GENERAL LITERATURE

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Articles or books by two or more authors are cited as follows. When there are two authors, citation is alphabetical after the second author's name. When there are three or more authors, references are cited in the body of the text as (e.g.) Chase et al. 2000a, 2000b, 2000c, and are listed following these sometimes alphabetically qualified dates of publication immediately after all the single- or two-authored articles by the first author.

Taaffe, G. [et al. 2001], Brown, E. A., Crayn, D. M., Gadek, P. A., & Quinn, C. J. 2001. Generic concepts in Styphelieae: Resolving the limits of Leucopogon. Australian J. Bot. 49: 107-120.

Tabor, N. J. 2013. Wastelands of tropical Pangea: High heat in the Permian. Geology 41: 623-624.

Täckholm, G. 1915. Beobachtungen über der Samenentwicklung einiger Onagraceen. Svensk Bot. Tidskr. 9: 294-361.

Täckholm, G. 1920. On the cytology of the genus Rosa. A preliminary note. Svensk Bot. Tidskr. 14: 301-311.

Tadesse, M., see Mesfin Tadesse.

Taggart, R. E., & Cross, A. T. 2009. Global greenhouse to icehouse and back again: The origin and future of the Boreal Forest biome. Global Planet. Change 65: 115-121.

Tago-Nakazawa, M., & Dillon, M. O. 1999. Biogeografía y evolución del clado Nolana (Nolaneae-Solanaceae). Arnaldoa 6(2): 81-116.

Taiz, L., & Zeigler, E. 2006. Plant Physiology. Ed. 4. Sinauer, Sunderland, Mass.

Takacs, E. M. [et al. 2012], Li, J., Du, C., Ponnala, L., Janick-Buckner, D., Yu, J., Muehlbauer, G. J., Schnable, P. S., Timmermans, M. C., Sun, Q, Nettleton, D., & Scanlon, M. J. 2012. Ontogeny of the maize shoot apical meristem. Plant Cell 24: 3219-3234.

Takács, S. [et al. 2008], Bottomley, H., Andreller, I., Zaradnik, T., Schwarz, J., Bennett, R., Strong, W., & Gries, G. 2008. Infrared radiation from hot cones on cool conifers attracts seed-feeding insects. Proc. Royal Soc. B, 276: 649-655.

Takahara, M. [et al. 2022/2023], Tsugawa, S., Sakamoto, S., Demura, T., & Nakata, M. T. 2022. Pulvinar slits: Cellulose-deficient and de-methyl-esterified pectin-rich structures in a legume motor cell. bioRχiv doi: https://doi.org/10.1101/2022.03.10.483846 = Takahara, M. [et al. 2023], Tsugawa, S., Sakamoto, S., Demura, T., & Nakata, M. T. 2023. Pulvinar slits: Cellulose-deficient and de-methyl-esterified pectin-rich structures in a legume motor cell. Plant Physiol. 192: 857-870. https://doi.org/10.1093/plphys/kiad105

Takahashi, A., & Kato, M. 1988. Developmental anatomy of vascular cambium and periderm of Botrypus virginianus and its bearing on the systematic position of Ophioglossaceae. Bot. Mag. Tokyo 101: 373-385.

Takahashi, C. A. [et al. 2022], Neto. A. A. C., & Mercier, H. 2023 [= 2022]. An overview of water and nutrient uptake by epiphytic bromeliads: New insights into the absorbtives capacity of leaf trichomes and roots. Progr. Bot. 83: 345-362.

Takahashi, D., & Setoguchi, H. 2017. Molecular phylogeny and taxonomic implications of Asarum (Aristolochiaceae) based on ITS and matK sequences. Plant Species Biol. doi: 10.1111/1442-1984.12189

Takahashi, H. 1987. Pollen morphology and its taxonomic significance of the Monotropoideae (Ericaceae). Bot. Mag. Tokyo 100: 385-405.

Takahashi, H. 1994. A comparative study of floral development in Trillium apetalon and T. kamtschaticum (Liliaceae). J. Plant Res. 107: 237-243.

Takahashi, H., & Scott, T. K. 1994. Gravity-regulated formation of the peg in developing cucumber seedlings. Planta 193: 580-584.

