References
Abd Elbar, O. H., Farag, R. E., & Shehata, S. A. (2019). Effect of putrescine application on some growth, biochemical and anatomical characteristics of Thymus vulgaris L. under drought stress. Annals of Agricultural Sciences, 64(2), 129-137.
Abdelkader, M., Voronina, L., Shelepova, O., Puchkov, M., Loktionova, E., Zhanbyrshina, N., ... & Ksenofontov, A. (2023). Monitoring Role of Exogenous Amino Acids on the Proteinogenic and Ionic Responses of Lettuce Plants under Salinity Stress Conditions. Horticulturae, 9(6), 626.
Aftab, T. (2019). A review of medicinal and aromatic plants and their secondary metabolites status under abiotic stress. Journal of Medicinal Plants, 7(3), 99-106.
Ahmed, A. M., El-Gohary, A. E., Osman, S. A., & Khalid, K. A. (2020). Arginine and salinity stress affect morphology and metabolism of Indian borage (Plectranthus amboinicus lour.). Acta Ecologica Sinica, 40(5), 417-424.
Akhmetollayeva, A. S., Zhumabek, A. T., Sutula, M. Y., Tussipkan, D., & Manabayeva, S. ?. (2024). DNA BARCODING ANALYSIS OF THE ASTERACEAE SPECIES FROM KAZAKHSTAN. Eurasian Journal of Applied Biotechnology, (3S).
Al-Fraihat, A. H., Al-Dalain, S. Y., Zatimeh, A. A., & Haddad, M. A. (2023). Enhancing Rosemary (Rosmarinus officinalis, L.) Growth and Volatile Oil Constituents Grown under Soil Salinity Stress by Some Amino Acids. Horticulturae, 9(2), 252.
Alnusaire, T. S., Al-Mushhin, A. A., & Soliman, M. H. (2022). Role of Ascorbic Acid in Alleviating Abiotic Stress in Crop Plants. In Antioxidant Defense in Plants: Molecular Basis of Regulation (pp. 259-283). Singapore: Springer Nature Singapore.
Assaf, M., Korkmaz, A., Karaman, S., & Kulak, M. (2022). Effect of plant growth regulators and salt stress on secondary metabolite composition in Lamiaceae species. South African Journal of Botany, 144, 480-493. https://doi.org/10.1016/j.sajb.2021.10.030
Awuchi, C. G., & Morya, S. (2023). Herbs of asteraceae family: nutritional profile, bioactive compounds, and potentials in therapeutics. Harvesting Food from Weeds, 21-78.
Babota, M., Frumuzachi, O., Nicolescu, A., Stojkovic, D., Sokovic, M., Rocchetti, G., & Vo?tinaru, O. (2023). Phenolic profile, in vitro antimicrobial and in vivo diuretic effects of endemic wild thyme Thymus comosus Heuff ex. Griseb.(Lamiaceae) from Romania. Frontiers in Pharmacology, 14, 1115117.
Bae, D. H., Lane, D. J., Jansson, P. J., & Richardson, D. R. (2018). The old and new biochemistry of polyamines. Biochimica et Biophysica Acta (BBA)-General Subjects, 1862(9), 2053-2068.
Balamurugan, V., Ragavendran, C., Nedumaran, T., Settu, R., Chinnasamy, K., Vasudevan, S., ... & Ansari, M. J. (2024). Drought stress enhances phytochemical, antioxidant, antidiabetic and anticancer properties in Pandanus tectorius. Biochemical Systematics and Ecology, 116, 104889.
Barrientos, N.; Vaquer-sunyer, R.; Gomis, D.; Marcos, M.; Jordà, B.; BarceLó-Llull, B.; PascuaL, A.; Ruiz-Parrado, I. (2021). «Salinidad». En: Vaquer-Sunyer, R.; Barrientos, N. (ed.). Informe Mar Balear 2021 . https:// doi.org/10.62135/ECDV8493
Bhaskar, R., Xavier, L. S. E., Udayakumaran, G., Kumar, D. S., Venkatesh, R., & Nagella, P. (2022). Biotic elicitors: A boon for the in-vitro production of plant secondary metabolites. Plant Cell, Tissue and Organ Culture (PCTOC), 149(1), 7-24.
