Flaxseed oil Ameliorated the expression level of the IL-1β/NLRP3/NRF-1/Sirt-1of diabetic heart conditions.
محورهای موضوعی : Exercise Physiology and PerformanceFarzad Forootan 1 , Fatemeh Zahra Abdollahi 2 , Mitra Shafie 3
1 - Molecular Pathology Laboratory, Department of Molecular and Clinical Cancer Medicine, Liverpool University, Liverpool L69 3GA, United Kingdom
2 - Department of Sports Physiology, Faculty of Sports Sciences, Isfahan (Khorasgan) Branch, Islamic Azad University, Isfahan, Iran.
3 - Department of Plant Biotechnology, Medicinal Plants Research Centre, Isfahan (Khorasgan) Branch, Islamic Azad University, Isfahan, Iran.
کلید واژه: cardiovascular diseases, Flaxseed, H9c2, genes,
چکیده مقاله :
Background: Inflammation and cytokine storms due to cardiovascular diseases (CD). Herbals can be the primary source of compounds with anti-inflammatory properties. Furthermore, herbals agents may consider as a complementary medicine. Bioactive compounds and phytochemicals have potential strategies to halt or manage CD. flaxseed have antioxidant and anti-inflammatory activity. Methods: In this study, we used H9c2 cell lines of rat embryonic cardiomyocytes. To induce CD we used hyperglycemic and hyperlipidemic conditions. Real-Time-PCR performed to evaluated the relative expression of the genes. Results: We found that flaxseed could decreased the expression level of the IL-1β and NLRP3. Moreover, the expression level of the NRF-1 and Sirt-1 increased by flaxseed. Conclusion: Our data proposed that flaxseed could have potential approaches to manage and prevent CD.
Background: Inflammation and cytokine storms due to cardiovascular diseases (CD). Herbals can be the primary source of compounds with anti-inflammatory properties. Furthermore, herbals agents may consider as a complementary medicine. Bioactive compounds and phytochemicals have potential strategies to halt or manage CD. flaxseed have antioxidant and anti-inflammatory activity. Methods: In this study, we used H9c2 cell lines of rat embryonic cardiomyocytes. To induce CD we used hyperglycemic and hyperlipidemic conditions. Real-Time-PCR performed to evaluated the relative expression of the genes. Results: We found that flaxseed could decreased the expression level of the IL-1β and NLRP3. Moreover, the expression level of the NRF-1 and Sirt-1 increased by flaxseed. Conclusion: Our data proposed that flaxseed could have potential approaches to manage and prevent CD.
Abbas, A., Basharat, S., Shahid, M., Raza, F., Tariq, N., & Arshad, M. (2022). Therapeutic comparison of flaxseed and black seed supplementation for treatment of type II diabetic patients: Therapeutic comparison of flaxseed and black seed supplementation. Pakistan BioMedical Journal, 13-17.
Abedpoor, N., Taghian, F., & Hajibabaie, F. (2022). Physical activity ameliorates the function of organs via adipose tissue in metabolic diseases. Acta histochemica, 124(2), 151844.
Adib-Hajbaghery, M., Ardakani, M. F., Sotoudeh, A., & Asadian, A. (2021). Prevalence of complementary and alternative medicine (CAM) among diabetic patients in Eastern Mediterranean country members of the World Health Organization (WHO): A review. Journal of Herbal Medicine, 29, 100476.
Adolphe, J. L., Whiting, S. J., Juurlink, B. H., Thorpe, L. U., & Alcorn, J. (2010). Health effects with consumption of the flax lignan secoisolariciresinol diglucoside. British Journal of Nutrition, 103(7), 929-938.
Akl, E. M., Mohamed, S. S., Hashem, A. I., & Taha, F. S. (2020). Biological activities of phenolic compounds extracted from flaxseed meal. Bulletin of the National Research Centre, 44(1), 1-8.
Al-Temimi, W. K., Al-Garory, N. H., & Khalaf, A. A. (2020). Diagnose the bioactive compounds in flaxseed extract and its oil and use their mixture as an antioxidant. Basrah Journal of Agricultural Sciences, 33(1), 172-188.
Askarpour, M., Karimi, M., Hadi, A., Ghaedi, E., Symonds, M. E., Miraghajani, M., & Javadian, P. (2020). Effect of flaxseed supplementation on markers of inflammation and endothelial function: A systematic review and meta-analysis. Cytokine, 126, 154922.
Badiger, A. B., Gowda, T. M., Rajarajeshwari, S., Saswat, S., Majhi, T. K., & MEHTA, D. (2019). Antimicrobial effect of flaxseed (Linum usitatissimum) on periodontal pathogens: an in vitro study. International Journal of Herbal Medicine, 7(3), 16-19.
