دوره 33، شماره 157 - ( 1-1404 )                   جلد 33 شماره 157 صفحات 165-159 | برگشت به فهرست نسخه ها

Ethics code: IR.MUQ.AEC.1401.031

XML English Abstract Print


Download citation:
BibTeX | RIS | EndNote | Medlars | ProCite | Reference Manager | RefWorks
Send citation to:
Mendeley  
Zotero  
RefWorks

Moslehi A, Komeili Movahhed T, Heidari F. Protective Effect of Chlorogenic Acid on ER-stress and Oxidative Stress Crosstalk in Mice. J Adv Med Biomed Res 2025; 33 (157) :159-165
URL: http://journal.zums.ac.ir/article-1-7633-fa.html
Protective Effect of Chlorogenic Acid on ER-stress and Oxidative Stress Crosstalk in Mice. Journal of Advances in Medical and Biomedical Research. 1404; 33 (157) :159-165

URL: http://journal.zums.ac.ir/article-1-7633-fa.html


چکیده:   (33 مشاهده)

Background and Aims: Cross-talk between endoplasmic reticulum (ER) stress and oxidative stress has been recognized as contributing to several pathological conditions, particularly those affecting the respiratory system. This study aims to investigate the potential protective role of chlorogenic acid (CA) against oxidative stress in a murine model of ER stress induced by tunicamycin.
Material and Methods: Mice were divided into six groups: a control group (saline), a vehicle group (DMSO), a CA group, a tunicamycin group, a CA + tunicamycin group, and a CA + tunicamycin group (both with a 20 mg/kg CA dose). After 72 hours of treatment, protein levels were investigated by ELISA, mRNA levels by RT-PCR, and histopathological alterations were examined by H&E staining.
Results: We found that 20 mg/kg CA alleviated GRP78 mRNA levels, decreased MDA, and increased GSH levels. It also showed potent anti-inflammatory and anti-fibrotic effects in the lungs of ER-stress induced mice.
Conclusion: CA administration decreased oxidative stress markers by alleviating ER stress. This indicates a mechanistic link between ER stress and oxidative stress.

     
نوع مطالعه: مقاله پژوهشی | موضوع مقاله: Pharmacology
دریافت: 1403/11/24 | پذیرش: 1404/2/25 | انتشار: 1404/3/8