Takahashi, H., & Sohma, K. 1982. Pollen morphology of the Droseraceae and its related taxa. Sci. Reports Tohoku Univ. Ser. 4 Biol. 38: 81-156.

Takahashi, M. 1995. Development of structure-less pollen wall in Ceratophyllum demersum L. (Ceratophyllaceae). J. Plant Res. 108: 205-208.

Takahashi, M., & Kawano, S. 1989. Pollen morphology of the Melianthaceae and its systematic implications. Ann. Missouri Bot. Gard. 76: 863-876.

Takahashi, M. [et al. 1999], Crane, P. R., & Ando, H. 1999. Esgueiria futabensis sp. nov., a new angiosperm flower from the Upper Cretaceous (Lower Coniacian) of northeastern Honshu, Japan. Paleontol. Res. 3: 81-87.

Takahashi, M. [et al. 2001], Herendeen, P. S., & Crane, P. R. 2001. Lauraceous fossil flower from the Kamikitaba locality (Lower Coniacian, Upper Cretaceous) in northeastern Japan. J. Plant Res. 114: 429-434.

Takahashi, M. [et al. 2002], Crane, P. R., & Manchester, S. R. 2002. Hironoia fusiformis gen. et sp. nov.; a cornalean fruit from the Kamikitaba locality (Upper Cretaceous, Lower Coniacian) in northeastern Japan. J. Plant Res. 115: 463-473.

Takahashi, M. [et al. 2008a], Friis, E. M., Herendeen, P. S., & Crane, P. R. 2008a. Fossil flowers of Fagales from the Kamikitaba locality (Early Coniacian: Late Cretaceous) of northeastern Japan. Internat. J. Plant Sci. 169: 899-907.

Takahashi, M. [et al. 2008b], Friis, E. M., Uesugi, K., Suzuki, Y., & Crane, P. R. 2008b. Floral evidence of Annonaceae from the Late Cretaceous of Japan. Internat. J. Plant Sci. 169: 908-917.

Takahashi, N. [et al. 2009], Hashino, M., Kami, C., & Imaichi, R. 2009. Developmental morphology of strap-shaped gametophytes of Colysis decurrens: A new look at meristem devlopment and function in fern gametophytes. Ann. Bot. 104: 1353-1361.

Takahashi, M. [et al. 2014], Herendeen, P. S., Xiao, X., & Crane, P. R. 2014. Lauraceous fossil flowers from the Kamikitaba Assemblage (Coniacian, Late Cretaceous) of northeastern Japan (Lauraceae). Taxon 39: 715-724.

Takahashi, M. [et al. 2017], Herendeen, P. S., & Xiao, X. 2017. Two early eudicot fossil flowers from the Kamikitaba assemblage (Coniacian, Late Cretaceous) in northeastern Japan. J. Plant Res. 130: 809-826.

Takahashi, N. [et al. 2015], Kami, C., Ota, I., Morita, N., & Imaichi, R. 2015. Developmental morphology of the typical cordate gametophyte of a homosporous leptosporangiate fern, Lygodium japonicum (Lygodiaceae), focusing on the initial cell behavior of two distinct meristems. American J. Bot. 102: 197-207.

Takaso, T. 1980. A developmental study of the integument in gymnosperms (I) Ginkgo biloba L. J. Japanese Bot 55: 14-27.

Takaso, T. 1981. A developmental study of the integument in gymnosperms (II) Pinus thunbergii Parl., Abies mariesii Mast. and A. veitchii Lindl.. J. Japanese Bot. 56: 73-89, pl. 3-4.

Takaso, T. 1985. A developmental study of the integument in gymnosperms 3. Ephedra distachya L. and E. equisetina Bge. Acta Bot. Neerlandica 34: 33-48.

Takaso, T., & Bouman, F. 1984. Ovule ontogeny and seed development in Potamogeton natans L. (Potamogetonaceae), with a note on the campylotropous ovule. Acta Bot. Neerlandica 33: 519-533.

Takaso, T., & Bouman, F. 1986. Ovule and seed ontogeny in Gnetum gnemon. Bot. Mag. Tokyo 99: 241-266.