Bistgani, Z. E., Barker, A. V., & Hashemi, M. (2024). Physiology of medicinal and aromatic plants under drought stress. The Crop Journal, 12, 2, 330.
Bistgani, Z. E., Barker, A. V., Hashemi M. (2023). Review on Physiological and Phytochemical Responses of Medicinal Plants to Salinity Stress. Communications in Soil Science and Plant Analysis, 54, 18,1-16.
Blázquez, M. A. (2024). Polyamines: their role in plant development and stress. Annual Review of Plant Biology, 75.
Chaudhary, S. B., Gujjar, D., Kumar, B., Patel, S. and Simran. (2024). Salinity Stress in Legume Crops: A Comprehensive Review of Effects, Mechanisms, and Mitigation Strategies. Journal of Scientific Research and Reports, 30, 7, 783-799.
Chen, D., Mubeen, B., Hasnain, A., Rizwan, M., Adrees, M., Naqvi, S. A. H., & Din, G. M. U. (2022). Role of promising secondary metabolites to confer resistance against environmental stresses in crop plants: Current scenario and future perspectives. Frontiers in plant science, 13, 881032.
Cui, J., Pottosin, I., Lamade, E., & Tcherkez, G. (2020). What is the role of putrescine accumulated under potassium deficiency?. Plant, Cell & Environment, 43(6), 1331-1347.
Danesh-Shahraki, H., Pirbalouti, A. G., Rajabzadeh, F., & Kachouei, M. A. (2023). Foliar application of salicylic acid and proline to mitigate water deficit impact on purple coneflower (Echinacea purpurea (L.) Moench.). Acta Scientiarum Polonorum Hortorum Cultus, 22(5), 89-97.
Das, G., Das, S., Talukdar, A. D., Venil, C. K., Bose, S., Banerjee, S., ... & Patra, J. K. (2023). Pharmacology and Ethnomedicinal Potential of Selected Plants Species from Apiaceae (Umbelliferae). Combinatorial chemistry & high throughput screening, 26(2), 256-288.
El-Gharbaoui, A., Benítez, G., González-Tejero, M. R., Molero-Mesa, J., & Merzouki, A. (2017). Comparison of Lamiaceae medicinal uses in eastern Morocco and eastern Andalusia and in Ibn al-Baytar's Compendium of Simple Medicaments (13th century CE). Journal of ethnopharmacology, 202, 208-224.
Goel, M.K., Mehrotra, S. & Kukreja, A.K. (2011). Elicitor-Induced Cellular and Molecular Events Are Responsible for Productivity Enhancement in Hairy Root Cultures: An Insight Study. Appl Biochem Biotechnol 165, 1342–1355. https://doi.org/10.1007/s12010-011-9351-7
Gupta, A., Gupta, K.K., Gupta, S.K., Mishra, P.K. (2023). Transcriptional Regulation in Biosynthesis of Phytochemicals in Medicinal Plants Under Stress Conditions. In: Singh, D., Mishra, A.K., Srivastava, A.K. (eds) Stress-responsive Factors and Molecular Farming in Medicinal Plants . Springer, Singapore, 123-140. https://doi.org/10.1007/978-981-99-4480-4_8
Haider, M. Z., Ashraf, M. A., Rasheed, R., Hussain, I., Riaz, M., Qureshi, F. F., ... & Hafeez, A. (2023). Impact of salinity stress on medicinal plants. In Medicinal plants: their response to abiotic stress (pp. 199-239). Singapore: Springer Nature Singapore.
Hamed, A. N., Attia, E., & Desoukey, S. Y. (2021). A review on various classes of secondary metabolites and biological activities of Lamiaceae (Labiatae) (2002-2018). Journal of advanced Biomedical and Pharmaceutical Sciences, 4(1), 16-31.
