Natural Products and Health
Conflicts of Interest
Abbreviations
5-LOX | 5-Lipoxygenase |
6-HF | 6-Hydroxyflavanone |
AKBA | 11-keto-β-boswellic acid |
AMPK | AMP-activated protein kinase |
CAT | catalpol |
CBD | cannabidiol |
CBR | cannabinoid receptor |
COX-2 | cyclooxygenase 2 |
DM | diabetes mellitus |
DNA | deoxyribonucleic acid |
DRD | dopamine receptor |
EVOO | extra virgin olive oil |
FFA | free fatty acid |
Htyr | hydroxytyrosol |
IL-6 | interleukin 6 |
mRNA | messenger ribonucleic acid |
mTORC1 | mammalian target of rapamycin complex 1 |
NF-κB | nuclear factor kappa B |
Nrf2 | nuclear factor erythroid 2 |
Ole | oleocanthal |
RJ | royal jelly |
SREBP1 | sterol regulatory element-binding protein 1 |
STZ | streptozotocin |
THC | tetrahydrocannabinol |
TNF-α | tumor necrosis factor α |
Tyr | tyrosol |
References
- Oliveira, A.; Ribeiro, A.; Oliveira, É.; Garcia, M.; Soares Júnior, M.; Caliari, M. Structural and physicochemical properties of freeze-dried açaí pulp (Euterpe oleracea Mart.). Food Sci. Technol. 2019, 40, 282–289. [Google Scholar] [CrossRef]
- de Souza Silva, A.P.; de Camargo, A.C.; Lazarini, J.G.; Franchin, M.; Sardi, J.d.C.O.; Rosalen, P.L.; de Alencar, S.M. Phenolic Profile and the Antioxidant, Anti-Inflammatory, and Antimicrobial Properties of Açaí (Euterpe oleracea) Meal: A Prospective Study. Foods 2023, 12, 86. [Google Scholar] [CrossRef]
- de Lima Yamaguchi, K.K.; Pereira, L.F.R.; Lamarão, C.V.; Lima, E.S.; da Veiga-Junior, V.F. Amazon acai: Chemistry and biological activities: A review. Food Chem. 2015, 179, 137–151. [Google Scholar] [CrossRef]
- Martins, G.R.; do Amaral, F.R.L.; Brum, F.L.; Mohana-Borges, R.; de Moura, S.S.T.; Ferreira, F.A.; Sangenito, L.S.; Santos, A.L.S.; Figueiredo, N.G.; Silva, A.S.A.D. Chemical characterization, antioxidant and antimicrobial activities of açaí seed (Euterpe oleracea Mart.) extracts containing A- and B-type procyanidins. LWT 2020, 132, 109830. [Google Scholar] [CrossRef]
- Dias-Souza, M.V.; dos Santos, R.M.; Cerávolo, I.P.; Cosenza, G.; Ferreira Marçal, P.H.; Figueiredo, F.J.B. Euterpe oleracea pulp extract: Chemical analyses, antibiofilm activity against Staphylococcus aureus, cytotoxicity and interference on the activity of antimicrobial drugs. Microb. Pathog. 2018, 114, 29–35. [Google Scholar] [CrossRef]
- Sprenger, L.K.; Giese, E.G.; dos Santos, J.N.; Molento, M.B. In vitro antibacterial effect of Euterpe oleracea Mart. and Theobroma grandiflorum hydroalcoholic extracts. Arch. Veterian Sci. 2016, 21, 2. [Google Scholar] [CrossRef]
- da Silva, M.A.C.N.; do Desterro Soares Brandão Nascimento, M.; de Carvalho, J.E. Traditional Uses, Phytochemistry, Pharmacology and Anticancer Activity of Açaí (Euterpe oleracea Mart): A Narrative Review. Curr. Tradit. Med. 2021, 7, 41–62. [Google Scholar] [CrossRef]
- Silva, M.; Costa, J.H.; Pacheco-Fill, T.; Ruiz, A.; Vidal, F.C.B.; Borges, K.R.A.; Guimarães, S.J.A.; Azevedo-Santos, A.P.S.; Buglio, K.E.; Foglio, M.A.; et al. Açai (Euterpe oleracea Mart.) Seed Extract Induces ROS Production and Cell Death in MCF-7 Breast Cancer Cell Line. Molecules 2021, 26, 3546. [Google Scholar] [CrossRef] [PubMed]