Takaso, T., & Owens, J. N. 2008. Significance of exine shedding in Cupressaceae-type pollen. J. Plant Res. 121: 83-85.

Takaso, T., & Tobe, H. 1990. Seed coat morphology and evolution in Celtidaceae and Ulmaceae (Urticales). Bot. Mag. Tokyo 103: 25-41.

Takaso, T., & Tomlinson, P. B. 1989. Aspects of cone and ovule ontogeny in Cryptomeria (Taxodiaceae). American J. Bot. 76: 692-705.

Takaso, T., & Tomlinson, P. B. 1990. Cone and ovule ontogeny in Taxodium and Glyptostrobus (Taxodiaceae-Coniferales). American J. Bot. 77: 1209-1221.

Takaso, T., & Tomlinson, P. B. 1992. Seed cone and ovule ontogeny in Metasequoia, Sequoia and Sequoiadendron (Taxodiaceae-Coniferales). Bot. J. Linnean Soc. 109: 15-37.

Takawira-Nyenya, R. [et al. 2018], Mucina, L., Cardinal-McTeague, W. M., & Thiele, K. R. 2018. Sansevieria (Asparagaceae, Nolinoideae) is a herbaceous clade within Dracaena: Inference from non-coding plastid and nuclear DNA sequence data. Phytotaxa 376: 254-276. http://dx.doi.org/10.11646/phytotaxa.376.6.2

Takayama, K. [et al. 2008a], Tateishi, Y., Murata, J., & Kajita, T. 2008a. Gene flow and population subdivision in a pantropical plant with sea-drifted seeds Hibiscus tiliaceus and its allied species: Evidence from microsatellite analysis. Molec. Ecol. 17: 2730-2742.

Takayama, K. [et al. 2008b], Tamura, M., Tateishi, Y., & Kajita, T. 2008b. Remarkable genetic structure of mangrove genus Rhizophora (Rhizophoraceae) in the Atlantic-East Pacific. Pp. 197-198, in Botany 2008. Botany without Borders. [Botanical Society of America, etc. Abstracts.]

Takeuchi, C. [et al. 2018], Kano, C. H., Tate, J. A., & Esteves, G. L. 2018. Molecular phylogenetics and character evolution of Gaya and related genera (Malvoideae, Malvaceae). Syst. Bot. 43: 676-688.

Takeuchi, H., & Higashiyama, T. 2012. A species-specific cluster of Defensin-like genes encodes diffusible pollen tube attractants in Arabidopsis. PLoS Biol. 10(12):e1001449 doi:10. 1371/jopurnal.pbio.1001449

Takhtajan, A. (ed.). 1974. Magnoliophyta fossilia rossiae et civitatum finitimarum Volumen 1 Magnoliaceae - Eucommiaceae. Nauka, Leningrad.

Takhtajan, A. 1976. Neoteny and the origin of flowering plants. Pp. 207-219, in Beck, C. B. (ed.), Origin and Early Evolution of Angiosperms. Columbia University Press), New York.

Takhtajan, A. (ed.). 1982. Magnoliophyta fossilia rossiae et civitatum finitimarum Volumen 2 Ulmaceae - Betulaceae. Nauka, Leningrad. [See Budantsev 1994, 2005, for volumes 3 and 4.]

Takhtajan, A. (ed.). 1985. Anatomia seminum comparativa. Tomus 1. Liliopsida seu Monocotyledones. NAUKA, Leningrad. [In Russian.]

Takhtajan, A. (ed.). 1988. Anatomia seminum comparativa. Tomus 2. Dicotyledones Magnoliidae, Ranunculidae. NAUKA, Leningrad. [In Russian.]

Takhtajan, A. (ed.). 1991. Anatomia seminum comparativa. Tomus 3. Dicotyledones Caryophyllidae-Dilleniidae. NAUKA, Leningrad. [In Russian.]

Takhtajan, A. (ed.). 1992. Anatomia seminum comparativa. Tomus 4. Dicotyledones. Dilleniidae. NAUKA, Leningrad. [In Russian.]

Takhtajan, A. 1997. Diversity and Classification of Flowering Plants. Columbia University Press, New York.

