ارزیابی فیتوشیمیایی، آنتی¬اکسیدانی و ضدآلزایمری نانوذرات نقره سنتز شده با عصاره آبی گیاه خارشتر (Alhagi persarum)
محورهای موضوعی : بیوشیمینیلوفر واحدپوری 1 , امیر آراسته 2
1 - گروه زیست شناسی، واحد رشت، دانشگاه آزاد اسلامی، رشت، ایران
2 - عضو هیئت عملی رشت، دانشگاه آزاد اسلامی واحد رشت، دانشکده ی علوم پایه، گروه میکروبیولوژی
کلید واژه: Alhagi persarum, آنتی اکسیدان, استیل کولین استراز, بیماری آلزایمر, نانوذره,
چکیده مقاله :
گیاه دارویی خارشتر (Alhagi persarum) از گیاهان مقاوم مناطق خشک است که جایگاه ویژه¬ای در طب سنتی ایرانی دارد. هدف از این پژوهش بررسی فیتوشیمیایی، آنتی¬اکسیدانی و ضدآلزایمری نانوذرات نقره سنتز شده با عصاره آبی خارشتر بوده است. ترکیبات موجود در عصاره با گاز کروماتوگرافی جرمی و میزان مهار رادیکال¬های آزاد با آزمون DPPH و میزان مهار آنزیم استیل¬کولین استراز با روش طیف¬سنجی تعیین شد. مهار تولید رشته¬های آمیلوئیدی با طیف¬سنجی فلورسانس بررسی و با میکروسکوپ الکترونی گزاره تائید گردید. تولید نانوذرات نقره با طیف¬سنجی مرئی و مادون قرمز تائید شد و ساختار آن با روش¬ پراکندگی نور دینامیکی (DLS)، پتانسیل زتا، میکروسکوپ الکترونی روبشی (SEM) و طیف¬سنجی پراش پرتو ایکس (XRD) بررسی شد. بیش¬ترین ترکیبات موجود در عصاره Thiophen، Octadecadienoic acid و Inositol بود. با افزایش غلظت نانوذرات، فعالیت آنتی¬اکسیدانی افزایش یافت و بیش¬ترین اثرات مهاری بر آنزیم استیل¬کولین استراز و همچنین بیش¬ترین اثرات مهاری بر تولید رشته¬های آمیلوئیدی در غلظت¬های کم نانوذرات مشاهده گردید. عصاره گیاه A. persarum با اثرات آنتی-اکسیدانی و مهاری که بر آنزیم استیل کولین استراز دارد، می¬تواند به¬عنوان یک ترکیب مکمل غذایی مناسب برای کاهش عوارض بالینی در مبتلایان به آلزایمر مورد استفاده قرار گیرد.
Abstract Alhagi persarum is one of the resistant plants of dry regions, which has a special place in Iranian traditional medicine. The aim of this research was to investigate the phytochemical, antioxidant and anti-Alzheimer properties of silver nanoparticles synthesized with the aqueous extract of A. persarum. The compounds in the extract were determined by GC-MS and the inhibition rate of free radicals was determined by DPPH test and the inhibition rate of acetylcholinesterase enzyme was determined by spectrometry method. Inhibition of the production of amyloid fibrils was investigated by fluorescence spectroscopy and confirmed by electron microscopy. The production of silver nanoparticles was confirmed by visible and infrared spectroscopy, and its structure was investigated by dynamic light scattering (DLS), zeta potential, scanning electron microscopy (SEM) and X-ray diffraction spectroscopy (XRD). The most compounds in the extract were Thiophen, Octadecadienoic acid and Inositol. By increasing the concentration of nanoparticles, the antioxidant activity increased and the most inhibitory effects on acetyl-cholinesterase enzyme as well as the most inhibitory effects on the production of amyloid fibrils were observed at low concentrations of nanoparticles. A. persarum plant extract, with its antioxidant and inhibitory effects on acetylcholinesterase enzyme, can be used as a suitable food supplement to reduce clinical complications in Alzheimer's patients.
