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Biomass Production of Gigantic Grasses Arundo donax and Miscanthus × Giganteus in the Dependence on Plant Multiplication Method

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ALSHAAL, T. ‒ ELHAWAT, N. ‒ DOMOKOS-SZABOLCSY, É. ‒ KÁTAI, J. ‒ MÁRTON, L. ‒ CZAKO, M. ‒ EL-RAMADY, H. ‒ FÁRI, M.G. 2014. Giant reed (Arundo donax L.): A green technology for clean environment. In ANSARI, A.A. ‒ GILL, S.S. ‒ GILL, R. ‒ LANZA, G.R. ‒ NEWMAN, L. (Eds) Phytoremediation: Management of Environmental Contaminants, Springer International Publishing, Switzerland, pp. 3–20. 10.1007/978-3-319-10395-2_1ALSHAALT.ELHAWATN.DOMOKOS-SZABOLCSYÉ.KÁTAIJ.MÁRTONL.CZAKOM.EL-RAMADYH.FÁRIM.G.2014Giant reed (Arundo donax L.): A green technology for clean environmentANSARIA.A.GILLS.S.GILLR.LANZAG.R.NEWMANL.Phytoremediation: Management of Environmental ContaminantsSpringer International PublishingSwitzerland32010.1007/978-3-319-10395-2_1Open DOISearch in Google Scholar

ANGELINI, L.G. ‒ CECCARINI, L. ‒ NASSI O DI NASSO, N. ‒ BONARI, E. 2009. Comparison of Arundo donax L. and Miscanthus x giganteus in a long-term field experiment in Central Italy: Analysis of productive characteristics and energy balance. In Biomass and Bioenergy, vol. 33, no. 4, pp. 635–643. 10.1016/j.biombioe.2008.10.005ANGELINIL.G.CECCARINIL.NASSI O DI NASSON.BONARIE.2009Comparison of Arundo donax L. and Miscanthus x giganteus in a long-term field experiment in Central Italy: Analysis of productive characteristics and energy balanceBiomass and Bioenergy33463564310.1016/j.biombioe.2008.10.005Open DOISearch in Google Scholar

ANTAL, G. ‒ KURUCZ, E. ‒ FÁRI, M.G. ‒ POPP, J. 2014. Tissue culture and agamic propagation of winter-frost tolerant ‘Longicaulis’ Arundo donax L. In Environmental Engineering and Management Journal, vol. 13, no. 11, pp. 2709–2715.ANTALG.KURUCZE.FÁRIM.G.POPPJ.2014Tissue culture and agamic propagation of winter-frost tolerant ‘Longicaulis’ Arundo donax LEnvironmental Engineering and Management Journal13112709271510.30638/eemj.2014.301Search in Google Scholar

ATKINSON, C.J. 2009. Establishing perennial grass energy crops in the UK: A review of current propagation options for Miscanthus. In Biomass and Bioenergy, vol. 33, no. 4, pp. 752–759. 10.1016/j.biombioe.2009.01.005ATKINSONC.J.2009Establishing perennial grass energy crops in the UK: A review of current propagation options for MiscanthusBiomass and Bioenergy33475275910.1016/j.biombioe.2009.01.005Open DOISearch in Google Scholar

BASS, R. ‒ GARCIA-PEREZ, M. ‒ HORNECK, D. ‒ LEWIS, M. ‒ PAN, B. ‒ PETERS, T. ‒ STEVENS, B. ‒ WYSOCKI, D. 2014. Carbon implications of converting a coal-fired power plant to combustion of torrefied Arundo donax. In Applied Bioenergy, vol. 1, no. 1, pp. 30–43. 10.2478/apbi-2014-0002BASSR.GARCIA-PEREZM.HORNECKD.LEWISM.PANB.PETERST.STEVENSB.WYSOCKID.2014Carbon implications of converting a coal-fired power plant to combustion of torrefied Arundo donaxApplied Bioenergy11304310.2478/apbi-2014-0002Open DOISearch in Google Scholar

BOERSMA, N.N. ‒ HEATON, E.A. 2014a. Propagation method affects Miscanthus × giganteus developmental morphology. In Industrial Crops and Products, vol. 57, pp. 59–68. 10.1016/j.indcrop.2014.01.059BOERSMAN.N.HEATONE.A.2014aPropagation method affects Miscanthus × giganteus developmental morphologyIndustrial Crops and Products57596810.1016/j.indcrop.2014.01.059Open DOISearch in Google Scholar

