Plasma fibroblast activation protein is decreased in acute heart failure despite cardiac tissue upregulation

dc.contributor.authorDelgado-Arija, Martaes_ES
dc.contributor.authorGenovés, Patriciaes_ES
dc.contributor.authorPérez-Carrillo, Lorenaes_ES
dc.contributor.authorGonzález-Torrent, Irenees_ES
dc.contributor.authorGiménez-Escamilla, Isaaces_ES
dc.contributor.authorMartínez-Dolz, Luises_ES
dc.contributor.authorPortolés, Manueles_ES
dc.contributor.authorTarazón, Estefaníaes_ES
dc.contributor.authorRoselló-Lletí, Estheres_ES
dc.contributor.funderEuropean Commissiones_ES
dc.contributor.funderEuropean Social Fundes_ES
dc.contributor.funderGeneralitat Valencianaes_ES
dc.contributor.funderInstituto de Salud Carlos IIIes_ES
dc.contributor.funderAgencia Estatal de Investigaciónes_ES
dc.contributor.funderMinisterio de Economía y Competitividades_ES
dc.contributor.funderMinisterio de Ciencia, Innovación y Universidadeses_ES
dc.date.accessioned2026-06-09T05:51:55Z
dc.date.available2026-06-09T05:51:55Z
dc.date.issued2024-02-01es_ES
dc.description.abstract[EN] Background Cardiac fibroblast activation protein (FAP) has an emerging role in heart failure (HF). A paradoxical reduction in its levels in pathological conditions associated with acute processes has been observed. We aimed to identify FAP cardiac tissue expression and its relationship with the main cardiac fibrosis-related signaling pathways, and to compare plasma FAP levels in acute and chronic HF patients. Methods Transcriptomic changes were assessed via mRNA/ncRNA-seq in left ventricle tissue from HF patients (n¿=¿57) and controls (n¿=¿10). Western blotting and immunohistochemistry were used to explore FAP protein levels and localization in cardiac tissue. ELISA was performed to examine plasma FAP levels in acute HF (n¿=¿48), chronic HF (n¿=¿15) and control samples (n¿=¿7). Results FAP overexpression in cardiac tissue is related to the expression of molecules directly involved in cardiac fibrosis, such as POSTN, THBS4, MFAP5, COL1A2 and COL3A1 (P¿<¿0.001), and is directly and inversely related to pro- and antifibrotic microRNAs, respectively. The observed FAP overexpression is not reflected in plasma. Circulating FAP levels were lower in acute HF patients than in controls (P¿<¿0.05), while chronic HF patients did not show significant changes. The clinical variables analyzed, such as functional class or etiology, do not affect plasma FAP concentrations. Conclusions We determined that in HF cardiac tissue, FAP is related to the main cardiac fibrosis signaling pathways as well as to pro- and antifibrotic microRNAs. Additionally, an acute phase of HF decreases plasma FAP levels despite the upregulation observed in cardiac tissue and regardless of other clinical conditions.es_ES
dc.description.accrualMethodSes_ES
dc.description.bibliographicCitationDelgado-Arija, M.; Genovés, P.; Pérez-Carrillo, L.; González-Torrent, I.; Giménez-Escamilla, I.; Martínez-Dolz, L.; Portolés, M.... (2024). Plasma fibroblast activation protein is decreased in acute heart failure despite cardiac tissue upregulation. Journal of Translational Medicine. 22. https://doi.org/10.1186/s12967-024-04900-wes_ES
dc.description.referencesSavarese G, Becher PM, Lund LH, Seferovic P, Rosano GMC, Coats AJS. Global burden of heart failure: a comprehensive and updated review of epidemiology. Cardiovasc Res. 2023;118(17):3272–87.es_ES
dc.description.referencesNorhammar A, Bodegard J, Vanderheyden M, Tangri N, Karasik A, Pietro MA, et al. Prevalence, outcomes and costs of a contemporary, multinational population with heart failure. Heart. 2023;109(7):548–56.es_ES
