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1Academic Journal
المصدر: European Cells & Materials, Vol 40, Pp 276-302 (2020)
مصطلحات موضوعية: chromium, biocompatibility, mesenchymal stromal cells, apoptosis, osteogenic differentiation, macrophages, Diseases of the musculoskeletal system, RC925-935, Orthopedic surgery, RD701-811
وصف الملف: electronic resource
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2Academic Journal
المؤلفون: O. B. Dobrovolskaya, A. E. Dresvyannikova, E. D. Badaeva, K. I. Popova, M. Trávníčková, P. Martinek, О. Б. Добровольская, А. Е. Дресвянникова, Е. Д. Бадаева, К. И. Попова, М. Травничкова, П. Мартинек
المساهمون: This work was supported by State Budgeted Project AAAA-A16-116061750188-4 and the Russian Foundation for Basic Research, project 18-04-00483-a. The analysis of the developing inflorescence was assisted by a project of the Peoples’ Friendship University of Russia for O.B. Dobrovolskaya. M.T. and P.M. acknowledge the support of the Ministry of Agriculture of the Czech Republic, project QK1910343. The authors are grateful to O.A. Roshchina (ICG, Novosibirsk) for technical assistance.
المصدر: Vavilov Journal of Genetics and Breeding; Том 24, № 6 (2020); 568-574 ; Вавиловский журнал генетики и селекции; Том 24, № 6 (2020); 568-574 ; 2500-3259 ; 2500-0462 ; 10.18699/VJ20.647
مصطلحات موضوعية: ингибитор остистости B1, Triticum aestivum L, spike, awnedness, awned glume, molecular-genetic mapping, SEM, B1 awn suppressor, колос, остистость, тетраостость, молекулярно-генетическое картирование
وصف الملف: application/pdf
Relation: https://vavilov.elpub.ru/jour/article/view/2771/1416; Вавилов Н.И., Якушкина О.В. К филогенезу пшениц. Гибридологический анализ вида T. persicum Vav. и межвидовая гибридизация у пшениц. Тр. по прикл. бот., ген. и селекции. 1925;15(1): 3159. [Vavilov N.I., Yakushina O.V. On the phylogenesis of wheat. Test cross analysis of T. persicum Vav. and interspecific hybridization of wheat. Trudy po Prikladnoy Botanike, Genetike i Selektsii = Proceedings on Applied Botany, Genetics, and Breeding. 1925;15(1); 3159. (in Russian)]; Гандилян П.А. Колосовые культуры и их дикие сородичи Армянской ССР: Автореф. дис. … дра биол. наук. Ереван, 1973. [Gandilyan P.A. Spike crops and their wild relatives of the Armenian SSR: Doctor Sci. (Biol.) Dissertation. Yerevan, 1973. (in Russian)]; Гончаров Н.П. Сравнительная генетика пшениц и их сородичей. Новосибирск: Сиб. унив. издво, 2002. [Goncharov N.P. Comparative Genetics of Wheats and their Related Species. Novosibirsk: Siberian University Press, 2002. (in Russian)]; Гончаров Н.П. Сравнительная генетика пшениц и их сородичей. Изд. 2е испр. и доп. Новосибирск: Акад. издво «Гео», 2012. [Goncharov N.P. Comparative Genetics of Wheats and their Related Species. Novosibirsk: Geo Publ., 2012. (in Russian)]; Добровольская О.Б. Молекулярногенетические основы морфогенеза соцветия пшеницы: Автореф. дис. … дра биол. наук. Новосибирск, 2018. [Dobrovolskaya O.B. Molecular basis of wheat inflorescence morphogenesis: Doctor Sci. (Biol.) Dissertation. Novosibirsk, 2018. (in Russian)]; Дорофеев В.Ф., Филатенко А.А., Мигушова Э.Ф., Удачин Р.А., Якубцинер М.М. Культурная флора СССР. Т. 1. Пшеница. Л.: Колос, 1979. [Dorofeev V.F., Filatenko A.A., Migushova E.F., Udachin R.A., Yakubtsiner M.M. The Cultural Flora of the USSR. Vol. 1. Wheat. Leningrad: Kolos Publ., 1979. (in Russian)]; Ионова Н.Э. Роль отдельных органов в продукционном процессе растений яровой пшеницы разного экологогеографического происхождения: Автореф. дис. … канд. биол. наук. Спб., 2005. [Ionova N.E. The role of individual organs in the production of spring wheat plants of different ecological and geographical origins: Cand. Sci. (Biol.) Dissertation. St. Petersburg, 2005. (in Russian)]; Мигушова Э.Ф., Жуковский П.М. К познанию пшеницы T. ispahanicum Heslot. Тр. по прикл. бот., ген. и селекции. 1969;39(3): 7190. [Migushova E.F., Zhukovsky P.M. Towards the knowledge of wheat T. ispahanicum Heslot. Trudy po Prikladnoy Botanike, Genetike i Selektsii = Proceedings on Applied Botany, Genetics, and Breeding. 1969;39(3):7190. (in Russian)]; Рожков Р.В., Криворученко Р.В., Коваленко И.В. Генетический контроль тетраостости у пшеницы. Вестн. Харьковского национального аграрного университета. 2014;2(32):7076. [Rozhkov R.V., Krivoruchenko R.V., Kovalenko I.V. Genetic control of tetrabeardedness in wheat. Vestnik Khar’kovskogo Natsional’nogo Agrarnogo Universiteta = Bulletin of the Kharkiv National Agrarian University. 2014;2(32):7076. (in Ukrainian)]; Рокицкий П.