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Published in: European Journal of Medical Research 1/2024

Open Access 01-12-2024 | Heart Failure | Review

Research advances on molecular mechanism and natural product therapy of iron metabolism in heart failure

Authors: Tianqing Zhang, Li Luo, Qi He, Sijie Xiao, Yuwei Li, Junpeng Chen, Tao Qin, Zhenni Xiao, Qingliang Ge

Published in: European Journal of Medical Research | Issue 1/2024

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Abstract

The progression of heart failure (HF) is complex and involves multiple regulatory pathways. Iron ions play a crucial supportive role as a cofactor for important proteins such as hemoglobin, myoglobin, oxidative respiratory chain, and DNA synthetase, in the myocardial energy metabolism process. In recent years, numerous studies have shown that HF is associated with iron dysmetabolism, and deficiencies in iron and overload of iron can both lead to the development of various myocarditis diseases, which ultimately progress to HF. Iron toxicity and iron metabolism may be key targets for the diagnosis, treatment, and prevention of HF. Some iron chelators (such as desferrioxamine), antioxidants (such as ascorbate), Fer-1, and molecules that regulate iron levels (such as lactoferrin) have been shown to be effective in treating HF and protecting the myocardium in multiple studies. Additionally, certain natural compounds can play a significant role by mediating the imbalance of iron-related signaling pathways and expression levels. Therefore, this review not only summarizes the basic processes of iron metabolism in the body and the mechanisms by which they play a role in HF, with the aim of providing new clues and considerations for the treatment of HF, but also summarizes recent studies on natural chemical components that involve ferroptosis and its role in HF pathology, as well as the mechanisms by which naturally occurring products regulate ferroptosis in HF, with the aim of providing reference information for the development of new ferroptosis inhibitors and lead compounds for the treatment of HF in the future.
Literature
2.
go back to reference Mozaffarian D, Benjamin EJ, Go AS, Arnett DK, Blaha MJ, Cushman M, de Ferranti S, Després JP, Fullerton HJ, Howard VJ, Huffman MD, Judd SE, Kissela BM, Lackland DT, Lichtman JH, Lisabeth LD, Liu S, Mackey RH, Matchar DB, McGuire DK, Mohler ER 3rd, Moy CS, Muntner P, Mussolino ME, Nasir K, Neumar RW, Nichol G, Palaniappan L, Pandey DK, Reeves MJ, Rodriguez CJ, Sorlie PD, Stein J, Towfighi A, Turan TN, Virani SS, Willey JZ, Woo D, Yeh RW, Turner MB, American Heart Association Statistics Committee and Stroke Statistics Subcommittee. Heart disease and stroke statistics–2015 update: a report from the American Heart Association. Circulation. 2015;131(4):e29-322. https://doi.org/10.1161/CIR.0000000000000152.CrossRefPubMed Mozaffarian D, Benjamin EJ, Go AS, Arnett DK, Blaha MJ, Cushman M, de Ferranti S, Després JP, Fullerton HJ, Howard VJ, Huffman MD, Judd SE, Kissela BM, Lackland DT, Lichtman JH, Lisabeth LD, Liu S, Mackey RH, Matchar DB, McGuire DK, Mohler ER 3rd, Moy CS, Muntner P, Mussolino ME, Nasir K, Neumar RW, Nichol G, Palaniappan L, Pandey DK, Reeves MJ, Rodriguez CJ, Sorlie PD, Stein J, Towfighi A, Turan TN, Virani SS, Willey JZ, Woo D, Yeh RW, Turner MB, American Heart Association Statistics Committee and Stroke Statistics Subcommittee. Heart disease and stroke statistics–2015 update: a report from the American Heart Association. Circulation. 2015;131(4):e29-322. https://​doi.​org/​10.​1161/​CIR.​0000000000000152​.CrossRefPubMed
6.