dc.description.referencesMiranda AMA, Janbandhu V, Maatz H, Kanemaru K, Cranley J, Teichmann SA, et al. Single-cell transcriptomics for the assessment of cardiac disease. Nat Rev Cardiol. 2023;20(5):289–308.es_ES
dc.description.referencesPark S, Ranjbarvaziri S, Zhao P, Ardehali R. Cardiac fibrosis is associated with decreased circulating levels of full-length CILP in heart failure. JACC Basic Transl Sci. 2020;5(5):432–43.es_ES
dc.description.referencesFang L, Murphy AJ, Dart AM. A clinical perspective of anti-fibrotic therapies for cardiovascular disease. Front Pharmacol. 2017;8:186.es_ES
dc.description.referencesFrangogiannis NG. Cardiac fibrosis. Cardiovasc Res. 2021;117(6):1450–88.es_ES
dc.description.referencesFitzgerald AA, Weiner LM. The role of fibroblast activation protein in health and malignancy. Cancer Metastasis Rev. 2020;39(3):783–803.es_ES
dc.description.referencesStein S, Weber J, Nusser-Stein S, Pahla J, Zhang HE, Mohammed SA, et al. Deletion of fibroblast activation protein provides atheroprotection. Cardiovasc Res. 2021;117(4):1060–9.es_ES
dc.description.referencesPing Q, Wang C, Cheng X, Zhong Y, Yan R, Yang M, et al. TGF-β1 dominates stromal fibroblast-mediated EMT via the FAP/VCAN axis in bladder cancer cells. J Transl Med. 2023;21(1):475.es_ES
dc.description.referencesLi YR, Fang Y, Lyu Z, Zhu Y, Yang L. Exploring the dynamic interplay between cancer stem cells and the tumor microenvironment: implications for novel therapeutic strategies. J Transl Med. 2023;21(1):686.es_ES
dc.description.referencesAghajanian H, Kimura T, Rurik JG, Hancock AS, Leibowitz MS, Li L, et al. Targeting cardiac fibrosis with engineered T cells. Nature. 2019;573(7774):430–3.es_ES
dc.description.referencesGuo YT, Xiao YC, Xu YL, Fan JF, Niu LY, Tan X, et al. The effects of MicroRNAs in the development of heart failure. Curr Cardiol Rep. 2023;25(7):747–59.es_ES
dc.description.referencesSun Y, Ma M, Cao D, Zheng A, Zhang Y, Su Y, et al. Inhibition of fap promotes cardiac repair by stabilizing BNP. Circ Res. 2023;132(5):586–600.es_ES
dc.description.referencesRitchie RF, Palomaki GE, Neveux LM, Navolotskaia O, Ledue TB, Craig WY. Reference distributions for the negative acute-phase serum proteins, albumin, transferrin and transthyretin: a practical, simple and clinically relevant approach in a large cohort. J Clin Lab Anal. 1999;13(6):273–9.es_ES
dc.description.referencesReina-Couto M, Pereira-Terra P, Quelhas-Santos J, Silva-Pereira C, Albino-Teixeira A, Sousa T. Inflammation in human heart failure: major mediators and therapeutic targets. Front Physiol. 2021;12: 746494.es_ES
dc.description.referencesPérez-Carrillo L, Giménez-Escamilla I, Martínez-Dolz L, Sánchez-Lázaro IJ, Portolés M, Roselló-Lletí E, et al. Implication of sphingolipid metabolism gene dysregulation and cardiac sphingosine-1-phosphate accumulation in heart failure. Biomedicines. 2022;10(1):135.es_ES
dc.description.referencesGil-Cayuela C, Rivera M, Ortega A, Tarazón E, Triviño JC, Lago F, et al. RNA sequencing analysis identifies new human collagen genes involved in cardiac remodeling. J Am Coll Cardiol. 2015;65(12):1265–7.es_ES
dc.description.referencesCortes R, Rosello-Lleti E, Rivera M, Martinez-Dolz L, Salvador A, Azorin I, et al. Influence of heart failure on nucleocytoplasmic transport in human cardiomyocytes. Cardiovasc Res. 2010;85(3):464–72.es_ES
dc.description.referencesLove MI, Huber W, Anders S. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2. Genome Biol. 2014;15(12):550.es_ES
