiers of Chronic Infection in Cystic Fibrosis
- The Human Blood Metabolome-Transcriptome Interface