Erythroblastic islands: niches for erythropoiesis

被引:360
作者
Chasis, Joel Anne [1 ,2 ]
Mohandas, Narla [3 ]
机构
[1] Univ Calif Berkeley, Lawrence Berkeley Natl Lab, Div Life Sci, Berkeley, CA 94720 USA
[2] Univ Calif San Francisco, Div Hematol Oncol, San Francisco, CA 94143 USA
[3] New York Blood Ctr, Red Cell Physiol Lab, New York, NY 10021 USA
关键词
D O I
10.1182/blood-2008-03-077883
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Erythroblastic islands, the specialized niches in which erythroid precursors proliferate, differentiate, and enucleate, were first described 50 years ago by analysis of transmission electron micrographs of bone marrow. These hematopoietic sub-compartments are composed of erythroblasts surrounding a central macrophage. A hiatus of several decades followed, during which the importance of erythroblastic islands remained unrecognized as erythroid progenitors were shown to possess an autonomous differentiation pro-gram with a capacity to complete terminal differentiation in vitro in the presence of erythropoietin but without macrophages. However, as the extent of proliferation, differentiation, and enucleation efficiency documented in vivo could not be recapitulated in vitro, a resurgence of interest in erythroid niches has emerged. We now have an increased molecular understanding of processes operating within erythroid niches, including cell-cell and cell-extracellular matrix adhesion, positive and negative regulatory feedback, and central macrophage function. These features of erythroblast islands represent important contributors to normal erythroid development, as well as altered erythropoiesis found in such diverse diseases as anemia of inflammation and chronic disease, myelodysplasia, thalassemia, and malarial anemia. Coupling of historical, current, and future insights will be essential to understand the tightly regulated production of red cells both in steady state and stress erythropoiesis.
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收藏
页码:470 / 478
页数:9
相关论文
共 98 条
[1]   ULTRASTRUCTURAL ASPECTS OF ERYTHROPOIETIC DIFFERENTIATION IN LONG-TERM BONE-MARROW CULTURE [J].
ALLEN, TD ;
DEXTER, TM .
DIFFERENTIATION, 1982, 21 (02) :86-94
[2]  
ALLEN TD, 1991, BLOOD CELLS, V17, P29
[3]   Role of Gas6 in erythropoiesis and anemia in mice [J].
Angelillo-Scherrer, Anne ;
Burnier, Laurent ;
Lambrechts, Diether ;
Fish, Richard J. ;
Tjwa, Marc ;
Plaisance, Stephane ;
Sugamele, Rocco ;
DeMol, Maria ;
Martinez-Soria, Eduardo ;
Maxwell, Patrick H. ;
Lemke, Greg ;
Goff, Stephen P. ;
Matsushima, Glenn K. ;
Earp, H. Shelton ;
Chanson, Marc ;
Collen, Desire ;
Izui, Shozo ;
Schapira, Marc ;
Conway, Edward M. ;
Carmeliet, Peter .
JOURNAL OF CLINICAL INVESTIGATION, 2008, 118 (02) :583-596
[4]   F4-80, A MONOCLONAL-ANTIBODY DIRECTED SPECIFICALLY AGAINST THE MOUSE MACROPHAGE [J].
AUSTYN, JM ;
GORDON, S .
EUROPEAN JOURNAL OF IMMUNOLOGY, 1981, 11 (10) :805-815
[5]  
Barbe E, 1996, J CELL SCI, V109, P2937
[6]  
BESSIS M, 1978, BLOOD CELLS, V4, P155
[7]  
BESSIS M, 1958, Rev Hematol, V13, P8
[8]   IRON METABOLISM IN BONE MARROW AS SEEN BY ELECTRON MICROSCOPY - A CRITICAL REVIEW [J].
BESSIS, MC ;
BRETONGORINS, J .
BLOOD, 1962, 19 (06) :635-+
[9]   Cell-intrinsic requirement for pRb in erythropoiesis [J].
Clark, AJ ;
Doyle, KM ;
Humbert, PO .
BLOOD, 2004, 104 (05) :1324-1326
[10]   REQUIREMENT FOR A FUNCTIONAL RB-1 GENE IN MURINE DEVELOPMENT [J].
CLARKE, AR ;
MAANDAG, ER ;
VANROON, M ;
VANDERLUGT, NMT ;
VANDERVALK, M ;
HOOPER, ML ;
BERNS, A ;
RIELE, HT .
NATURE, 1992, 359 (6393) :328-330