Bhachoo, J., & Beuming, T. (2017). Investigating protein–peptide interactions using the Schrödinger computational suite. Modeling peptide-protein interactions, 235-254.
Boudina, S., & Abel, E. D. (2007). Diabetic cardiomyopathy revisited. Circulation, 115(25), 3213-3223.
Bu, D., Luo, H., Huo, P., Wang, Z., Zhang, S., He, Z., . . . Guo, J. (2021). KOBAS-i: intelligent prioritization and exploratory visualization of biological functions for gene enrichment analysis. Nucleic Acids Research.
Burley, S. K., Bhikadiya, C., Bi, C., Bittrich, S., Chen, L., Crichlow, G. V., . . . Duarte, J. M. (2021). RCSB Protein Data Bank: powerful new tools for exploring 3D structures of biological macromolecules for basic and applied research and education in fundamental biology, biomedicine, biotechnology, bioengineering and energy sciences. Nucleic acids research, 49(D1), D437-D451.
Chen, L., Li, J., Zhang, M., Zhang, Q., Wu, L., Lu, Y., . . . Hu, J. (2022). Serum Atrial Natriuretic Peptide, NPPA Promoter Methylation, and Cardiovascular Disease: A 10-year Follow-Up Study in Chinese Adults. Global Heart, 17(1).
Chen, Y.-R., & Zweier, J. L. (2014). Cardiac mitochondria and reactive oxygen species generation. Circulation research, 114(3), 524-537.
Chera, E. I., Pop, R. M., Pârvu, M., Sorițău, O., Uifălean, A., Cătoi, F. A., . . . Pârvu, A. E. (2022). Flaxseed Ethanol Extracts’ Antitumor, Antioxidant, and Anti-Inflammatory Potential. Antioxidants, 11(5), 892.
Chong, Z. Z., Wang, S., Shang, Y. C., & Maiese, K. (2012). Targeting cardiovascular disease with novel SIRT1 pathways. Future Cardiology, 8(1), 89-100.
Colli, M. C., Bracht, A., Soares, A. A., de Oliveira, A. L., Bôer, C. G., de Souza, C. G. M., & Peralta, R. M. (2012). Evaluation of the efficacy of flaxseed meal and flaxseed extract in reducing menopausal symptoms. Journal of medicinal food, 15(9), 840-845.
Domouzoglou, E. M., Naka, K. K., Vlahos, A. P., Papafaklis, M. I., Michalis, L. K., Tsatsoulis, A., & Maratos-Flier, E. (2015). Fibroblast growth factors in cardiovascular disease: The emerging role of FGF21. American Journal of Physiology-Heart and Circulatory Physiology, 309(6), H1029-H1038.
Draganescu, D., Andritoiu, C., Hritcu, D., Dodi, G., & Popa, M. I. (2021). Flaxseed lignans and polyphenols enhanced activity in streptozotocin-induced diabetic rats. Biology, 10(1), 43.
Draganescu, D., Ibanescu, C., Tamba, B., Andritoiu, C., Dodi, G., & Popa, M. (2015). Flaxseed lignan wound healing formulation: Characterization and in vivo therapeutic evaluation. International Journal of Biological Macromolecules, 72, 614-623.
Ebrahimi, B., Nazmara, Z., Hassanzadeh, N., Yarahmadi, A., Ghaffari, N., Hassani, F., . . . Hassanzadeh, G. (2021). Biomedical features of flaxseed against different pathologic situations: A narrative review. Iranian Journal of Basic Medical Sciences, 24(5), 551.
Frati, G., Schirone, L., Chimenti, I., Yee, D., Biondi-Zoccai, G., Volpe, M., & Sciarretta, S. (2017). An overview of the inflammatory signalling mechanisms in the myocardium underlying the development of diabetic cardiomyopathy. Cardiovascular Research, 113(4), 378-388.
Goetze, J. P., Bruneau, B. G., Ramos, H. R., Ogawa, T., de Bold, M. K., & de Bold, A. J. (2020). Cardiac natriuretic peptides. Nature Reviews Cardiology, 17(11), 698-717.
Greco, S., Fasanaro, P., Castelvecchio, S., D’Alessandra, Y., Arcelli, D., Di Donato, M., . . . Martelli, F. (2012). MicroRNA dysregulation in diabetic ischemic heart failure patients. Diabetes, 61(6), 1633-1641.
Gutte, K. B., Sahoo, A. K., & Ranveer, R. C. (2015). Effect of ultrasonic treatment on extraction and fatty acid profile of flaxseed oil. OCL, 22(6), D606.