Hasanabadi, S., Ardakani, M. R., Pirbalouti, A. G., Paknejad, F., & Habibi, D. (2024). Organic inputs and L-phenylalanine amino acid impacts on yield and essential oil compounds of sage (Salvia officinalis L.) under different soil moisture conditions.
Ingrisano, R., Tosato, E., Trost, P., Gurrieri, L., & Sparla, F. (2023). Proline, cysteine and branched-chain amino acids in abiotic stress response of land plants and microalgae. Plants, 12(19), 3410.
Isah, T., Umar, S., Mujib, A. et al. (2018). Secondary metabolism of pharmaceuticals in the plant in vitro cultures: strategies, approaches, and limitations to achieving higher yield. Plant Cell Tiss Organ Cult 132, 239–265. https://doi.org/10.1007/s11240-017-1332-2
Isnaini, N., Annisa, A., Prajaputra, V., Maryam, S., Idroes, R., & Khairan, K. (2024, June). Chemical composition and biological activities of essential oils in the family Lamiaceae. In IOP Conference Series: Earth and Environmental Science (Vol. 1356, No. 1, p. 012097). IOP Publishing. DOI 10.1088/1755-1315/1356/1/012097
Jampílek, J., & Králová, K. (2023). Impact of Abiotic Stresses on Production of Secondary Metabolites in Medicinal and Aromatic Plants. In: Aftab, T. (eds) New Frontiers in Plant-Environment Interactions: Environmental Science and Engineering. Springer, Cham. Nature Switzerland (pp. 169-252) https://doi.org/10.1007/978-3-031-43729-8_
Jamwal, K., Bhattacharya, S., Puri, S. (2018). Plant growth regulator mediated consequences of secondary metabolites in medicinal plants. J. Appl. Res. Med. Aromat. Plants. 9, 26–38. doi: 10.1016/j.jarmap.2017.12.003
Kabiri, R., Naghizadeh, M., & Zarea, M. J. (2021). Arginine induced photosynthetic adaptability of ajwain (Trachyspermum ammi) under osmotic stress. Journal of Ethno-Pharmaceutical Products, 2(1), 9-16.
Kawade, K., Tabeta, H., Ferjani, A., & Hirai, M. Y. (2023). The roles of functional amino acids in plant growth and development. Plant and Cell Physiology, 64(12), 1482-1493.
Khalid, M. F., Zakir, I., Khan, R. I., Irum, S., Sabir, S., Zafar, N., ... & Hussain, S. (2023). Effect of water stress (drought and waterlogging) on medicinal plants. In Medicinal Plants: Their Response to Abiotic Stress (pp. 169-182). Singapore: Springer Nature Singapore. https://doi.org/10.1007/978-981-19-5611-9_6
Khan, N., Ali, S., Zandi, P., Mehmood, A., Ullah, S., Ikram, M., ... & Babar, M. A. (2020). Role of sugars, amino acids and organic acids in improving plant abiotic stress tolerance. Pak. J. Bot, 52(2), 355-363.
Kumar, K., Debnath, P., Singh, S., & Kumar, N. (2023a). An overview of plant phenolics and their involvement in abiotic stress tolerance. Stresses, 3(3), 570-585.
Kumar, M., Bharadwaj, H., & Kumari, K. (2023b). Plant Adaptation to Salinity Stress: Significance of Major Metabolites: In. Making Plant Life Easier and Productive Under Salinity - Updates and Prospects. Edited by Naser A. Anjum, Asim Masood, Palaniswamy Thangavel, Nafees A. Khan. DOI: 10.5772/intechopen.106124.
Kurkin, V. A. , Pravdivtseva, O. E. , Zaitseva, E. N. , Dubishchev, A. V. , Tsibina, A. S. , Kurkina, A. V. , Pervushkin, S. V. , Zhdanova, A. V. (2023). Terpenoids and phenolic compounds as biologically active compounds of medicinal plants with diuretic action. Pharmacy and pharmacology. 11, 6, 446.
