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The Contribution of Pollen Germination Rates to Uneven Paternity Among Polycrosses of Cryptomeria japonica

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APSIT, V. J., R. R. NAKAMURA and N. C. WHEELER (1989): Differential male reproductive success in Douglas-fir. Theor Appl Genet 77, 681-684. 10.1007/BF0026124424232801Search in Google Scholar

ARONEN, T., T. NIKKANEN, A. HARJU, H. TIIMONEN and H. HÄGGMAN (2002): Pollen competition and seed-siring success in Picea abies. Theor Appl Genet 104, 638-642.10.1007/s00122-001-0789-912582668Search in Google Scholar

ITOYA, Y., T. FURUKOSHI, R. KIKUCHI and K. NAGASAKA (1978): Selective fertilization of Sugi plus tree. Ann Bull Kanto For Tree Breed Inst 14, 118-127. (in Japanese with English summary). Search in Google Scholar

KUMAR, S., S. GERBER, T. E. RICHARDSON and L. GEA (2007): Testing for unequal paternal contributions using nuclear and chloroplast SSR markers in polycross families of radiata pine. Tree Genet Genomes 3, 207-214.10.1007/s11295-006-0056-yOpen DOISearch in Google Scholar

MORAN, G. F. and A. R. GRIFFIN (1985): Non-random contribution of pollen in polycrosses of Pinus radiata D. Don. Silvae Genet 34, 117-121. Search in Google Scholar

MORIGUCHI, Y., H. IWATA, T. IHARA, K. YOSHIMURA, H. TAIRA and Y. TSUMURA (2003): Development and characterization of microsatellite markers for Cryptomeria japonica D. Don. Theor Appl Genet 106, 751-758.10.1007/s00122-002-1149-012596006Search in Google Scholar

MORIGUCHI, Y., N. TANI, H. TAIRA und Y. TSUMURA (2004): Variation of paternal contribution in a seed orchard of Cryptomeria japonica D. Don determined using microsatellite markers. Can J For Res 34, 1683-1690. 10.1139/x04-029Search in Google Scholar

MORIGUCHI, Y., S. TSUCHIYA, H. IWATA, S. ITOO, N. TANI, H. TAIRA and Y. TSUMURA (2007): Factors influencing male reproductive success in a Cryptomeria japonica seed orchard revealed by microsatellite marker analysis. Silvae Genet 56, 207-214.10.1515/sg-2007-0031Search in Google Scholar

MURRAY, M. and W. F. THOMPSON (1980): Rapid isolation of high molecular weight plant DNA. Nuc Acids Res 8, 4321-4325. 10.1093/nar/8.19.43213242417433111Search in Google Scholar

NAKAMURA, R. R. and N. C. WHEELER (1992): Pollen competition and paternal success in Douglas-fir. Evolution 46, 846-851. 10.1111/j.1558-5646.1992.tb02093.x28568661Open DOISearch in Google Scholar

NIKKANEN, T., T. ARONEN, H. HÄGGMAN and M. VENÄLÄINEN (2000): Variation in pollen viability among Picea abies genotypes-potential for unequal paternal success. Theor Appl Genet 101, 511-518. 10.1007/s001220051510Search in Google Scholar

OHBA, K., M. IWAKAWA, U. OKADA and M. MURAI (1971): Paternal transmission of a plastid anomaly in some reciprocal cross of Sugi, Cryptomeria japonica D. Don. Silvae Genet 20, 101-107. Search in Google Scholar

OHBA, K. (1972): Study of selective fertilization using the pollen of Wagon-Sugi. Proc J Jap For Soc 83, 204-206. (in Japanese). Search in Google Scholar

PARANTAINEN, A. and H. L. PASONEN (2004): Pollen-pollen interactions in Pinus sylvestris. Scand J For Res 19, 199-205.10.1080/02827580410029336Search in Google Scholar

PASONEN, H. L., P. PULKKINEN, M. KÄPYLÄ and A. BLOM (1999): Pollen-tube growth rate and seed-siring success among Betula pendula clones. New Phytol 143, 243-251. 10.1046/j.1469-8137.1999.00451.xSearch in Google Scholar

ROGERS, D. L. and T. J. B. BOYLE (1991): Unequal paternal contributions in black spruce polycross seedlots. Heredity 67, 373-379. 10.1038/hdy.1991.101Search in Google Scholar

SAITO, M. and C. YAMAMOTO (1977): The life span of some Japanese conifer pollen under room temperature. J Jap For Soc 59, 33-35 (in Japanese). Search in Google Scholar

SCHOEN, D. J. and W. M. CHELIAK (1987): Genetics of the polycross. 2. Male fertility variation in Norway Spruce, Picea abies (L.) Karst. Theor Appl Genet 74, 554-559. 10.1007/BF0028885124240208Open DOISearch in Google Scholar

SEIDO, K., K. YAMAGISHI, K. IDA, H. MURAKAMI and S. SHIRAISHI (2000): Investigation of selective fertilization in hinoki (Chamaecyparis obtusa) using a chloroplast DNA marker. J Jap For Soc 82, 380-383 (in Japanese with English summary). Search in Google Scholar

SKRØPPA, T. and D. LINDGREN (1994): Male fertility variation and nonrandom segregation in pollen mix crosses of Picea abies. Forest Genet 1, 13-22. Search in Google Scholar

SNOW, A. A. and T. P. SPIRA (1996): Pollen-tube competition and male fitness in Hibiscus moscheutos. Evolution 50, 1866-1870. 10.1111/j.1558-5646.1996.tb03573.x28565599Open DOISearch in Google Scholar

SPIRA, T., A. A. SNOW and M. N. PUTERBAUGH (1996): The timing and effectiveness of sequential pollinations in Hibiscus moscheutos. Oecologia 105, 230-235. 10.1007/BF0032855128307087Search in Google Scholar

TANI, N., T. TAKAHASHI, T. UJINO-IHARA, H. IWATA, K. YOSHIMURA and Y. TSUMURA (2004): Development and characteristics of microsatellite markers for sugi (Cryptomeria japonica D. Don) from microsatellite enriched libraries. Ann For Sci 61, 569-575. 10.1051/forest:2004052Search in Google Scholar

TSUMURA, Y., K. YOSHIMURA, N. TOMARU and K. OHBA (1995): Molecular phylogeny of conifers using RFLP analysis of PCR-amplified specific chloroplast genes. Theor Appl Genet, 91, 1222-1236.10.1007/BF0022093324170050Search in Google Scholar

WEIR, B. S. (1996). Genetic Data Analysis II (pp. 209-211). Sinauer Assoc., Sunderland, Mass. WHEELER, N., P. PAYNE, V. HIPKINS, R. SAICH, S. KENNY and G. TUSKAN (2006): Polymix breeding with paternity analysis in Populus: a test for differential reproductive success (DRS) among pollen donors. Tree Genet Genomes 2, 53-60. Search in Google Scholar

WISELOGEL, A. E. and J. P. VAN BUIJTENEN (1988): Probability of equal mating in polymix pollinations of loblolly pine. Silvae Genet 37, 184-187. Search in Google Scholar

ZOBEL, B. J. and J. T. TALBERT (1984): Genetic testing programs. In Applied forest tree improvement (pp. 231-267). Wiley, New York. Search in Google Scholar

eISSN:
2509-8934
Lingua:
Inglese
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Volume Open
Argomenti della rivista:
Life Sciences, Molecular Biology, Genetics, Biotechnology, Plant Science