- Alqurashi, R.M.; Galante, L.A.; Rowland, I.R.; Spencer, J.P.; Commane, D.M. Consumption of a flavonoid-rich açai meal is associated with acute improvements in vascular function and a reduction in total oxidative status in healthy overweight men. Am. J. Clin. Nutr. 2016, 104, 1227–1235. [Google Scholar] [CrossRef] [PubMed]
- da Costa, C.A.; de Oliveira, P.R.; de Bem, G.F.; de Cavalho, L.C.; Ognibene, D.T.; da Silva, A.F.; Dos Santos Valença, S.; Pires, K.M.; da Cunha Sousa, P.J.; de Moura, R.S.; et al. Euterpe oleracea Mart.-derived polyphenols prevent endothelial dysfunction and vascular structural changes in renovascular hypertensive rats: Role of oxidative stress. Naunyn-Schmiedeberg’s Arch. Pharmacol. 2012, 385, 1199–1209. [Google Scholar] [CrossRef] [PubMed]
- Laurindo, L.; Barbalho, S.; Araújo, A.; Guiguer, E.; Mondal, A.; Bachtel, G.; Bishayee, A. Açaí (Euterpe oleracea Mart.) in Health and Disease: A Critical Review. Nutrients 2023, 15, 989. [Google Scholar] [CrossRef]
- Mimaki, Y.; Nikaido, T.; Matsumoto, K.; Sashida, Y.; Ohmoto, T. New Steroidal Saponins from the Bulbs of Allium giganteum Exhibiting Potent Inhibition of CAMP Phosphodiesterase Activity. Chem. Pharm. Bull. 1994, 42, 710–714. [Google Scholar] [CrossRef] [PubMed]
- Kawashima, K.; Mimaki, Y.; Sashida, Y. Steroidal Saponins from the Bulbs of Allium schubertii. Phytochemistry 1993, 32, 1267–1272. [Google Scholar] [CrossRef] [PubMed]
- Peng, J.; Yao, X.; Okada, Y.; Okuyama, T. Further Studies on New Furostanol Saponins from the Bulbs of Allium macrostemon. Chem. Pharm. Bull. 1994, 42, 2180–2182. [Google Scholar] [CrossRef] [PubMed]
- Fattorusso, E.; Lanzotti, V.; Taglialatela-Scafati, O.; Di Rosa, M.; Ianaro, A. Cytotoxic Saponins from Bulbs of Allium porrum L. J. Agric. Food Chem. 2000, 48, 3455–3462. [Google Scholar] [CrossRef] [PubMed]
- Harmatha, J.; Buděšínský, M.; Zídek, Z.; Kmoníčková, E. Spirostanol Saponins from Flowers of Allium porrum and Related Compounds Indicating Cytotoxic Activity and Affecting Nitric Oxide Production Inhibitory Effect in Peritoneal Macrophages. Molecules 2021, 26, 6533. [Google Scholar] [CrossRef] [PubMed]
- Barile, E.; Capasso, R.; Izzo, A.A.; Lanzotti, V.; Sajjadi, S.E.; Zolfaghari, B. Structure-Activity Relationships for Saponins from Allium hirtifolium and Allium elburzense and Their Antispasmodic Activity. Planta Med. 2005, 71, 1010–1018. [Google Scholar] [CrossRef] [PubMed]
- Wang, H.; Zheng, Q.; Dong, A.; Wang, J.; Si, J. Chemical Constituents, Biological Activities, and Proposed Biosynthetic Pathways of Steroidal Saponins from Healthy Nutritious Vegetable—Allium. Nutrients 2023, 15, 2233. [Google Scholar] [CrossRef] [PubMed]
- Servili, M.; Esposto, S.; Fabiani, R.; Urbani, S.; Taticchi, A.; Mariucci, F.; Selvaggini, R.; Montedoro, G.F. Phenolic Compounds in Olive Oil: Antioxidant, Health and Organoleptic Activities According to Their Chemical Structure. Inflammopharmacology 2009, 17, 76–84. [Google Scholar] [CrossRef]
- Boskou, D.; Blekas, G.; Tsimidou, M. Olive Oil Composition; Academic Press: Cambridge, MA, USA; AOCS Press: Cambridge, MA, USA, 2006. [Google Scholar]
