Skip to main navigation menu Skip to main content Skip to site footer

Research Articles

Early Access

Ecological-anatomical adaptations of Mentha longifolia under in situ and ex situ conditions

DOI
https://doi.org/10.14719/pst.10464
Submitted
6 July 2025
Published
11-03-2026

Abstract

This study aims to determine the effects of environmental factors across different ecosystems on the anatomy of the medicinally important species Mentha longifolia L. and to reveal its adaptation mechanisms. Comparative analyses were performed using anatomical, microscopic, histochemical and biometric methods to clarify the extent and nature of anatomical variability in ecotypes of the species, thereby exploring their potential for environmental adaptation. Anatomical sections of the species were stained using histological reagents and permanent slides were prepared for subsequent analysis. This study represents the first comparative analysis of the ecological-anatomical characteristics of M. longifolia under in situ and ex situ conditions. Furthermore, statistical analysis of micrometric indicators confirmed the species’ climatic resilience and adaptive responses to stress. In the in situ ecotype, parenchymatic excretion, an active “punctate-porous” cellular structure in the rhizome and well-developed aerenchyma (in rhizome cortex - in situ: 51.51 ± 4.955 µm; ex situ: 43.29 ± 4.014 µm) were identified. In ex situ specimens, parenchyma cell size differences were statistically significant (e.g., in the leaf - in situ: 31.52 ± 2.279 µm; ex situ: 37.51 ± 2.465 µm). Additionally, variations were observed in the xylem lumen diameter (e.g., in the stem - in situ: 23.54 ± 1.664 µm; ex situ: 29.31 ± 2.252 µm). The structural adaptations revealed through comparative ecological-anatomical studies represent evolutionary advancements in plant anatomy and possess substantial scientific and practical relevance. This comprehensive research, systematically conducted for the first time on Azerbaijans’ flora, confirms the ecological plasticity of the species.

