Progenitor cell isolation from muscle-derived cells based on adhesion properties

被引:29
|
作者
Rouger, Karl
Fornasari, Benoit
Armengol, Valerie
Jouvion, Gregory
Leroux, Isabelle
Dubreil, Laurence
Feron, Marie
Guevel, Laetitia
Cherel, Yan
机构
[1] Ecole Natl Vet Nantes, UMR703, INRA, F-44307 Nantes, France
[2] Fac Chirurg Nantes, INSERM, UMR791, Lab Ingn Osteo Articulaire & Dent, Nantes, France
[3] Fac Sci & Tech, CNRS, UMR6204, Nantes, France
关键词
myogenesis; muscle-derived cell; skeletal muscle; adhesion; preplate technique; avian;
D O I
10.1369/jhc.6A6954.2007
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Adult skeletal muscle possesses remarkable regenerative capacity that has conventionally been attributed to the satellite cells. These precursor cells were thought to contain distinct populations with varying myogenic potential. Recently, the identification of multipotent stem cells capable of new myofiber formation has expanded the general view on the muscle regenerative process. Here we examined the characteristics of turkey skeletal muscle-derived cell (MDC) populations that were separated according to their adhesion abilities. We sought to determine whether these abilities could be a potential tool for separating cells with different myogenic commitment. Using the preplate technique, we showed that MDCs display a wide range of adhesion ability, allowing us to isolate a marginal fraction with initial adhesion defect. Methodological investigations revealed that this defect represents an intrinsic and well-established biological feature for these cells. In vitro behavioral and morphological analyses showed that late adherent cells (LACs) share several primitive cell characteristics. Phenotypic assessment indicated that LACs contain early stage myogenic cells and immature progenitors of satellite cells, whereas early adherent cells consist mainly of fully committed precursors. Overall, our findings demonstrate for the first time in an avian model that differential MDC adhesion properties could be used to efficiently purify cells with varying myogenic commitment, including immature progenitor cells. This manuscript contains online supplemental material at http://www.jhc.org. Please visit this article online to view these materials.
引用
收藏
页码:607 / 618
页数:12
相关论文
共 50 条
  • [31] Functional properties of muscle-derived cells related to morphological characteristics
    Jouvion, Gregory
    Rouger, Karl
    Fornasari, Benoit
    Bougras, Gwenola
    Leroux, Isabelle
    Segalen, Jacqueline
    Cherel, Yan
    HISTOCHEMISTRY AND CELL BIOLOGY, 2006, 126 (05) : 603 - 616
  • [32] Functional properties of muscle-derived cells related to morphological characteristics
    Gregory Jouvion
    Karl Rouger
    Benoît Fornasari
    Gwenola Bougras
    Isabelle Leroux
    Jacqueline Segalen
    Yan Cherel
    Histochemistry and Cell Biology, 2006, 126 : 603 - 616
  • [33] Isolation and culture of human muscle-derived stem cells able to differentiate into myogenic and neurogenic cell lineages
    Alessandri, G
    Pagano, S
    Bez, A
    Benetti, A
    Pozzi, S
    Iannolo, G
    Baronio, M
    Invernici, G
    Caruso, A
    Muneretto, C
    Bisleri, G
    Parati, E
    LANCET, 2004, 364 (9448): : 1872 - 1883
  • [34] Effects of hypoxia on stemness, survival and angiogenic capacity of muscle-derived stem/progenitor cells
    He, Xiao
    An, Weizheng
    Liu, Jianyu
    ALL LIFE, 2021, 14 (01) : 855 - 868
  • [35] Isolation and passage of muscle-derived stem cells from the rat penile corpora cavernosa and induction of differentiation into smooth muscle cells
    Li-Jun Xu
    Bo-Xin Xue
    Dong Chen
    Jie Gao
    Dong-Rong Yang
    Chuan-Yang Sun
    Yong Cui
    Yu-Xi Shan
    Cytotechnology, 2014, 66 : 987 - 994
  • [36] Transplantation of Human Skeletal Muscle-Derived Progenitor Cells Ameliorates Knee Osteoarthritis.
    Liu, Shing-Hwa
    Chiu, Chen-Yuan
    Chan, Ding-Cheng
    Yang, Rong-Sen
    JOURNAL OF BONE AND MINERAL RESEARCH, 2017, 32 : S79 - S80
  • [37] Isolation and passage of muscle-derived stem cells from the rat penile corpora cavernosa and induction of differentiation into smooth muscle cells
    Xu, Li-Jun
    Xue, Bo-Xin
    Chen, Dong
    Gao, Jie
    Yang, Dong-Rong
    Sun, Chuan-Yang
    Cui, Yong
    Shan, Yu-Xi
    CYTOTECHNOLOGY, 2014, 66 (06) : 987 - 994
  • [38] Muscle-derived stem cells in tissue engineering:: defining cell properties suitable for construct design
    Buján, J
    Pascual, G
    Corrales, C
    Gómez-Gil, V
    Rodríguez, M
    Bellón, JM
    HISTOLOGY AND HISTOPATHOLOGY, 2005, 20 (03) : 891 - 899
  • [39] Rapamycin Rescues Age-Related Changes in Muscle-Derived Stem/Progenitor Cells from Progeroid Mice
    Kawakami, Yohei
    Hambright, William S.
    Takayama, Koji
    Mu, Xiaodong
    Lu, Aiping
    Cummins, James H.
    Matsumoto, Tomoyuki
    Yurube, Takashi
    Kuroda, Ryosuke
    Kurosaka, Masahiro
    Fu, Freddie H.
    Robbins, Paul D.
    Niedernhofer, Laura J.
    Huard, Johnny
    MOLECULAR THERAPY-METHODS & CLINICAL DEVELOPMENT, 2019, 14 : 64 - 76
  • [40] Identification of muscle-derived stem cells
    Qu, ZQ
    Cao, BH
    Gates, C
    Pruchnic, R
    Huard, J
    MOLECULAR BIOLOGY OF THE CELL, 1999, 10 : 246A - 246A