BOERSMA, N.N. ‒ HEATON, E.A. 2014b. Does propagation method affect yield and survival? The potential of Miscanthus × giganteus in Iowa, USA. In Industrial Crops and Products, vol. 57, pp. 43–51. 10.1016/j.indcrop.2014.01.058BOERSMAN.N.HEATONE.A.2014bDoes propagation method affect yield and survival? The potential of Miscanthus × giganteus in Iowa, USAIndustrial Crops and Products57435110.1016/j.indcrop.2014.01.058Open DOISearch in Google Scholar

CAVALLARO, V. ‒ TRINGALI, S. ‒ PATANE, C. 2011. Large-scale in vitro propagation of giant reed (Arundo donax L.), a promising biomass species. In The Journal of Horticultural Science and Biotechnology, vol. 86, no. 5, pp. 452–456. 10.1080/14620316.2011.11512787CAVALLAROV.TRINGALIS.PATANEC.2011Large-scale in vitro propagation of giant reed (Arundo donax L.), a promising biomass speciesThe Journal of Horticultural Science and Biotechnology86545245610.1080/14620316.2011.11512787Open DOISearch in Google Scholar

CEOTTO, E. ‒ CANDILO, M.D. 2010. Shoot cuttings propagation of giant reed (Arundo donax L.) in water and moist soil: The path forward? In Biomass and Bioenergy, vol. 34, no. 11, pp. 1614–1623. 10.1016/j.biombioe.2010.06.002CEOTTOE.CANDILOM.D.2010Shoot cuttings propagation of giant reed (Arundo donax L.) in water and moist soil: The path forward?Biomass and Bioenergy34111614162310.1016/j.biombioe.2010.06.002Open DOISearch in Google Scholar

CHRISTIAN, D.G. ‒ RICHE, A.B. ‒ YATES, N.E. 2008. Growth, yield and mineral content of Miscanthus × giganteus grown as a biofuel for 14 successive harvests. In Industrial Crops and Products, vol. 28, pp. 320–327.CHRISTIAND.G.RICHEA.B.YATESN.E.2008Growth, yield and mineral content of Miscanthus × giganteus grown as a biofuel for 14 successive harvestsIndustrial Crops and Products2832032710.1016/j.indcrop.2008.02.009Search in Google Scholar

CLIFTON-BROWN, J.C. ‒ BREUER, J. ‒ JONES, M.B. 2007. Carbon mitigation by the energycrop, Miscanthus. In Global Change Biology, vol. 13, no. 11, pp. 2296–2307. 10.1111/j.1365-2486.2007.01438.xCLIFTON-BROWNJ.C.BREUERJ.JONESM.B.2007Carbon mitigation by the energycrop, MiscanthusGlobal Change Biology13112296230710.1111/j.1365-2486.2007.01438.xOpen DOISearch in Google Scholar

CLIFTON-BROWN, J.C. ‒ LEWANDOWSKI, I. 2000. Overwintering problems of newly established Miscanthus plantations can be overcome by identifying genotypes with improved rhizome cold tolerance. In New Phytologist, vol. 148, no. 2, pp. 287–294.CLIFTON-BROWNJ.C.LEWANDOWSKII.2000Overwintering problems of newly established Miscanthus plantations can be overcome by identifying genotypes with improved rhizome cold toleranceNew Phytologist148228729410.1046/j.1469-8137.2000.00764.xSearch in Google Scholar

CLIFTON-BROWN, J.C. ‒ LEWANDOWSKI, I. ‒ ANDERSON, B. ‒ BASCH, G. ‒ CHRISTIAN, D. ‒ KJELDSEN, J.B. ‒ JØRGENSEN, U. ‒ MORTENSEN, J. ‒ RICHE, A. ‒ SCHWARZ, K.U. ‒ TAYEBI, K. ‒ TEIXEIRA, F. 2001a. Performance of 15 Miscanthus genotypes at five sites in Europe. In Agronomy Journal, vol. 93, no. 5, pp. 1013–1019. 10.2134/agronj2001.9351013xCLIFTON-BROWNJ.C.LEWANDOWSKII.ANDERSONB.BASCHG.CHRISTIAND.KJELDSENJ.B.JØRGENSENU.MORTENSENJ.RICHEA.SCHWARZK.U.TAYEBIK.TEIXEIRAF.2001aPerformance of 15 Miscanthus genotypes at five sites in EuropeAgronomy Journal9351013101910.2134/agronj2001.9351013xOpen DOISearch in Google Scholar

