Seasonal Dynamics of Shoot Growth in Forsythia ovata Nakai Plants: Rhythmicity of Apical and Radial Growth

Biology Bulletin Reviews - Tập 14 Số 1 - Trang 85-95 - 2024
С. А. Шавнин1, A. A. Montile1, Lidia A. Semkina1, A. I. Montile1
1Institute Botanic Garden, Ural Branch, Russian Academy of Sciences, 620144, Yekaterinburg, Russia

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Afonin, A.A., Rhythm of linear growth of annual shoots of almond willow, Sovrem. Nauka: Aktual. Probl. Teor. Prakt. Ser. Estestv. Tekh. Nauki, 2019a, no. 1, pp. 10–16.

Afonin, A.A., Seasonal dynamics of basket-willow (Salix viminalis) shoots growth, Izv. Vyssh. Uchebn. Zaved., Povolzhskii Region. Estestv. Nauki, 2019b, no. 4 (28), pp. 26–34. https://doi.org/10.21685/2307-9150-2019-4-3

Afonin, A.A., Structural analysis of the rhythms of development of annual shoots of almond willow, Byull. Nauki Prakt., 2019c, vol. 5, no. 1, pp. 22–32. https://doi.org/10.5281/zenodo.2539541

Afonin, A.A., Infradian rhythms of increment dynamics of shoots in clones of almond willow (Salix triandra), Agrarnyi Vestnik Urala, 2021, vol. 205, no. 2, pp. 2–11. https://doi.org/10.32417/1997-4868-2021-205-02-2-11

Aloni, R., Phytohormonal mechanisms that control wood quality formation in young and mature trees, in The Compromised Wood Workshop, Entwistle, K., Harris, P., and Walker, J., Eds., Christchurch: The Wood Technology Research Centre, University of Canterbury, 2007, pp. 1–22.

Bulygina, O.N., Razuvaev, V.N., and Alexandrova, T.M., Description of the data array of daily air temperature and precipitation at meteorological stations of Russia and the former USSR (TTTR), 2020. http://meteo.ru/data/162-temperature-precipitation#oпиcaниe-мaccивa-дaнныx.

Cooke, J.E.K., Eriksson, M.E., and Junttila, O., The dynamic nature of bud dormancy in trees: Environmental control and molecular mechanisms, Plant Cell Environ., 2012, vol. 35, no. 10, pp. 1707–1728. https://doi.org/10.1111/j.1365-3040.2012.02552.x

Ding, X., Jiang, Y., Xue, F., Zhang, Y., Wang, M., et al., Intra‑annual growth dynamics of Picea meyeri needles, shoots, and stems on Luya Mountain, North‑central China, Trees, 2021, vol. 35, no. 2, pp. 637–648. https://doi.org/10.1007/s00468-020-02065-9

Edwards, K.D., Takata, N., Johansson, M., Jurca, M., Novak, O., et al., Circadian clock components control daily growth activities by modulating cytokinin levels and cell division‑associated gene expression in Populus trees, Plant Cell Environ., 2018, vol. 41, no. 6, pp. 1468–1482. https://doi.org/10.1111/pce.13185

Farre, E.M., The regulation of plant growth by the circadian clock, Plant Biol., 2012, vol. 14, no. 3, pp. 401–410. https://doi.org/10.1111/j.1438-8677.2011.00548.x

Herrmann, S., Recht, S., Boenn, M., Feldhahn, L., Angay, O., et al., Endogenous rhythmic growth in oak trees is regulated by internal clocks rather than resource availability, J. Exp. Bot., 2015, vol. 66, no. 22, pp. 7113–7127. https://doi.org/10.1093/jxb/erv408

Jackson, S.D., Plant responses to photoperiod, New Phytol., 2009, vol. 181, no. 3, pp. 517–531. https://doi.org/10.1111/j.1469-8137.2008.02681.x

Kim, J.A., Kim, H.-S., Choi, S.-H., Jang, J.-Y., Jeong, M.-J., and Lee, S.I., The importance of the circadian clock in regulating plant metabolism, Int. J. Mol. Sci., 2017, vol. 18, no. 12, p. 2680. https://doi.org/10.3390/ijms18122680

Kolesnikov, B.P., Zubareva, R.S., and Smolonogov, E.P., Lesorastitel’nye usloviya i tipy lesov Sverdlovskoi oblasti (Forest Growing Conditions and Forest Types of the Sverdlovsk Oblast), Sverdlovsk: Uraal’skii Nauuchnyi Tsentr Akademii Nauk SSSR, 1974.

Kuluiev, B.R. and Safiullina, M.G., Regulation of cell growth by stretching in plants, Usp. Sovrem. Biol., 2015, vol. 135, no. 2, pp. 148–163.

Kuluiev, B.R., Regulators of cell division and proliferation in plants, Biomika, 2017, vol. 9, no. 2, pp. 119–135.

