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Transcriptional heterogeneity of fibroblasts is a hallmark of the aging heart
Ramon Vidal, Julian Uwe Gabriel Wagner, Caroline Braeuning, Cornelius Fischer, Ralph Patrick, Lukas Tombor, Marion Muhly-Reinholz, David John, Magdalena Kliem, Thomas Conrad, Nuno Guimarães-Camboa, Richard Harvey, Stefanie Dimmeler, Sascha Sauer
Ramon Vidal, Julian Uwe Gabriel Wagner, Caroline Braeuning, Cornelius Fischer, Ralph Patrick, Lukas Tombor, Marion Muhly-Reinholz, David John, Magdalena Kliem, Thomas Conrad, Nuno Guimarães-Camboa, Richard Harvey, Stefanie Dimmeler, Sascha Sauer
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Research Article Aging Cardiology

Transcriptional heterogeneity of fibroblasts is a hallmark of the aging heart

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Abstract

Aging is a major risk factor for cardiovascular disease. Although the impact of aging has been extensively studied, little is known regarding the aging processes in cells of the heart. Here we analyzed the transcriptomes of hearts of 12-week-old and 18-month-old mice by single-nucleus RNA-sequencing. Among all cell types, aged fibroblasts showed most significant differential gene expression, increased RNA dynamics, and network entropy. Aged fibroblasts exhibited significantly changed expression patterns of inflammatory, extracellular matrix organization angiogenesis, and osteogenic genes. Functional analyses indicated deterioration of paracrine signatures between fibroblasts and endothelial cells in old hearts. Aged heart-derived fibroblasts had impaired endothelial cell angiogenesis and autophagy and augmented proinflammatory response. In particular, expression of Serpine1 and Serpine2 were significantly increased and secreted by old fibroblasts to exert antiangiogenic effects on endothelial cells, an effect that could be significantly prevented by using neutralizing antibodies. Moreover, we found an enlarged subpopulation of aged fibroblasts expressing osteoblast genes in the epicardial layer associated with increased calcification. Taken together this study provides system-wide insights and identifies molecular changes of aging cardiac fibroblasts, which may contribute to declined heart function.

Authors

Ramon Vidal, Julian Uwe Gabriel Wagner, Caroline Braeuning, Cornelius Fischer, Ralph Patrick, Lukas Tombor, Marion Muhly-Reinholz, David John, Magdalena Kliem, Thomas Conrad, Nuno Guimarães-Camboa, Richard Harvey, Stefanie Dimmeler, Sascha Sauer

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Figure 7

Aging alters fibroblasts to adopt osteogenic fates.

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Aging alters fibroblasts to adopt osteogenic fates.
(A) Expression of Ce...
(A) Expression of Cebpb and Runx2 in fibroblasts displayed in log scale in subcluster analysis plot. Young and old enriched subclusters are separated by lines and as displayed in Figure 2, A and B. (B) Expression of Runx2 in young and aged cardiac fibroblasts. Data were derived from bulk RNA-sequencing of isolated cardiac fibroblasts (4 young vs. 3 old samples). FPKM, fragments per kilobase per million mapped reads. (C–E) Histological analysis of heart sections derived from young (12 weeks old) and old (>18 months old) mice. Immunostaining was performed against osteocalcin (OCN, green) as an osteogenic marker and PDGFR-α (gray) as a fibroblast marker. Nuclei were stained with Hoechst 33342 (blue) (n = 8; 4–6 images/heart). Quantification of OCN+PDGFR-α+ double-positive cells vs. PDGFR-α+ single-positive cells is shown in C. Representative examples are shown in D (scale bar: 10 μm) and E (scale bar: 100 μm). Images were monitored using the Leica TCS SP8 confocal microscope. Data are shown as mean ± SEM (B and C). After passing Gaussian distribution, statistical analysis was performed using the unpaired, 2-sided t test. *P < 0.05; ****P < 0.0001.

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