Preprint · OA
via OpenAlex
Mesenchymal multipotency of adult human periosteal cells demonstrated by single‐cell lineage analysis
Cosimo De Bari, Francesco Dell’Accio, Johan Vanlauwe, Jeroen Eyckmans, Ilyas M. Khan, Charles W. Archer, Elena Jones, Dennis McGonagle, Thimios A. Mitsiadis, Costantino Pitzalis, Frank P. Luyten
Arthritis & Rheumatism · 2006 · ▲ 460 citations
Telomere attrition
Stem-cell exhaustion
Stem-cell therapy
Cell culture / in vitro
Human
Mouse
In vitro
Abstract
OBJECTIVE: To investigate whether periosteal cells from adult humans have features of multipotent mesenchymal stem cells (MSCs) at the single-cell level. METHODS: Cell populations were enzymatically released from the periosteum of the proximal tibia obtained from adult human donors and then expanded in monolayer. Single-cell-derived clonal populations were obtained by limiting dilution. Culture-expanded periosteal cell populations were tested for their growth potential and for expression of conventional markers of MSCs and were subjected to in vitro assays to investigate their multilineage potential. To assess their multipotency in vivo, periosteal cells were injected into a regenerating mouse tibialis anterior muscle for skeletal myogenesis or were either seeded into an osteoinductive matrix and implanted subcutaneously into nude mice for osteogenesis or implanted in a joint surface defect under a periosteal flap into goats for chondrogenesis. Cell phenotypes were analyzed by histochemistry and immunohistochemistry and by reverse transcription-polymerase chain reaction for the expression of lineage-related marker genes. RESULTS: Regardless of donor age, periosteal cells were clonogenic and could be expanded extensively in monolayer, maintaining linear growth curves over at least 30 population doublings. They displayed long telomeres and expressed markers of MSCs. Under specific conditions, both parental and single-cell-derived clonal cell populations differentiated to the chondrocyte, osteoblast, adipocyte, and skeletal myocyte lineages in vitro and in vivo. CONCLUSION: Our study demonstrates that, regardless of donor age, the adult human periosteum contains cells that, upon enzymatic release and culture expansion, are multipotent MSCs at the single-cell level.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1002/art.21753
- Canonical
- link ↗
- Fetched
- 2026-08-28 MST
Cite this
APA
Bari, C.D., Dell’Accio, F., Vanlauwe, J., Eyckmans, J., Khan, I.M., Archer, C.W., Jones, E., McGonagle, D., Mitsiadis, T.A., Pitzalis, C., & Luyten, F.P. (2006). Mesenchymal multipotency of adult human periosteal cells demonstrated by single‐cell lineage analysis. <em>Arthritis & Rheumatism</em>. https://doi.org/10.1002/art.21753
Vancouver
Bari CD, Dell’Accio F, Vanlauwe J, Eyckmans J, Khan IM, Archer CW, et al. Mesenchymal multipotency of adult human periosteal cells demonstrated by single‐cell lineage analysis. Arthritis & Rheumatism. 2006. doi:10.1002/art.21753.
BibTeX
@unpublished{cosimo2006Mesenc,
title = {Mesenchymal multipotency of adult human periosteal cells demonstrated by single‐cell lineage analysis},
author = {Cosimo De Bari and Francesco Dell’Accio and Johan Vanlauwe and Jeroen Eyckmans and Ilyas M. Khan and Charles W. Archer and Elena Jones and Dennis McGonagle and Thimios A. Mitsiadis and Costantino Pitzalis and Frank P. Luyten},
journal = {Arthritis & Rheumatism},
year = {2006},
doi = {10.1002/art.21753},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Journal of Translational Medicine 2007
Open access · CC-BY
Endometrial regenerative cells: A novel stem cell population
The Journal of Cell Biology 2003
Preprint · OA
Skeletal muscle repair by adult human mesenchymal stem cells from synovial membrane
Nature Communications 2021
Open access · CC-BY
DMRT1-mediated reprogramming drives development of cancer resembling human germ cell tumors with features of totipotency
Molecular Medicine Reports 2016
Open access · OA
Changes in mesenchymal stem cells following long-term culture in vitro
Biogerontology 2025
Open access · CC-BY
Mesenchymal stem cells and their derivatives as potential longevity-promoting tools
Nature Communications 2013
Open access · OA