A novel 3D cardiac microtissue model for investigation of cardiovascular complications in rheumatoid arthritis

2024
journal article
article
1
dc.abstract.enBackground Rheumatoid arthritis (RA) is a chronic inflammatory disease that affects not only the joints but also has significant cardiovascular (CV) manifestations. The mechanistic interplay between RA and cardiovascular complications is not yet well understood due to the lack of relevant in vitro models. In this study, we established RA cardiac microtisses (cMTs) from iPSC-derived cardiomyocytes (CMs), endothelial cells (ECs) and cardiac fibroblasts (CFs) to investigate whether this fully human 3D multicellular system could serve as a platform to elucidate the connection between RA and CV disorders. Methods PBMC and FLS from healthy and RA donors were reprogrammed to hiPSCs with Sendai vectors. hiPSCs pluripotency was assessed by IF, FACS, spontaneous embryoid bodies formation and teratoma assay. hiPSCs were differentiated to cardiac derivatives such as CMs, ECs and CFs, followed by cell markers characterizations (IF, FACS, qRT-PCR) and functional assessments. 3D cMTs were generated by aggregation of 70% CMs, 15% ECs and 15% CFs. After 21 days in culture, structural and metabolic properties of 3D cMTs were examined by IF, qRT-PCR and Seahorse bioanalyzer. Results hiPSCs demonstrated typical colony-like morphology, normal karyotype, presence of pluripotency markers, and ability to differentiate into cells originating from all three germ layers. hiPSC-CMs showed spontaneous beating and expression of cardiac markers (cTnT, MYL7, NKX2.5, MYH7). hiPSC-ECs formed sprouting spheres and tubes and expressed CD31 and CD144. hiPSC-CFs presented spindle-shaped morphology and expression of vimentin, collagen 1 and DDR2. Self-aggregation of CMs/ECs/CFs allowed development of contracting 3D cMTs, demonstrating spherical organization of the cells, which partially resembled the cardiac muscle, both in structure and function. IF analysis confirmed the expression of cTnT, CD31, CD144 and DDR2 in generated 3D cMTs. RA cMTs exhibited significantly greater formation of capillary-like structures, mimicking enhanced vascularization—key RA feature—compared to control cMTs. Seahorse examination of cMTs revealed changes in mitochondrial and glycolytic rates in the presence of metabolic substrates and inhibitors. Conclusions The cMTs model may represent an advanced human stem cell-based platform for modeling CV complications in RA. The highly developed capillary-like structures observed within RA cMTs highlight a critical feature of inflammation-induced CV dysfunction in chronic inflammatory diseases.
dc.affiliationSzkoła Doktorska Nauk Ścisłych i Przyrodniczych
dc.affiliationWydział Biologii : Instytut Zoologii i Badań Biomedycznych
dc.affiliationWydział Biochemii, Biofizyki i Biotechnologii : Zakład Biotechnologii Medycznej
dc.contributor.authorWolnik, Jan - 246109
dc.contributor.authorAdamska, Patrycja - 368975
dc.contributor.authorOleksy, Aleksandra - 262409
dc.contributor.authorSanetra, Anna - 230723
dc.contributor.authorPalus-Chramiec, Katarzyna - 120708
dc.contributor.authorLewandowski, Marian - 129942
dc.contributor.authorDulak, Józef - 127818
dc.contributor.authorBiniecka, Monika - 443270
dc.date.accessioned2024-10-30T12:43:01Z
dc.date.available2024-10-30T12:43:01Z
dc.date.createdat2024-10-30T09:14:38Zen
dc.date.issued2024
dc.date.openaccess0
dc.description.accesstimew momencie opublikowania
dc.description.additionalAnna Sanetra podpisana: Anna Magdalena Sanetra. Marian Lewandowski podpisany: Marian Henryk Lewandowski. Bibliogr.