go back to reference Heidenreich PA, Bozkurt B, Aguilar D, Allen LA, Byun JJ, Colvin MM, Deswal A, Drazner MH, Dunlay SM, Evers LR, Fang JC, Fedson SE, Fonarow GC, Hayek SS, Hernandez AF, Khazanie P, Kittleson MM, Lee CS, Link MS, Milano CA, Nnacheta LC, Sandhu AT, Stevenson LW, Vardeny O, Vest AR, Yancy CW. 2022 AHA/ACC/HFSA guideline for the management of heart failure: a report of the American College of Cardiology/American Heart Association Joint Committee on Clinical Practice Guidelines. Circulation. 2022;145(18):e895–1032. https://doi.org/10.1161/CIR.0000000000001063.CrossRefPubMed Heidenreich PA, Bozkurt B, Aguilar D, Allen LA, Byun JJ, Colvin MM, Deswal A, Drazner MH, Dunlay SM, Evers LR, Fang JC, Fedson SE, Fonarow GC, Hayek SS, Hernandez AF, Khazanie P, Kittleson MM, Lee CS, Link MS, Milano CA, Nnacheta LC, Sandhu AT, Stevenson LW, Vardeny O, Vest AR, Yancy CW. 2022 AHA/ACC/HFSA guideline for the management of heart failure: a report of the American College of Cardiology/American Heart Association Joint Committee on Clinical Practice Guidelines. Circulation. 2022;145(18):e895–1032. https://​doi.​org/​10.​1161/​CIR.​0000000000001063​.CrossRefPubMed
7.
go back to reference Heidenreich PA, Bozkurt B, Aguilar D, Allen LA, Byun JJ, Colvin MM, Deswal A, Drazner MH, Dunlay SM, Evers LR, Fang JC, Fedson SE, Fonarow GC, Hayek SS, Hernandez AF, Khazanie P, Kittleson MM, Lee CS, Link MS, Milano CA, Nnacheta LC, Sandhu AT, Stevenson LW, Vardeny O, Vest AR, Yancy CW. 2022 AHA/ACC/HFSA guideline for the management of heart failure: executive summary: a report of the American College of Cardiology/American Heart Association Joint Committee on Clinical Practice Guidelines. Circulation. 2022;145(18):e876–94. https://doi.org/10.1161/CIR.0000000000001062.CrossRefPubMed Heidenreich PA, Bozkurt B, Aguilar D, Allen LA, Byun JJ, Colvin MM, Deswal A, Drazner MH, Dunlay SM, Evers LR, Fang JC, Fedson SE, Fonarow GC, Hayek SS, Hernandez AF, Khazanie P, Kittleson MM, Lee CS, Link MS, Milano CA, Nnacheta LC, Sandhu AT, Stevenson LW, Vardeny O, Vest AR, Yancy CW. 2022 AHA/ACC/HFSA guideline for the management of heart failure: executive summary: a report of the American College of Cardiology/American Heart Association Joint Committee on Clinical Practice Guidelines. Circulation. 2022;145(18):e876–94. https://​doi.​org/​10.​1161/​CIR.​0000000000001062​.CrossRefPubMed
11.
go back to reference Ingold I, Berndt C, Schmitt S, Doll S, Poschmann G, Buday K, Roveri A, Peng X, Porto Freitas F, Seibt T, Mehr L, Aichler M, Walch A, Lamp D, Jastroch M, Miyamoto S, Wurst W, Ursini F, Arnér ESJ, Fradejas-Villar N, Schweizer U, Zischka H, Friedmann Angeli JP, Conrad M. Selenium utilization by GPX4 is required to prevent hydroperoxide-induced ferroptosis. Cell. 2018;172(3):409-422.e21. https://doi.org/10.1016/j.cell.2017.11.048.CrossRefPubMed Ingold I, Berndt C, Schmitt S, Doll S, Poschmann G, Buday K, Roveri A, Peng X, Porto Freitas F, Seibt T, Mehr L, Aichler M, Walch A, Lamp D, Jastroch M, Miyamoto S, Wurst W, Ursini F, Arnér ESJ, Fradejas-Villar N, Schweizer U, Zischka H, Friedmann Angeli JP, Conrad M. Selenium utilization by GPX4 is required to prevent hydroperoxide-induced ferroptosis. Cell. 2018;172(3):409-422.e21. https://​doi.​org/​10.​1016/​j.​cell.​2017.​11.​048.CrossRefPubMed
30.