dc.description.referencesBenjamini Y, Hochberg Y. Controlling the false discovery rate: a practical and powerful approach to multiple testing. J Roy Stat Soc Ser B (Methodol). 1995;57(1):289–300.es_ES
dc.description.referencesTrapnell C, Williams BA, Pertea G, Mortazavi A, Kwan G, van Baren MJ, et al. Transcript assembly and quantification by RNA-Seq reveals unannotated transcripts and isoform switching during cell differentiation. Nat Biotechnol. 2010;28(5):511–5.es_ES
dc.description.referencesRobinson MD, McCarthy DJ, Smyth GK. edgeR: a Bioconductor package for differential expression analysis of digital gene expression data. Bioinformatics. 2010;26(1):139–40.es_ES
dc.description.referencesMcDonagh TA, Metra M, Adamo M, Gardner RS, Baumbach A, Böhm M, et al. Corrigendum to: 2021 ESC Guidelines for the diagnosis and treatment of acute and chronic heart failure: developed by the task force for the diagnosis and treatment of acute and chronic heart failure of the European Society of Cardiology (ESC) With the special contribution of the Heart Failure Association (HFA) of the ESC. Eur Heart J. 2021;42(48):4901–4901.es_ES
dc.description.referencesGyöngyösi M, Winkler J, Ramos I, Do Q, Firat H, McDonald K, et al. Myocardial fibrosis: biomedical research from bench to bedside. Eur J Heart Fail. 2017;19(2):177–91.es_ES
dc.description.referencesTravers JG, Kamal FA, Robbins J, Yutzey KE, Blaxall BC. Cardiac fibrosis. Circ Res. 2016;118(6):1021–40.es_ES
dc.description.referencesMayola MF, Thackeray JT. The potential of fibroblast activation protein-targeted imaging as a biomarker of cardiac remodeling and injury. Curr Cardiol Rep. 2023;25(6):515–23.es_ES
dc.description.referencesRurik JG, Tombácz I, Yadegari A, Méndez Fernández PO, Shewale SV, Li L, et al. CAR T cells produced in vivo to treat cardiac injury. Science (1979). 2022;375(6576):91–6.es_ES
dc.description.referencesKoenig AL, Shchukina I, Amrute J, Andhey PS, Zaitsev K, Lai L, et al. Single-cell transcriptomics reveals cell-type-specific diversification in human heart failure. Nat Cardiovasc Res. 2022;1(3):263–80.es_ES
dc.description.referencesRao M, Wang X, Guo G, Wang L, Chen S, Yin P, et al. Resolving the intertwining of inflammation and fibrosis in human heart failure at single-cell level. Basic Res Cardiol. 2021;116(1):55.es_ES
dc.description.referencesKattih B, Boeckling F, Shumliakivska M, Tombor L, Rasper T, Schmitz K, et al. Single-nuclear transcriptome profiling identifies persistent fibroblast activation in hypertrophic and failing human hearts of patients with longstanding disease. Cardiovasc Res. 2023;119:2550.es_ES
dc.description.referencesSun F, Wang C, Feng H, Yu F, Zhang X, Zhang P, et al. Visualization of activated fibroblasts in heart failure with preserved ejection fraction with [18 F]AlF-NOTA-FAPI-04 PET/CT imaging. Mol Pharm. 2023;20(5):2634–41.es_ES
dc.description.referencesFrangogiannis NG. The extracellular matrix in myocardial injury, repair, and remodeling. J Clin Investig. 2017;127(5):1600–12.es_ES
dc.description.referencesGonzález A, Schelbert EB, Díez J, Butler J. Myocardial interstitial fibrosis in heart failure. J Am Coll Cardiol. 2018;71(15):1696–706.es_ES
dc.description.referencesGong L, Wang S, Shen L, Liu C, Shenouda M, Li B, et al. SLIT3 deficiency attenuates pressure overload-induced cardiac fibrosis and remodeling. JCI Insight. 2020;5(12): e136852.es_ES
dc.description.referencesYokota T, McCourt J, Ma F, Ren S, Li S, Kim TH, et al. Type V collagen in scar tissue regulates the size of scar after heart injury. Cell. 2020;182(3):545-562.e23.es_ES
