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Effects of Strigalactone Applications on Increasing Tolerance to Abiotic Stress Conditions in Plants

Yıl 2024, Cilt: 7 Sayı: 2, 71 - 85
https://doi.org/10.55257/ethabd.1552107

Öz

Abiotic stress is the adverse effect of any abiotic factor on plants in a given environment and affects the growth and development of plants. These stress factors such as drought, salinity and extreme temperatures are usually associated with each other or coexist. Abiotic stress is largely responsible for the decrease in agricultural production, while other stress factors are less effective. Abiotic stress factors include drought, salinity, high and low temperature, flooding, radiation, heavy metals, oxidative stress, wind and nutrient deficiency, and these stress sources negatively affect plant development, quality and productivity. Various strategies are used to maximize plant growth and productivity under environmental stresses such as abiotic stresses. An alternative and technically simpler approach is to induce tolerance through exogenous application of specific plant growth regulator compounds. In recent years, strigalactone (SL) have attracted great attention due to their essential roles in regulating numerous physiological and molecular pathways during the plant response to abiotic stresses. In this study, the effects of SLs applications on plants grown under some abiotic stress conditions such as salinity, drought, high temperature and heavy metal stress are discussed.

Kaynakça

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Strigalakton Uygulamalarının Bitkilerde Abiyotik Stres Şartlarına Toleransı Artırmadaki Etkileri

Yıl 2024, Cilt: 7 Sayı: 2, 71 - 85
https://doi.org/10.55257/ethabd.1552107

Öz

Abiyotik stres, belirli bir ortamda herhangi bir abiyotik faktörün bitki üzerindeki olumsuz etkisi olup bitkilerin büyümesini ve gelişimini etkiler. Kuraklık, tuzluluk ve aşırı sıcaklıklar gibi stres faktörleri genellikle birbirleriyle ilişkilidir veya birlikte bulunur. Tarımsal üretimin azalmasında büyük oranda abiyotik stres, daha düşük oranlarda ise diğer stres faktörleri etkilidir. Abiyotik stres faktörleri olarak, kuraklık, tuzluluk, yüksek ve düşük sıcaklık, sel, radyasyon, ağır metaller, oksidatif stres, rüzgâr, besin maddesi eksikliği gibi faktörler sayılabilir ve bu stres kaynakları bitki gelişimini, kaliteyi ve verimliliği olumsuz yönde etkilemektedir. Abiyotik stresler gibi çevresel stresler altında bitki büyümesini ve üretkenliği en üst düzeye çıkarmak için çeşitli stratejiler kullanılmaktadır. Alternatif ve teknik olarak daha basit bir yaklaşım, belirli bitki büyümesini düzenleyici bileşiklerin eksojen uygulaması yoluyla toleransı indüklemektir. Son yıllarda, strigalaktonlar (SL) bitkinin abiyotik streslere verdiği tepki boyunca çok sayıda fizyolojik ve moleküler yolu düzenlemedeki temel rolleri nedeniyle büyük ilgi görmüştür. Bu çalışmada, tuzluluk, kuraklık, yüksek sıcaklık ve ağır metal stresi gibi bazı abiyotik stres koşullarında yetiştirilen bitkilerde SL uygulamalarının etkileri tartışılmıştır.