go back to reference Dowdle WE, Nyfeler B, Nagel J, Elling RA, Liu S, Triantafellow E, Menon S, Wang Z, Honda A, Pardee G, Cantwell J, Luu C, Cornella-Taracido I, Harrington E, Fekkes P, Lei H, Fang Q, Digan ME, Burdick D, Powers AF, Helliwell SB, D’Aquin S, Bastien J, Wang H, Wiederschain D, Kuerth J, Bergman P, Schwalb D, Thomas J, Ugwonali S, Harbinski F, Tallarico J, Wilson CJ, Myer VE, Porter JA, Bussiere DE, Finan PM, Labow MA, Mao X, Hamann LG, Manning BD, Valdez RA, Nicholson T, Schirle M, Knapp MS, Keaney EP, Murphy LO. Selective VPS34 inhibitor blocks autophagy and uncovers a role for NCOA4 in ferritin degradation and iron homeostasis in vivo. Nat Cell Biol. 2014;16(11):1069–79. https://doi.org/10.1038/ncb3053.CrossRefPubMed Dowdle WE, Nyfeler B, Nagel J, Elling RA, Liu S, Triantafellow E, Menon S, Wang Z, Honda A, Pardee G, Cantwell J, Luu C, Cornella-Taracido I, Harrington E, Fekkes P, Lei H, Fang Q, Digan ME, Burdick D, Powers AF, Helliwell SB, D’Aquin S, Bastien J, Wang H, Wiederschain D, Kuerth J, Bergman P, Schwalb D, Thomas J, Ugwonali S, Harbinski F, Tallarico J, Wilson CJ, Myer VE, Porter JA, Bussiere DE, Finan PM, Labow MA, Mao X, Hamann LG, Manning BD, Valdez RA, Nicholson T, Schirle M, Knapp MS, Keaney EP, Murphy LO. Selective VPS34 inhibitor blocks autophagy and uncovers a role for NCOA4 in ferritin degradation and iron homeostasis in vivo. Nat Cell Biol. 2014;16(11):1069–79. https://​doi.​org/​10.​1038/​ncb3053.CrossRefPubMed
34.
go back to reference Haddad S, Wang Y, Galy B, Korf-Klingebiel M, Hirsch V, Baru AM, Rostami F, Reboll MR, Heineke J, Flögel U, Groos S, Renner A, Toischer K, Zimmermann F, Engeli S, Jordan J, Bauersachs J, Hentze MW, Wollert KC, Kempf T. Iron-regulatory proteins secure iron availability in cardiomyocytes to prevent heart failure. Eur Heart J. 2017;38(5):362–72. https://doi.org/10.1093/eurheartj/ehw333.CrossRefPubMed Haddad S, Wang Y, Galy B, Korf-Klingebiel M, Hirsch V, Baru AM, Rostami F, Reboll MR, Heineke J, Flögel U, Groos S, Renner A, Toischer K, Zimmermann F, Engeli S, Jordan J, Bauersachs J, Hentze MW, Wollert KC, Kempf T. Iron-regulatory proteins secure iron availability in cardiomyocytes to prevent heart failure. Eur Heart J. 2017;38(5):362–72. https://​doi.​org/​10.​1093/​eurheartj/​ehw333.CrossRefPubMed
52.
go back to reference Kagan VE, Mao G, Qu F, Angeli JP, Doll S, Croix CS, Dar HH, Liu B, Tyurin VA, Ritov VB, Kapralov AA, Amoscato AA, Jiang J, Anthonymuthu T, Mohammadyani D, Yang Q, Proneth B, Klein-Seetharaman J, Watkins S, Bahar I, Greenberger J, Mallampalli RK, Stockwell BR, Tyurina YY, Conrad M, Bayır H. Oxidized arachidonic and adrenic PEs navigate cells to ferroptosis. Nat Chem Biol. 2017;13(1):81–90. https://doi.org/10.1038/nchembio.2238.CrossRefPubMed Kagan VE, Mao G, Qu F, Angeli JP, Doll S, Croix CS, Dar HH, Liu B, Tyurin VA, Ritov VB, Kapralov AA, Amoscato AA, Jiang J, Anthonymuthu T, Mohammadyani D, Yang Q, Proneth B, Klein-Seetharaman J, Watkins S, Bahar I, Greenberger J, Mallampalli RK, Stockwell BR, Tyurina YY, Conrad M, Bayır H. Oxidized arachidonic and adrenic PEs navigate cells to ferroptosis. Nat Chem Biol. 2017;13(1):81–90. https://​doi.​org/​10.​1038/​nchembio.​2238.CrossRefPubMed
53.