- Batarfi, W.A.; Mohd Yunus, M.H.; Hamid, A.A. The Effect of Hydroxytyrosol in Type II Epithelial-Mesenchymal Transition in Human Skin Wound Healing. Molecules 2023, 28, 2652. [Google Scholar] [CrossRef]
- González-Acedo, A.; Ramos-Torrecillas, J.; Illescas-Montes, R.; Costela-Ruiz, V.; Ruiz, C.; Melguizo-Rodríguez, L.; García-Martínez, O. The Benefits of Olive Oil for Skin Health: Study on the Effect of Hydroxytyrosol, Tyrosol, and Oleocanthal on Human Fibroblasts. Nutrients 2023, 15, 2077. [Google Scholar] [CrossRef] [PubMed]
- Maleki, V.; Jafari-Vayghan, H.; Saleh-Ghadimi, S.; Adibian, M.; Kheirouri, S.; Alizadeh, M. Effects of Royal jelly on metabolic variables in diabetes mellitus: A systematic review. Complement. Ther. Med. 2019, 43, 20–27. [Google Scholar] [CrossRef] [PubMed]
- Tokunaga, K.H.; Yoshida, C.; Suzuki, K.M.; Maruyama, H.; Futamura, Y.; Araki, Y.; Mishima, S. Antihypertensive effect of peptides from royal jelly in spontaneously hypertensive rats. Biol. Pharm. Bull. 2004, 27, 189–192. [Google Scholar] [CrossRef] [PubMed]
- Viuda-Martos, M.; Pérez-Alvarez, J.A.; Fernández-López, J. Royal jelly: Health benefits and uses in medicine. In Bee Products-Chemical and Biological Properties; Springer: Cham, Switzerland, 2017; pp. 199–218. [Google Scholar]
- Felemban, A.; Alshammari, G.; Yagoub, A.; Al-Harbi, L.; Alhussain, M.; Yahya, M. Activation of AMPK Entails the Protective Effect of Royal Jelly against High-Fat-Diet-Induced Hyperglycemia, Hyperlipidemia, and Non-Alcoholic Fatty Liver Disease in Rats. Nutrients 2023, 15, 1471. [Google Scholar] [CrossRef]
- Liu, P.; Wang, Y.; Gao, J.; Lu, Z.; Yin, W.; Deng, R. Resveratrol trimers from seed cake of Paeonia rockii. Molecules 2014, 19, 19549–19556. [Google Scholar] [CrossRef]
- He, C.N.; Peng, Y.; Xu, L.J.; Liu, Z.A.; Gu, J.; Zhong, A.G.; Xiao, P.G. Three new oligostilbenes from the seeds of Paeonia suffruticosa. Chem. Pharm. Bull. 2010, 58, 843–847. [Google Scholar] [CrossRef]
- Hosokawa, N.; Hara, T.; Kaizuka, T.; Kishi, C.; Takamura, A.; Miura, Y.; Iemura, S.; Natsume, T.; Takehana, K.; Yamada, N.; et al. Nutrient-dependent mTORC1 association with the ULK1-Atg13-FIP200 complex required for autophagy. Mol. Biol. Cell. 2009, 20, 1981–1991. [Google Scholar] [CrossRef]
- Jung, C.H.; Jun, C.B.; Ro, S.H.; Kim, Y.M.; Otto, N.M.; Cao, J.; Kundu, M.; Kim, D.H. ULK-Atg13-FIP200 complexes mediate mTOR signaling to the autophagy machinery. Mol. Biol. Cell 2009, 20, 1992–2003. [Google Scholar] [CrossRef]
- Ganley, I.G.; du, H.L.; Wang, J.; Ding, X.; Chen, S.; Jiang, X.J. ULK1.ATG13.FIP200 complex mediates mTOR signaling and is essential for autophagy. Biol. Chem. 2009, 284, 12297–12305. [Google Scholar] [CrossRef]
- Kim, J.; Kundu, M.; Viollet, B.; Guan, K.L. AMPK and mTOR regulate autophagy through direct phosphorylation of Ulk1. Nat. Cell. Biol. 2011, 13, 132–141. [Google Scholar] [CrossRef]
- Qin, S.; Geng, H.; Wang, G.; Chen, L.; Xia, C.; Yao, J.; Bai, Z.; Deng, L. Suffruticosol C-Mediated Autophagy and Cell Cycle Arrest via Inhibition of mTORC1 Signaling. Nutrients 2022, 14, 5000. [Google Scholar] [CrossRef]
