Anatomical features of the leaf mesophyll structure Oryza sativa and Zizania latifolia (Oryzeae, Poaceae)

Main Article Content

Galina K. Zvereva

Abstract

The study of the spatial organisation of plant leaf chlorenchyma, as the structural basis of photosynthesis, allows us to characterize it more fully. The morphology of assimilative cells and the structure of the mesophyll of leaf blades and leaf sheaths of generative shoots of Oryza sativa and Zizania latifolia are considered. Leaf samples were fixed in Gammalund's mixture. The assimilative tissue was studied using a light microscope on macerated preparations, as well as on transverse and longitudinal sections of leaves. The anatomical structure was considered in the middle part of the leaf blade and the upper third of the sheath part of the leaf. It is shown that the chlorenchyma of the leaf blades of Oryza sativa and Zizania latifolia and the leaf sheaths of Oryza sativa is composed of flat folded cells with a small participation of cells of a more complex cellular-lobed or folded-cellular shape. More complicated in shape, the cells have lobed configurations on the cross sections and cellular, consisting of two or three sections, in the longitudinal direction. In the mesophyll of the leaf sheaths of Oryza sativa, the lobed shape of the cells is preserved, the chlorenchyma of Zizania latifolia consists mainly of cells of simple shape. The structure of the mesophyll of the leaf blades of Oryza sativa and Zizania latifolia is characterized as simplified bambusoid. The spatial configuration of lobed cells in leaves of grasses with bambusoid, arundinoid and festucoid types of leaf anatomy was compared. It is shown that these cells can be both flat and more complex, mainly cellular-lobed.

Article Details

How to Cite
Zvereva Г. К. (2025). Anatomical features of the leaf mesophyll structure Oryza sativa and Zizania latifolia (Oryzeae, Poaceae). Bulletin of Perm University. Biology, (2), 132–142. https://doi.org/10.17072/1994-9952-2025-2-132-142
Section
Ботаника
Author Biography

Galina K. Zvereva, Novosibirsk State Pedagogical University, Novosibirsk, Russia

Senior Researcher, the professor of Chair of Biology and Ecology (Novosibirsk State Pedagogical University), Main Researcher (Siberian Federal Scientific Center of Agro-Bio Technologies of the Russian Academy of Sciences)

References

Бурундукова О.Л. Структурно-функциональные характеристики ассимиляционного аппарата сор-тов риса разного происхождения и морфотипа в условиях Приморья: автореф. дис. … канд. биол. наук. Владивосток, 1993. 20 с. EDN: ZJYJEX.

Бурундукова О.Л. и др. Методика расчета объема и площади поверхности клеток мезофилла риса // Физиология растений. 2003. Т. 50, № 1. С. 144–150. EDN: OOMUXL

Бурундукова О.Л. и др. Структура ассимиляционного аппарата сортов риса экстенсивного и ин-тенсивного типов в условиях Приморья // Физиологические основы продуктивности растений и факторы внешней среды (Сб. тр. по прикладной ботанике, генетике и селекции. Т. 149). СПб., 1993. С. 26–32.

Бурундукова О.Л., Холупенко И.П. Мезоструктура и функциональная активность фотосинтетиче-ского аппарата сортов риса интенсивного и экстенсивного типа: поиск способов интенсификации фото-синтеза альтернативных С4 трансгенозу // Экспериментальная биология растений: фундаментальные и прикладные аспекты: Годичное собрание ОФР. М.: Изд-во АНО Центр содействия научной, образова-тельной и просветительской деятельности «Соцветие», 2017. 25 с. EDN: YSATYK.

Горышина Т.К. Фотосинтетический аппарат растений и условия среды. Л.: Изд-во ЛГУ, 1989. 204 с.

Гродзинский А.М., Гродзинский Д. М. Краткий справочник по физиологии растений. Киев: Наук. думка, 1973. 591 с.

Зверева Г.К. Пространственная организация мезофилла листовых пластинок фестукоидных злаков (Poaceaе) и ее экологическое значение // Ботанический журнал. 2009. Т. 94, № 8. С. 1204–1215. EDN: OIFNIB.

Зверева Г.К. Анатомическое строение мезофилла листьев злаков (Poaceae). Новосибирск: Изд-во НГПУ, 2011. 201 с. EDN: QLDHGV.