Hajiahmadi, S., Hosseinzadeh, E., & Hosseinzadeh, M. (2021). Flaxseed and its products improve glycemic control: A systematic review and meta-analysis. Obesity Medicine, 22, 100311.
Hajibabaie, F., Kouhpayeh, S., Mirian, M., Rahimmanesh, I., Boshtam, M., Sadeghian, L., . . . Shariati, L. (2020). MicroRNAs as the actors in the atherosclerosis scenario. Journal of physiology and biochemistry, 76(1), 1-12.
Jahromi, B., Pirvulescu, I., Candido, K. D., & Knezevic, N. N. (2021). Herbal medicine for pain management: efficacy and drug interactions. Pharmaceutics, 13(2), 251.
Kajla, P., Sharma, A., & Sood, D. R. (2015). Flaxseed—a potential functional food source. Journal of food science and technology, 52(4), 1857-1871.
Kezimana, P., Dmitriev, A. A., Kudryavtseva, A. V., Romanova, E. V., & Melnikova, N. V. (2018). Secoisolariciresinol diglucoside of flaxseed and its metabolites: Biosynthesis and potential for nutraceuticals. Frontiers in genetics, 9, 641.
Khosravi, F., Ahmadvand, N., Bellusci, S., & Sauer, H. (2021). The multifunctional contribution of FGF signaling to cardiac development, homeostasis, disease and repair. Frontiers in cell and developmental biology, 9, 1217.
Kim, S., Chen, J., Cheng, T., Gindulyte, A., He, J., He, S., . . . Yu, B. (2021). PubChem in 2021: new data content and improved web interfaces. Nucleic Acids Research, 49(D1), D1388-D1395.
Liu, T., Lin, Y., Wen, X., Jorissen, R. N., & Gilson, M. K. (2007). BindingDB: a web-accessible database of experimentally determined protein–ligand binding affinities. Nucleic Acids Research, 35(suppl_1), D198-D201.
Liu, Z., Zhao, N., Zhu, H., Zhu, S., Pan, S., Xu, J., . . . Wang, J. (2015). Circulating interleukin-1β promotes endoplasmic reticulum stress-induced myocytes apoptosis in diabetic cardiomyopathy via interleukin-1 receptor-associated kinase-2. Cardiovascular diabetology, 14(1), 1-9.
Martins, M. L. S., Lima, A. B. R. d., Champoski, A. F., Pereira, P. C., Martins, F., Tanizawa, C., . . . Précoma, D. B. (2018). Decrease in the inflammatory marker TNF-α after consumption of flaxseed by hypercholesterolemic rabbits. International Journal of Cardiovascular Sciences, 31, 114-122.
Masjedi, M. S., Pour, P. M., Shokoohinia, Y., & Asgary, S. (2021). Effects of Flaxseed on Blood Lipids in Healthy and Dyslipidemic Subjects: A Systematic Review and Meta-Analysis of Randomized Controlled Trials. Current Problems in Cardiology, 100931.
Nandish, S. K. M., Kengaiah, J., Ramachandraiah, C., Shivaiah, A., Shankar, R. L., & Sannaningaiah, D. (2020). Purification and characterization of non-enzymatic glycoprotein (NEGp) from flax seed buffer extract that exhibits anticoagulant and antiplatelet activity. International Journal of Biological Macromolecules, 163, 317-326.
Oomah, B. D. (2001). Flaxseed as a functional food source. Journal of the Science of Food and Agriculture, 81(9), 889-894.
Organization, W. H. (2018). World health statistics 2018: monitoring health for the SDGs, sustainable development goals: World Health Organization.
Otasek, D., Morris, J. H., Bouças, J., Pico, A. R., & Demchak, B. (2019). Cytoscape automation: empowering workflow-based network analysis. Genome biology, 20(1), 1-15.
Parikh, M., Maddaford, T. G., Austria, J. A., Aliani, M., Netticadan, T., & Pierce, G. N. (2019). Dietary flaxseed as a strategy for improving human health. Nutrients, 11(5), 1171.
Patel, D., Vaghasiya, J., Pancholi, S., & Paul, A. (2012). Therapeutic potential of secoisolariciresinol diglucoside: a plant lignan. International Journal of Pharmaceutical Sciences and Drug Research, 4(1), 15-18.
Pettersen, E. F., Goddard, T. D., Huang, C. C., Couch, G. S., Greenblatt, D. M., Meng, E. C., & Ferrin, T. E. (2004). UCSF Chimera—a visualization system for exploratory research and analysis. Journal of computational chemistry, 25(13), 1605-1612.