- Lee, J.; You, J.H.; Kim, M.S.; Roh, J.L. Epigenetic reprogramming of epithelial-mesenchymal transition promotes ferroptosis of head and neck cancer. Redox Biol. 2020, 37, 101697. [Google Scholar] [CrossRef]
- Li, T.; Tan, Y.; Ouyang, S.; He, J.; Liu, L. Resveratrol protects against myocardial ischemia-reperfusion injury via attenuating ferroptosis. Gene 2022, 808, 145968. [Google Scholar] [CrossRef]
- Liu, J.; Zhang, M.; Qin, C.; Wang, Z.; Chen, J.; Wang, R.; Hu, J.; Zou, Q.; Niu, X. Resveratrol Attenuate Myocardial Injury by Inhibiting Ferroptosis Via Inducing KAT5/GPX4 in Myocardial Infarction. Front. Pharmacol. 2022, 13, 906073. [Google Scholar] [CrossRef]
- Marino, G.; Morselli, E.; Bennetzen, M.V.; Eisenberg, T.; Megalou, E.; Schroeder, S.; Cabrera, S.; Benit, P.; Rustin, P.; Criollo, A.; et al. Longevity-relevant regulation of autophagy at the level of the acetylproteome. Autophagy 2011, 7, 647–649. [Google Scholar] [CrossRef]
- Selvaraj, S.; Sun, Y.; Sukumaran, P.; Singh, B.B. Resveratrol activates autophagic cell death in prostate cancer cells via downregulation of STIM1 and the mTOR pathway. Mol. Carcinog. 2016, 55, 818–831. [Google Scholar] [CrossRef]
- Garcia-Zepeda, S.P.; Garcia-Villa, E.; Diaz-Chavez, J.; Hernandez-Pando, R.; Gariglio, P. Resveratrol induces cell death in cervical cancer cells through apoptosis and autophagy. Eur. J. Cancer Prev. 2013, 22, 577–584. [Google Scholar] [CrossRef]
- Pozo-Guisado, E.; Alvarez-Barrientos, A.; Mulero-Navarro, S.; Santiago-Josefat, B.; Fernandez-Salguero, P.M. The antiproliferative activity of resveratrol results in apoptosis in MCF-7 but not in MDA-MB-231 human breast cancer cells: Cell-specific alteration of the cell cycle. Biochem. Pharmacol. 2002, 64, 1375–1386. [Google Scholar] [CrossRef]
- Delmas, D.; Passilly-Degrace, P.; Jannin, B.; Malki, M.C.; Latruffe, N. Resveratrol, a chemopreventive agent, disrupts the cell cycle control of human SW480 colorectal tumor cells. Int. J. Mol. Med. 2002, 10, 193–199. [Google Scholar] [CrossRef]
- Bhardwaj, A.; Sethi, G.; Vadhan-Raj, S.; Bueso-Ramos, C.; Takada, Y.; Gaur, U.; Nair, A.S.; Shishodia, S.; Aggarwal, B.B. Resveratrol inhibits proliferation, induces apoptosis, and overcomes chemoresistance through down-regulation of STAT3 and nuclear factor-kappaB-regulated antiapoptotic and cell survival gene products in human multiple myeloma cells. Blood 2007, 109, 2293–2302. [Google Scholar] [CrossRef]
- Onorati, A.V.; Dyczynski, M.; Ojha, R.; Amaravadi, R.K. Targeting autophagy in cancer. Cancer 2018, 124, 3307–3318. [Google Scholar] [CrossRef]
- Li, Y.; Yang, G.; Yang, C.; Tang, P.; Chen, J.; Zhang, J.; Liu, J.; Ouyang, L.J. Targeting Autophagy-Related Epigenetic Regulators for Cancer Drug Discovery. Med. Chem. 2021, 64, 11798–11815. [Google Scholar] [CrossRef]
- Yan, Y.Q.; Zhang, B.; Wang, L.; Xie, Y.H.; Peng, T.; Bai, B.; Zhou, P.K. Induction of apoptosis and autophagic cell death by the vanillin derivative 6-bromine-5-hydroxy-4-methoxybenzaldehyde is accompanied by the cleavage of DNA-PKcs and rapid destruction of c-Myc oncoprotein in HepG2 cells. Cancer Lett. 2007, 252, 280–289. [Google Scholar] [CrossRef]