dc.description.versionostateczna wersja wydawcy
dc.description.volume15
dc.identifier.articleid382
dc.identifier.doi10.1186/s13287-024-03956-1
dc.identifier.issn1757-6512
dc.identifier.urihttps://ruj.uj.edu.pl/handle/item/458475
dc.languageeng
dc.language.containereng
dc.rightsUdzielam licencji. Uznanie autorstwa - Użycie niekomercyjne - Bez utworów zależnych 4.0 Międzynarodowa
dc.rights.licenceCC-BY-NC-ND
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/legalcode.pl
dc.share.typeotwarte czasopismo
dc.subject.enhuman pluripotent stem cells
dc.subject.encardiac microtissue
dc.subject.enrheumatoid arthritis
dc.subject.encardiovascular disease
dc.subtypeArticle
dc.titleA novel 3D cardiac microtissue model for investigation of cardiovascular complications in rheumatoid arthritis
dc.title.journalStem Cell Research and Therapy
dc.typeJournalArticle
dspace.entity.typePublicationen
dc.abstract.en
Background Rheumatoid arthritis (RA) is a chronic inflammatory disease that affects not only the joints but also has significant cardiovascular (CV) manifestations. The mechanistic interplay between RA and cardiovascular complications is not yet well understood due to the lack of relevant in vitro models. In this study, we established RA cardiac microtisses (cMTs) from iPSC-derived cardiomyocytes (CMs), endothelial cells (ECs) and cardiac fibroblasts (CFs) to investigate whether this fully human 3D multicellular system could serve as a platform to elucidate the connection between RA and CV disorders. Methods PBMC and FLS from healthy and RA donors were reprogrammed to hiPSCs with Sendai vectors. hiPSCs pluripotency was assessed by IF, FACS, spontaneous embryoid bodies formation and teratoma assay. hiPSCs were differentiated to cardiac derivatives such as CMs, ECs and CFs, followed by cell markers characterizations (IF, FACS, qRT-PCR) and functional assessments. 3D cMTs were generated by aggregation of 70% CMs, 15% ECs and 15% CFs. After 21 days in culture, structural and metabolic properties of 3D cMTs were examined by IF, qRT-PCR and Seahorse bioanalyzer. Results hiPSCs demonstrated typical colony-like morphology, normal karyotype, presence of pluripotency markers, and ability to differentiate into cells originating from all three germ layers. hiPSC-CMs showed spontaneous beating and expression of cardiac markers (cTnT, MYL7, NKX2.5, MYH7). hiPSC-ECs formed sprouting spheres and tubes and expressed CD31 and CD144. hiPSC-CFs presented spindle-shaped morphology and expression of vimentin, collagen 1 and DDR2. Self-aggregation of CMs/ECs/CFs allowed development of contracting 3D cMTs, demonstrating spherical organization of the cells, which partially resembled the cardiac muscle, both in structure and function. IF analysis confirmed the expression of cTnT, CD31, CD144 and DDR2 in generated 3D cMTs. RA cMTs exhibited significantly greater formation of capillary-like structures, mimicking enhanced vascularization—key RA feature—compared to control cMTs. Seahorse examination of cMTs revealed changes in mitochondrial and glycolytic rates in the presence of metabolic substrates and inhibitors. Conclusions The cMTs model may represent an advanced human stem cell-based platform for modeling CV complications in RA. The highly developed capillary-like structures observed within RA cMTs highlight a critical feature of inflammation-induced CV dysfunction in chronic inflammatory diseases.
dc.affiliation
Szkoła Doktorska Nauk Ścisłych i Przyrodniczych
dc.affiliation
Wydział Biologii : Instytut Zoologii i Badań Biomedycznych
dc.affiliation
Wydział Biochemii, Biofizyki i Biotechnologii : Zakład Biotechnologii Medycznej
dc.contributor.author
Wolnik, Jan - 246109
dc.contributor.author
Adamska, Patrycja - 368975
dc.contributor.author
Oleksy, Aleksandra - 262409
dc.contributor.author
Sanetra, Anna - 230723
dc.contributor.author
Palus-Chramiec, Katarzyna - 120708
dc.contributor.author
Lewandowski, Marian - 129942
dc.contributor.author
Dulak, Józef - 127818
dc.contributor.author
Biniecka, Monika - 443270
dc.date.accessioned
2024-10-30T12:43:01Z
dc.date.available
2024-10-30T12:43:01Z
dc.date.createdaten
2024-10-30T09:14:38Z
dc.date.issued
2024
dc.date.openaccess
0
dc.description.accesstime
w momencie opublikowania
dc.description.additional
Anna Sanetra podpisana: Anna Magdalena Sanetra. Marian Lewandowski podpisany: Marian Henryk Lewandowski. Bibliogr.
dc.description.version
ostateczna wersja wydawcy
dc.description.volume
15
dc.identifier.articleid
382
dc.identifier.doi
10.1186/s13287-024-03956-1
dc.identifier.issn
1757-6512
dc.identifier.uri
https://ruj.uj.edu.pl/handle/item/458475
dc.language
eng
dc.language.container
eng
dc.rights
Udzielam licencji. Uznanie autorstwa - Użycie niekomercyjne - Bez utworów zależnych 4.0 Międzynarodowa
dc.rights.licence
CC-BY-NC-ND
dc.rights.uri
http://creativecommons.org/licenses/by-nc-nd/4.0/legalcode.pl
dc.share.type
otwarte czasopismo
dc.subject.en
human pluripotent stem cells
dc.subject.en
cardiac microtissue
dc.subject.en
rheumatoid arthritis
dc.subject.en
cardiovascular disease
dc.subtype
Article
dc.title
A novel 3D cardiac microtissue model for investigation of cardiovascular complications in rheumatoid arthritis
dc.title.journal
Stem Cell Research and Therapy
dc.type
JournalArticle
dspace.entity.typeen
Publication
Affiliations

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