Takhtajan, A. (ed.). 2000. Anatomia seminum comparativa. Tomus 6. Dicotyledones. Rosidae II. NAUKA, Leningrad. [In Russian.]

Takhtajan, A. 2009. Flowering Plants. Springer. [Ed. 2 of Diversity and Classification of Flowering Plants.]

Takhtajan, A. (ed.). 2013. Anatomia seminum comparativa. Tomus 7 (additions). Dicotyledones. Lamiidae. NAUKA, St Petersburg. [In Russian.]

Takhtajan, A., & Trifonova, V. I. 1999. Fruit and seed anatomy of the genus Kaliphora (Kaliphoraceae) in relation to its taxonomic position. Bot. Zhurn. 84(4): 1-8. [In Russian.]

Takhtajan, A. [et al. 1985], Meyer, N. R., & Kosenko, V. N. 1985. Pollen morphology and classification in Rafflesiaceae s.l. Bot. Zhurn. 70: 153-162. [In Russian.]

Takos, A. M., & Rook, F. 2012. Why biosynthetic genes for chemical defense compounds cluster. Trends Plant Sci. 17: 383-388.

Takos, A. M. [et al. 2011], Knudsen, C., Lai, D., Kannangara, R., Mikkelsen, L., Motawia, M. S., Olsen, C. E., Sato, S., Tabata, S., Jørgensen, K., Møller, B. L., & Rook, F. 2011. Genomic clustering of cyanogenic glucoside biosynthetic genes aids their identification in Lotus japonicus and suggests the repeated evolution of this chemical defence pathway. Plant J. 68: 273-286.

Talbot, J. M. [et al. 2008], Allison, S. D., & Treseder, E. K. 2008. Decomposers in disguise: Mycorrhizal fungi as regulators of soil C dynamics in ecosystems under global change. Funct. Ecol. 22: 955-963.

Talent, N., & Dickinson, T. A. 2006. Apomixis and hybridization in Rosaceae subtribe Pyrinae Dumort.: A new tool promises new insights. Pp. 301-316, in Hörandl, E., Grossniklaus, U., van Dijk, P. J., & Sharbel, T. F. (eds), Apomixis: Evolution, Mechanisms and Perspectives. A. R. G. Gantner, K.G..

Talianova, M., & Janousek, B. 2011. What can we learn from tobacco and other Solanaceae about horizontal DNA transfer? American J. Bot. 98: 1231-1242.

Talip, N. [et al. 2017], Cutler, D. F., Ahmad Puad, A. S., Ismail, B. S., Ruzi, A. R., & Ahmad Juhari, A. A. 2017. Diagnostic and systematic significance of petiole anatomy in the identification of Hopea species (Dipterocarpaceae). South African J. Bot. 111: 111-125.

Tallamy, D. W. 1985. Squash beetle feeding behavior: An adaptation against induced curcurbit defenses. Ecology 66: 1574-1579.

Tallamy, D. W. [et al. 2005], Hibbard, B. E,., Clark, T. L., & Gillespie, J. J. 2004. Western corn rootworm, cucurbits and cucurbitacins. Pp. 67-93, in Vidal, S., Kuhlmann, U., & Edwards, C. R. (eds), Western Corn Rootworm, Ecology and Management. CAB International, Wallingford, U.K.

Talon, M. [et al. 2020], Caruso, M., & Gmitter, F. G. Jr (eds). 2020. The Genus Citrus. Woodhead Publishing, Elsevier.

Tam, T. H. Y. [et al. 2015], Catarino, B., & Dolan, L. 2015. Conserved regulatory mechanism controls the development of cells with rooting functions in land plants. Proc. National Acad. Sci. 112: E3959-E3968. doi: 10.1073/pnas.1416324112

Tam, S.-M. [et al. 2004], Boyce, P. C., Upson, T. M., Barabé, D., Bruneau, A., Forest, F., é Parker, J. S. 2004. Intergeneric and infrafamilial phylogeny of subfamily Monsteroideae (Araceae) revealed by chloroplast trnL-F sequences. American J. Bot. 91: 490-498.

