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Uncovering the cellular and molecular changes in tendon stem/progenitor cells attributed to tendon aging and degeneration

Julia R. Köhler, Cvetan Popov, Barbara Klotz, Paolo Alberton, Wolf Christian Prall, Florian Haasters, Sigrid Müller‐Deubert, Regina Ebert, Ludger Klein‐Hitpaß, Franz Jakob, Matthias Schieker, Denitsa Docheva

Aging Cell · 2013 · ▲ 231 citations

Abstract

Although the link between altered stem cell properties and tissue aging has been recognized, the molecular and cellular processes of tendon aging have not been elucidated. As tendons contain stem/progenitor cells (TSPC), we investigated whether the molecular and cellular attributes of TSPC alter during tendon aging and degeneration. Comparing TSPC derived from young/healthy (Y-TSPC) and aged/degenerated human Achilles tendon biopsies (A-TSPC), we observed that A-TSPC exhibit a profound self-renewal and clonogenic deficits, while their multipotency was still retained. Senescence(definition) analysis showed a premature entry into senescence of the A-TSPC, a finding accompanied by an upregulation of p16(INK4A). To identify age-related molecular factors, we performed microarray and gene ontology analyses. These analyses revealed an intriguing transcriptomal shift in A-TSPC, where the most differentially expressed probesets encode for genes regulating cell adhesion, migration, and actin cytoskeleton. Time-lapse analysis showed that A-TSPC exhibit decelerated motion and delayed wound closure concomitant to a higher actin stress fiber content and a slower turnover of actin filaments. Lastly, based on the expression analyses of microarray candidates, we suggest that dysregulated cell-matrix interactions and the ROCK kinase pathway might be key players in TSPC aging. Taken together, we propose that during tendon aging and degeneration, the TSPC pool is becoming exhausted in terms of size and functional fitness. Thus, our study provides the first fundamental basis for further exploration into the molecular mechanisms behind tendon aging and degeneration as well as for the selection of novel tendon-specific therapeutical targets.

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OpenAlex
DOI
10.1111/acel.12124
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2026-08-30 MST

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APA
Köhler, J.R., Popov, C., Klotz, B., Alberton, P., Prall, W.C., Haasters, F., Müller‐Deubert, S., Ebert, R., Klein‐Hitpaß, L., Jakob, F., Schieker, M., &amp; Docheva, D. (2013). Uncovering the cellular and molecular changes in tendon stem/progenitor cells attributed to tendon aging and degeneration. <em>Aging Cell</em>. https://doi.org/10.1111/acel.12124
Vancouver
Köhler JR, Popov C, Klotz B, Alberton P, Prall WC, Haasters F, et al. Uncovering the cellular and molecular changes in tendon stem/progenitor cells attributed to tendon aging and degeneration. Aging Cell. 2013. doi:10.1111/acel.12124.
BibTeX
@article{julia2013Uncove, title = {Uncovering the cellular and molecular changes in tendon stem/progenitor cells attributed to tendon aging and degeneration}, author = {Julia R. Köhler and Cvetan Popov and Barbara Klotz and Paolo Alberton and Wolf Christian Prall and Florian Haasters and Sigrid Müller‐Deubert and Regina Ebert and Ludger Klein‐Hitpaß and Franz Jakob and Matthias Schieker and Denitsa Docheva}, journal = {Aging Cell}, year = {2013}, doi = {10.1111/acel.12124}, }

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