Kwaslema, D. R., & Michael, P. S. (2024). Meta-analysis of nanomaterials and plants interaction under salinity stress. Physiologia Plantarum, 176(4), e14445.
Lamsaadi, N., Farssi, O., El Moukhtari, A., & Farissi, M. (2024). Different approaches to improve the tolerance of aromatic and medicinal plants to salt stressed conditions. Journal of Applied Research on Medicinal and Aromatic Plants, 39, 100532.
LaPelusa A, Kaushik R., (2022). StatPearls Publishing; Treasure Island (FL): Nov 14,. Physiology, Proteins.
Lenis, Y. Y., Elmetwally, M. A., Maldonado-Estrada, J. G., & Bazer, F. W. (2017). Physiological importance of polyamines. Zygote, 25(3), 244-255.
Lerner, H. R. (2018). Plant Responses to Environmental Stresses: From Phytohormones to Genome Reorganization: From Phytohormones to Genome Reorganization. Routledge.
Liao, Z., Zhang, Y., Yu, Q., Fang, W., Chen, M., Li, T., ... & Luo, L. (2023). Coordination of growth and drought responses by GA-ABA signaling in rice. New Phytologist, 240(3), 1149-1161.
Majeed, A., Muhammad, Z. (2019). Salinity: A Major Agricultural Problem—Causes, Impacts on Crop Productivity and Management Strategies. In: Hasanuzzaman, M., Hakeem, K., Nahar, K., Alharby, H. (eds) Plant Abiotic Stress Tolerance. Springer, Cham. https://doi.org/10.1007/978-3-030-06118-0_3
Marzouk M.M., Hussein S.R., Elkhateeb A., El-shabrawy M., Abdel-Hameed E.S., Kawashty S.A. (2018). Comparative study of Mentha species growing wild in Egypt: LC-ESI-S analysis and chemosystematic significance. Journal of Applied Pharmaceutical Science., 8(08):116-22.
Merlo, M., Giuliani, M., Du, Y., Pechlivanidis, I., & Castelletti, A. (2023, May). A pan-European analysis of drought events and impacts. In EGU General Assembly Conference Abstracts (pp. EGU-12961).
Milon, M. A. A., lutfa Khatun, M., & Islam, M. A. (2020). Polyamines-A Positive Modulator against Biotic and Abiotic Stresses on Plants: Review of Current Knowledge.
Misra, V., & Mall, A. K. (2024). Halotolerance plant growth-promoting rhizobacteria for improving productivity and remediation of saline soils. In Microbiome-Assisted Bioremediation (pp. 453-463). Academic Press.
Mouffouk, S., Mouffouk, C., Mouffouk, S., Mekki, A. H., Messaoud, A. M., & Haba, H. (2023). Anti-inflammatory, antibacterial and antioxidant activities of the medicinal species Atractylis cancellata. Journal of Biological Research-Bollettino della Società Italiana di Biologia Sperimentale, 96,1,11096
Muhammadiyeva, D. (2024). Medicinal Plants–Sources Of Biologically Active Substances. Journal of Management and Economics, 4(05), 19-21.
Nazari, M., Ghasemi-Soloklui, A. A., Kordrostami, M., & Latef, A. A. H. A. (2023). Deciphering the response of medicinal plants to abiotic stressors: A focus on drought and salinity. Plant Stress, 10, 100255.
Nicolas-Espinosa, J., Garcia-Ibañez, P., Lopez-Zaplana, A., Yepes-Molina, L., Albaladejo-Marico, L., & Carvajal, M. (2023). Confronting secondary metabolites with water uptake and transport in plants under abiotic stress. International Journal of Molecular Sciences, 24(3), 2826.
Nieto, G. (2017). Biological activities of three essential oils of the Lamiaceae family. Medicines, 4 (3), 63.
