Periclinal chimera plants could be synthesized by a very easy grafting method. Thanks to this technique we can transfer useful characters from one genotype to another, we also can produce vigorous plants during a very short period. Recently in cassava, resistance to nematode could be transferred, and could develop vigorous plants by combining two types that have high combining ability. The most striking feature is that we can obtain enormous roots up to five times the common ones. By using this type of chimera we can replace traditional hybridization and no need to recurrent crosses cycles to transfer useful characters, reducing to a very short period developing a new variety and perpetuating it too.
Tilney-Basset, R.A. (1986) Plant Chimeras. Cambridge University Press, Baltimore.
Marcotrigiano, M. and Gradziel, T.M. (1997) Genetic Mosaics and Plant Improvement. Plant Breeding Reviews, 15, 43-84. https://doi.org/10.1002/9780470650097.ch3
Chen, L.P., Ge, Y.M. and Zhu, X.Y. (2006) Artificial Synthesis of Interspecific Chimeras between Tuber Mustard (Brassica juncea) and Cabbage (Brassica oleracea) and Cytological Analysis. Plant Cell Reports, 25, 907-913. https://doi.org/10.1007/s00299-006-0150-5
Ohtsu, Y. and Kuhara, S. (1994) Periclinal Chimera of Citrus Resistant to Citrus Canker and Citrus Tristeza Virus: Chimerism and Composition of Fruit Tissue in the Synthetic Periclinal Chimeras “FN-1” and “FN-3”. Annals of the Phytopathological Society of Japan, 60, 20-26. https://doi.org/10.3186/jjphytopath.60.20
Marcotrigiano, M. (1997) Chimera and Variegation: Patterns of Deceit. HortScience, 32, 773-784. https://doi.org/10.21273/HORTSCI.32.5.773
Nassar, N.M.A. and Bomfim, N.N. (2013) Synthesis of Periclinal Chimera in Cassava. Genetics and Molecular Research, 12, 610-617. https://doi.org/10.4238/2013.February.27.10
Nassar, N.M.A. and Bomfim, N. (2014) Interspecific Periclinal Chimeras as a Tool for Cultivar Improvement. Plant Breeding Reviews, 38, 235-263. https://doi.org/10.1002/9781119279723.ch5
Nassar, N.M.A., Fernandes, N.N.B., Freitas, D.Y.H. and Gradziel, T.M. (2016) Interspecific Periclinal Chimeras as a Strategy for Cultivar Development. Plant Breeding Reviews, 40, 235-269. https://doi.org/10.1002/9781119279723.ch5
Bomfim, N. and Nassar, N.M.A. (2014) Development of Cassava Periclinal Chimera May Boost Production. Genetics and Molecular Research, 13, 819-830. https://doi.org/10.4238/2014.February.10.1
Ferreira, D.S., Cares, J.E. and Nassar, N.M.A. (2021) Periclinal Chimera Can Transfer Resistance to Nematodes in Cassava. Genetics and Molecular Research, 20, GMR18899. https://doi.org/10.4238/gmr18899
Gakpetor, P.M., Mohammed, H., Moreti, D. and Nassar, N.M.A. (2017) Periclinal Chimera Technique: A New Plant Breeding Approach. Genetics and Molecular Research, 16, gmr16039790. https://doi.org/10.4238/gmr16039790
Nassar, N.M.A. (2019) Cassava Cultivars Selected or Developed from Interspecific Hybrids and Periclinal Chimeras. Genetics and Molecular Research, 18, GMR18296. https://doi.org/10.4238/gmr18385
Gakpetor, P.M. and Nassar, N.M.A. (2021) Cassava Periclinal Chimeras: Synthesis Feasibility, Genotype Compatibility and Combining Ability. Genetics and Molecular Research, 20, GMR18963. https://doi.org/10.4238/gmr18963
Pratt, C., Way, S.D. and Einset, J. (1975) Chimeral Structure of Red Sports of “Northern Spy” Apple. Journal of the American Society for Horticultural Science, 100, 419-422. https://doi.org/10.21273/JASHS.100.4.419
Steward, R.N. and Dermen, H. (1979) Ontogeny in Monocotyledons as Revealed by Studies of the Developmental Anatomy of Periclinal Chloroplast Chimeras. American Journal of Botany, 66, 47-58. https://doi.org/10.1002/j.1537-2197.1979.tb06192.x
Sugawara, K., Wakizuka, T. and Oowada, A. (2002) Histogenic Identification by RAPD Analysis of Leaves and Fruit of Newly Synthesized Chimeric Citrus. Journal of the American Society for Horticultural Science, 127, 104-107. https://doi.org/10.21273/JASHS.127.1.104
Winkler, H. (1907) Uber Pfropfbastarde und pflanzliche Chimaeren. Berichte der Deutschen Botanischen Gesellschaft, 25, 568-576.
Hocquigny, S., Pelsy, F., Dumas, V., Kindt, S., Heloir, M.C. and Merdinoglu, D. (2004) Diversification within Grapevine Cultivars Goes through Chimeric States. Genome, 47, 579-589. https://doi.org/10.1139/g04-006
Nassar, N.M.A., Graciano-Ribeiro, D., Bomfim, N. and Gomes, P.T.C. (2011) A New Species of Manihot from Ceará, Brazil. Genetic Resources and Crop Evolution, 58, 831-835. https://doi.org/10.1007/s10722-010-9620-2
Stegemann, S. and Bock, R. (2009) Exchange of Genetic Material between Cells in Plant Tissue Grafts. Science, 324, 649-651. https://doi.org/10.1126/science.1170397
Ohata, Y. (2004) Graft Transformation, the Mechanism for Graft Induced Genetic Changes in Higher Plants. Euphytica, 55, 91-99. https://doi.org/10.1007/BF00022565
Tsaftaris, A.S., Polidoros, A.N., Kapazouglou, A., Tani, E. and Kovačevic, N.M. (2008) Epigenetics and Plant Breeding. Plant Breeding Reviews, 30, 49-177. https://doi.org/10.1002/9780470380130.ch2
Hull, F.H. (1945) Recurrent Selection and Specific Combining Ability in Corn. Agronomy Journal, 37, 134-145. https://doi.org/10.2134/agronj1945.00021962003700020006x
Nassar, N.M.A., et al. (2010) Compatibility of Interspecific Crosses Presaged by Protein Electrophoresis. Genetics and Molecular Research, 9, 107-112. https://doi.org/10.4238/vol9-1gmr699
Nassar, N. (2000) Wild Cassava, Manihot spp.: Biology and Potentialities for Genetic Improvement. Genetics and Molecular Biology (Impresso), 23, 201-212. https://doi.org/10.1590/S1415-47572000000100035
Bredeson, J.V., Lyons, J.B., Prochnik, S.E., Wu, G.A., et al. (2016) Sequencing Wild and Cultivated Cassava and Related Species Reveals Extensive Interspecific Hybridization and Genetic Diversity. Nature Biotechnology, 34, 562-570. https://doi.org/10.1038/nbt.3535
Goffreda, J.C., Symkowiak, E.J., Sussex, I.M. and Mutschler, M.A. (1990) Chimeric Tomato Plants Show that Aphid Resistance and Triacyl Glucose Production Are Epidermal Autonomous Characters. Plant Cell, 2, 643-649. https://doi.org/10.1105/tpc.2.7.643