155
Views
0
CrossRef citations to date
0
Altmetric
Genetics and Genomics

A variety-specific arrangement of histone H1 subtype (H1.b and H1.z) polymorphic variants in differently plumaged quails

&
Pages 166-171 | Received 08 Jan 2020, Accepted 26 Aug 2020, Published online: 11 Jan 2021

References

  • Andreyeva, E. N., T. J. Bernardo, T. D. Kolesnikova, X. Lu, L. A. Yarinich, B. A. Bartholdy, X. Guo, et al. 2017. “Regulatory functions and Chromatin Loading Dynamics of Linker Histone H1 during Endoreplication in Drosophila.” Genes & Development 31 (6): 603–616. doi:10.1101/gad.295717.116.
  • Blair, R. 2018. Nutrition and Feeding of Organic Poultry. Boston: CAB International.
  • Botstein, D. R. L., M. S. White, and R. W. Davis. 1980. “Construction of a Genetic Linkage Map in Man Using Restriction Fragment Length Polymorphisms.” American Journal of Human Genetics 32: 314–333.
  • Brockers, K., and R. Schneider. 2019. “Histone H1, the Forgotten Histone.” Epigenomics 11 (24): 363–366. doi:10.2217/epi-2019-0018.
  • Excoffier, L. 2007. “Analysis of Population Subdivision.” Chap. 29 in Handbook of Statistical Genetics, edited by D. J. Balding, M. Bishop, and C. Canings, 3rd ed., 980–1013. John Wiley & Sons.
  • Flanagan, T. W., J. K. Files, K. R. Casano, E. M. George, and D. T. Brown. 2016. “Photobleaching Studies Reveal that a Single Amino Acid Polymorphism Is Responsible for the Differential Binding Affinities of Linker Histone Subtypes H1.1 And H1.5.” Biology Open 5: 372–380. doi:10.1242/bio.016733.
  • Fyodorov, D. V., B.-R. Zhou, A. I. Skoultchi, and Y. Bai. 2017. “Emerging Roles of Linker Histones in Regulating Chromatin Structure and Function.” Nature Reviews Molecular Cell Biology 19: 192–206. doi:10.1038/nrm.2017.94.
  • Galvan, I., and F. Solano. 2016. “Bird Integumentary Melanins: Biosynthesis, Forms, Function and Evolution.” International Journal of Molecular Science 17 (4): 520. doi:10.3390/ijms17040520.
  • Genchev, A. G., S. S. Ribarski, G. D. Afanasjev, and G. I. Blochin. 2005. “Fattening Capacities and Meat Quality of Japanese Quails of Faraon and White English Breeds.” Journal of Central European Agriculture 6: 495–500. doi:10.5513/jcea.v6i4.327.
  • Gibbs, E. B., and R. W. Kriwacki. 2018. “Linker Histones as Liquid-like Glue for Chromatin.” Proceedings of the National Academy of Science USA 115 (47): 11868–11870. doi:10.1073/pnas.1816936115.
  • Górnicka-Michalska, E., A. Kowalski, and J. Pałyga. 2014. “Allelic Isoforms of the Chicken and Duck Histone H1.a.” Cellular and Molecular Biology Letters 19 (1): 116–125. doi:10.2478/s11658-014-0182-8.
  • Górnicka-Michalska, E., J. Pałyga, A. Kowalski, and K. Cywa-Benko. 2006. “Sequence Variants of Chicken Linker Histone H1.a.” FEBS Journal 273 (6): 1240–1250. doi:10.1111/j.1742-4658.2006.05147.x.
  • Harris, C. 2012. “Animal Models in Epigenetic Research: Institutional Animal Care and Use of Committee Consideration across the Lifespan.” ILAR Journal 53 (3–4): 370–376. doi:10.1093/ilar.53.3-4.370.
  • Hergeth, S. P., and R. Schneider. 2015. “The H1 Linker Histones: Multifunctional Proteins beyond the Nucleosomal Core Particle.” EMBO Reports 16 (11): 1439–1453. doi:10.15252/embr.201540749.
  • Hue, J., and R. D. H. Barrett. 2017. “Epigenetics in Natural Animal Populations.” Journal of Evolutionary Biology 30 (9): 1612–1632. doi:10.1111/jeb.13130.
  • Huss, D., G. Poynter, and R. Lansford. 2008. “Japanese Quail (Coturnix Japonica) as a Laboratory Animal Model.” Laboratory Animals 37 (11): 513–519. doi:10.1038/laban1108-513.
  • Kowalski, A. 2016. “A Heterogeneity of the Pheasant (Phasianus Colchicus L.) Erythrocyte Histone H1 Subtype H5.” Comptes Rendus Biologies 339 (9–10): 357–363. doi:10.1016/j.crvi.2016.07.001.
  • Kowalski, A. 2018. “Significance of Avian Linker Histone (H1) Polymorphic Variation.” Journal of Biosciences 43 (4): 751–761. doi:10.1007/s12038-018-9791-0.
  • Kowalski, A. 2019. “A Status Of Guinea Fowl (Numida meleagris) and pheasant (Phasianus colchicus) population transferred from wildlife to the breeding assessed based on the histone H1.c’ polymorphic variation.” Avian Biology Research 12 (4): 145–151. doi:10.1177/1758155919860351.
  • Kowalski, A., and J. Pałyga. 2012. “Linker Histone Subtypes and Their Allelic Variants.” Cell Biology International 36 (11): 981–996. doi:10.1042/CBI20120133.