Omokhefe Bruce, S. (2022). Secondary metabolites from natural products. Secondary metabolites-trends and reviews. IntechOpen, 310. DOI: 10.5772/intechopen.102222
Othata P. & Pochai N. (2019). A one-dimensional mathematical simulation to salinity control in a river with a barrage dam using an unconditionally stable explicit finite difference method. Advances in Difference Equations (SpringerOpen), 2019, 1, pp 1-12.
Panda, S. K., da Silva, L. C. N., Sahal, D., & Leonti, M. (2019). Ethnopharmacological studies for the development of drugs with special reference to Asteraceae. Frontiers in Pharmacology, 10, 955.
Pérez-Llorca, M., Pollmann, S., & Müller, M. (2023). Ethylene and jasmonates signaling network mediating secondary metabolites under abiotic stress. International journal of molecular sciences, 24(6), 5990.
Rahman, S., Iqbal, M., & Husen, A. (2023). Medicinal plants and abiotic stress: an overview. In: Husen, A., Iqbal, M. (eds). Medicinal Plants: Their Response to Abiotic Stress, Springer, Singapore. 1-34. https://doi.org/10.1007/978-981-19-5611-9_1
Rai, A.K., Basak, N., Sundha, P., Patel, S., Kumar, S., Bedwal, S., Kajal, Yadav, R. K. & Sharma P. C. (2024). Physical and Chemical Characteristics of Salt-Affected Soils in India. In: Singh, R.K., Prakash, M., Gautam, R.K., Krishnamurthy, S.L., Thirumeni, S. (eds) Genetic Improvement of Rice for Salt Tolerance. Springer, Singapore, 189-205. https://doi.org/10.1007/978-981-99-3830-8_11
Ray, A., Kundu, S., Mohapatra, S. S., Sinha, S., Khoshru, B., Keswani, C., & Mitra, D. (2024). An Insight into the Role of Phenolics in Abiotic Stress Tolerance in Plants: Current Perspective for Sustainable Environment. Journal of Pure & Applied Microbiology, 18(1), 9- 24.
Reshi ZA, Ahmad W, Lukatkin AS, Javed SB. From Nature to Lab (2023). A Review of Secondary Metabolite Biosynthetic Pathways, Environmental Influences, and In Vitro Approaches. Metabolites. 13 (8):895. doi: 10.3390/metabo13080895. PMID: 37623839; PMCID: PMC10456650.
Roy, T., Pal, N., & Das, N. (2024). Regulation of the polyamine pool in plants: metabolic implications and stress mitigation, with emphasis on microbial influence. Physiological and Molecular Plant Pathology, 102317.
Salehi, B., Venditti, A., Frezza, C., Yücetepe, A., Altuntas, Ü., Uluata, S., ... & Sharifi-Rad, J. (2019). Apium plants: Beyond simple food and phytopharmacological applications. Applied Sciences, 9(17), 3547.
Salehi-Lisar, S.Y., Bakhshayeshan-Agdam, H. (2016). Drought Stress in Plants: Causes, Consequences, and Tolerance. In: Hossain, M., Wani, S., Bhattacharjee, S., Burritt, D., Tran, LS. (eds) Drought Stress Tolerance in Plants, Vol 1. Springer, Cham, 1-16. https://doi.org/10.1007/978-3-319-28899-4_1
Sanchez S., Demain A. L. (2011). Secondary metabolites. In: Comprehensive Biotechnology 3rd Edition. Elsevier, Amsterdam.DOI: 10.1016/B978-0-08-088504-9.00018-0.
Shala, A. Y., Aboukamar, A. N., & Gururani, M. A. (2024). Exogenous Application of Gamma Aminobutyric Acid Improves the Morpho-Physiological and Biochemical Attributes in Lavandula dentata L. under Salinity Stress. Horticulturae, 10(4), 410.
Shil, S., & Dewanjee, S. (2022). Impact of drought stress signals on growth and secondary metabolites (SMs) in medicinal plants. J Phytopharmacol, 11(5), 371-6.