- Yokoyama, T.; Kondo, Y.; Kondo, S. Roles of mTOR and STAT3 in autophagy induced by telomere 3’ overhang-specific DNA oligonucleotides. Autophagy 2007, 3, 496–498. [Google Scholar] [CrossRef]
- Yao, J.C.; Shah, M.H.; Ito, T.; Bohas, C.L.; Wolin, E.M.; van Cutsem, E.; Hobday, T.J.; Okusaka, T.; Capdevila, J.; de Vries, E.G.; et al. Everolimus for advanced pancreatic neuroendocrine tumors. N. Engl. J. Med. 2011, 364, 514–523. [Google Scholar] [CrossRef]
- Akbar, S.; Subhan, F.; Karim, N.; Shahid, M.; Ahmad, N.; Ali, G.; Mahmood, W.; Fawad, K. 6-Methoxyflavanone attenuates mechanical allodynia and vulvodynia in the streptozotocin-induced diabetic neuropathic pain. Biomed. Pharmacother. 2016, 84, 962–971. [Google Scholar] [CrossRef]
- Basu, A.D.; Anindhya, S.S.; Manoj, P.; Manash, P.C.; Pronobesh, B.; Kaushik, M.R. STAT3 and NF-κB are common targets for kaempferol-mediated attenuation of COX-2 expression in IL-6-induced macrophages and carrageenan-induced mouse paw edema. Biochem. Biophys. Rep. 2017, 12, 54–61. [Google Scholar] [CrossRef]
- Ren, L.; Wang, F.; Xu, Z.; Chan, W.M.; Zhao, C.; Xue, H. GABAA receptor subtype selectivity underlying anxiolytic effect of 6-hydroxyflavone. Biochem. Pharmacol. 2010, 79, 1337–1344. [Google Scholar] [CrossRef]
- Akbar, S.; Subhan, F.; Akbar, A.; Habib, F.; Shahbaz, N.; Ahmad, A.; Wadood, A.; Salman, S. Targeting Anti-Inflammatory Pathways to Treat Diabetes-Induced Neuropathy by 6-Hydroxyflavanone. Nutrients 2023, 15, 2552. [Google Scholar] [CrossRef]
- Tegeder, I.; Geisslinger, G. Opioids as modulators of cell death and survival—Unraveling mechanisms and revealing new indications. Pharmacol. Rev. 2004, 56, 351–369. [Google Scholar] [CrossRef]
- Ali, T.M.; Abo-Salem, O.M.; El Esawy, B.H.; El Askary, A. The Potential Protective Effects of Diosmin on Streptozotocin-Induced Diabetic Cardiomyopathy in Rats. Am. J. Med. Sci. 2020, 359, 32–41. [Google Scholar] [CrossRef]
- Chen, X.; Yun, C.; Zheng, H.; Chen, X.; Han, Q.; Pan, H.; Wang, Y.; Zhong, J. The protective effects of S14G-humanin (HNG) against streptozotocin (STZ)-induced cardiac dysfunction. Bioengineered 2021, 12, 5491–5503. [Google Scholar] [CrossRef] [PubMed]
- Li, F.; Peng, J.; Feng, H.; Yang, Y.; Gao, J.; Liu, C.; Xu, J.; Zhao, Y.; Pan, S.; Wang, Y.; et al. KLF9 Aggravates Streptozotocin-Induced Diabetic Cardiomyopathy by Inhibiting PPARγ/NRF2 Signalling. Cells 2022, 11, 3393. [Google Scholar] [CrossRef]
- Ding, X.; Jian, T.; Li, J.; Lv, H.; Tong, B.; Li, J.; Meng, X.; Ren, B.; Chen, J. Chicoric Acid Ameliorates Nonalcoholic Fatty Liver Disease via the AMPK/Nrf2/NFκB Signaling Pathway and Restores Gut Microbiota in High-Fat-Diet-Fed Mice. Oxidative Med. Cell. Longev. 2020, 2020, 9734560. [Google Scholar] [CrossRef]
- Chen, J.; Zhang, Z.; Cai, L. Diabetic cardiomyopathy and its prevention by nrf2: Current status. Diabetes Metab. J. 2014, 38, 337–345. [Google Scholar] [CrossRef]