References

  1. 1. Amitrano C, Kacira M, Arena C, De Pascale S, De Micco V. Leaf anatomical traits shape lettuce physiological response to vapor pressure deficit and light intensity. Planta. 2025;262:48. https://doi.org/10.1007/s00425-025-04774-2
  2. 2. Kumar A, Jangid PP, Marimuthu S, Gurav AM, Srikanth N, Mangal AK, et al. Identification and authentication of Agnimantha plant species used in Ayurveda on the basis of anatomical and molecular phylogenetic analysis. Plant Sci Today. 2023;11(2):742-49. https://doi.org/10.14719/pst.2180
  3. 3. Dai L, Zhou X, Jian Z, Tian J, Li Y, Xu G. Comparison of leaf anatomical structure and photosynthetic characteristics between weedy rice and cultivated rice at the seedling stage. Sci Rep. 2024;14:30829. https://doi.org/10.1038/s41598-024-81669-4
  4. 4. dos Santos EAV, Silva RFL, Lima e Silva A, Agra MDF. Pharmacobotanical study of Psychotria carthagenensis Jacq. (Rubiaceae), a species known as toxic and medicinal. Indian J Tradit Knowl. 2023;22(1):160-66. https://doi.org/10.56042/ijtk.v22i1.33623
  5. 5. Shahrestani MM, Faghir MB, Assadi M. Comparative anatomical studies in relation to taxonomy of Sedum s.l. (Crassulaceae) in Iran. Turk J Bot. 2020;44:281-94. https://doi.org/10.3906/bot-1912-32
  6. 6. Sardarova AS. Anatomical identification and diagnostic characteristics of Tragopogon pratensis (Asteraceae) within the flora of Azerbaijan. Biosyst Divers. 2025;33(3):e2545. https://doi.org/10.15421/012545
  7. 7. Sardarova AS. Comparative ecological anatomical study of the structural adaptation of Althaea officinalis L. (Malvaceae Juss.) in in situ and ex situ conditions. Adv Biol Earth Sci. 2025;10(3):600-20. https://doi.org/10.62476/abes.103600
  8. 8. Sardarova AS, Ibadullayeva SJ. Ecological-anatomical study of the phytocontamination profile of the medicinally important species Tribulus terrestris L. (Zygophyllaceae R.Br.) spread in the post-conflict territory of Azerbaijan. Pak J Bot. In press. https://doi.org/10.30848/PJB2026-2(19)
  9. 9. Sardarova AS. Ecological and anatomical characteristics and tolerance of Salsola nodulosa Iljin. and Zygophyllum fabago L. species under ecological pressures in saline ecosystems. Acta Bot Caucas. 2025;4(1):106-23. https://doi.org/10.30546/abc.2025.4.1.622
  10. 10. Qurbanov EM. Azərbaycanın bitki örtüyü. Monoqrafiya [The Vegetation of Azerbaijan: A Monograph]. Baku: Elm; 2024.
  11. 11. Azizian D. Anatomical studies of Mentha mozaffarianii (Labiatae) and a related specievs. Iran J Bot. 1996;7(1):63-71.
  12. 12. Llorens-Molina JA, Vacas S, Castell V, Verdeguer M. Seasonal variations of essential oils from five accessions of Mentha longifolia (L.) L. with selected chemical profiles. J Essent Oil Res. 2020;32(5):419-28. https://doi.org/10.1080/10412905.2020.1773328
  13. 13. Ibadullayeva SJ. Traditional folk medicine of Azerbaijanis. Baku: Savad; 2024
  14. 14. Pereira DC, Barros CF, Scarano FR. In situ variation in leaf anatomy and morphology of Andira legalis (Leguminosae) in two neighbouring but contrasting light environments in a Brazilian sandy coastal plain. Acta Bot Bras. 2009;23(1):267-73. https://doi.org/10.1590/S0102-33062009000100028
  15. 15. Amoroso VB, Maghanoy LGM, Aser CMA. Morpho-anatomy, ex-situ conservation and haemolytic activity of Pentaphragma grandiflorum Kurz. (Pentaphragmataceae). J Trop Life Sci. 2023;13(3):453-60.
  16. 16. Théroux-Rancourt G, Herrera JC, Voggeneder K, De Berardinis F, Luijken N, Nocker L, et al. Analyzing anatomy over three dimensions unpacks the differences in mesophyll diffusive area between sun and shade Vitis vinifera leaves. AoB Plants. 2023;15:1-13. https://doi.org/10.1093/aobpla/plad001
  17. 17. Bulavin I, Sidyakin A, Miroshnichenko N, Saplev N, Smykov A. Morphology, anatomy, ploidy level and genetic similarity investigation of the Prunus persica (L.) Batsch ‘Dostoyniy’ ex situ and in vitro. BIO Web Conf. 2024;141:01002. https://doi.org/10.1051/bioconf/202414101002
  18. 18. Nasirova AI. Modern and comprehensive soil studies in grape agrocenoses in Azerbaijan. Int J Adv Appl Sci. 2024;13(2):217–24. https://doi.org/10.11591/ijaas.v13.12.pp217-224
  19. 19. Pradhan Mitra P, Loqué D. Histochemical staining of Arabidopsis thaliana secondary cell wall elements. J Vis Exp. 2014;87:e51381. https://doi.org/10.3791/51381
  20. 20. Da Silva CJ, de Lima LHF, de Paiva PM, Maia LM, Rocha REO, de Souza PTD, et al. An inexpensive and environmentally friendly staining method for semi-permanent slides from plant material probed using anatomical and computational chemistry analyses. Rodriguésia. 2020;71:e01662018. https://doi.org/10.1590/2175-7860202071018
  21. 21. Kuzucu FC, Gökbayrak Z, Engin H. Improved methods of cane samples staining destined for microscopic examination and imaging. Appl Ecol Environ Res. 2024;22(6):5467-81. https://doi.org/10.15666/aeer/2206_54675481
  22. 22. Bozdağ B, Kocabaş O, Akyol Y, Özdemir C. Bitki anatomisi çalışmalarında el kesitleri için yeni boyama yöntemi [A New Staining Method for Hand-Cut in Plant Anatomy Studies]. Marmara Pharm J. 2016;20:184-90. https://doi.org/10.12991/mpj.20162044231