References
Al-Khedhairy, A. A., & Wahab, R. (2022). Silver nanoparticles: An instantaneous solution for anticancer activity against human liver (HepG2) and breast (MCF-7) cancer cells. Metals, 12(1), 148.
Al-Shmgani, H. S., Mohammed, W. H., Sulaiman, G. M., & Saadoon, A. H. (2017). Biosynthesis of silver nanoparticles from Catharanthus roseus leaf extract and assessing their antioxidant, antimicrobial, and wound-healing activities. Artificial cells, nanomedicine, and biotechnology, 45(6), 1234-1240.
Arasteh, A., Habibi-Rezaei, M., Ebrahim-Habibi, A., & Moosavi-Movahedi, A. A. (2012). Response surface methodology for optimizing the bovine serum albumin fibrillation. The protein journal, 31(6), 457-465. Retrieved from https://link.springer.com/content/pdf/10.1007/s10930-012-9422-9.pdf
Arasteh, A., & Salehzadeh, A. (2016). Effect of environmental factors on aggregation and fibrillation of kappa casein. New Biotechnology(33), S204.
Chakou, F. Z., Boual, Z., Hadj, M. D. O. E., Belkhalfa, H., Bachari, K., Alaoui-Talibi, E., . . . Abdelkafi, S. (2021). Pharmacological Investigations in Traditional Utilization of Alhagi maurorum Medik. in Saharan Algeria: In Vitro Study of Anti-Inflammatory and Antihyperglycemic Activities of Water-Soluble Polysaccharides Extracted from the Seeds. Plants, 10(12), 2658.
Clogston, J. D., & Patri, A. K. (2011). Zeta potential measurement. Characterization of nanoparticles intended for drug delivery, 63-70.
Dehvari, M., & Ghahghaei, A. (2018). The effect of green synthesis silver nanoparticles (AgNPs) from Pulicaria undulata on the amyloid formation in α-lactalbumin and the chaperon action of α-casein. International Journal of Biological Macromolecules, 108, 1128-1139.
Dubey, K., Anand, B. G., Shekhawat, D. S., & Kar, K. (2017). Eugenol prevents amyloid formation of proteins and inhibits amyloid-induced hemolysis. Scientific reports, 7(1), 1-11.
Folorunso, A., Akintelu, S., Oyebamiji, A. K., Ajayi, S., Abiola, B., Abdusalam, I., & Morakinyo, A. (2019). Biosynthesis, characterization and antimicrobial activity of gold nanoparticles from leaf extracts of Annona muricata. Journal of Nanostructure in Chemistry, 9, 111-117.
Gontijo, L. A. P., Raphael, E., Ferrari, D. P. S., Ferrari, J. L., Lyon, J. P., & Schiavon, M. A. (2020). pH effect on the synthesis of different size silver nanoparticles evaluated by DLS and their size-dependent antimicrobial activity. Matéria (Rio de Janeiro), 25.
Grünblatt, E., Homolak, J., Babic Perhoc, A., Davor, V., Knezovic, A., Osmanovic Barilar, J., . . . Salkovic-Petrisic, M. (2023). From attention-deficit hyperactivity disorder to sporadic Alzheimer’s disease—Wnt/mTOR pathways hypothesis. Frontiers in Neuroscience, 17, 1104985.
Hanseeuw, B. J., Betensky, R. A., Jacobs, H. I., Schultz, A. P., Sepulcre, J., Becker, J. A., . . . Mormino, E. C. (2019). Association of amyloid and tau with cognition in preclinical Alzheimer disease: a longitudinal study. JAMA neurology, 76(8), 915-924.
Hawar, S. N., Al-Shmgani, H. S., Al-Kubaisi, Z. A., Sulaiman, G. M., Dewir, Y. H., & Rikisahedew, J. J. (2022). Green synthesis of silver nanoparticles from Alhagi graecorum leaf extract and evaluation of their cytotoxicity and antifungal activity. Journal of Nanomaterials, 2022, 1-8.