- Raish, M.; Ahmad, A.; Bin Jardan, Y.A.; Shahid, M.; Alkharfy, K.M.; Ahad, A.; Ansari, M.A.; Abdelrahman, I.A.; Al-Jenoobi, F.I. Sinapic acid ameliorates cardiac dysfunction and cardiomyopathy by modulating NF-κB and Nrf2/HO-1 signaling pathways in streptozocin induced diabetic rats. Biomed. Pharmacother. 2022, 145, 112412. [Google Scholar] [CrossRef]
- Barakat, B.M.; Ahmed, H.I.; Bahr, H.I.; Elbahaie, A.M. Protective effect of boswellic acids against doxorubicin-induced hepatotoxicity: Impact on Nrf2/HO-1 defense pathway. Oxidative Med. Cell. Longev. 2018, 2018, 8296451. [Google Scholar] [CrossRef]
- AlTamimi, J.; AlFaris, N.; Alshammari, G.; Alagal, R.; Aljabryn, D.; Yahya, M. The Protective Effect of 11-Keto-β-Boswellic Acid against Diabetic Cardiomyopathy in Rats Entails Activation of AMPK. Nutrients 2023, 15, 1660. [Google Scholar] [CrossRef]
- Nithiya, T.; Udayakumar, R. In Vitro Antioxidant Properties of Phloretin—An Important Phytocompound. J. Biosci. Med. 2016, 4, 85–94. [Google Scholar]
- Nithiya, T.; Udayakumar, R. Protective effect of phloretin on hyperglycemia mediated oxidative stress in experimental diabetic rats. Integr. Food Nutr. Metab. 2017, 5, 1–6. [Google Scholar]
- Yang, Q.; Han, L.; Li, J.; Xu, H.; Liu, X.; Wang, X.; Pan, C.; Lei, C.; Chen, H.; Lan, X. Activation of Nrf2 by Phloretin Attenuates Palmitic Acid-Induced Endothelial Cell Oxidative Stress via AMPK-Dependent Signaling. J. Agric. Food Chem. 2018, 67, 120–131. [Google Scholar] [CrossRef]
- Al-Hussan, R.; Albadr, N.; Alshammari, G.; Almasri, S.; Yahya, M. Phloretamide Prevent Hepatic and Pancreatic Damage in Diabetic Male Rats by Modulating Nrf2 and NF-κB. Nutrients 2023, 15, 1456. [Google Scholar] [CrossRef]
- Bai, Y.; Zhu, R.; Tian, Y.; Li, R.; Chen, B.; Zhang, H.; Xia, B.; Zhao, D.; Mo, F.; Zhang, D.; et al. Catalpol in Diabetes and its Complications: A Review of Pharmacology, Pharmacokinetics, and Safety. Molecules 2019, 24, 3302. [Google Scholar] [CrossRef]
- Zhang, H.; Wu, Z.M.; Yang, Y.P.; Shaukat, A.; Yang, J.; Guo, Y.F.; Zhang, T.; Zhu, X.Y.; Qiu, J.X.; Deng, G.Z.; et al. Catalpol ameliorates LPS-induced endometritis by inhibiting inflammation and TLR4/NF-κB signaling. J. Zhejiang Univ. Sci. B 2019, 20, 816–827. [Google Scholar] [CrossRef]
- Shu, A.; Du, Q.; Chen, J.; Gao, Y.; Zhu, Y.; Lv, G.; Lu, J.; Chen, Y.; Xu, H. Catalpol ameliorates endothelial dysfunction and inflammation in diabetic nephropathy via suppression of RAGE/RhoA/ROCK signaling pathway. Chem. Interact. 2021, 348, 109625. [Google Scholar] [CrossRef]
- Bi, J.; Jiang, B.; Liu, J.H.; Lei, C.; Zhang, X.L.; An, L.-J. Protective effects of catalpol against H2O2-induced oxidative stress in astrocytes primary cultures. Neurosci. Lett. 2008, 442, 224–227. [Google Scholar] [CrossRef]
- Mao, Y.-R.; Jiang, L.; Duan, Y.-L.; An, L.-J.; Jiang, B. Efficacy of catalpol as protectant against oxidative stress and mitochondrial dysfunction on rotenone-induced toxicity in mice brain. Environ. Toxicol. Pharmacol. 2007, 23, 314–318. [Google Scholar] [CrossRef]
- Ge, H.; Lin, W.; Lou, Z.; Chen, R.; Shi, H.; Zhao, Q.; Lin, Z. Catalpol alleviates myocardial ischemia reperfusion injury by activating the Nrf2/HO-1 signaling pathway. Microvasc. Res. 2022, 140, 104302. [Google Scholar] [CrossRef]