Prabhu, S. D., & Frangogiannis, N. G. (2016). The biological basis for cardiac repair after myocardial infarction: from inflammation to fibrosis. Circulation research, 119(1), 91-112.
Pruthi, S., Qin, R., Terstreip, S. A., Liu, H., Loprinzi, C. L., Shah, T. R., . . . Carolla, R. L. (2012). A phase III, randomized, placebo-controlled, double-blind trial of flaxseed for the treatment of hot flashes: NCCTG N08C7. Menopause (New York, NY), 19(1), 48.
Russell, J. S., Griffith, T. A., Peart, J. N., & Headrick, J. P. (2020). Cardiomyoblast caveolin expression: effects of simulated diabetes, α-linolenic acid, and cell signaling pathways. American Journal of Physiology-Cell Physiology, 319(1), C11-C20.
Shannon, P., Markiel, A., Ozier, O., Baliga, N. S., Wang, J. T., Ramage, D., . . . Ideker, T. (2003). Cytoscape: a software environment for integrated models of biomolecular interaction networks. Genome research, 13(11), 2498-2504.
Shim, Y. Y., Gui, B., Arnison, P. G., Wang, Y., & Reaney, M. J. (2014). Flaxseed (Linum usitatissimum L.) bioactive compounds and peptide nomenclature: A review. Trends in food science & technology, 38(1), 5-20.
Simbalista, R. L., Sauerbronn, A. V., Aldrighi, J. M., & Arêas, J. A. (2010). Consumption of a flaxseed-rich food is not more effective than a placebo in alleviating the climacteric symptoms of postmenopausal women. The Journal of nutrition, 140(2), 293-297.
Song, W., Wang, H., & Wu, Q. (2015). Atrial natriuretic peptide in cardiovascular biology and disease (NPPA). Gene, 569(1), 1-6.
Szklarczyk, D., Gable, A. L., Nastou, K. C., Lyon, D., Kirsch, R., Pyysalo, S., . . . Bork, P. (2021). The STRING database in 2021: customizable protein–protein networks, and functional characterization of user-uploaded gene/measurement sets. Nucleic acids research, 49(D1), D605-D612.
Tang, Z.-X., Ying, R.-F., Lv, B.-F., Yang, L.-H., Xu, Z., Yan, L.-Q., . . . Wei, Y.-S. (2021). Flaxseed oil: Extraction, Health benefits and products. Quality Assurance and Safety of Crops & Foods, 13(1), 1-19.
Vardell, E. (2015). Natural medicines: a complementary and alternative medicines tool combining natural standard and the natural medicines comprehensive database. Medical Reference Services Quarterly, 34(4), 461-470.
Vashi, R., & Patel, B. M. (2021). NRF-1 in cardiovascular diseases: a ray of hope! Journal of cardiovascular translational research, 14(3), 573-586.
Vulesevic, B., McNeill, B., Giacco, F., Maeda, K., Blackburn, N. J., Brownlee, M., . . . Suuronen, E. J. (2016). Methylglyoxal-induced endothelial cell loss and inflammation contribute to the development of diabetic cardiomyopathy. Diabetes, 65(6), 1699-1713.
Xie, Z., Bailey, A., Kuleshov, M., Clarke, D., Evangelista, J., Jenkins, S., & Lachmann, A. (2021). 357 Wojciechowicz ML, Kropiwnicki E, Jagodnik KM: Gene set knowledge discovery with Enrichr. 358. Current protocols, 1(3), e90.
Xiong, G., Wu, Z., Yi, J., Fu, L., Yang, Z., Hsieh, C., . . . Lu, A. (2021). ADMETlab 2.0: an integrated online platform for accurate and comprehensive predictions of ADMET properties. Nucleic Acids Research, 49(W1), W5-W14.
Zarei, S., Taghian, F., Sharifi, G., & Abedi, H. (2022). Novel prevention insights into depletion of oxidative stress status through regular exercise and grape seed effective substance in heart ischemia rat model. Food Science & Nutrition.
Zhang, X. Y., Huang, Z., Li, Q. J., Zhong, G. Q., Meng, J. J., Wang, D. X., & Tu, R. H. (2020). Ischemic postconditioning attenuates the inflammatory response in ischemia/reperfusion myocardium by upregulating miR‑499 and inhibiting TLR2 activation. Molecular Medicine Reports, 22(1), 209-218.
Zhou, C., Chen, Y., Kang, W., Lv, H., Fang, Z., Yan, F., . . . Shi, J. (2019). Mir-455-3p-1 represses FGF7 expression to inhibit pulmonary arterial hypertension through inhibiting the RAS/ERK signaling pathway. Journal of Molecular and Cellular Cardiology, 130, 23-35.