dc.description.referencesDobaczewski M, Chen W, Frangogiannis NG. Transforming growth factor (TGF)-β signaling in cardiac remodeling. J Mol Cell Cardiol. 2011;51(4):600–6.es_ES
dc.description.referencesSun T, Huang Z, Liang WC, Yin J, Lin WY, Wu J, et al. TGFβ2 and TGFβ3 isoforms drive fibrotic disease pathogenesis. Sci Transl Med. 2021;13(605):eabe0407.es_ES
dc.description.referencesGonzález A, López B, Ravassa S, San José G, Díez J. The complex dynamics of myocardial interstitial fibrosis in heart failure. Focus on collagen cross-linking. Biochim Biophys Acta (BBA) Mol Cell Res. 2019;1866(9):1421–32.es_ES
dc.description.referencesGil-Cayuela C, Roselló-LLetí E, Ortega A, Tarazón E, Triviño JC, Martínez-Dolz L, et al. New altered non-fibrillar collagens in human dilated cardiomyopathy: role in the remodeling process. PLoS ONE. 2016;11(12): e0168130.es_ES
dc.description.referencesWu C, Liu B, Wang R, Li G. The regulation mechanisms and clinical application of MicroRNAs in myocardial infarction: a review of the recent 5 years. Front Cardiovasc Med. 2022;8: 809580.es_ES
dc.description.referencesZhao Y, Du D, Chen S, Chen Z, Zhao J. New insights into the functions of MicroRNAs in cardiac fibrosis: from mechanisms to therapeutic strategies. Genes (Basel). 2022;13(8):1390.es_ES
dc.description.referencesTao L, Bei Y, Chen P, Lei Z, Fu S, Zhang H, et al. Crucial role of miR-433 in regulating cardiac fibrosis. Theranostics. 2016;6(12):2068–83.es_ES
dc.description.referencesSieweke JT, Grosse GM, Weissenborn K, Derda AA, Biber S, Bauersachs J, et al. Circulating fibroblast activation protein α is reduced in acute ischemic stroke. Front Cardiovasc Med. 2022;9:1064157.es_ES
dc.description.referencesEl-Adili F, Lui JK, Najem M, Farina G, Trojanowska M, Sam F, Bujor AM. Periostin overexpression in scleroderma cardiac tissue and its utility as a marker for disease complications. Arthritis Res Ther. 2022;24(1):251.es_ES
dc.description.referencesLópez B, González A, Querejeta R, Larman M, Rábago G, Díez J. Association of cardotrophin-1 with myocardial fibrosis in hypertensive patients with heart failure. Hypertension. 2014;63(3):483–9.es_ES
dc.description.referencesRivera M, Taléns-Visconti R, Jordán A, Sirera R, Sevilla B, Climent V, et al. Myocardial remodeling and immunologic activation in patients with heart failure. Rev Esp Cardiol. 2006;59(9):911–8.es_ES
dc.description.referencesTillmanns J, Widera C, Habbaba Y, Galuppo P, Kempf T, Wollert KC, et al. Circulating concentrations of fibroblast activation protein α in apparently healthy individuals and patients with acute coronary syndrome as assessed by sandwich ELISA. Int J Cardiol. 2013;168(4):3926–31.es_ES
dc.description.referencesUitte De Willige S, Malfliet JJMC, Deckers JW, Dippel DWJ, Leebeek FWG, Rijken DC. Plasma levels of soluble fibroblast activation protein in arterial thrombosis; determinants and cleavage of its substrate alpha-2-antiplasmin. Int J Cardiol. 2015;178:105–10.es_ES
dc.description.referencesWu J, Dong E, Zhang Y, Xiao H. The role of the inflammasome in heart failure. Front Physiol. 2021;12: 709703.es_ES
dc.description.referencesMann DL. Innate immunity and the failing heart. Circ Res. 2015;116(7):1254–68.es_ES
dc.description.referencesTillmanns J, Fraccarollo D, Galuppo P, Wollert KC, Bauersachs J. Changes in concentrations of circulating fibroblast activation protein alpha are associated with myocardial damage in patients with acute ST-elevation MI. Int J Cardiol. 2017;232:155–9.es_ES
dc.description.referencesEdgar R. Gene expression omnibus: NCBI gene expression and hybridization array data repository. Nucleic Acids Res. 2002;30(1):207–10.es_ES