- Chen, Y.; Chen, J.; Jiang, M.; Fu, Y.; Zhu, Y.; Jiao, N.; Liu, L.; Du, Q.; Wu, H.; Xu, H.; et al. Loganin and catalpol exert cooperative ameliorating effects on podocyte apoptosis upon diabetic nephropathy by targeting AGEs-RAGE signaling. Life Sci. 2020, 252, 117653. [Google Scholar] [CrossRef]
- Yap, K.H.; Yee, G.S.; Candasamy, M.; Tan, S.C.; Md, S.; Abdul Majeed, A.B.; Bhattamisra, S.K. Catalpol ameliorates insulin sensitivity and mitochondrial respiration in skeletal muscle of type-2 diabetic mice through insulin signaling pathway and ampk/sirt1/pgc-1α/ppar-γ activation. Biomolecules 2020, 10, 1360. [Google Scholar] [CrossRef]
- Liu, Z.; Zhu, P.; Zhang, L.; Xiong, B.; Tao, J.; Guan, W.; Li, C.; Chen, C.; Gu, J.; Duanmu, J.; et al. Autophagy inhibition attenuates the induction of anti-inflammatory effect of catalpol in liver fibrosis. Biomed. Pharmacother. 2018, 103, 1262–1271. [Google Scholar] [CrossRef] [PubMed]
- Zaaba, N.; Al-Salam, S.; Beegam, S.; Elzaki, O.; Yasin, J.; Nemmar, A. Catalpol Attenuates Oxidative Stress and Inflammation via Mechanisms Involving Sirtuin-1 Activation and NF-κB Inhibition in Experimentally-Induced Chronic Kidney Disease. Nutrients 2023, 15, 237. [Google Scholar] [CrossRef] [PubMed]
- Pellati, F.; Borgonetti, V.; Brighenti, V.; Biagi, M.; Benvenuti, S.; Corsi, L. Cannabis sativa L. and Nonpsychoactive Cannabinoids: Their Chemistry and Role against Oxidative Stress, Inflammation, and Cancer. Biomed. Res. Int. 2018, 2018, 1691428. [Google Scholar]
- Bartkowiak-Wieczorek, J.; Mądry, E.; Książkiewicz, M.; Winkler-Galicki, J.; Szalata, M.; Szalata, M.; Jiménez, U.; Wielgus, K.; Grześkowiak, E.; Słomski, R.; et al. THC-Reduced Cannabis sativa L.—How Does the Solvent Determine the Bioavailability of Cannabinoids Given Orally? Nutrients 2023, 15, 2646. [Google Scholar] [CrossRef] [PubMed]
- Dyr, W.; Ligieza, J.; Kostowski, W. The effect of cannabinoid CB(1) receptor antagonist rimonabant (SR-141716) on ethanol drinking in high-preferring rats. Alcohol 2008, 42, 509–512. [Google Scholar] [CrossRef] [PubMed]
- Szulc, M.; Kujawski, R.; Pacholak, A.; Poprawska, M.; Czora-Poczwardowska, K.; Geppert, B.; Mikołajczak, P. Cannabidiol as a Modulator of the Development of Alcohol Tolerance in Rats. Nutrients 2023, 15, 1702. [Google Scholar] [CrossRef]
- Saha, S.; Patel, N. What Should I Eat? Dietary Recommendations for Patients with Inflammatory Bowel Disease. Nutrients 2023, 15, 896. [Google Scholar] [CrossRef]
- Veeresham, C. Natural products derived from plants as a source of drugs. J. Adv. Pharm. Technol. Res. 2012, 3, 200–201. [Google Scholar] [CrossRef]
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Bartkowiak-Wieczorek, J.; Mądry, E. Natural Products and Health. Nutrients 2024, 16, 415. https://doi.org/10.3390/nu16030415
Bartkowiak-Wieczorek J, Mądry E. Natural Products and Health. Nutrients. 2024; 16(3):415. https://doi.org/10.3390/nu16030415
Chicago/Turabian StyleBartkowiak-Wieczorek, Joanna, and Edyta Mądry. 2024. "Natural Products and Health" Nutrients 16, no. 3: 415. https://doi.org/10.3390/nu16030415