CLIFTON-BROWN, J.C. ‒ LONG, S.P. ‒ JØRGENSEN, U. 2001b. Miscanthus productivity. In JONES, M.B. ‒ WALSH, M. Miscanthus for Energy and Fibre. London, UK : James & James Ltd. ISBN 1-902916-07-7, pp. 46–67.CLIFTON-BROWNJ.C.LONGS.P.JØRGENSENU.2001bMiscanthus productivityJONESM.B.WALSHM.Miscanthus for Energy and FibreLondon, UKJames & James LtdISBN 1-902916-07-74667Search in Google Scholar

GŁOWACKA, K. ‒ JEŻOVSKI, S. ‒ KACZMAREK, Z. 2010. The effects of genotype, inflorescence developmental stage and induction medium on callus induction and plant regeneration in two Miscanthus species. In Plant Cell Tissue and Organ Culture, vol. 102, no. 1, pp. 79–86. 10.1007/s11240-010-9708-6GŁOWACKAK.JEŻOVSKIS.KACZMAREKZ.2010The effects of genotype, inflorescence developmental stage and induction medium on callus induction and plant regeneration in two Miscanthus speciesPlant Cell Tissue and Organ Culture1021798610.1007/s11240-010-9708-6Open DOISearch in Google Scholar

GREEF, J.M. ‒ DEUTER, M. 1993. Syntaxonomy of Miscanthus × giganteus GREEF et DEU. In Angewandte Botanik, vol. 67, no. 3‒4, pp. 87–90.GREEFJ.M.DEUTERM.1993Syntaxonomy of Miscanthus × giganteus GREEF et DEUAngewandte Botanik673‒48790Search in Google Scholar

GREEF, J.M. ‒ DEUTER, M. ‒ JUNG, C. ‒ SCHONDELMAIER, J. 1997. Genetic diversity of European Miscanthus species revealed by AFLP fingerprinting. In Genetic Resources and Crop Evolution, vol. 44, no. 2, pp. 185–195. 10.1023/A:1008693214629GREEFJ.M.DEUTERM.JUNGC.SCHONDELMAIERJ.1997Genetic diversity of European Miscanthus species revealed by AFLP fingerprintingGenetic Resources and Crop Evolution44218519510.1023/A:1008693214629Open DOISearch in Google Scholar

GUBIŠOVÁ, M. ‒ ČIČKOVÁ, M. ‒ KLČOVÁ, L. ‒ GUBIŠ, J. 2016. In vitro tillering – An effective way to multiply high-biomass plant Arundo donax. In Industrial Crops and Products, vol. 81, pp. 123–128. 10.1016/j.indcrop.2015.11.080GUBIŠOVÁM.ČIČKOVÁM.KLČOVÁL.GUBIŠJ.2016In vitro tillering – An effective way to multiply high-biomass plant Arundo donaxIndustrial Crops and Products8112312810.1016/j.indcrop.2015.11.080Open DOISearch in Google Scholar

GUBIŠOVÁ, M. ‒ GUBIŠ, J. ‒ ŽOFAJOVÁ, A. ‒ MIHÁLIK, D. ‒ KRAIC, J. 2013. Enhanced in vitro propagation of Miscanthus x giganteus. In Industrial Crops and Products, vol. 41, pp. 279–282. 10.1016/j.indcrop.2012.05.004GUBIŠOVÁM.GUBIŠJ.ŽOFAJOVÁA.MIHÁLIKD.KRAICJ.2013Enhanced in vitro propagation of Miscanthus x giganteusIndustrial Crops and Products4127928210.1016/j.indcrop.2012.05.004Open DOISearch in Google Scholar

HERRERA-ALAMILLO, M.A. ‒ ROBERT, M.L. 2012. Liquid in vitro culture for the propagation of Arundo donax. In LOYOLA-VARGAS, V.M. ‒ OCHOA-ALEJO, N. (Eds) Plant Cell Culture Protocols: Methods in Molecular Biology 877. Humana Press, pp. 153–160.HERRERA-ALAMILLOM.A.ROBERTM.L.2012Liquid in vitro culture for the propagation of Arundo donaxLOYOLA-VARGASV.M.OCHOA-ALEJON.Plant Cell Culture Protocols: Methods in Molecular Biology 877Humana Press15316010.1007/978-1-61779-818-4_1222610626Search in Google Scholar

HODKINSON, T.R. ‒ CHASE, M.W. ‒ RENVOIZE, S.A. 2002. Characterization of a genetic resource collection for Miscanthus (Saccharinae, Andropogoneae, Poaceae) using AFLP and ISSR PCR. In Annals of Botany, vol. 89, no. 5, pp. 627–636. 10.1093/aob/mcf091HODKINSONT.R.CHASEM.W.RENVOIZES.A.2002Characterization of a genetic resource collection for Miscanthus (Saccharinae, Andropogoneae, Poaceae) using AFLP and ISSR PCRAnnals of Botany89562763610.1093/aob/mcf091423389612099538Open DOISearch in Google Scholar