go back to reference Doll S, Proneth B, Tyurina YY, Panzilius E, Kobayashi S, Ingold I, Irmler M, Beckers J, Aichler M, Walch A, Prokisch H, Trümbach D, Mao G, Qu F, Bayir H, Füllekrug J, Scheel CH, Wurst W, Schick JA, Kagan VE, Angeli JP, Conrad M. ACSL4 dictates ferroptosis sensitivity by shaping cellular lipid composition. Nat Chem Biol. 2017;13(1):91–8. https://doi.org/10.1038/nchembio.2239.CrossRefPubMed Doll S, Proneth B, Tyurina YY, Panzilius E, Kobayashi S, Ingold I, Irmler M, Beckers J, Aichler M, Walch A, Prokisch H, Trümbach D, Mao G, Qu F, Bayir H, Füllekrug J, Scheel CH, Wurst W, Schick JA, Kagan VE, Angeli JP, Conrad M. ACSL4 dictates ferroptosis sensitivity by shaping cellular lipid composition. Nat Chem Biol. 2017;13(1):91–8. https://​doi.​org/​10.​1038/​nchembio.​2239.CrossRefPubMed
77.
go back to reference Melenovsky V, Petrak J, Mracek T, Benes J, Borlaug BA, Nuskova H, Pluhacek T, Spatenka J, Kovalcikova J, Drahota Z, Kautzner J, Pirk J, Houstek J. Myocardial iron content and mitochondrial function in human heart failure: a direct tissue analysis. Eur J Heart Fail. 2017;19(4):522–30. https://doi.org/10.1002/ejhf.640.CrossRefPubMed Melenovsky V, Petrak J, Mracek T, Benes J, Borlaug BA, Nuskova H, Pluhacek T, Spatenka J, Kovalcikova J, Drahota Z, Kautzner J, Pirk J, Houstek J. Myocardial iron content and mitochondrial function in human heart failure: a direct tissue analysis. Eur J Heart Fail. 2017;19(4):522–30. https://​doi.​org/​10.​1002/​ejhf.​640.CrossRefPubMed
86.
go back to reference Kraft VAN, Bezjian CT, Pfeiffer S, Ringelstetter L, Müller C, Zandkarimi F, Merl-Pham J, Bao X, Anastasov N, Kössl J, Brandner S, Daniels JD, Schmitt-Kopplin P, Hauck SM, Stockwell BR, Hadian K, Schick JA. GTP cyclohydrolase 1/tetrahydrobiopterin counteract ferroptosis through lipid remodeling. ACS Cent Sci. 2020;6(1):41–53. https://doi.org/10.1021/acscentsci.9b01063.CrossRefPubMed Kraft VAN, Bezjian CT, Pfeiffer S, Ringelstetter L, Müller C, Zandkarimi F, Merl-Pham J, Bao X, Anastasov N, Kössl J, Brandner S, Daniels JD, Schmitt-Kopplin P, Hauck SM, Stockwell BR, Hadian K, Schick JA. GTP cyclohydrolase 1/tetrahydrobiopterin counteract ferroptosis through lipid remodeling. ACS Cent Sci. 2020;6(1):41–53. https://​doi.​org/​10.​1021/​acscentsci.​9b01063.CrossRefPubMed
95.
