Uneingeschränkter Zugang

Inheritance of the wood properties of the Japanese red pine (Pinus densiflora Siebold et Zucc.) from the open-pollinated families selected as resistance to the pine wood nematode


Zitieren

Baltunis BS, Wu HX, Powell MB (2007) Inheritance of density, microfibril angle, and modulus of elasticity in juvenile wood of Pinus radiata at two locations in Australia. Canadian Journal of Forest Research 37(11): 2164-2174. https://doi.org/10.1139/X07-06110.1139/X07-061 Search in Google Scholar

Bates D, Mächler M, Bolker BM, Walker SC (2015) Fitting linear mixed-effects models using lme4. Journal of Statistical Software 67(1): 1-48. https://doi.org/10.18637/jss.v067.i0110.18637/jss.v067.i01 Search in Google Scholar

Carrasquinho I, Lisboa A, Inácio ML, Gonçalves E (2018) Genetic variation in susceptibility to pine wilt disease of maritime pine (Pinus pinaster Aiton) half-sib families. Annals of Forest Science 75: 85. https://doi.org/10.1007/s13595-018-0759-x10.1007/s13595-018-0759-x Search in Google Scholar

Endo R, Fukuhara K (2017) The survival situation and growth of the pine wood nematode resistance Japanese red pine experiment forest at 15 years old in Chiba Prefecture. Kanto Journal of Forest Research 68: 135-138. (in Japanese with English summary) Search in Google Scholar

Fujimoto Y, Toda T, Nishimura K, Yamate H, Fuyuno S (1989) Breeding project on resistance to the pine-wood nematode: An outline of the research and the achievement of the project for ten years. Bulletin of the Forest Tree Breeding Institute 7: 1-84. (in Japanese with English summary) Search in Google Scholar

Futai K, Furuno T (1979) The variety of resistances among pine-species to pine wood nematode, Bursaphelenchus lignicolus. Bulletin of the Kyoto University Forests 51: 23-36. http://hdl.handle.net/2433/191693 (in Japanese with English summary) Search in Google Scholar

Hayatgheibi H, Fries A, Kroon J, Wu HX (2017) Genetic analysis of lodgepole pine (Pinus contorta) solid-wood quality traits. Canadian Journal of Forest Research 47(10): 1303-1313. https://doi.org/10.1139/cjfr-2017-015210.1139/cjfr-2017-0152 Search in Google Scholar

Hirao T, Matsunaga K, Hirakawa H, Shirasawa K, Isoda K, Mishima K, Tamura M, Watanabe A (2019) Construction of genetic linkage map and identification of a novel major locus for resistance to pine wood nematode in Japanese black pine (Pinus thunbergia). BMC Plant Biology 19: 424. https://doi.org/10.1186/s12870-019-2045-y10.1186/s12870-019-2045-y679220831615405 Search in Google Scholar

Hong Z, Fries A, Wu HX (2015) Age trend of heritability, genetic correlation, and efficiency of early selection for wood quality traits in Scots pine. Canadian Journal of Forest Research 45(7): 817-825. https://doi.org/10.1139/cjfr-2014-046510.1139/cjfr-2014-0465 Search in Google Scholar

Iki T, Matsunaga K, Hirao T, Ohira M, Yamanobe T, Iwaizumi MG, Miura M, Isoda K, Kurita M, Takahashi M, Watanabe A (2020) Effects of temperature factors on resistance against pine wood nematodes in Pinus thunbergii, based on multiple location sites nematode inoculation tests. Forests 11: 922. https://doi.org/10.3390/f1109092210.3390/f11090922 Search in Google Scholar

Japanese Industrial Standard (2009) Methods of Test for Woods (JIS Z2101:2009), Tokyo, Japan, Japanese Standards Association (in Japanese) Search in Google Scholar

Kiyohara T, Tokushige Y (1971) Inoculation experiments of a nematode, Bursaphelenchus sp., onto pine trees. Journal of the Japanese Forestry Society 53(7): 220-218. https://doi.org/10.11519/jjfs1953.53.7_210 (in Japanese with English summary) Search in Google Scholar

Kobayashi Y (1952) A simple method of demonstrating the fibrillar orientation in lignified walls. Journal of the Japanese Forestry Society 34(12): 392-393. https://doi.org/10.11519/jjfs1934.34.12_392 (in Japanese with English summary) Search in Google Scholar

Kurinobu S (2008) Current status of resistance breeding of Japanese pine species to pine wilt disease. Forest Science and Technology 4(2): 51-57. https://doi.org/10.1080/21580103.2008.965633810.1080/21580103.2008.9656338 Search in Google Scholar

Kuroda K, Ohira M, Okamura M, Fujisawa Y (2007) Migration and population growth of the pine wood nematode (Bursaphelenchus xylophilus) related to the symptom development in the seedlings of Japanese black pine (Pinus thunbergii) families selected as resistant to pine wilt. Journal of the Japanese Forest Society 89(4): 241-248. https://doi.org/10.4005/jjfs.89.241 (in Japanese with English summary)10.4005/jjfs.89.241 Search in Google Scholar