Khatoon, A., Khan, F., Ahmad, N., Shaikh, S., Rizvi, S. M. D., Shakil, S., . . . Ahmed, A. B. F. (2018). Silver nanoparticles from leaf extract of Mentha piperita: eco-friendly synthesis and effect on acetylcholinesterase activity. Life sciences, 209, 430-434.
Mahdi, O., Baharuldin, M. T. H., Nor, N. H. M., Chiroma, S. M., Jagadeesan, S., & Moklas, M. A. M. (2019). Chemicals used for the induction of Alzheimer’s disease-like cognitive dysfunctions in rodents. Biomed Res Ther, 6(11), 3460-3484.
Mutailifu, P., Nuerxiati, R., Lu, C., Huojiaaihemaiti, H., Abuduwaili, A., & Yili, A. (2022). Extraction, purification, and characterization of polysaccharides from Alhagi pseudoalhagi with antioxidant and hypoglycemic activities. Process Biochemistry, 121, 339-348.
Nishanbaev, S., Bobakulov, K. M., Narbutaeva, D., Aripova, S., Khushbaktova, Z., & Abdullaev, N. (2020). Flavonoids from the aerial part of Alhagi persarum of the flora of uzbekistan and their biological activity. Chemistry of Natural Compounds, 56, 729-731.
Nishanbaev, S., Bobakulov, K. M., Nigmatullaev, A., Sham′ yanov, I., Okhundedaev, B., & Abdullaev, N. (2016). Volatile compounds from the aerial parts of four Alhagi species growing in Uzbekistan. Chemistry of Natural Compounds, 52, 167-170.
Obayomi, K. S., Lau, S. Y., Mayowa, I. E., Danquah, M. K., Jianhua, Z., Chiong, T., . . . Rahman, M. M. (2023). Recent advances in graphene-derived materials for biomedical waste treatment. Journal of Water Process Engineering, 51, 103440.
Quiroz, Y. T., Zetterberg, H., Reiman, E. M., Chen, Y., Su, Y., Fox-Fuller, J. T., . . . Villada, M. (2020). Plasma neurofilament light chain in the presenilin 1 E280A autosomal dominant Alzheimer's disease kindred: a cross-sectional and longitudinal cohort study. The Lancet Neurology, 19(6), 513-521.
Saleem, H., Sarfraz, M., Khan, K. M., Anwar, M. A., Zengin, G., Ahmad, I., . . . Ahemad, N. (2020). UHPLC-MS phytochemical profiling, biological propensities and in-silico studies of Alhagi maurorum roots: a medicinal herb with multifunctional properties. Drug development and industrial pharmacy, 46(5), 861-868.
Sehrawat, A. R., Malik, A., Sehrawat, K. D., Singh, A., & Kumar, D. (2021). Antimicrobial and in vitro efficacy of green silver nanoparticles in tissue culture of Alhagi maurorum. Nelumbo, 63(1), 243-253.
Tavassoli, A. P., Anushiravani, M., Hoseini, S. M., Nikakhtar, Z., Baghdar, H. N., Ramezani, M., . . . Emami, S. A. (2020). Phytochemistry and therapeutic effects of Alhagi spp. and tarangabin in the Traditional and modern medicine: a review. Journal of Herbmed Pharmacology, 86-104.
Topal, F. (2019). Anticholinergic and antidiabetic effects of isoeugenol from clove (Eugenia caryophylata) oil. International Journal of Food Properties, 22(1), 583-592.
Vanaja, M., & Annadurai, G. (2013). Coleus aromaticus leaf extract mediated synthesis of silver nanoparticles and its bactericidal activity. Applied Nanoscience, 3, 217-223.
Verma, P., & Maheshwari, S. K. (2018). Preparation of sliver and selenium nanoparticles and its characterization by dynamic light scattering and scanning electron microscopy. Journal of microscopy and ultrastructure, 6(4), 182.
Zhao, W., Wang, L., Chen, H., Qi, L., Yang, R., Ouyang, T., & Ning, L. (2022). Green synthesis, characterization and determination of anti-prostate cancer, cytotoxicity and antioxidant effects of gold nanoparticles synthesized using Alhagi maurorum. Inorganic Chemistry Communications, 141, 109525.