Зверева Г.К. Сравнительное исследование хлоренхимы вегетативных органов у Phragmites austra-lis и Molinia caerulea (Poaceae, Arundinoideae) // Известия высших учебных заведений. Поволжский реги-он. Естественные науки. 2023. № 3. С. 3–18. DOI: 10.21685/2307-9150-2023-3-1. EDN: FQQWGH.

Сорокин О.Д. Прикладная статистика на компьютере. Краснообск, 2004. 162 с.

Цвелев Н.Н. Краткий конспект злаков (Poaceae) Восточной Европы: начало системы (трибы Bam-buseae - Bromeae) // Новости систематики высших растений. 2006. Т. 38. С. 66–113. DOI: 10.31111/novitates/2006.38.66. EDN: KWRXLB.

Цвелев Н.Н., Пробатова Н.С. Злаки России. М.: Т-во науч. изданий КМК, 2019. 646 с.

Adachi S. et al. The mesophyll anatomy enhancing CO2 diffusion is a key trait for improving rice photo-synthesis // Journal of Experimental Botany. 2013. Vol. 64, № 4. Р. 1061–1072. DOI: 10.1093/jxb/ers382.

Brown W.V. Leaf anatomy in grass systematics // Botanical Gazette. 1958. Vol. 119, № 3. Р. 170–178. DOI: 10.1086/335974.

Calderon C.E., Soderstrom T.R. Morphological and anatomical considerations of the grass subfamily Bambusoideae based on the new genus Maclurolyra // Smithsonian Contributions to Botany. 1973. № 11. 55 p. DOI: 10.5479/si.0081024X.11.

Carolin R.C., Jacobs S.W.L., Vesk M. The structure of the cells of the mesophyll and parenchymatous bundle sheath of the Gramineae // Journal of the Linnean Society, Botany. 1973. Vol. 66, № 4. Р. 259–275. DOI: 10.1111/j.1095-8339.1973.tb02174.x.

Chatterjee J. et al. The evolutionary basis of naturally diverse rice leaves anatomy // PLoS ONE. 2016. Vol. 11, №10. Art. e0164532. DOI:10.1371/journal.pone.0164532. EDN: XUPHUT.

Chonan N. Studies on the photosynthetic tissues in the leaves of cereal crops. III. The mesophyll struc-ture of rice leaves inserted at different levels of the shoot // Proceedings of the Crop Science Society of Japan. 1967. Vol. 36, № 3. Р. 291–296. DOI: 10.1626/jcs.36.3_291.

Chonan N. Studies on the photosynthetic tissues in the leaves of cereal crops. V. Comparison of the mesophyll structure among seedling leaves of cereal crops // Japanese Journal of Crop Science. 1970. Vol. 39, № 4. Р. 418–425. DOI: 10.1626/jcs.39.418.

Chonan N. A comparative anatomy of mesophyll among the leaves of gramineous crops // Japan Agri-cultural Research Quarterly. 1978. Vol. 12, № 3. Р. 128–131.

Ellis R.P. Leaf anatomy of the genus Ehrharta (Poaceae) in southern Africa: the Setacea group // Bo-thalia. 1987. Vol. 17, № 1. Р. 75–89. DOI: 10.4102/abc.v17i1.1017.

Evans J.R., Loreto F. Acquisition and diffusion of CO2 in higher plant leaves // Photosynthesis: Physiolo-gy and Metabolism. Dordrecht: Kluwer Academic Publishers, 2000. P. 321–351. DOI: 10.1007/0-306-48137-5_14.

He W. et al. Leaf photosynthetic rate and mesophyll cell anatomy changes during ontogenesis in back-crossed indica × japonica rice inbred lines // Photosynthesis Research. 2017. Vol. 134, № 1. Р. 27–38. DOI: 10.1007/s11120-017-0403-x. EDN: YGXUCN.

Leandro T.D., Scremin-Dias E., Arruda R.C.O. Micromorphology and anatomy of the leaf blade: a con-tribution to the taxonomy of Luziola (Poaceae, Oryzoideae) from the Pantanal, Brazil // Plant Systematics and Evolution. 2016. Vol. 302, № 3. Р. 265–273. DOI: 10.1007/s00606-015-1260-8.

Metcalfe C.R. Anatomy of the Monocotyledons. 1. Gramineae. Oxford: Clarendon Press, 1960. 731 p.

Oi T. Three-dimensional analysis of internal structures in plant tissues and cells: a case study of rice leaf-blades analyzed by serial section light microscopy // Plant Morphology. 2023. Vol. 35, № 1. Р. 59–67. DOI: 10.5685/plmorphol.35.59. EDN: IDKQGF.