  23. 23. Jambor H, Antonietti A, Alicea B, Audisio TL, Auer S, Bhardwaj V, et al. Creating clear and informative image-based figures for scientific publications. PLoS Biol. 2021;19(10):1-12. https://doi.org/10.1371/journal.pbio.3001323
  24. 24. Chaker AN, Boukhebti H, Sahli F, Haichour R, Sahraoui R. Morphological and anatomical study of two medicinal plants from genus Mentha. Adv Environ Biol. 2011;5(2):219-21.
  25. 25. Salama AM, Osman EA, El-Tantawy AA. Taxonomical studies on four Mentha species grown in Egypt through morpho-anatomical characters and SCOT genetic markers. Plant Arch. 2019;19(2):2273-86. https://doi.org/10.3923/ajps.2020.152.165
  26. 26. Sevindik M, Akgul H, Pehlivan M, Selamoglu Z. Determination of therapeutic potential of Mentha longifolia ssp. longifolia. Fresen Environ Bull. 2017;26(7):4757-63.
  27. 27. Andro AR, Atofani D, Boz I, Zamfirache MM, Burzo I, Tom C. Studies concerning the histo-anatomy and biochemistry of Mentha longifolia (L.) Huds. during vegetative phenophase. An Ştiinţ Univ “Alexandru Ioan Cuza” Iaşi, Ser II a. Biol Veg. [Sci Ann Alexandru Ioan Cuza Univ Iasi New Ser IIa Biol Veg]. 2011;57(2):25-30.
  28. 28. Ciobanu (Țurlea) EC, Săvulescu E, Badea ML. Anatomical aspects of the stem and leaf of Mentha × piperita L. (Lamiaceae). Curr Trends Nat Sci. 2021;10(19):447-52. https://doi.org/10.47068/ctns.2021.v10i19.059
  29. 29. Octavia ND, Puspitawati RP, Bashri A. Characteristics of anatomical structure and essential oil glands of leaf peppermint (Mentha piperita) and spearmint (Mentha spicata). J World Sci. 2023;2(9):1314-29. https://doi.org/10.58344/jws.v2i9.413
  30. 30. Evert RF. Esaus’ plant anatomy: meristems, cells and tissues of the plant body: their structure, function and development. 3rd ed. New Jersey: John Wiley and Sons; 2006.
  31. 31. Guo L, Plunkert M, Luo X, Liu Z. Developmental regulation of stolon and rhizome. Curr Opin Plant Biol. 2021;59:101970. https://doi.org/10.1016/j.pbi.2020.10.003
  32. 32. Thakur D, Münzbergová Z. Rhizome trait scaling relationships are modulated by growth conditions and are linked to plant fitness. Ann Bot. 2022;129(5):529-40. https://doi.org/10.1093/aob/mcac023
  33. 33. Araki KS, Nagano AJ, Nakano RT, Kitazume T, Yamaguchi K, Hara-Nishimura I, et al. Characterization of rhizome transcriptome and identification of a rhizomatous ER body in the clonal plant Cardamine leucantha. Sci Rep. 2020;10:13291. https://doi.org/10.1038/s41598-020-69941-9
  34. 34. Lata S, Lata R, Ram RB, Verma RS. Morphological and anatomical adaptations of plants to cope up with environmental stress. J Pharmacogn Phytochem. 2021;10(6):142-7.
  35. 35. Sun Q, Lai L, Zhou J, Yi S, Liu X, Guo J, et al. Differences in ecological traits between plants grown in situ and ex situ and implications for conservation. Sustainability. 2022;14(9):5199. https://doi.org/10.3390/su14095199
  36. 36. Aprotosoaie AC, Rugina R, Tănăsescu V, Gacea O, Hancianu M, Miron A, et al. Histo-anatomical researches regarding the influence of Topsin M treatments on Foeniculum vulgare Mill. (Apiaceae). An Ştiint Univ “Al I Cuza” Iaşi, LI(s II a. Biol veg). [Sci Ann Alexandru Ioan Cuza Univ Iasi New Ser IIa Biol Veg]. 2005;39-46.
  37. 37. Kaya A. Lamiaceae familyasının tüy morfolojisi [Trichome morphology of Lamiaceae family]. Ankara Univ Fac Pharm J. 2024;48(34):1219-35. https://doi.org/10.33483/jfpau.1430569
  38. 38. Kolupaev YE, Blume YB. Plant adaptation to changing environment and its enhancement. Open Agric J. 2022;16(Suppl-1, M1):e187433152208251. https://doi.org/10.2174/18743315-v16-e2208251
  39. 39. Joshi S, Trivedi D. Plant adaptations to extreme environments: Survival strategies for plants in harsh or unique habitats - A review. Adv Res Sci. 2023;1(2):1010. https://doi.org/10.54026/ARS/1010
  40. 40. Bezerra AC, Barbosa LS, Zuza JFC, Oliveira AMF, Azevedo CF. Structural characterization of mint (Mentha × villosa Huds) stem and leaf. J Exp Agric Int. 2019;36(2):1-6. https://doi.org/10.9734/jeai/2019/v36i230232
  41. 41. Golparvar AR, Hadipanah A, Mehras Mehrabi A. Diversity in chemical composition from two ecotypes of Mentha longifolia L. and Mentha spicata L. in Iran climatic conditions. J Biodivers Environ Sci 2015;6(4):26-33.
  42. 42. Khamraeva DT, Grabovec NV, Bussmann RW, Khojimatov OK. Leaf morphological and anatomical structure of pregenerative individuals of Ferula tadshikorum in ex situ conditions. Acta Biol Sib. 2021;7:193-210. https://doi.org/10.3897/abs.7.e63714
  43. 43. Khamraeva DT, Tukhtaeva DN, Khojimatov OK, Bussmann RW. Comparative anatomical study of underground and aboveground organs in Ferula tadshikorum Pimenov under natural and introduced environments. Acta Biol Sib. 2024;10:9-29.
  44. 44. Apostol M, Draghia L, Sîrbu C, Efrose RC, Flemetakis E, Hlihor RM, et al. Morphological, anatomical, physiological and genetic studies of Iris aphylla L. wild species conservation in “ex situ” conditions. Agriculture. 2024;14:2358. https://doi.org/10.3390/agriculture14122358
  45. 45. Alves J, Zanandre I, Deuner S, Goulart P, Souza K, Santos M. Antioxidative responses and morpho-anatomical adaptations to waterlogging in Sesbania virgata. Trees. 2012;27:717-28. https://doi.org/10.1007/s00468-012-0827-z

Downloads

Download data is not yet available.