Kaynakça

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  • Shahzad, K., Danish, S., Mubeen, S., Dawar, K., Fahad, S., Hasnain, Z., and Almoallim, H. S., 2024. Minimization of heavy metal toxicity in radish (Raphanus sativus) by strigolactone and biochar. Scientific Reports, 14(1), 13616.
  • Sharma, P., Jha, A. B., and Dubey, R. S., 2024. Strigolactones: Coordination with other Phytohormones and Enhancement of Abiotic Stress Responses. Environmental and Experimental Botany, 105782.
  • Shindo, M., Shimomura, K., Yamaguchi, S., and Umehara, M., 2018. Upregulation of DWARF27 is associated with increased strigolactone levels under sulfur deficiency in rice. Plant Direct 2:e00050. https://doi.org/10.1002/pld3.50.
  • Shu, H., Xu, K., Li, X., Liu, J., Altaf, M. A., Fu, H., and Wang, Z., 2024. Exogenous strigolactone enhanced the drought tolerance of pepper (Capsicum chinense) by mitigating oxidative damage and altering the antioxidant mechanism. Plant Cell Reports, 43(4), 106.
  • Song, M., Zhou, S., Hu, N., Li, J., Huang, Y., Zhang, J., and He, D., 2023. Exogenous strigolactones alleviate drought stress in wheat (Triticum aestivum L.) by promoting cell wall biogenesis to optimize root architecture. Plant Physiology and Biochemistry, 204, 108121.
  • Soto, M. J., Fernandez-Aparicio, M., Castellanos-Morales, V., Garcia-Garrido, J. A., Delgado, M. J., and Vierheilig, H., 2010. First indications for the involvement of strigolactones on nodule formation in alfalfa (Medicago sativa). Soil Biol. Biochem. 42, 383–385.
  • Stavi, I., Thevs, N., and Priori, S., 2021. Soil salinity and sodicity in drylands: A review of causes, effects, monitoring, and restoration measures. Front. Environ. Sci. 330, 712831.
  • Tai, Z., Yin, X., Fang, Z., Shi, G., Lou, L., and Cai, Q., 2017. Exogenous GR24 alleviates cadmium toxicity by reducing cadmium uptake in switchgrass (Panicum virgatum) seedlings. International Journal of Environmental Research and Public Health, 14(8), 852.
  • Talaat, N. B., and Shawky, B. T., 2016. Dual application of 24-epibrassinolide and spermine confers drought stress tolerance in maize (Zea mays L.) by modulating polyamine and protein metabolism. Journal of Plant Growth Regulation, 35(2), 518-533.
  • Tariq, A., Ullah, I., Sardans, J., Graciano, C., Mussarat, S., Ullah, A., ... & Peñuelas, J. (2023). Strigolactones can be a potential tool to fight environmental stresses in arid lands. Environmental Research, 229, 115966.
  • Toh, S., Kamiya, Y., Kawakami, N., Nambara, E., McCourt, P., and Tsuchiya, Y., 2012. Thermoinhibition uncovers a role for strigolactones in Arabidopsis seed germination. Plant Cell Physiol 53:107–117. https:// doi. org/ 10. 1093/ pcp/ pcr176.
  • Trabelsi, I., Yoneyama, K., and Abbes, Z., 2017. Characterization of strigolactones produced by Orobanche foetida and Orobanche crenata resistant faba bean (Vicia faba L.) genotypes and effects of phosphorous, nitrogen, and potassium deficiencies on strigolactone production. South Afr J Bot 108:15–22. https://doi.org/10.1016/j.sajb.2016.09.009.
  • Trasoletti, M., Visentin, I., Campo, E., Schubert, A., and Cardinale, F., 2022. Strigolactones as a hormonal hub for the acclimation and priming to environmental stress in plants. Plant, Cell & Environment, 45(12), 3611-3630.
  • Tsuchiya, Y., Vidaurre, D., Toh, S., Hanada, A., Nambara, E., Kamiya, Y., Yamaguchi, S., and McCourt, P., 2010. A small-molecule screen identifies new functions for the plant hormone strigolactone. Nat Chem Biol 6:741–749. https:// doi. org/ 10. 1038/ nchem bio. 435.
  • Umehara, M., 2011. Strigolactone, a key regulator of nutrient allocation in plants. Plant Biotechnol 28:429–437. https://doi.org/10.5511/plantbiotechnology.11.1109a.
  • Xie, Y., Liu, Y., Ma, M., Zhou, Q., Zhao, Y., and Zhao, B., 2020. Arabidopsis FHY3 and FAR1 integrate light and strigolactone signaling to regulate branching. Nat. Commun. 11:1955. doi: 10.1038/s41467-020-15893-7.
  • van Zeijl, A., Liu, W., Xiao, T. T., Kohlen, W., Yang, W. C., Bisseling, T., and Geurts, R., 2015. “The strigolactone biosynthesis gene DWARF27 is co-opted in rhizobium symbiosis”, BMC Plant Biology, 15(1), 1-15.
  • Visentin, I., Pagliarani, C., Deva, E., Caracci, A., Turečková, V., Novák, O., and Cardinale, F., 2020. A novel strigolactone‐miR156 module controls stomatal behaviour during drought recovery. Plant, cell & environment, 43(7), 1613-1624.
