SCA-1/Ly6A Mesodermal Skeletal Progenitor Subpopulations Reveal Differential Commitment of Early Limb Bud Cells

被引:4
作者
Cristina Marin-Llera, Jessica [1 ]
Ignacio Lorda-Diez, Carlos [2 ,3 ]
Mario Hurle, Juan [2 ,3 ]
Chimal-Monroy, Jesus [1 ]
机构
[1] Univ Nacl Autonoma Mexico, Inst Invest Biomed, Dept Med Genom & Toxicol Ambiental, Mexico City, DF, Mexico
[2] Univ Cantabria, Fac Med, Dept Anat & Biol Celular, Santander, Spain
[3] Univ Cantabria, Fac Med, IDIVAL, Santander, Spain
来源
FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY | 2021年 / 9卷
关键词
progenitor cell; limb bud; SCA-1/Ly6A; tenogenic differentiation; chondrogenesis; recombinant limbs; MESENCHYMAL STEM-CELLS; STROMAL CELLS; DEVELOPING TENDONS; EXPRESSION; SCLERAXIS; IDENTIFICATION; PROLIFERATION; POPULATIONS; CONTRIBUTE; MARKER;
D O I
10.3389/fcell.2021.656999
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
At early developmental stages, limb bud mesodermal undifferentiated cells are morphologically indistinguishable. Although the identification of several mesodermal skeletal progenitor cell populations has been recognized, in advanced stages of limb development here we identified and characterized the differentiation hierarchy of two new early limb bud subpopulations of skeletal progenitors defined by the differential expression of the SCA-1 marker. Based on tissue localization of the mesenchymal stromal cell-associated markers (MSC-am) CD29, Sca-1, CD44, CD105, CD90, and CD73, we identified, by multiparametric analysis, the presence of cell subpopulations in the limb bud capable of responding to inductive signals differentially, namely, sSca(+) and sSca(-) cells. In concordance with its gene expression profile, cell cultures of the sSca(+) subpopulation showed higher osteogenic but lower chondrogenic capacity than those of sSca(-). Interestingly, under high-density conditions, fibroblast-like cells in the sSca(+) subpopulation were abundant. Gain-of-function employing micromass cultures and the recombinant limb assay showed that SCA-1 expression promoted tenogenic differentiation, whereas chondrogenesis is delayed. This model represents a system to determine cell differentiation and morphogenesis of different cell subpopulations in similar conditions like in vivo. Our results suggest that the limb bud is composed of a heterogeneous population of progenitors that respond differently to local differentiation inductive signals in the early stages of development, where SCA-1 expression may play a permissive role during cell fate.
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页数:13
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共 39 条
  • [1] Scleraxis-Lineage Cells Contribute to Ectopic Bone Formation in Muscle and Tendon
    Agarwal, Shailesh
    Loder, Shawn J.
    Cholok, David
    Peterson, Joshua
    Li, John
    Breuler, Christopher
    Brownley, R. Cameron
    Sung, Hsiao Hsin
    Chung, Michael T.
    Kamiya, Nobuhiro
    Li, Shuli
    Zhao, Bin
    Kaartinen, Vesa
    Davis, Thomas A.
    Qureshi, Ammar T.
    Schipani, Ernestina
    Mishina, Yuji
    Levi, Benjamin
    [J]. STEM CELLS, 2017, 35 (03) : 705 - 710
  • [2] STAGE-RELATED CAPACITY FOR LIMB CHONDROGENESIS IN CELL-CULTURE
    AHRENS, PB
    SOLURSH, M
    REITER, RS
    [J]. DEVELOPMENTAL BIOLOGY, 1977, 60 (01) : 69 - 82
  • [3] The transcrintion factor Sox9 has essential roles in successive steps of the chondrocyte differentiation pathway and is required for expression of Sox5 and Sox6
    Akiyama, H
    Chaboissier, MC
    Martin, JF
    Schedl, A
    de Crombrugghe, B
    [J]. GENES & DEVELOPMENT, 2002, 16 (21) : 2813 - 2828
  • [4] Concise Review: Bone Marrow-Derived Mesenchymal Stem Cells Change Phenotype Following In Vitro Culture: Implications for Basic Research and the Clinic
    Bara, Jennifer J.
    Richards, R. Geoff
    Alini, Mauro
    Stoddart, Martin J.
    [J]. STEM CELLS, 2014, 32 (07) : 1713 - 1723
  • [5] Tendon-bone attachment unit is formed modularly by a distinct pool of Scx- and Sox9-positive progenitors
    Blitz, Einat
    Sharir, Amnon
    Akiyama, Haruhiko
    Zelzer, Elazar
    [J]. DEVELOPMENT, 2013, 140 (13): : 2680 - 2690
  • [6] Characterization of nonexpanded mesenchymal progenitor cells from normal adult human bone marrow
    Boiret, N
    Rapatel, C
    Veyrat-Masson, R
    Guillouard, L
    Guérin, JJ
    Pigeon, P
    Descamps, S
    Boisgard, S
    Berger, MG
    [J]. EXPERIMENTAL HEMATOLOGY, 2005, 33 (02) : 219 - 225
  • [7] MESENCHYMAL STEM-CELLS
    CAPLAN, AI
    [J]. JOURNAL OF ORTHOPAEDIC RESEARCH, 1991, 9 (05) : 641 - 650
  • [8] Identification and Specification of the Mouse Skeletal Stem Cell
    Chan, Charles K. F.
    Seo, Eun Young
    Chen, James Y.
    Lo, David
    McArdle, Adrian
    Sinha, Rahul
    Tevlin, Ruth
    Seita, Jun
    Vincent-Tompkins, Justin
    Wearda, Taylor
    Lu, Wan-Jin
    Senarath-Yapa, Kshemendra
    Chung, Michael T.
    Marecic, Owen
    Tran, Misha
    Yan, Kelley S.
    Upton, Rosalynd
    Walmsley, Graham G.
    Lee, Andrew S.
    Sahoo, Debashis
    Kuo, Calvin J.
    Weissman, Irving L.
    Longaker, Michael T.
    [J]. CELL, 2015, 160 (1-2) : 285 - 298
  • [9] Runx2 Regulates Endochondral Ossification Through Control of Chondrocyte Proliferation and Differentiation
    Chen, Haiyan
    Ghori-Javed, Farah Y.
    Rashid, Harunur
    Adhami, Mitra D.
    Serra, Rosa
    Gutierrez, Soraya E.
    Javed, Amjad
    [J]. JOURNAL OF BONE AND MINERAL RESEARCH, 2014, 29 (12) : 2653 - 2665
  • [10] Comparative analysis of the expression and regulation of Wnt5a, Fz4, and Frzb1 during digit formation and in micromass cultures
    Chimal-Monroy, J
    Montero, JA
    Gañan, Y
    Macias, D
    Garcia-Porrero, JA
    Hurle, JM
    [J]. DEVELOPMENTAL DYNAMICS, 2002, 224 (03) : 314 - 320