Singh, A. (2024). A Review on Traditional uses, Bioactive Chemical Constituents, Pharmacology, and Toxicity of Tinospora cordifolia (Guduchi or Giloy). Research Journal of Pharmacognosy and Phytochemistry, 16(2), 107-111.
Song, J., Yang, J., & Jeong, B. R. (2024). Synergistic Effects of Silicon and Aspartic Acid on the Alleviation of Salt Stress in Celery (Apium graveliens L.)“Si Ji Xiao Xiang Qin”. Plants, 13(15), 2072.
SONG, Q. C., CAO, F. Q., GONG, Y. Y., CHENG, X. Y., BI, X. Y., & LIU, L. H. (2012). Current research progresses of amino acids uptake, transport and their biological roles in higher plants. Journal of Plant Nutrition and Fertilizers, 18(6), 1511-1521.
Soni, S., Jha, A. B., Dubey, R. S., & Sharma, P. (2024). Nanowonders in agriculture: Unveiling the potential of nanoparticles to boost crop resilience to salinity stress. Science of the Total Environment, 925, 171433.
Soroori, S., Danaee, E., Hemmati, K., & Moghadam, A. L. (2021). Effect of foliar application of proline on morphological and physiological traits of Calendula officinalis L. under drought stress.
Sun, Wenli, Mohamad Hesam Shahrajabian, Yue Kuang, and Na Wang. "Amino acids biostimulants and protein hydrolysates in agricultural sciences." Plants 13, no. 2 (2024): 210.
Tadele, K. T., & Zerssa, G. W. (2023). Biostimulants and phytohormones improve productivity and quality of medicinal plants under abiotic stress. In Medicinal Plants: Their Response to Abiotic Stress (pp. 335-362). Singapore: Springer Nature Singapore.
Takahashi, T., & Kakehi, J. I. (2010). Polyamines: ubiquitous polycations with unique roles in growth and stress responses. Annals of botany, 105(1), 1-6.
Tan, U., & Gören, H. K. (2024). Comprehensive evaluation of drought stress on medicinal plants: a meta-analysis. PeerJ, 12, e17801.
Tran, D. Q., Pham, A. C., Nguyen, T. T. T., Vo, T. C., Vu, H. D., Ho, G. T., & Mohsin, S. M. (2024). Growth, Physiological, and Biochemical Responses of a Medicinal Plant Launaea sarmentosa to Salinity. Horticulturae, 10(4), 388.
Ulewicz-Magulska, B., & Wesolowski, M. (2023). Antioxidant Activity of Medicinal Herbs and Spices from Plants of the Lamiaceae, Apiaceae and Asteraceae Families: Chemometric Interpretation of the Data. Antioxidants, 12(12), 2039.
Walia, S.S., Kaur, K., Kaur, T. (2024). Drought, Its Different Types and Drought Management Strategies. In: Rainfed Agriculture and Watershed Management. Springer, Singapore, p.p. 17-26. https://doi.org/10.1007/978-981-99-8425-1_4
Wen, Y., Liao, Y., Tang, Y., Zhang, H., Zhang, J., & Liao, Z. (2023). Metabolic Effects of Elicitors on the Biosynthesis of Tropane Alkaloids in Medicinal Plants. Plants, 12(17), 3050.
Xu, Z., Chang, L. (2017). Apiaceae or Umbelliferae. In: Identification and Control of Common Weeds: Volume 3. Springer, Singapore p.p 3-49. https://doi.org/10.1007/978-981-10-5403-7_1
Yeshi, K., Crayn, D., Ritmejeryte, E., & Wangchuk, P. (2022). Plant secondary metabolites produced in response to abiotic stresses has potential application in pharmaceutical product development. Molecules, 27(1), 313.
Yuan, Y., Song, L., Li, M., Liu, G., Chu, Y., Ma, L., ... & Huang, L. (2012). Genetic variation and metabolic pathway intricacy govern the active compound content and quality of the Chinese medicinal plant Lonicera japonica thunb. BMC genomics, 13, 1-17.