|
|
Previous Article | Table of Contents | Next Article 
The relative spatial distributions of CFUs and CFUc in the normal mouse
femur
BI Lord, NG Testa and JH Hendry
Femoral bone marrow was divided longitudinally into two groups of cells of
varying size. By assaying CFU and CFU in the two zones of the marrow, their
distributions across the diameter of the femur was determined. It is shown
that the concentration of CFU increases from the femoral axis (15 CFU/105
bone marrow cells) to the bone surface (44 CFU/105 cells), obeying
approximately a square-law relationship. The CFU concentration, on the
other hand, increases from the femoral axis (32CFU/105 cells) to a peak
value (260 CFU/105 cells) at about 330 um from the axis and thence falls
off against to the bone surface (77 CFU/105 cells). Selective kinning cells
in DNA synthesis using the tritiated thymidine suicide technique, in vivo,
showed that CFU, near the bone surface are proliferating at a faster rate
than those more distant from bone, but that CFU have a fast proliferation
rate irrespective of their position in the distribution. Thus, bone marrow
cell populations are shown to conform to a well-defined spatial
organization corresponding to the chronologic relationships between marrow
cells.
Volume 46,
Issue 1,
pp. 65-72,
07/01/1975
Copyright © 1975 by The American Society of Hematology

CiteULike Connotea Del.icio.us Digg Reddit Technorati What's this?
This article has been cited by other articles:

|
 |

|
 |
 
Y. Jiang, H. Bonig, T. Ulyanova, K. Chang, and T. Papayannopoulou
On the adaptation of endosteal stem cell niche function in response to stress
Blood,
October 29, 2009;
114(18):
3773 - 3782.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
T. M. Tancred, A. R. Belch, T. Reiman, L. M. Pilarski, and J. Kirshner
Altered Expression of Fibronectin and Collagens I and IV in Multiple Myeloma and Monoclonal Gammopathy of Undetermined Significance
J. Histochem. Cytochem.,
March 1, 2009;
57(3):
239 - 247.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
J. Y. Wu, L. E. Purton, S. J. Rodda, M. Chen, L. S. Weinstein, A. P. McMahon, D. T. Scadden, and H. M. Kronenberg
Osteoblastic regulation of B lymphopoiesis is mediated by Gs{alpha}-dependent signaling pathways
PNAS,
November 4, 2008;
105(44):
16976 - 16981.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
J. Kirshner, K. J. Thulien, L. D. Martin, C. Debes Marun, T. Reiman, A. R. Belch, and L. M. Pilarski
A unique three-dimensional model for evaluating the impact of therapy on multiple myeloma
Blood,
October 1, 2008;
112(7):
2935 - 2945.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
J. Lorenzo, M. Horowitz, and Y. Choi
Osteoimmunology: Interactions of the Bone and Immune System
Endocr. Rev.,
June 1, 2008;
29(4):
403 - 440.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
T. Papayannopoulou and D. T. Scadden
Stem-cell ecology and stem cells in motion
Blood,
April 15, 2008;
111(8):
3923 - 3930.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
J. Zhang and L. Li
Stem Cell Niche: Microenvironment and Beyond
J. Biol. Chem.,
April 11, 2008;
283(15):
9499 - 9503.
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
U. Blank, G. Karlsson, and S. Karlsson
Signaling pathways governing stem-cell fate
Blood,
January 15, 2008;
111(2):
492 - 503.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
L. M. Calvi
Hematopoietic-Osteoblastic Interactions in the Hematopoietic Stem Cell Niche
IBMS BoneKEy,
May 1, 2006;
3(5):
10 - 18.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
H.-G. Kopp, S. T. Avecilla, A. T. Hooper, and S. Rafii
The Bone Marrow Vascular Niche: Home of HSC Differentiation and Mobilization
Physiology,
October 1, 2005;
20(5):
349 - 356.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
Y. Liang, G. Van Zant, and S. J. Szilvassy
Effects of aging on the homing and engraftment of murine hematopoietic stem and progenitor cells
Blood,
August 15, 2005;
106(4):
1479 - 1487.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
R. S. Taichman
Blood and bone: two tissues whose fates are intertwined to create the hematopoietic stem-cell niche
Blood,
April 1, 2005;
105(7):
2631 - 2639.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
S. K. Nilsson, D. N. Haylock, H. M. Johnston, T. Occhiodoro, T. J. Brown, and P. J. Simmons
Hyaluronan is synthesized by primitive hemopoietic cells, participates in their lodgment at the endosteum following transplantation, and is involved in the regulation of their proliferation and differentiation in vitro
Blood,
February 1, 2003;
101(3):
856 - 862.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
R. A. J. Oostendorp, A. J. Medvinsky, N. Kusadasi, N. Nakayama, K. Harvey, C. Orelio, K. Ottersbach, T. Covey, R. E. Ploemacher, C. Saris, et al.
Embryonal subregion-derived stromal cell lines from novel temperature-sensitive SV40 T antigen transgenic mice support hematopoiesis
J. Cell Sci.,
May 15, 2002;
115(10):
2099 - 2108.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
R. A. J. Oostendorp, K. N. Harvey, N. Kusadasi, M. F. T. R. de Bruijn, C. Saris, R. E. Ploemacher, A. L. Medvinsky, and E. A. Dzierzak
Stromal cell lines from mouse aorta-gonads-mesonephros subregions are potent supporters of hematopoietic stem cell activity
Blood,
February 15, 2002;
99(4):
1183 - 1189.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
S. K. Nilsson, H. M. Johnston, and J. A. Coverdale
Spatial localization of transplanted hemopoietic stem cells: inferences for the localization of stem cell niches
Blood,
April 15, 2001;
97(8):
2293 - 2299.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
I. Blazsek, J. Chagraoui, and B. Peault
Ontogenic emergence of the hematon, a morphogenetic stromal unit that supports multipotential hematopoietic progenitors in mouse bone marrow
Blood,
December 1, 2000;
96(12):
3763 - 3771.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
S. E. J. Cotterell, C. R. Engwerda, and P. M. Kaye
Leishmania donovani infection of bone marrow stromal macrophages selectively enhances myelopoiesis, by a mechanism involving GM-CSF and TNF-alpha
Blood,
March 1, 2000;
95(5):
1642 - 1651.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
S. J. Szilvassy, M. J. Bass, G. Van Zant, and B. Grimes
Organ-Selective Homing Defines Engraftment Kinetics of Murine Hematopoietic Stem Cells and Is Compromised by Ex Vivo Expansion
Blood,
March 1, 1999;
93(5):
1557 - 1566.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
Y. Takamatsu, P. J. Simmons, R. J. Moore, H. A. Morris, L. B. To, and J.-P. Levesque
Osteoclast-Mediated Bone Resorption Is Stimulated During Short-Term Administration of Granulocyte Colony-Stimulating Factor But Is Not Responsible for Hematopoietic Progenitor Cell Mobilization
Blood,
November 1, 1998;
92(9):
3465 - 3473.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
S. K. Nilsson, M. E. Debatis, M. S. Dooner, J. A. Madri, P. J. Quesenberry, and P. S. Becker
Immunofluorescence Characterization of Key Extracellular Matrix Proteins in Murine Bone Marrow In Situ
J. Histochem. Cytochem.,
March 1, 1998;
46(3):
371 - 378.
[Abstract]
[Full Text]
|
 |
|

|
 |

|
 |
 
S. K. Nilsson, M. S. Dooner, C. Y. Tiarks, H.-U. Weier, and P. J. Quesenberry
Potential and Distribution of Transplanted Hematopoietic Stem Cells in a Nonablated Mouse Model
Blood,
June 1, 1997;
89(11):
4013 - 4020.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
A. Aiuti, I.J. Webb, C. Bleul, T. Springer, and J.C. Gutierrez-Ramos
The Chemokine SDF-1 Is a Chemoattractant for Human CD34+ Hematopoietic Progenitor Cells and Provides a New Mechanism to Explain the Mobilization of CD34+ Progenitors to Peripheral Blood
J. Exp. Med.,
January 6, 1997;
185(1):
111 - 120.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
J. Gong
Endosteal marrow: a rich source of hematopoietic stem cells
Science,
March 31, 1978;
199(4336):
1443 - 1445.
[Abstract]
[PDF]
|
 |
|
|
|