go back to reference Sano M, Minamino T, Toko H, Miyauchi H, Orimo M, Qin Y, Akazawa H, Tateno K, Kayama Y, Harada M, Shimizu I, Asahara T, Hamada H, Tomita S, Molkentin JD, Zou Y, Komuro I. p53-induced inhibition of Hif-1 causes cardiac dysfunction during pressure overload. Nature. 2007;446(7134):444–8. https://doi.org/10.1038/nature05602.CrossRefPubMed Sano M, Minamino T, Toko H, Miyauchi H, Orimo M, Qin Y, Akazawa H, Tateno K, Kayama Y, Harada M, Shimizu I, Asahara T, Hamada H, Tomita S, Molkentin JD, Zou Y, Komuro I. p53-induced inhibition of Hif-1 causes cardiac dysfunction during pressure overload. Nature. 2007;446(7134):444–8. https://​doi.​org/​10.​1038/​nature05602.CrossRefPubMed
102.
go back to reference Oudit GY, Sun H, Trivieri MG, Koch SE, Dawood F, Ackerley C, Yazdanpanah M, Wilson GJ, Schwartz A, Liu PP, Backx PH. L-type Ca2+ channels provide a major pathway for iron entry into cardiomyocytes in iron-overload cardiomyopathy. Nat Med. 2003;9(9):1187–94. https://doi.org/10.1038/nm920.CrossRefPubMed Oudit GY, Sun H, Trivieri MG, Koch SE, Dawood F, Ackerley C, Yazdanpanah M, Wilson GJ, Schwartz A, Liu PP, Backx PH. L-type Ca2+ channels provide a major pathway for iron entry into cardiomyocytes in iron-overload cardiomyopathy. Nat Med. 2003;9(9):1187–94. https://​doi.​org/​10.​1038/​nm920.CrossRefPubMed
104.
go back to reference Sturm B, Bistrich U, Schranzhofer M, Sarsero JP, Rauen U, Scheiber-Mojdehkar B, de Groot H, Ioannou P, Petrat F. Friedreich’s ataxia, no changes in mitochondrial labile iron in human lymphoblasts and fibroblasts: a decrease in antioxidative capacity? J Biol Chem. 2005;280(8):6701–8. https://doi.org/10.1074/jbc.M408717200.CrossRefPubMed Sturm B, Bistrich U, Schranzhofer M, Sarsero JP, Rauen U, Scheiber-Mojdehkar B, de Groot H, Ioannou P, Petrat F. Friedreich’s ataxia, no changes in mitochondrial labile iron in human lymphoblasts and fibroblasts: a decrease in antioxidative capacity? J Biol Chem. 2005;280(8):6701–8. https://​doi.​org/​10.​1074/​jbc.​M408717200.CrossRefPubMed
132.
go back to reference Helman SL, Wilkins SJ, McKeating DR, Perkins AV, Cuffe JSM, Hartel G, Faria N, Powell JJ, Anderson GJ, Frazer DM. A novel ferritin-core analog is a safe and effective alternative to oral ferrous iron for treating iron deficiency during pregnancy in mice. J Nutr. 2022;152(3):714–22. https://doi.org/10.1093/jn/nxab363.CrossRefPubMed Helman SL, Wilkins SJ, McKeating DR, Perkins AV, Cuffe JSM, Hartel G, Faria N, Powell JJ, Anderson GJ, Frazer DM. A novel ferritin-core analog is a safe and effective alternative to oral ferrous iron for treating iron deficiency during pregnancy in mice. J Nutr. 2022;152(3):714–22. https://​doi.​org/​10.​1093/​jn/​nxab363.CrossRefPubMed
134.
go back to reference Cappellini MD, Comin-Colet J, de Francisco A, Dignass A, Doehner W, Lam CS, Macdougall IC, Rogler G, Camaschella C, Kadir R, Kassebaum NJ, Spahn DR, Taher AT, Musallam KM, IRON CORE Group. Iron deficiency across chronic inflammatory conditions: International expert opinion on definition, diagnosis, and management. Am J Hematol. 2017;92(10):1068–78. https://doi.org/10.1002/ajh.24820.CrossRefPubMedPubMedCentral Cappellini MD, Comin-Colet J, de Francisco A, Dignass A, Doehner W, Lam CS, Macdougall IC, Rogler G, Camaschella C, Kadir R, Kassebaum NJ, Spahn DR, Taher AT, Musallam KM, IRON CORE Group. Iron deficiency across chronic inflammatory conditions: International expert opinion on definition, diagnosis, and management. Am J Hematol. 2017;92(10):1068–78. https://​doi.​org/​10.​1002/​ajh.​24820.CrossRefPubMedPubMedCentral
135.