dc.description.referencesMacrae DJ. The Council for International Organizations and Medical Sciences (CIOMS) Guidelines on Ethics of Clinical Trials. Proc Am Thorac Soc. 2007;4(2):176–9.es_ES
dc.description.sponsorshipThis work was supported by the National Institute of Health Fondo de Investigaciones Sanitarias del Instituto de Salud Carlos III [Projects: PI20/01469 and PI20/00071 co-funded by European Union; Miguel Servet contracts: CP18/00145 co-funded by European Union, European Social Fund (ESF) The ESF invests in your future and CP21/00041 co-funded by European Union; contract FI21/00186 and FI21/00034]; Consorcio Centro de Investi&#8209; gación Biomédica en Red [CIBERCV, under Grant CB16/11/00261]; Ministry of Universities and the European Recovery, Transformation and Resilience Plan (PRTR, Next Generation EU) [ Ayuda Margarita Salas para la formación de jóvenes doctores : contract: MS21-162]; Ministry of Science and Innovation (MCIN, 10.13039/501100011033) and State Investigation Agency (AEI) [Project CNS2022-135769] co-funded by European Union Next Generation EU and PRTR; Conselleria de educación, universidades y empleo [Project CIA&#8209; ICO/2022/246, contract CIACIF/2022/429].es_ES
dc.description.volume22es_ES
dc.identifier.doi10.1186/s12967-024-04900-wes_ES
dc.identifier.eissn1479-5876es_ES
dc.identifier.pmcidPMC10832198es_ES
dc.identifier.pmid38297310es_ES
dc.identifier.urihttps://riunet.upv.es/handle/10251/235949
dc.languageIngléses_ES
dc.publisherSpringer (Biomed Central Ltd.)es_ES
dc.relation.ispartofJournal of Translational Medicinees_ES
dc.relation.pasarelaS\569962es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/ISCIII/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020 (ISCIII)/PI20%2F00071/ES/IDENTIFICACION DE ARNS PEQUEÑOS NO CODIFICANTES Y SU IMPLICACION FISIOPATOLOGICA EN LA INSUFICIENCIA CARDIACA. SELECCION DE CANDIDATOS EN BIOPSIA LIQUIDA PARA SU CARACTERIZACION FUNCIONAL./es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/ISCIII/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020 (ISCIII)/PI20%2F01469/ES/CARACTERIZACION DEL RECHAZO CARDIACO Y PRONOSTICO POSTRASPLANTE A TRAVES DE UN NUEVO PERFIL DE MARCADORES CIRCULANTES IMPLICADOS EN LA HOMEOSTASIS DE CALCIO Y EL PROCESO APOPTOTICO/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/MINECO//CB16%2F11%2F00261/ES/ENFERMEDADES CARDIOVASCULARES/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/EC//FI21%2F00186/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/EC//FI21%2F00034/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/GVA//CIAICO%2F2022%2F246/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/GVA//CIACIF%2F2022%2F429/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/ISCIII//CP21%2F00041/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/MCIU//MS21-162/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/ESF//CP18%2F00145/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/AEI//CNS2022-135769/es_ES
dc.relation.publisherversionhttps://doi.org/10.1186/s12967-024-04900-wes_ES
dc.rightsReconocimiento (by)es_ES
dc.rights.accessRightsAbiertoes_ES
dc.subjectHeart failurees_ES
dc.subjectFAPes_ES
dc.subjectCardiac fibroblastses_ES
dc.subjectFibrosises_ES
dc.subjectMicroRNAses_ES
dc.subjectAcute heart failurees_ES
dc.titlePlasma fibroblast activation protein is decreased in acute heart failure despite cardiac tissue upregulationes_ES
dc.typeArtículoes_ES
dc.type.versioninfo:eu-repo/semantics/publishedVersiones_ES
dspace.entity.typePublication
upv.uuid3d75c8f1-89d5-47cf-aedb-25a4090df13des_ES

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