Published December 16, 2025 | Version 1

CYPERACEAE OILASIGA SCH. LACUSTRIS SUBSP. HIPPOLYTI (V.I. KRECZ.) KUKKONEN O'SIMLIGIDA UGLEVOD, FLAVONOID VA BITAMINLAR TARKIBI TAHLILI HAMDA TIBBIY-BIOLOGIK AHAMIYATI

Authors/Creators

Description

Ushbu maqolada Cyperaceae oilasiga mansub umuhim suv o‘simligi –Schoenoplectus lacustris subsp. hippolyti (V.I. Krecz.) Kukkonen o‘simligining uglevod, flavonoid va bitaminlar tarkibi tahlili hamda tibbiy-biologik ahamiyati  yoritildi. Mazkur oilasiga mansub S. lacustris va S. triqueter bo‘yicha xalqaro miqyosda keng tadqiqotlar olib borilgan bo‘lsa, S. lacustris subsp. hippolyti haqida ilmiy ma’lumotlar cheklangan. Cyperaceae oilasi o‘simliklarining chiqindi suvlarni tabiiy tozalash va og‘ir metallarning biokonsentratsiyasida muhim ekologik ahamiyatga ega ekanini, ushbu gidrofit o‘simliklar nafaqat ekologik, balki farmatsevtik ahamiyatga ham ega ekanligi kimyoviy tahlil natijalari asosida xulosalandi. Xususan, maqolada Schoenoplectus lacustris subsp. hippolyti (V.I. Krecz.) Kukkonen O‘zbekiston suv-botqoqli hududlarida tarqalgan. S lacustris subsp. hippolyti o‘simligining yer ustki poya va gul-urug‘ qismlari tarkibidagi suvda eruvchan vitaminlar, yer ustki poya qismi tarkibidagi flavonoidlar va uglevodlar YuSSX usulida o‘rganildi. Uning tarkibida bir qancha uglevodlar, flavonoidlar va vitaminlar aniqlandi. Natijalar tavsifi quyida berilgan. Olingan natijalar hamda turdosh o‘simliklarga oid tadqiqotlar asosida mazkur o‘simlikning  tibbiy-biologik ahamiyati haqida xulosalar tavsiflangan.

Files

50.pdf

Files (917.8 kB)

Name Size Download all
md5:859fb93582746dd0fa9c2540bf348d1b
917.8 kB Preview Download

Additional details

Dates

Accepted
2025-12-16

References

  • 1. Egorova, T. V. (2013). Таксономический обзор рода Schoenoplectus. Новости систематики высших растений, 37(4), 401–417. St. Petersburg: Ботанический институт им. В. Л. Комарова РАН. 2. Sennikov, A. N. (Ed.). (2016). Flora of Uzbekistan. Vol. 1: Amaryllidaceae. Tashkent: Navruz. 3. Duman, F., Cicek, M., & Sezen, G. (2007). Seasonal changes of metal accumulation and distribution in common club rush (Schoenoplectus lacustris) and common reed (Phragmites australis). Ecotoxicology, 16(6), 457–463. https://doi.org/10.1007/s10646-007-0153-0 4. Denny, P. (1997). Implementation of constructed wetlands in developing countries. Water Science and Technology, 35(5), 27–34. 5. Aswad, Z. S., Ali, A. H., & Al-Mhana, N. M. (2020). Energy production and wastewater treatment using Juncus, S. triqueter, P. australis, T. latifolia, and C. alternifolius plants in sediment microbial fuel cell. Desalination and Water Treatment, 188, 108–114. https://doi.org/10.5004/dwt.2020.26338 6. Kadlec, R. H., & Wallace, S. D. (2009). Treatment wetlands (2nd ed.). CRC Press. 7. Vymazal, J. (2011). Constructed wetlands for wastewater treatment: Five decades of experience. Environmental Science & Technology, 45(1), 61–69. https://doi.org/10.1021/es101403q 8. Brix, H. (1997). Do macrophytes play a role in constructed treatment wetlands? Water Science and Technology, 35(5), 11–17. 9. Dotro, G., Langergraber, G., Molle, P., Nivala, J., Puigagut, J., Stein, O., & Von Sperling, M. (2017). Treatment wetlands. IWA Publishing. 10. Tanner, C. C. (2001). Plants as ecosystem engineers in subsurface-flow treatment wetlands. Water Science and Technology, 44(11–12), 9–17. 11. Royal Botanic Gardens, Kew. (2025). Plants of the World Online. https://powo.science.kew.org 12. The Plant List. (2013). A working list of all plant species. http://www.theplantlist.org 13. World Plants. (2025). An online checklist of vascular plants. https://www.worldplants.de 14. Flora of Pakistan. (2025). EFloras. Missouri Botanical Garden & Harvard University Herbaria. http://www.efloras.org/flora_page.aspx?flora_id=5 15. World Flora Online. (2025). An online flora of all known plants. http://www.worldfloraonline.org