136.
go back to reference López-Vilella R, Lozano-Edo S, Arenas Martín P, Jover-Pastor P, Ezzitouny M, Sorolla Romero J, Calvo Asensio M, Martínez-Solé J, Guerrero Cervera B, Sánchez Martínez JC, Donoso Trenado V, Sánchez-Lázaro I, Martinez Dolz L, Almenar BL. Impact of intravenous ferric carboxymaltose on heart failure with preserved and reduced ejection fraction. ESC Heart Fail. 2022;9(1):133–45. https://doi.org/10.1002/ehf2.13753.CrossRefPubMed López-Vilella R, Lozano-Edo S, Arenas Martín P, Jover-Pastor P, Ezzitouny M, Sorolla Romero J, Calvo Asensio M, Martínez-Solé J, Guerrero Cervera B, Sánchez Martínez JC, Donoso Trenado V, Sánchez-Lázaro I, Martinez Dolz L, Almenar BL. Impact of intravenous ferric carboxymaltose on heart failure with preserved and reduced ejection fraction. ESC Heart Fail. 2022;9(1):133–45. https://​doi.​org/​10.​1002/​ehf2.​13753.CrossRefPubMed
141.
144.
go back to reference Kung YA, Chiang HJ, Li ML, Gong YN, Chiu HP, Hung CT, Huang PN, Huang SY, Wang PY, Hsu TA, Brewer G, Shih SR. Acyl-coenzyme a synthetase long-chain family member 4 is involved in viral replication organelle formation and facilitates virus replication via ferroptosis. MBio. 2022;13(1):e0271721. https://doi.org/10.1128/mbio.02717-21.CrossRefPubMed Kung YA, Chiang HJ, Li ML, Gong YN, Chiu HP, Hung CT, Huang PN, Huang SY, Wang PY, Hsu TA, Brewer G, Shih SR. Acyl-coenzyme a synthetase long-chain family member 4 is involved in viral replication organelle formation and facilitates virus replication via ferroptosis. MBio. 2022;13(1):e0271721. https://​doi.​org/​10.​1128/​mbio.​02717-21.CrossRefPubMed
146.
149.
150.
158.
go back to reference Gupta V, Kumar I, Raj V, Aggarwal P, Agrawal V. Comparison of the effects of calcium channel blockers plus iron chelation therapy versus chelation therapy only on iron overload in children and young adults with transfusion-dependent thalassemia: a randomized double-blind placebo-controlled trial. Pediatr Blood Cancer. 2022;69(6): e29564. https://doi.org/10.1002/pbc.29564.CrossRefPubMed Gupta V, Kumar I, Raj V, Aggarwal P, Agrawal V. Comparison of the effects of calcium channel blockers plus iron chelation therapy versus chelation therapy only on iron overload in children and young adults with transfusion-dependent thalassemia: a randomized double-blind placebo-controlled trial. Pediatr Blood Cancer. 2022;69(6): e29564. https://​doi.​org/​10.​1002/​pbc.​29564.CrossRefPubMed
175.
go back to reference Zhang YP, Zhao S, Ren C, et al. Effect of baicalin on myocardial fibrosis in rats with myocardial infarction. J Integr Med Cardiovasc Dis. 2022;20(07):1222–7 (in Chinese). Zhang YP, Zhao S, Ren C, et al. Effect of baicalin on myocardial fibrosis in rats with myocardial infarction. J Integr Med Cardiovasc Dis. 2022;20(07):1222–7 (in Chinese).