Lutova, L.A., Ezhova, T.A., Dodueva, I.E., and Osipova, M.A., Genetika razvitiya rastenii: dlya biologicheskikh spetsial’nostei universitetov (Plant Development Genetics: for Biological Specialties of Universities), St. Petersburg: Izd. N-L, 2010, 2nd ed.

Luttge, U. and Hertel, B., Diurnal and annual rhythms in trees, Trees, 2009, vol. 23, no. 4, pp. 683–700. https://doi.org/10.1007/s00468-009-0324-1

Magomedmirzaev, V.A., Vvedenie v kolichestvennuyu morfogenetiku (Introduction to Quantitative Morphogenetics), Moscow: Nauka, 1990.

Mahmud, K.P., Holzapfel, B.P., Guisard, Y., Smith, J.P., Nielsen, S., and Rogiers, S.Y., Circadian regulation of grapevine root and shoot growth and their modulation by photoperiod and temperature, J. Plant Physiol., 2018, vol. 222, pp. 86–93. https://doi.org/10.1016/j.jplph.2018.01.006

Mazurenko, M.T. and Khokhryakov, A.P., Struktura i morfogenez kustarnikov (Structure and Morphogenesis of Shrubs), Moscow: Nauka, 1977.

McClung, C.R., Plant circadian rhythms. Historical perspective essay, Plant Cell, 2006, vol. 18, no. 4, pp. 792–803.

Medvedev, S.S. and Sharova, E.I., Biologiya razvitiya rastenii (Biology of Plant Development), vol. 2: Rost i morfogenez (Growth and Morphogenesis), Nizhnevartovsk: Nizhnevartovsk. Gos. Univ., 2014.

Mikhailevskaya, O.B., Rhythmicity of growth processes and morphogenesis of shoots in the genus Quercus L., in Morfogenez i ritm razvitiya vysshikh rastenii (Morphogenesis and Rhythm of Development of Higher Plants), Moscow: Mosk. Gos. Ped. Inst., 1987, pp. 33–38.

Mikhalevskaya, O.B., Growth rhythms at different stages of shoot morphogenesis in woody plants, Russ. J. Dev. Biol., 2008, vol. 39, no. 2, pp. 65–72. https://doi.org/10.1134/S106236040802001X

Miskolczi, P., Singh, R.K., Tylewicz, S., Azeez, A., Maurya, J.P., et al., Long-range mobile signals mediate seasonal control of shoot growth, PNAS, 2019, vol. 116, no. 22, pp. 10852–10857. https://doi.org/10.1073/pnas.1902199116

Sabinin, D.A., Fiziologiya razvitiya rastenii (Physiology of Plant Development), Moscow: Akad. Nauk SSSR, 1963.

Semkina, L.A. and Ovsyannikova, O.M., Morphobiological features of Forsythia ovata during introduction in the Middle Urals, in Ekologiya i akklimatizatsiya rastenii (Ecology and Acclimatization of Plants), Yekaterinburg: Ural’sk. Otd. Ross. Akad. Nauk, 1998, pp. 113–119.

Serebryakov, I.G., Morfologiya vegetativnykh organov vysshikh rastenii (Morphology of Vegetative Organs of Higher Plants), Moscow: Sovetskaya Nauka, 1952.

Serebryakov, I.G., Ekologicheskaya morfologiya rastenii (Ecological Morphology of Plants), Moscow: Vysshaya Shkola, 1962.

Serebryakov, I.G., The correlation of internal and external factors in the annual rhythm of plant development, Bot. Zh., 1966, vol. 41, no. 7, pp. 923–928.

Singh, R.K., Svystun, T., AlDahmash, B., Jonsson, A.M., and Bhalerao, R.P., Photoperiod- and temperature-mediated control of phenology in trees—A molecular perspective, New Phytol., 2017, vol. 213, no. 2, pp. 511–524. https://doi.org/10.1111/nph.14346

Singh, R.K., Bhalerao, R.P., and Eriksson, M.E., Growing in time: Exploring the molecular mechanisms of tree growth, Tree Physiol., 2020, vol. 41, no. 4, pp. 657–678. https://doi.org/10.1093/treephys/tpaa065

Triozzi, P.M., Ramos-Sanchez, J.M., Hernandez-Verdeja, T., Moreno-Cortes, A., Allona, I., and Perales, M., Photoperiodic regulation of shoot apical growth in poplar, Front. Plant Sci., 2018, vol. 9, pp. 1–9. https://doi.org/10.3389/fpls.2018

Tvorogova, V.Y., Osipova, M.A., Doduyeva, I.Y., and Lutova, L.A., Interactions between transcription factors and phytohormones in the regulation of plant meristem activity, Russ. J. Genet. Appl. Res., 2013, vol. 3, no. 5, pp. 325–337.