HOLME, I.H. ‒ PETERSEN, K.K. 1996. Callus induction and plant regeneration from different explant types of Miscanthus x ogiformis Honda ‘Giganteus’. In Plant Cell Tissue Organ Culture, vol. 45, no. 1, pp. 43–52. 10.1007/BF00043427HOLMEI.H.PETERSENK.K.1996Callus induction and plant regeneration from different explant types of Miscanthus x ogiformis Honda ‘Giganteus’Plant Cell Tissue Organ Culture451435210.1007/BF00043427Open DOISearch in Google Scholar

JEZOWSKI, S. ‒ GLOWACKA, K. ‒ KACZMAREK, Z. 2011. Variation on biomass yield and morphological traits of energy grasses from the genus Miscanthus during the first years of crop establishment. In Biomass and Bioenergy, vol. 35, no. 2, pp. 814–821. 10.1016/j.biombioe.2010.11.013JEZOWSKIS.GLOWACKAK.KACZMAREKZ.2011Variation on biomass yield and morphological traits of energy grasses from the genus Miscanthus during the first years of crop establishmentBiomass and Bioenergy35281482110.1016/j.biombioe.2010.11.013Open DOISearch in Google Scholar

LEWANDOWSKI, I. 1997. Micropropagation of Miscanthus × giganteus. In BAJAJ, Y.P.S. (Ed) Biotechnology in Agriculture and Forestry, vol. 39. High-Tech and Micropropagation V. Springer Verlag, Berlin, Heidelberg, pp. 239–255.LEWANDOWSKII.1997Micropropagation of Miscanthus × giganteusBAJAJY.P.S.Biotechnology in Agriculture and Forestry39High-Tech and Micropropagation V. Springer VerlagBerlin, Heidelberg23925510.1007/978-3-662-07774-0_16Search in Google Scholar

LEWANDOWSKI, I. 1998. Propagation method as an important factor in the growth and development of Miscanthus × giganteus. In Industrial Crops and Products, vol. 8, pp. 229–245.LEWANDOWSKII.1998Propagation method as an important factor in the growth and development of Miscanthus × giganteusIndustrial Crops and Products822924510.1016/S0926-6690(98)00007-7Search in Google Scholar

MANN, J.J. ‒ KYSER, G.B. ‒ BARNEY, J.N. ‒ DITOMASO, J.M. 2013. Assessment of aboveground and belowground vegetative fragments as propagules in the bioenergy crops Arundo donax and Miscanthus × giganteus. In BioEnergy Research, vol. 6, no. 2, pp. 688–698. 10.1007/s12155-012-9286-zMANNJ.J.KYSERG.B.BARNEYJ.N.DITOMASOJ.M.2013Assessment of aboveground and belowground vegetative fragments as propagules in the bioenergy crops Arundo donax and Miscanthus × giganteusBioEnergy Research6268869810.1007/s12155-012-9286-zOpen DOISearch in Google Scholar

PILU, R. ‒ BUCCI, A. ‒ BADONE, F.C. ‒ LANDONI, M. 2012. Giant reed (Arundo donax L.): A weed plant or a promising energy crop? In African Journal of Biotechnology, vol. 11, no. 38, pp. 9163–9174. 10.5897/AJB11.4182PILUR.BUCCIA.BADONEF.C.LANDONIM.2012Giant reed (Arundo donax L.): A weed plant or a promising energy crop?African Journal of Biotechnology11389163917410.5897/AJB11.4182Open DOISearch in Google Scholar

PILU, R. ‒ MANCA, A. ‒ LANDONI, M. 2013. Arundo donax as an energy crop: pros and cons of the utilization of this perennial plant. In Maydica, vol. 58, pp. 54–59.PILUR.MANCAA.LANDONIM.2013Arundo donax as an energy crop: pros and cons of the utilization of this perennial plantMaydica585459Search in Google Scholar

XUE, S. ‒ KALININA, O. ‒ LEWANDOWSKI, I. 2015. Present and future options for Miscanthus propagation and establishment. In Renewable and Sustainable Energy Reviews, vol. 49, pp. 1233–1246. 10.1016/j.rser.2015.04.168XUES.KALININAO.LEWANDOWSKII.2015Present and future options for Miscanthus propagation and establishmentRenewable and Sustainable Energy Reviews491233124610.1016/j.rser.2015.04.168Open DOISearch in Google Scholar

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