فهرست منابع
1. Mohanan A, Washimkar KR, Mugale MN. Unraveling the interplay between vital organelle stress and oxidative stress in idiopathic pulmonary fibrosis. Biochim Biophys Acta Mol Cell Res. 2024;1871(3):119676. [DOI:10.1016/j.bbamcr.2024.119676] [PMID]
2. Marciniak SJ. Endoplasmic reticulum stress in lung disease. Eur Respir Rev. 2017;26(144):170018. [DOI:10.1183/16000617.0018-2017] [PMID] [PMCID]
3. Liang N, Kitts DD. Role of chlorogenic acids in controlling oxidative and inflammatory stress conditions. Nutrients. 2015;8(1):16. [DOI:10.3390/nu8010016] [PMID] [PMCID]
4. Yun N, Kang JW, Lee SM. Protective effects of chlorogenic acid against ischemia/reperfusion injury in rat liver: molecular evidence of its antioxidant and anti-inflammatory properties. J Nutr Biochem. 2012;23(10):1249-55. [DOI:10.1016/j.jnutbio.2011.06.018] [PMID]
5. Santana-Gálvez J, Cisneros-Zevallos L, Jacobo-Velázquez DA. Chlorogenic acid: Recent advances on its dual role as a food additive and a nutraceutical against metabolic syndrome. Molecules. 2017;22(3):358. [DOI:10.3390/molecules22030358] [PMID] [PMCID]
6. Niggeweg R, Michael AJ, Martin C. Engineering plants with increased levels of the antioxidant chlorogenic acid. Nat Biotechnol. 2004;22(6):746-54. [DOI:10.1038/nbt966] [PMID]
7. Awwad S, Issa R, Alnsour L, Albals D, Al-Momani I. Quantification of caffeine and chlorogenic acid in green and roasted coffee samples using HPLC-DAD and evaluation of the effect of degree of roasting on their levels. Molecules. 2021;26(24):7502. [DOI:10.3390/molecules26247502] [PMID] [PMCID]
8. Hayakawa S, Ohishi T, Miyoshi N, Oishi Y, Nakamura Y, Isemura M. Anti-cancer effects of green tea epigallocatchin-3-gallate and coffee chlorogenic acid. Molecules. 2020;25(19):4553. [DOI:10.3390/molecules25194553] [PMID] [PMCID]
9. Moslehi A, Komeili-Movahhed T, Ahmadian M, Ghoddoosi M, Heidari F. Chlorogenic acid attenuates liver apoptosis and inflammation in endoplasmic reticulum stress-induced mice. Iran J Basic Med Sci. 2023;26(4):478.
10. Deng J, Liu J, Chen W, Liang Q, He Y, Sun G. Effects of Natural Products through Inhibiting Endoplasmic Reticulum Stress on Attenuation of Idiopathic Pulmonary Fibrosis. Drug Des Devel Ther. 2024;18:1627-1650. [DOI:10.2147/DDDT.S388920] [PMID] [PMCID]
11. Rodrigues R, Oliveira MB, Alves RC. Chlorogenic acids and caffeine from coffee by-products: A review on skincare applications. Cosmetics. 2023;10(1):12. [DOI:10.3390/cosmetics10010012]
12. Liu YJ, Zhou CY, Qiu CH, Lu XM, Wang YT. Chlorogenic acid induced apoptosis and inhibition of proliferation in human acute promyelocytic leukemia HL‑60 cells. Mol Med Rep. 2013;8(4):1106-10. [DOI:10.3892/mmr.2013.1652] [PMID]
13. Liang N, Kitts DD. Role of chlorogenic acids in controlling oxidative and inflammatory stress conditions. Nutrients. 2015;8(1):16. [DOI:10.3390/nu8010016] [PMID] [PMCID]
14. Rani MP, Raj PS, Nair A, Ranjith S, Rajankutty K, Raghu KG. In vitro and in vivo studies reveal the beneficial effects of chlorogenic acid against ER stress mediated ER-phagy and associated apoptosis in the heart of diabetic rat. Chem -Biol Interact. 2022;351:109755. [DOI:10.1016/j.cbi.2021.109755] [PMID]
15. Moslehi A, Komeili-movahed T, Moslehi M. Antioxidant effects of amygdalin on tunicamycin-induced endoplasmic reticulum stress in the mice liver: Cross talk between endoplasmic reticulum stress and oxidative stress. J Rep Pharm Sci. 2019;8(2):298-302. [DOI:10.4103/jrptps.JRPTPS_35_19]
16. Ma Y, Gao M, Liu D. Chlorogenic acid improves high fat diet-induced hepatic steatosis and insulin resistance in mice. Pharm Res. 2015;32:1200-9. [DOI:10.1007/s11095-014-1526-9] [PMID] [PMCID]