Tamaio, N., & Angyalossy, V. 2009. Variação cambial em Serjania caracasana (Sapindaceae): enfoque na adequação terminoloógica. Rodriguésia 60: 651-666.

Tamaio, N. [et al. 2009], Cardoso-Vieira, R., & Angyalossy, V. 2009. Origin of successive cambia on stem in three species of Menispermaceae. Revista Brasileira Bot. 32: 839-848.

Tamaio, N. [et al. 2010], Joffily, A., Braga, J. M. A., & Rajput, K. S. 2010. Stem anatomy and pattern of secondary growth in some herbaceous vine species of Menispermaceae. J. Torrey Bot. Club 137: 157-165.

Tamayo-Cen, I. [et al. 2022], Torke, B. M., López Contreras, J. E., Carnevali Fernández-Concha, G., Ramírez Morillo, I., Can Itza, L. L., & Duno de Stefano, R. 2022. Revisiting the phylogeny and taxonomy of the Pithecellobium clade (Leguminosae, Caesalpinioideae) with new generic circumscriptions. In: Hughes, C. E., de Queiroz, L. P., & Lewis, G. P. (eds), Advances in Legume Systematics 14. Classification of Caesalpinioideae Part 1: New generic delimitations. PhytoKeys 205: 279–298. https://doi.org/10.3897/phytokeys.205.82728

Tamboli, A. S. [et al. 2017], Yadav, P. B., Gothe, A. A., Yadav, S. R., & Govindar, S. P. 2018 [= 2017]. Nolecular phylogeny and genetic diversity of genus Capparis (Capparaceae) based on plastid DNA sequences and ISSR markers. Plant Syst. Evol. 304: 205-217.

Tamme, R. [et al. 2014], Götzenberger, L., Zobel, M., Bullock, J. M., Hooftman, D. A. P., Kaasik, A., & Pärtel, M. 2014. Predicting species' maximum dispersal distances from simple plant traits. Ecology 95: 505-513.

Tamura, M. 1962. Petiolar anatomy in the Ranunculaceae. Sci. Reports Osaka Univ. 11: 19–47.

Tamura, M. 1965. Morphology, ecology and phylogeny of the Ranunculaceae IV. (Ranunculaceae of Eastern Asia: General Part IV). Sci. Reports Osaka Univ. 14(1): 53-71.

Tamura, M. 1972. Morphology and phyletic relationships of the Glaucidiaceae. Bot. Mag. Tokyo 85: 29-41.

Tamura, M. 1982. Relationships of Barclaya and classification of Nymphaeales. Acta Phytotax. Geobot. 23: 336-345. [In Japanese.]

Tamura, M. 1993. Ranunculaceae. Pp. 563-583, in Kubitzki, K., Rohwer, J. G., & Bittrich, V. (eds), The Families and Genera of Vascular Plants. II. Flowering Plants: Dicotyledons, Magnoliid, Hamamelid and Caryophyllid Families. Springer, Berlin.

Tamura, M. 1995a. General part. Pp. 1-105, in Hiepko, P. (ed.), Die natürlichen Pflanzenfamilien nebst ihren Gattungen und wichtigsten Arten, insbesondere den Nutzpflanzen ... Band 17 a IV. Angiospermae: Ordnung Ranunculales. Fam. Ranunculaceae. Duncker & Humblot, Berlin.

Tamura, M. 1995b. Systematic part. Pp. 223-519, in Hiepko, P. (ed.), Die natürlichen Pflanzenfamilien nebst ihren Gattungen und wichtigsten Arten, insbesondere den Nutzpflanzen ... Band 17 a IV. Angiospermae: Ordnung Ranunculales. Fam. Ranunculaceae. Duncker & Humblot, Berlin.

Tamura, M., & Mizumoto, Y. 1972. Stages of embryo development in ripe seeds or achenes of the Ranunculaceae. J. Japanese Bot. 47: 225-237.

Tamura, M. N. 1998. Calochortaceae, pp. 164-172, Liliaceae, pp. 343-353, Melanthiaceae, pp. 369-380, Nartheciaceae, pp. 381-391, and Trilliaceae, pp. 444-451, in Kubitzki, K. (ed.), The Families and Genera of Vascular Plants. III. Flowering Plants: Monocotyledons. Lilianae (except Orchidaceae). Springer, Berlin.