  • Kowalski, A., and J. Pałyga. 2014. “Polymorphic Linker Histone H1 Variants in Breeding and Conservative Duck Populations.” Annals of Animal Science 14 (1): 33–42. doi:10.2478/aoas-2013-0061.
  • Kowalski, A., and J. Pałyga. 2016. “Modulation of Chromatin Function through Linker Histone H1 Variants.” Biology of the Cell 108 (12): 1–18. doi:10.1111/boc.201600007.
  • Kowalski, A., J. Pałyga, and E. Górnicka-Michalska. 2011a. “Linker Histone H1.b Is Polymorphic in Grey Partridge (Perdix Perdix).” Zeitschrift für Naturforschung C 66 (5–6): 296–304. doi:10.5560/ZNC.2011.66c0296.
  • Kowalski, A., J. Pałyga, and E. Górnicka-Michalska. 2011b. “Two Polymorphic Linker Histone Loci in Guinea Fowl Erythrocyte.” Comptes Rendus Biologies 334 (1): 6–12. doi:10.1016/j.crvi.2010.10.006.
  • Kowalski, A. J., S. K. Pałyga, and A. Witkowski. 2015. “A Shift in the Erythrocyte Histone H1 Complement following Selection in Quail (Coturnix Japonica).” Czech Journal of Animal Science 60: 105–115. doi:10.17221/8075-CJAS.
  • Mandemaker, I. K., L. van Cuijk, R. C. Janssens, H. Lans, K. Bezstarosti, J. H. Hoeijmakers, J. A. Demmers, W. Vermeulen, and J. A. Marteijn. 2017. “DNA Damage–induced Histone H1 Ubiquitylation Is Mediated by HUWE1 and Stimulates the RNF8-RNF168 Pathway.” Science Reports 7 (1): 15353. doi:10.1038/s41598-017-15194-y.
  • Martinov, I., S. Brancorsini, R. Catena, A. Gansmuller, N. Kotaja, M. Parvinen, P. Sassone-Corsi, and I. Davidson. 2005. “Polar Nuclear Localization of H1T2, a Histone H1 Variant, Required for Spermatid Elongation and DNA Condensation during Spermatogenesis.” Proceedings of the National Academy of Science USA 102 (8): 2808–2813. doi:10.1073/pnas.0406060102.
  • Millãn-Ariño, L., A. Izquierdo-Bouldstridge, and A. Jordan. 2016. “Specificities and Genomic Distribution of Somatic Mammalian Histone H1 Subtypes.” Biochimica at Biophysica Acta 1859 (3): 510–519. doi:10.1016/j.bbagrm.2015.10.013.
  • Parseghian, M. H. 2015. “What Is A Role of Histone H1 Heterogeneity? A Functional Model Emerges from A 50 Year Mystery.” AIMS Biophysics 2 (4): 724–772. doi:10.3934/biophy.2015.4.724.
  • Rasol Al-Kafajy, F., M. B. Sahib Al.-Shuhaib, G. Salah Al-Jashami, and T. Mohhamed Al-Thuwaini. 2018. “Comparison of Three Lines of Japanese Quails Revealed a Remarkable Role of Plumage Color in the Productivity Performance Determination.” Journal of World’s Poultry Research 8: 111–119.
  • Roulin, A., and A.-L. Ducrest. 2013. “Genetics of Colouration in Birds.” Seminars in Cell & Developmental Biology 24 (6–7): 594–608. doi:10.1016/j.semcdb.2013.05.005.
  • Rutkowski, A. 2000. Przepiórka Japońska (Japanese Quail – In Polish). Poznań: Państwowe Wydawnictwo Rolnicze i Leśne.
  • Saeki, H., K. Oshumi, H. Aihara, T. Ito, S. Hirose, K. Ura, and Y. Kaneda. 2005. “Linker Histone Variants Control Chromatin Dynamics during Early Embryogenesis.” Proceedings of the National Academy of Science USA 102 (16): 5697–5702. doi:10.1073/pnas.0409824102.
  • Somes, J. R. G. 1979. “Genetic Bases for Plumage Color Patterns in Four Varieties of Japanese Quail.” Journal of Heredity 70 (3): 205–210. doi:10.1093/oxfordjournals.jhered.a109234.
  • Somes, J. R. G. 1988. “International Registry of Poultry Genetic Stocks.” Storrs Agricultural Experimental Station. 29.
  • Takata, H., S. Matsunaga, A. Morimoto, R. Ono-Maniva, S. Uchiyama, and K. Fukui. 2007. “H1.X With Different Properties from Other Linker Histones Is Required for Mitotic Progression.” FEBS Letters 581 (20): 3783–3788. doi:10.1016/j.febslet.2007.06.076.
  • Truax, R. E., and W. A. Johnson. 1979. “Genetics of Plumage Color Mutants in Japanese Quail.” Poultry Science 58 (1): 1–9. doi:10.3382/ps.0580001.
  • Tsudzuki, M. 2008. “Mutations of Japanese Quail (Coturnix Japonica) and Recent Advances of Molecular Genetics for This Species.” Journal of Poultry Science 45 (3): 159–179. doi:10.2141/jpsa.45.159.
  • Vali, N. 2007. “Comparison of Egg Production between Two Quail Strains and Their Reciprocal Crosses.” Pakistan Journal of Biological Sciences 10 (21): 3948–3951. doi:10.3923/pjbs.2007.3948.3951.
  • Vali, N. 2008. “The Japanese Quail: A Review.” International Journal of Poultry Science 7 (9): 925–931. doi:10.3923/ijps.2008.925.931.
  • van Grouw, H. 2013. “What Colour Is that Bird? the Causes and Recognition of Common Colour Aberrations in Birds.” British Birds 106: 17–29.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.