Oi T. et al. Three-dimensional intracellular structure of a whole rice mesophyll cell observed with FIB-SEM // Annals of Botany. 2017. Vol. 120, № 1. Р. 21–28. DOI: 10.1093/aob/mcx036.

Oi T. et al. Three-dimensional ultrastructural change of chloroplasts in rice mesophyll cells responding to salt stress // Annals of Botany. 2020. Vol. 125, № 5. Р. 833–840. DOI: 10.1093/aob/mcz192.

Ouk R. et al. 3-D reconstruction of rice leaf tissue for proper estimation of surface area of mesophyll cells and chloroplasts facing intercellular airspaces from 2-D section images // Annals of Botany. 2022. Vol. 130, № 7. Р. 991–998. DOI: 10.1093/aob/mcac133. EDN: WVLMEW.

Ouk R., Oi T., Taniguchi M. Three-dimensional anatomy of mesophyll cells in rice leaf tissue by serial section light microscopy // Plant Production Science. 2020. Vol. 23, № 2. Р. 149–159. DOI: 10.1080/1343943X.2019.1702470. EDN: TMVDIK.

Possingham J.V., Saurer W. Changes in chloroplast number per cell during leaf development in spinach // Planta. 1969. Vol. 86, № 2. Р. 186–194. DOI: 10.1007/bf00379826. EDN: ZAMRVU.

Renvoize S.A. A Survey of leaf-blade anatomy in grasses V. The bamboo allies // Kew Bulletin. 1985. Vol. 40, № 3. Р. 509–535. DOI: 10.2307/4109612.

Sage T.L., Sage R.F. The functional anatomy of rice leaves: implications for refixation of photorespira-tory CO2 and efforts to engineer C4 photosynthesis into rice // Plant and Cell Physiology. 2009. Vol. 50, № 4. Р. 756–772. DOI: 10.1093/pcp/pcp033. EDN: MHUBSV.

Scafaro A.P. et al. Temperature response of mesophyll conductance in cultivated and wild Oryza species with contrasting mesophyll cell wall thickness // Plant, Cell and Environment. 2011. Vol. 34, № 11. Р. 1999–2008. DOI:10.1111/j.1365-3040.2011.02398.x.

Soderstrom T.R., Ellis R.P. The woody bamboos (Poaceae: Bambusoideae) of Sri Lanka: a morphologi-cal-anatomical study // Smithsonian Contributions to Botany. 1988. № 72. 75 р.

Soreng R.J. et al. A worldwide phylogenetic classification of the Poaceae (Gramineae) // Journal of Sys-tematics and Evolution. 2015. Vol. 53, № 2. Р. 117–137. DOI: 10.1111/jse.12150.hdl. EDN: QGPNAS.

Tateoka T. Notes on some grasses. XIII. Relationship between Oryzeae and Ehrharteae, with special ref-erence to leaf anatomy and histology // Botanical Gazette. 1963. Vol. 124, № 4. P. 264–270. DOI: 10.1086/336203.

Tsunoda S. Adjustment of photosynthetic structures in three steps of rice evolution // Biology of Rice. Tokyo: Japan Scientific Societies Press, 1984. P. 89–115. DOI: 10.1016/B978-0-444-99615-2.50009-0.

Vieira R.C. et al. Leaf anatomy of three herbaceous bamboo species // Brazilian Journal of Biology. 2002. Vol. 62, № 4b. P. 907–922. DOI: 10.1590/S1519-69842002000500021.

Watson L., Macfarlane T.D., Dallwitz M.J. The grass genera of the world: descriptions, illustrations, iden-tification, and information retrieval; including synonyms, morphology, anatomy, physiology, phytochemistry, cytology, classification, pathogens, world and local distribution, and references. Version: 25th January 2024. URL: delta-intkey.com.

World Flora Online // URL: http://www.worldfloraonline.org/ (дата обращения: 15.05.2024).

Yamane K., Oi T., Taniguchi M. Evaluation of the validity of large-scale serial sectioning TEM for three-dimensional reconstruction of rice mesophyll cells and chloroplasts // Protoplasma. 2022. Vol. 259, № 5. P. 1219–1231. DOI: 10.1007/s00709-021-01728-9. EDN: XIJPPP.

Yang C. et al. Anatomy and histochemistry of roots and shoots in wild rice (Zizania latifolia Griseb.) // Journal of Botany. 2014. Vol. 2014. Art. 181727. DOI: 10.1155/2014/181727.