Tamura, M. N. 2006. Paeoniaceae. Pp. 265-269, in Kubitzki, K. (ed.), The Families and Genera of Vascular Plants. Volume IX. Flowering Plants: Eudicots: Berberidopsidales, Buxales, Crossosomatales.... Springer, Berlin.

Tamura, M. N. [et al. 2004a], Yamashita, J., Fuse, S., & Haraguchi, M. 2004a. Molecular phylogeny of monocotyledons inferred from combined analysis of plastid matK and rbcL gene sequences. J. Plant Res. 117: 109-120.

Tamura, M. N. [et al. 2004b], Fuse, S., Azuma, H., & Hasebe, M. 2004b. Biosystematic studies in the family Tofieldiaceae I. Phylogeny and circumscription of the family inferred from DNA sequences of matK and rbcL. Plant Biol. 6: 562-567.

Tamura, M. N. [et al. 2011], Yamashita, J., & Fuse, S. 2011. Another candidate for the sister group of the monocotyledons. P. 676, in XVIII International Botanical Congress 2011, Melbourne. [Abstracts.]

Tan, C.-W. [et al. 2018], Peiffer, M., Hoover, K., Rosa, C., Acevedo, F. E., & Felwon, G. W. 2018. Symbiotic polydnavirus of a parasite manipulates caterpillar and plant immunity. Proc. National Acad. Sci. 115: 5199-5204.

Tan, F. [et al. 2002], Shi, S., Zhong, Y., Gong, X., & Wang, Y. 2002. Phylogenetic relationships of Combretoideae (Combretaceae) inferred from plastid, nuclear gene and spacer sequences. J. Plant. Res. 115: 475-481.

Tan, H. T. W., & Rao, A. N. 1988. Sporogenesis and gametogenesis in Scyphiphora hydrophyllacea Gaertn. f. (Rubiaceae). Flora 180: 413-416.

Tan, K. H. 2008. Fruit fly pests as pollinators of wild orchids. Pp. 195-206, in Sugayama, R. L., Zucchi, R. A., Ovruski, S. M., & Sivinski, J. (eds), Fruit Flies of Economic Importance: From Basic to Applied Knowledge. Proceedings of the 7th International Symposium on Fruit Flies of Economic Importance, 10-15 Sept. 2006, Salvador, Brazil.

Tan, M. A., & Takayama, H. 2019. Recent progress in the chemistry of Pandanus alkaloids. Alkaloids Chem. Biochem. 82: 1-28.

Tan, R. X., & Zou, W. X. 2001. Endophytes: A rich source of functional metabolites. Natural Prod. Rep. 18: 448-459.

Tan, S. [et al. 2020], Hollands, R., Pavlíková, M., Fér, T., & Newman, M. F. 2020. A revision of Gagnepainia and Hemiorchis (Globbeae: Zingiberaceae). Edinburgh J. Bot. 77: 455-490.

Tanaka, A. [et al. 2005], Tapper, B. A., Popay, A., Parker, E. J., & Scott, B. 2005. A symbiosis expressed non-ribosomal peptide synthetase from a mutualistic fungal endophyte of perennial ryegrass confers protection to the symbiotum from insect herbivory. Molec. Microbiol. 57: 1036-1050.

Tanaka, B. M. M. [et al. 2016], Pinto, D. D., & Mourão, K. S. M. 2016. Seed ontogeny of Serjania communis and Urvillea ulmacea and its relationship to transitional characters in Paullinieae (Sapindoideae, Sapindaceae). Brazilian J. Bot. 39: 885-894.

Tanaka, K. 2023. Extension of the primary dispersal distance through peduncle laying and elongation promotes myrmecochory in Japanese sedges. Plant Species Biol. 38: 192-203.

Tanaka, N. [Nobuyuki] 2001. Taxonomic revision of the family Cannaceae in the New World and Asia. Makinoa, N.S. 1: 1-74.

Tanaka, N. [et al. 2009], Uchiyama, H., Matoba, H., & Koyama, T. 2009. Karyological analysis of the genus Canna. Plant Syst. Evol. 280: 45-51.