Ф. Биологическая статистика. Минск: Вышейш. шк., 1973;7779. [Rokitskii P.F. Biological Statistics. Minsk: Vysheishaya Shkola Publ., 1973;7779. (in Russian)]; Badaeva E.D., Badaev N.S., Gill B.S., Filatenko A.A. Intraspecific karyotype divergence in Triticum araraticum (Poaceae). Plant Syst. Evol. 1994;192(12):117145. DOI 10.1007/BF00985912.; Börner A., Schäfer M., Schmidt A., Grau M., Vorwald J. Associations between geographical origin and morphological characters in bread wheat (Triticum aestivum L.). Plant Genet. Resour. 2005;3(3):360 372. DOI 10.1079/PGR200589.; Dresvyannikova A.E., Watanabe N., Muterko A.F., Krasnikov A.A., Goncharov N.P., Dobrovolskaya O.B. Characterization of a dominant mutation for the liguleless trait: Aegilops tauschii liguleless (Lg-t-). BMC Plant Biol. 2019;19(1):55. DOI 10.1186/s128700191635z.; Fuller D.Q., Allaby R. Seed dispersal and crop domestication: shattering, germination and seasonality in evolution under cultivation. Annu. Plant Rev. Online. 2018;238295. DOI 10.1002/9781119312994.apr0414.; Gill B.S., Friebe B., Endo T.R. Standard karyotype and nomenclature system for description of chromosome bands and structural aberrations in wheat (Triticum aestivum). Genome. 1991;34(5):830839. DOI 10.1139/g91128.; Haas M., Schreiber M., Mascher M. Domestication and crop evolution of wheat and barley: Genes, genomics, and future directions. J. Integr. Plant Biol. 2019;61(3):204225. DOI 10.1111/jipb.12737.; Huang D., Zheng Q., Melchkart T., Bekkaoui Y., Konkin D.J.F., Kagale S., Martucci M., You F.M., Clarke M., Adamski N.M., Chinoy C., Steed A., McCartney C.A., Cutler A.J., Nicholson P., Feurtado J.A. Dominant inhibition of awn development by a putative zinc-finger transcriptional repressor expressed at the B1 locus in wheat. New Phytol. 2020;225:340355. DOI 10.1111/nph.16154.; Kato K., Miura H., Akiyama M., Kuroshima M., Sawada S. RFLP mapping of the three major genes, Vrn1, Q and B1, on the long arm of chromosome 5A of wheat. Euphytica. 1998;101(1):9195. DOI 10.1023/A:1018372231063.; Le Couviour F., Faure S., Poupard B., Flodrops Y., Dubreuil P., Praud S. Analysis of genetic structure in a panel of elite wheat varieties and relevance for association mapping. Theor. Appl. Genet. 2011; 123(5):715727. DOI 10.1007/s0012201116219.; Mackay I.J., BanseptBasler P., Barber T., Bentley A.R., Cockram J., Gosman N., Greenland A.J., Horsnell R., Howells R., O’Sullivan D.M., Rose G.A., Howell P.J. An eightparent multiparent advanced generation intercross population for wintersown wheat: creation, properties, and validation. G3 (Bethesda). 2014;4(9):16031610. DOI 10.1534/g3.114.012963.; Peleg Z., Saranga Y., Fahima T., Aharoni A., Elbaum R. Genetic control over silica deposition in wheat awns. Physiol. Plant. 2010;140(1): 1020. DOI 10.1111/j.13993054.2010.01376.x.; Plaschke J., Ganal M.W., Röder M.S. Detection of genetic diversity in closely related bread wheat using microsatellite markers. Theor. Appl. Genet. 1995;91(67):10011007. DOI 10.1007/BF00223912.; Rebetzke G.J., JimenezBerni J.A., Bovill W.D., Deery D.M., James R.A. Highthroughput phenotyping technologies allow accurate selection of staygreen. J. Exp. Bot. 2016;67(17):49194924. DOI 10.1093/jxb/erw301.; Ronin Y., Mester D., Minkov D., Korol A. Building reliable genetic maps: different mapping strategies may result in different maps. Nat. Sci. 2010;2(6):576589. DOI 10.4236/ns.2010.26073.; Ronin Y., Minkov D., Mester D., Akhunov E., Korol A. Building ultradense genetic maps in the presence of genotyping errors and missing data. In: Advances in Wheat Genetics: from Genome to Field: Proc. of the 12th Int. Wheat Genetics Symposium. Springer Nature, 2015; 127133. DOI 10.1007/9784431556756.; Sears E.R. The aneuploids of common wheat. Missouri Agr. Expt. Stn. Res. Bull. 1954;572:159.; Sears E.R. Nullisomictetrasomic combinations in hexaploid wheat. In: Riley R., Lewis K.R. (Eds.). Chromosome Manipulations and Plant Genetics. Springer, Boston, MA. 1966;2945. DOI 10.1007/9781489965615_4.; Sourdille P., Cadalen T., Gay G., Gill B., Bernard M. Molecular and physical mapping of genes affecting awning in wheat. Plant Breed. 2002;121(4):320324. DOI 10.1046/j.14390523.2002.728336.x.; Voorrips R.E. MapChart: software for the graphical presentation of linkage maps and QTLs. J. Hered. 2002;93(1):7778. DOI 10.1093/jhered/93.1.77.; Watkins A.E., Ellerton S. Variation and genetics of the awn in Triticum. J. Genet. 1940;40(12):243270.; Yoshioka M., Iehisa J.C.M., Ohno R., Kimura T., Enoki H., Nishimura S., Nasuda S., Takumi S. Three dominant awnless genes in common wheat: Fine mapping, interaction and contribution to diversity in awn shape and length. PLoS One. 2017;12(4):e0176148. DOI 10.1371/journal.pone.0176148.; https://vavilov.elpub.ru/jour/article/view/2771