17. Aslan MU, Kıraç E, Yılmaz Ö, Ünal BE, Konuk EK, Özcan F, et al. Effect of tauroursodeoxycholic acid on PUFA levels and inflammation in an animal and cell model of hepatic endoplasmic reticulum stress. Hum Exp Toxicol. 2018;37(8):803-16. [DOI:10.1177/0960327117734621] [PMID]
18. Wan CW, Wong CN, Pin WK, Wong MH, Kwok CY, Chan RY, et al. Chlorogenic acid exhibits cholesterol lowering and fatty liver attenuating properties by up‐regulating the gene expression of PPAR‐α in hypercholesterolemic rats induced with a high‐cholesterol diet. Phytother Res. 2013;27(4):545-51. [DOI:10.1002/ptr.4751] [PMID]
19. Lee JS, Zheng Z, Mendez R, Ha SW, Xie Y, Zhang K. Pharmacologic ER stress induces non-alcoholic steatohepatitis in an animal model. Toxicol Lett. 2012;211(1):29-38. [DOI:10.1016/j.toxlet.2012.02.017] [PMID] [PMCID]
20. Moslehi A, Nabavizadeh F, Zekri A, Amiri F. Naltrexone changes the expression of lipid metabolism‐related proteins in the endoplasmic reticulum stress induced hepatic steatosis in mice. Clin Exp Pharmacol Physiol. 2017;44(2):207-12. [DOI:10.1111/1440-1681.12695] [PMID]
21. Qiu W, Wang Q, Zhang Y, Cao X, Zhao L, Cao L, et al. Diagnosis of Fibrotic Interstitial Lung Diseases Based on the Combination of Label-Free Quantitative Multiphoton Fiber Histology and Machine Learning. Lab Invest. 2025;105(3):102210. [DOI:10.1016/j.labinv.2024.102210] [PMID]
22. Chen P, Chen F, Zhou B. Antioxidative, anti-inflammatory and anti-apoptotic effects of ellagic acid in liver and brain of rats treated by D-galactose. Sci Rep. 2018;8(1):1465. [DOI:10.1038/s41598-018-19732-0] [PMID] [PMCID]
23. Moslehi A, Nabavizadeh F, Zekri A, Amiri F. Naltrexone changes the expression of lipid metabolism‐related proteins in the endoplasmic reticulum stress induced hepatic steatosis in mice. Clin Exp Pharmacol Physiol. 2017;44(2):207-12. [DOI:10.1111/1440-1681.12695] [PMID]
24. Guo Q, Li H, Liu J, Xu L, Yang L, Sun Z, et al. Tunicamycin aggravates endoplasmic reticulum stress and airway inflammation via PERK-ATF4-CHOP signaling in a murine model of neutrophilic asthma. J Asthma. 2017;54(2):125-33. [DOI:10.1080/02770903.2016.1205085] [PMID]
25. Zhang S, Sun B, Wang D, Liu Y, Li J, Qi J, et al. Chlorogenic acid ameliorates damage induced by fluorene-9-bisphenol in porcine sertoli cells. Front Pharmacol. 2021;12:678772. [DOI:10.3389/fphar.2021.678772] [PMID] [PMCID]
26. Larki‐Harchegani A, Fayazbakhsh F, Nourian A, Nili‐Ahmadabadi A. Chlorogenic acid protective effects on paraquat‐induced pulmonary oxidative damage and fibrosis in rats. J Biochem Mol Toxicol. 2023;37(7):e23352. [DOI:10.1002/jbt.23352] [PMID]
27. Yamagata K, Izawa Y, Onodera D, Tagami M. Chlorogenic acid regulates apoptosis and stem cell marker-related gene expression in A549 human lung cancer cells. Mol Cell Biochem. 2018;441:9-19. [DOI:10.1007/s11010-017-3171-1] [PMID]
28. Sang A, Wang Y, Wang S, Wang Q, Wang X, Li X, et al. Quercetin attenuates sepsis-induced acute lung injury via suppressing oxidative stress-mediated ER stress through activation of SIRT1/AMPK pathways. Cell Signal. 2022;96:110363. [DOI:10.1016/j.cellsig.2022.110363] [PMID]
29. Wang Z, Ma P, Wang Y, Hou B, Zhou C, Tian H, et al. Untargeted metabolomics and transcriptomics identified glutathione metabolism disturbance and PCS and TMAO as potential biomarkers for ER stress in lung. Sci Rep. 2021;11(1):14680. [DOI:10.1038/s41598-021-92779-8] [PMID] [PMCID]

بازنشر اطلاعات
Creative Commons License این مقاله تحت شرایط Creative Commons Attribution-NonCommercial 4.0 International License قابل بازنشر است.