Tanaka, N. [Norio] [et al. 1997], Setoguchi, H., & Murata, J. 1997. Phylogeny of the family Hydrocharitaceae inferred from rbcL and matK gene sequence data. J. Plant Res. 110: 329-337.

Tanaka, N. [et al. 2004], Uehara, K., & Murata, J. 2004. Correlation between pollen morphology and pollination mechanisms in the Hydrocharitaceae. J. Plant Res. 117: 265-276.

Tanaka, N. [et al. 2013], Uehara, K., & Murata, J. 2013. Evolution of floral traits in relation to pollination mechanisms in Hydrocharitaceae. Pp. 165-184, in Wilkin, P., & Mayo, S. J. (eds), Early Events in Monocot Evolution. Cambridge University Press, Cambridge. [Systematics Association Special Volume 83.]

Tanaka, N. [Noriyuki], & Tanaka, N. 1977. Chromosome studies in Chionographis (Liliaceae) I. On the holokinetic nature of chromosomes in Chionographis japonica Maxim.. Cytologia 42: 753-763.

Tanaka, N. 2018. Taxonomic revision of Peliosanthes bakeri and P. violacea (Asparagaceae), with descriptions of two new species from Bangladesh and India. Phytotaxa 356: 34-48.

Tanaka, N. 2019. Taxonomy, evolution and phylogeography of the genus Helonias (Melanthiaceae) revisited. Phytotaxa 390: 1-84.

Tanaka, R. [et al. 1988], Oginuma, K., & Toto, S. 1988. Karyomorphological studies on 26 species of ten genera of the Onagraceae. La Kromosomo II, 51-52: 1675-1695.

Tanaka, Y. [et al. 2008], Sasaki, N., & Ohmiya, A. 2008. Biosynthesis of plant pigments: Anthocyanins, betalains and carotenoids. Plant J. 54: 733-749.

Tanaomi, N. [et al. 2016], Jonoubi, P., Rad, A. C., Majd, A., & Ranjbar, M. 2016. Embryology of Onobrychis persica Sirj. and Rech. f. (Fabaceae) and its systematic implications. Caryologia 69: 256-266.

Tandon, S. R., & Herr, J. M., Jr. 1971. Embryological features of taxonomic significance in the genus Nyssa. Canadian J. Bot. 49: 505-514, pl. 1.

Tanentzap, A. J. [et al. 2014], Vicari, M., & Bazelly, D. R. 2014. Ungulate saliva inhibits a grass-endophyte mutualism. Biol. Lett. 10:20140460. http://dx.doi.org/10.1098/rsbl.2014.0460

Tang, A. M. C. [et al. 2007], Shekoy, B. D., & Hyde, K. D. 2007. Fungal diversity. Pp. 227-249, in Hodkinson, T. R., & Parnell. J. A. N. (eds), Reconstructing the Tree of Life: Taxonomy and Systematics of Species Rich Taxa. CRC Press, Boca Raton, FLA. [Systematics Association Special Volume Series 72.]

Tang, C. C. [et al. 2015], Thomas, D. C., & Saunders, R. M. K. 2015. Molecular phylogenetics of the species-rich angiosperm genus Goniothalamus (Annonaceae) inferred from nine chloroplast DNA regions: Synapomorphies and putative correlated evolutionary changes in fruit and seed morphology. Molec. Phyl. Evol. 92: 124-139.

Tang, C. Q. [et al. 2012], Yang Y., Ohsawa M., Yi S.-R., Momohara A., Su W-H., Wang H.-C., Zhang Z.-Y., Peng M.-C., & Wu Z.-L. 2012. Evidence for the persistence of wild Ginkgo biloba (Ginkgoaceae) populations in the Dalou Mountains, southwestern China. American J. Bot. 99: 1408-1414.

Tang, C. Q. [et al. 2016], Orme, C. D. L., Bunnefeld, L., Jones, F. A., Powell, S., Chase, M. W., Barraclough, T. G., & Savolainen, V. 2017 [= 2016]. Global monocot diversification: Geography explains variation in species richness better than environment or biology. Bot. J. Linnean Soc. 182: 1-15.

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