Use of type I collagen green fluorescent protein transgenes to identify subpopulations of cells at different stages of the osteoblast lineage

被引:320
作者
Kalajzic, I
Kalajzic, Z
Kaliterna, M
Gronowicz, G
Clark, SH
Lichtler, AC
Rowe, D
机构
[1] Univ Connecticut, Ctr Hlth, Dept Genet & Dev Biol, Farmington, CT 06030 USA
[2] Univ Connecticut, Ctr Hlth, Dept Orthoped, Farmington, CT 06030 USA
关键词
type I collagen; green fluorescent protein; marrow stromal cell; calvarial osteoblast; osteoblast lineage differentiation;
D O I
10.1359/jbmr.2002.17.1.15
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Green fluorescent protein (GFP)-expressing transgenic mice were produced containing a 3.6-kilobase (kb; pOBCol3.6GFPtpz) and a 2.3-kb (pOBCol2.3GFPemd) rat type I collagen (Colla1) promoter fragment. The 3.6-kb promoter directed strong expression of GFP messenger RNA (mRNA) to bone and isolated tail tendon and lower expression in nonosseous tissues. The 2.3-kb promoter expressed the GFP mRNA in the bone and tail tendon with no detectable mRNA elsewhere. The pattern of fluorescence was evaluated in differentiating calvarial cell (mouse calvarial osteoblast cell [mCOB]) and in marrow stromal cell (MSC) cultures derived from the transgenic mice. The pOBCol3.6GFPtpz-positive cells first appeared in spindle-shaped cells before nodule formation and continued to show a strong signal in cells associated with bone nodules. pOBCol2.3GFPemd fluorescence first appeared in nodules undergoing mineralization. Histological analysis showed weaker pOBCol3.6GFPtpz-positive fibroblastic cells in the periosteal layer and strongly positive osteoblastic cells lining endosteal and trabecular surfaces. In contrast, a pOBCol2.3GFPemd signal was limited to osteoblasts; and osteocytes without detectable signal in periosteal fibroblasts. These findings suggest that Col1a1GFP transgenes are marking different subpopulations of cells during differentiation of skeletal osteoprogenitors. With the use of other promoters and color isomers of GFP, it should be possible to develop experimental protocols that can reflect the heterogeneity of cell differentiation in intact bone. In primary culture, this approach will afford isolation of subpopulations of these cells for molecular and cellular analysis.
引用
收藏
页码:15 / 25
页数:11
相关论文
共 53 条
[1]  
Aubin JE, 1996, MICROSC RES TECHNIQ, V33, P128, DOI 10.1002/(SICI)1097-0029(19960201)33:2<128::AID-JEMT4>3.0.CO
[2]  
2-P
[3]   Advances in the osteoblast lineage [J].
Aubin, JE .
BIOCHEMISTRY AND CELL BIOLOGY, 1998, 76 (06) :899-910
[4]  
BAKER CC, 1990, RECOMBINANT SYSTEMS IN PROTEIN EXPRESSION, P75
[5]   FORMATION OF MINERALIZED NODULES BY BONE DERIVED CELLS-INVITRO - A MODEL OF BONE-FORMATION [J].
BERESFORD, JN ;
GRAVES, SE ;
SMOOTHY, CA .
AMERICAN JOURNAL OF MEDICAL GENETICS, 1993, 45 (02) :163-178
[6]   Multipotential cells in the bone marrow stroma: Regulation in the context of organ physiology [J].
Bianco, P ;
Riminucci, N ;
Kuznetsov, S ;
Robey, PG .
CRITICAL REVIEWS IN EUKARYOTIC GENE EXPRESSION, 1999, 9 (02) :159-173
[7]  
BOGDANOVIC Z, 1994, J BONE MINER RES, V9, P285
[8]   COL1A1 transgene expression in stably transfected osteoblastic cells - Relative contributions of first intron, 3'-flanking sequences, and sequences derived from the body of the human COL1A1 minigene [J].
Breault, DT ;
Lichtler, AC ;
Rowe, DW .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (50) :31241-31250
[9]   Mesenchymal stem cell surface antigen SB-10 corresponds to activated leukocyte cell adhesion molecule and is involved in osteogenic differentiation [J].
Bruder, SP ;
Ricalton, NS ;
Boynton, RE ;
Connolly, TJ ;
Jaiswal, N ;
Zala, J ;
Barry, FP .
JOURNAL OF BONE AND MINERAL RESEARCH, 1998, 13 (04) :655-663
[10]   ISOLATION OF THE HUMAN-GENE FOR BONE GLA PROTEIN UTILIZING MOUSE AND RAT CDNA CLONES [J].
CELESTE, AJ ;
ROSEN, V ;
BUECKER, JL ;
KRIZ, R ;
WANG, EA ;
WOZNEY, JM .
EMBO JOURNAL, 1986, 5 (08) :1885-1890