177.
go back to reference Cheng Z, Si X, Tan H, Zang Z, Tian J, Shu C, Sun X, Li Z, Jiang Q, Meng X, Chen Y, Li B, Wang Y. Cyanidin-3-O-glucoside and its phenolic metabolites ameliorate intestinal diseases via modulating intestinal mucosal immune system: potential mechanisms and therapeutic strategies. Crit Rev Food Sci Nutr. 2023;63(11):1629–47. https://doi.org/10.1080/10408398.2021.1966381.CrossRefPubMed Cheng Z, Si X, Tan H, Zang Z, Tian J, Shu C, Sun X, Li Z, Jiang Q, Meng X, Chen Y, Li B, Wang Y. Cyanidin-3-O-glucoside and its phenolic metabolites ameliorate intestinal diseases via modulating intestinal mucosal immune system: potential mechanisms and therapeutic strategies. Crit Rev Food Sci Nutr. 2023;63(11):1629–47. https://​doi.​org/​10.​1080/​10408398.​2021.​1966381.CrossRefPubMed
185.
200.
go back to reference Hong LILI, Wu LJ, He HG. Effect of artesunate modulation of PERK/ATF4/CHOP signaling pathway on OGD/R-induced cardiomyocyte ferroptosis. Journal of Microcirculation. 2023;33(01):24–32 (in Chinese). Hong LILI, Wu LJ, He HG. Effect of artesunate modulation of PERK/ATF4/CHOP signaling pathway on OGD/R-induced cardiomyocyte ferroptosis. Journal of Microcirculation. 2023;33(01):24–32 (in Chinese).
203.
go back to reference Zhao SY, Shao X. Lignocaine attenuates myocardial injury in ischemia-reperfused rats by reducing cardiomyocyte apoptosis and autophagy. J Anat. 2022;45(06):509–14 (in Chinese). Zhao SY, Shao X. Lignocaine attenuates myocardial injury in ischemia-reperfused rats by reducing cardiomyocyte apoptosis and autophagy. J Anat. 2022;45(06):509–14 (in Chinese).
209.
go back to reference Jiang H, Wei T, Li JP, et al. Protection and mechanism of action of Puerarin against myocardial toxicity of Sorafenib. J Shandong Univ (Med Edn). 2022;60(08):14–22 (in Chinese). Jiang H, Wei T, Li JP, et al. Protection and mechanism of action of Puerarin against myocardial toxicity of Sorafenib. J Shandong Univ (Med Edn). 2022;60(08):14–22 (in Chinese).
211.
go back to reference Rybnikář M, Šmejkal K, Žemlička M. Schisandra chinensis and its phytotherapeutical applications. CeskaSlov Farm. 2019;68(3):95–118. Rybnikář M, Šmejkal K, Žemlička M. Schisandra chinensis and its phytotherapeutical applications. CeskaSlov Farm. 2019;68(3):95–118.
219.
go back to reference Pan GH, Tan QD. Effect of salvianolate injection on expressions of serum candidate protein markers FN and Cx43protein in atrial myocytes of ventricular septal defect model rabbit. Chin J Biochem Pharm. 2014;34(9):23–6 (in chinese). Pan GH, Tan QD. Effect of salvianolate injection on expressions of serum candidate protein markers FN and Cx43protein in atrial myocytes of ventricular septal defect model rabbit. Chin J Biochem Pharm. 2014;34(9):23–6 (in chinese).
221.
go back to reference Liu CH, Cheng XD, Sun JA, et al. Study on the protective mechanism of salvianolic acid B on myocardial infarction rat model through regulation of Cx43 inhibition of ferroptosis. Chinese Journal of Pathophysiology. 2022;38(06):1032–9 (in Chinese). Liu CH, Cheng XD, Sun JA, et al. Study on the protective mechanism of salvianolic acid B on myocardial infarction rat model through regulation of Cx43 inhibition of ferroptosis. Chinese Journal of Pathophysiology. 2022;38(06):1032–9 (in Chinese).
