DopaBoost™
DopaBoost™
ÍTARLEGRI UPPLÝSINGAR
Taktu 2 hylki á dag eða samkvæmt leiðbeiningum heilbrigðisstarfsmanns.
1. Juárez Olguín, H., Calderón Guzmán, D., Hernández García, E., & Barragán Mejía, G. (2016). The Role of Dopamine and Its Dysfunction as a Consequence of Oxidative Stress. Oxidative Medicine and Cellular Longevity, 2016, 9730467. https://doi.org/10.1155/2016/9730467
2. Marras, C., Beck, J. C., Bower, J. H., Roberts, E., Ritz, B., Ross, G. W., Abbott, R. D., Savica, R., Van Den Eeden, S. K., Willis, A. W., Tanner, C. M., & Parkinson’s Foundation P4 Group (2018). Prevalence of Parkinson's disease across North America. NPJ Parkinson's Disease, 4, 21. https://doi.org/10.1038/s41531018-0058-0
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7. Banjari, I., Marček, T., Tomić, S., & Waisundara, V. Y. (2018). Forestalling the Epidemics of Parkinson's Disease Through Plant-Based Remedies. Frontiers in Nutrition, 5, 95. https://doi.org/10.3389/ fnut.2018.00095
8. Velmurugan, B. K., Rathinasamy, B., Lohanathan, B. P., Thiyagarajan, V., & Weng, C. F. (2018). Neuroprotective Role of Phytochemicals. Molecules (Basel, Switzerland), 23(10), 2485. https://doi. org/10.3390/molecules23102485
9. Zucca, F. A., Segura-Aguilar, J., Ferrari, E., Muñoz, P., Paris, I., Sulzer, D., Sarna, T., Casella, L., & Zecca, L. (2017). Interactions of iron, dopamine and neuromelanin pathways in brain aging and Parkinson's disease. Progress in Neurobiology, 155, 96–119. https://doi.org/10.1016/j.pneurobio.2015.09.012
10. Elumalai, P., & Lakshmi, S. (2016). Role of Quercetin Benefits in Neurodegeneration. Advances in Neurobiology, 12, 229–245. https://doi.org/10.1007/978-3-319-28383-8_12
11. Tamtaji, O. R., Hadinezhad, T., Fallah, M., Shahmirzadi, A. R., Taghizadeh, M., Behnam, M., & Asemi, Z. (2020). The Therapeutic Potential of Quercetin in Parkinson's Disease: Insights into its Molecular and Cellular Regulation. Current Drug Targets, 21(5), 509–518. https://doi.org/10.2174/138945012066619111215 5654
12. Singh, A., Naidu, P. S., & Kulkarni, S. K. (2003). Quercetin potentiates L-Dopa reversal of druginduced catalepsy in rats: possible COMT/MAO inhibition. Pharmacology, 68(2), 81–88. https://doi. org/10.1159/000069533
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