Matsunaga K, Iki T, Hirao T, Ohira M, Yamanobe T, Iwaizumi MG, Miura M, Isoda K, Kurita M, Takahashi M, Watanabe A (2020) Do seedlings derived from pine-wood nematode-resistant Pinus thunbergii Parl. clones selected in Southwestern region perform well in Northern regions in Japan? Inferences from nursery inoculation tests. Forests 11: 955. https://doi.org/10.3390/f1109095510.3390/f11090955 Search in Google Scholar

Menéndez-Gutiérrez M, Alonso M, Toval G, Díaz R (2018) Testing selected Pinus pinaster half-sib families for tolerance to pinewood nematode (Bursaphelenchus xylophilus). Forestry 91(1): 38-48. https://doi.org/10.1093/forestry/cpx03010.1093/forestry/cpx030 Search in Google Scholar

Mikami S, Kawamura T, Watanabe M, Kida S, Iwasaki M, Oikawa N, Nobuchi T, Itahana N, Yoshimura K (1989) Parent-offspring correlations and heritabili-ties on growth and branch traits in open-pollinated families of Japanese red pine Pinus densiflora Sieb. et Zucc. Bulletin of the Forestry and Forest Products Research Institute 355: 77-96. (in Japanese with English summary) Search in Google Scholar

Nakagawa S, Schielzeth H (2010) Repeatability for Gaussian and non-Gaussian data: a practical guide for biologists. Biological Reviews 85(4): 935-956. https://doi.org/10.1111/j.1469-185X.2010.00141.x10.1111/j.1469-185X.2010.00141.x20569253 Search in Google Scholar

Nezu I, Ishiguri F, Aiso H, Diloksumpun S, Ohshima J, Iizuka K, Yokota S (2021) Selection of Eucalyptus camaldulensis families for sustainable pulpwood production by means of anatomical characteristics. Forests 12: 31. https://doi.org/10.3390/f1201003110.3390/f12010031 Search in Google Scholar

R Core Team (2020) R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. Available at <URL https://www.R-project.org/> [cited 28/10/2020] Search in Google Scholar

Ribeiro B, Espada M, Vu T, Nóbrega F, Mota M, Carrasquinho I (2012) Pine wilt disease: detection of the pinewood nematode (Bursaphelenchus xylophilus) as a tool for a pine breeding programme. Forest Pathology 42(6): 521-525. https://doi.org/10.1111/efp.1201010.1111/efp.12010 Search in Google Scholar

Sugawa T (1989) Parent-offspring correlations and heritabilities on the tracheid length traits in open-pollinated families of akamatsu (Pinus densiflora Sieb. et Zucc). Bulletin of the Forestry and Forest Products Research Institute 355: 9-30. (in Japanese with English summary) Search in Google Scholar

Takahashi Y, Ishiguri F, Aiso H, Takashima Y, Hiraoka Y, Iki T, Ohshima J, Lizuka K, Yokota S (2021) Inheritance of static bending properties and classification of load-deflection curves in Cryptomeria japonica. Holzforschung 75(2): 105-113. https://doi.org/10.1515/hf-2019-031610.1515/hf-2019-0316 Search in Google Scholar

Tanabe J, Ishiguri F, Tamura A, Ohshima J, Lizuka K, Yokota S (2017) Radial and between-family variations of the microfibril angle and the relationships with bending properties in Picea jezoensis families. Scandinavian Journal of Forest Research 32(1): 30-44. http://dx.doi.org/10.1080/02827581.2016.118621710.1080/02827581.2016.1186217 Search in Google Scholar

Toda T (2004) Studies on the breeding for resistance to the pine wilt disease in Pinus densiflora and P. thunbergia. Bulletin of the Forest Tree Breeding Institute 20: 83-217. (in Japanese with English summary) Search in Google Scholar

Toda T, Kurinobu S (2002) Realized genetic gains observed in progeny tolerance of selected red pine (Pinus densiflora) and black pine (P. thunbergii) to pine wilt disease. Silvae Gentica 51: 42-44. Search in Google Scholar

Vicente C, Espada M, Vieira P, Mota M (2012) Pine wilt disease: a threat to European forestry. European Journal of Plant Pathology volume 133: 89-99. https://doi.org/10.1007/s10658-011-9924-x10.1007/s10658-011-9924-x Search in Google Scholar

Wood Technological Association of Japan (1984) Nihon no mokuzai. Tokyo, Wood Technological Association of Japan. 101 p (in Japanese) Search in Google Scholar

Zhao BG, Futai K, Sutherland JR, Takeuchi Y (2008) Pine wilt disease. Tokyo, Berlin, Heidelberg, New York: Springer, 459 p, ISBN 978-4-431-75654-510.1007/978-4-431-75655-2 Search in Google Scholar

eISSN:
2509-8934
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
Volume Open
Fachgebiete der Zeitschrift:
Biologie, Molekularbiologie, Genetik, Biotechnologie, Botanik