  • Yadav, S., Modi, P., Dave, A., Vijapura, A., Patel, D., and Patel, M., 2020. Effect of Abiotic Stress on Crops. IntechOpen. doi: 10.5772/intechopen.88434.
  • Yang, Y., Zheng, Q., Zhou, K., Xiao, Y., Huang, C., Hu, R., and Wang, J., 2024. Effects of exogenous strigolactone on the cadmium accumulation in Galinsoga parviflora Cav. Chemistry and Ecology, 40(3), 292-304.
  • Yildirim, E., Ekinci, M., Turan, M., Dursun, A., Kul, R., and Parlakova, F., 2015. Roles of glycine betaine in mitigating deleterious effect of salt stress on lettuce (Lactuca sativa L.). Arch. Agron. Soil Sci. 61: 1673-1689. Yoneyama, K., 2019. How do strigolactones ameliorate nutrient deficiencies in plants?. Cold Spring Harbor Perspectives in Biology, 11(8), a034686.
  • Yoneyama, K., Kisugi, T., Xie, X., Arakawa, R., Ezawa, T., Nomura, T., and Yoneyama, K., 2015. Shoot derived signals other than auxin are involved in systemic regulation of strigolactone production in roots. Planta 241:687–698. https:// doi. org/ 10. 1007/s00425- 014- 2208-x.
  • Wani, K. I., Zehra, A., Choudhary, S., Naeem, M., Khan, M., Castroverde, C. D. M., and Aftab, T., 2021. “Mechanistic insights into strigolactone biosynthesis, signaling, and regulation during plant growth and development”. Journal of Plant Growth Regulation. 40(5), 1836-1852.
  • Wani, K. I., Zehra, A., Choudhary, S., Naeem, M., Khan, M., Khan, R., and Aftab, T., 2022. Exogenous Strigolactone (GR24) Positively Regulates Growth, Photosynthesis, and Improves Glandular Trichome Attributes for Enhanced Artemisinin Production in Artemisia annua”. Journal of Plant Growth Regulation. 1-10.
  • Wani, K. I., Naeem, M., Khan, M. M. A. and Afab, T., 2023. Insights into strigolactone (GR24) mediated regulation of cadmium-induced changes and ROS metabolism in Artemisia annua. J. Hazard Mater. 448, 130899.
  • Waters, M. T., Scaffidi, A., Flematti, G. R., and Smith, S. M., 2012. Karrikins force a rethink of strigolactone mode of action. Plant signaling & behavior, 7(8), 969-972.
  • Wu, F., Gao, Y., Yang, W., Sui, N., and Zhu, J., 2022. Biological functions of strigolactones and their crosstalk with other phytohormones. Frontiers in Plant Science, 13, 821563.
  • Zhang, H., Zhao, Y., and Zhu, J.K., Thriving under stress: How plants balance growth and the stress response. Dev. Cell 2020, 55, 529–543.
  • Zhang, H., Zhu, J., Gong, Z., and Zhu, J. K., 2022. Abiotic stress responses in plants. Nat. Rev. Genet. 23, 104–119.
  • Zhang, Y., Xu, J., Li, R., Ge, Y., Li, Y., and Li, R., 2023. Plants’ response to abiotic stress: Mechanisms and strategies. International Journal of Molecular Sciences, 24(13), 10915.
  • Zhao, J., Qin, G., Liu, X., Li, J., Liu, C., Zhou, J., and Liu, J., 2022. Genome-wide identification and expression analysis of HAK/KUP/KT potassium transporter provides insights into genes involved in responding to potassium deficiency and salt stress in pepper (Capsicum annuum L.). 3 Biotech, 12(3), 1-14.
  • Zhou, H., Shi, H., Yang, Y., Feng, X., Chen, X., Xiao, F., and Guo, Y., 2024. Insights into plant salt stress signaling and tolerance. Journal of Genetics and Genomics, 51(1), 16-34.
  • Zhou, X., Tan, Z., and Zhou, Y., 2022. Physiological mechanism of strigolactone enhancing tolerance to low light stress in cucumber seedlings. BMC Plant Biol 22:30. https://doi.org/10.1186/ s12870-021-03414-7.
  • Zulfiqar, H., Shahbaz, M., Ahsan, M., Nafees, M., Nadeem, H., Akram, M., and Fahad, S., 2021. Strigolactone (GR24) induced salinity tolerance in sunflower (Helianthus annuus L.) by ameliorating morpho-physiological and biochemical attributes under in vitro conditions. Journal of Plant Growth Regulation, 40(5), 2079-2091.
Toplam 117 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Konular Ziraat Mühendisliği (Diğer)
Bölüm Makaleler
Yazarlar

Merve Yüce 0000-0002-0113-7071

Ertan Yıldırım 0000-0003-3369-0645

Erken Görünüm Tarihi 10 Ekim 2024
Yayımlanma Tarihi
Gönderilme Tarihi 18 Eylül 2024
Kabul Tarihi 7 Ekim 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 7 Sayı: 2

Kaynak Göster

APA Yüce, M., & Yıldırım, E. (2024). Strigalakton Uygulamalarının Bitkilerde Abiyotik Stres Şartlarına Toleransı Artırmadaki Etkileri. Erciyes Tarım Ve Hayvan Bilimleri Dergisi, 7(2), 71-85. https://doi.org/10.55257/ethabd.1552107