232.
go back to reference Xing Jun’e Wu, Peng LH. The effect of Yi Qi and blood activation formula on the mitochondrial function of cardiomyocytes in rats with heart failure and its mechanism exploration. Western Chin Med. 2022;35(07):23–6 (in Chinese). Xing Jun’e Wu, Peng LH. The effect of Yi Qi and blood activation formula on the mitochondrial function of cardiomyocytes in rats with heart failure and its mechanism exploration. Western Chin Med. 2022;35(07):23–6 (in Chinese).
236.
238.
go back to reference Ye J, Li LY, Xi X, et al. Mechanisms of mitigating cardiomyocyte ferroptosis based on miR-144-3p/SLC7A11 pathway by Muscadine heart-preserving pills. Chin J Integr Med. 2022;42(11):1335–40 (in Chinese). Ye J, Li LY, Xi X, et al. Mechanisms of mitigating cardiomyocyte ferroptosis based on miR-144-3p/SLC7A11 pathway by Muscadine heart-preserving pills. Chin J Integr Med. 2022;42(11):1335–40 (in Chinese).
239.
go back to reference Zhao Dandan Qu, Huiyan YT, et al. Effects of Deer Red Formula on cardiac dysfunction in rats with myocardial infarction by regulating autophagic flow. Chinese Patent Medicine. 2022;44(05):1427–34 (in Chinese). Zhao Dandan Qu, Huiyan YT, et al. Effects of Deer Red Formula on cardiac dysfunction in rats with myocardial infarction by regulating autophagic flow. Chinese Patent Medicine. 2022;44(05):1427–34 (in Chinese).
240.
go back to reference Xu JJ, Dai J, Zhu YH, et al. Effects of Deer Red Formula on SDF-1/CXCR4 signaling pathway in ischemic and hypoxic cardiomyocytes. Chin Tradit Chin Med Acute Care. 2022;31(10):1717–21 (in Chinese). Xu JJ, Dai J, Zhu YH, et al. Effects of Deer Red Formula on SDF-1/CXCR4 signaling pathway in ischemic and hypoxic cardiomyocytes. Chin Tradit Chin Med Acute Care. 2022;31(10):1717–21 (in Chinese).
243.
go back to reference Cai W, Ge W, Wang J, et al. Study on the mechanism of ischemia/reperfusion injury cardiomyocyte protection by Nrf2 factor modulation with Deer Red Formula. J Integr Med Cardiovasc Dis. 2022;20(23):4257–64 (in Chinese). Cai W, Ge W, Wang J, et al. Study on the mechanism of ischemia/reperfusion injury cardiomyocyte protection by Nrf2 factor modulation with Deer Red Formula. J Integr Med Cardiovasc Dis. 2022;20(23):4257–64 (in Chinese).
244.
go back to reference Tian XY, Wang SH, Li TJ, et al. Pharmacodynamic substance screening study on the protective effect of stasis blood paralysis capsule on adriamycin-induced H9c2 cardiomyocyte injury. Zhongnan Pharmacology. 2023;21(03):568–73 (in Chinese). Tian XY, Wang SH, Li TJ, et al. Pharmacodynamic substance screening study on the protective effect of stasis blood paralysis capsule on adriamycin-induced H9c2 cardiomyocyte injury. Zhongnan Pharmacology. 2023;21(03):568–73 (in Chinese).
248.
go back to reference Shigeo O. Molecular hydrogen may activate the transcription factor Nrf2 to alleviate oxidative stress through the hydrogen-targeted porphyrin. Aging Pathobiol Therap. 2023;5(1):25–32.CrossRef Shigeo O. Molecular hydrogen may activate the transcription factor Nrf2 to alleviate oxidative stress through the hydrogen-targeted porphyrin. Aging Pathobiol Therap. 2023;5(1):25–32.CrossRef
Metadata
Title
Research advances on molecular mechanism and natural product therapy of iron metabolism in heart failure
Authors
Tianqing Zhang
Li Luo
Qi He
Sijie Xiao
Yuwei Li
Junpeng Chen
Tao Qin
Zhenni Xiao
Qingliang Ge
Publication date
01-12-2024
Publisher
BioMed Central
Published in
European Journal of Medical Research / Issue 1/2024
Electronic ISSN: 2047-783X
DOI
https://doi.org/10.1186/s40001-024-01809-4

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