Literature DB >> 8916938

Granulocytic and monocytic differentiation of CD34hi cells is associated with distinct changes in the expression of the PU.1-regulated molecules, CD64 and macrophage colony-stimulating factor receptor.

J Olweus1, P A Thompson, F Lund-Johansen.   

Abstract

The present study investigated the possibility that macrophage colony-stimulating factor (M-CSF) responsiveness of hematopoietic progenitor cells is regulated at the level of receptor expression and that M-CSF receptor (M-CSFR) may be used as an early marker of monocyte lineage commitment. Immunofluorescence measurements with an anti-M-CSFR antibody showed that 44% +/- 5% of CD34hi cells expressed the receptor. The M-CSFR was present on progenitor cells that were positive for the granulo-monocytic marker CD64, but not on primitive, erythroid, or lymphoid progenitors. The CD34hiCD64+ population could be divided into subsets of M-CSFRhi and M-CSFRlo cells. In addition, a subset of CD34hiCD64-M-CSFRhi cells was found. CD34+ cells that were positive for M-CSFR, CD64, or both gave rise exclusively to granulo-monocytic cells, and 65% of the granulomonocytic colony-forming cells in the CD34+ population were recovered from these cells. Approximately 70% of the colony-forming cells (CFCs) derived from CD34hiM-CSFRhi cells were macrophage colony-forming units (CFU-M), whereas 91% of the CFCs in the CD34hiCD64+M-CSFRlo population were granulocyte colony-forming units (CFU-G). The M-CSFRhi cells with the highest frequency of colony-forming and bipotent cells and largest average colony size were found in the CD64- subset, indicating that M-CSFR appears earlier than CD64 during monocyte development. After 60 hours in culture, a subset of the CD34hiM-CSFRhi cells had downmodulated M-CSFR (29% to 38%). This population gave rise almost exclusively to granulocytes, whereas the cells that remained M-CSFRhi gave rise exclusively to monocytes. In all experiments, the M-CSFRhi population responded to M-CSF, whereas minimal responses were observed among M-CSFRlo cells. These results suggest that M-CSF target specificity among human hematopoietic progenitor cells is determined by lineage-specific regulation of the M-CSFR and show that M-CSFR is a useful marker to discriminate between monocytic and granulocytic progenitor cells.

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Year:  1996        PMID: 8916938

Source DB:  PubMed          Journal:  Blood        ISSN: 0006-4971            Impact factor:   22.113


  14 in total

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3.  Dendritic cell ontogeny: a human dendritic cell lineage of myeloid origin.

Authors:  J Olweus; A BitMansour; R Warnke; P A Thompson; J Carballido; L J Picker; F Lund-Johansen
Journal:  Proc Natl Acad Sci U S A       Date:  1997-11-11       Impact factor: 11.205

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Authors:  J Khalife; H S Radomska; R Santhanam; X Huang; P Neviani; J Saultz; H Wang; Y-Z Wu; H Alachkar; M Anghelina; A Dorrance; J Curfman; C D Bloomfield; B C Medeiros; D Perrotti; L J Lee; R J Lee; M A Caligiuri; F Pichiorri; C M Croce; R Garzon; M L Guzman; J H Mendler; G Marcucci
Journal:  Leukemia       Date:  2015-05-14       Impact factor: 11.528

5.  Biomechanical regulation of human monocyte/macrophage molecular function.

Authors:  J H Yang; H Sakamoto; E C Xu; R T Lee
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6.  Myeloid commitment shifts toward monocytopoiesis after thermal injury and sepsis.

Authors:  S Santangelo; R L Gamelli; R Shankar
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Authors:  E Taraldsrud; B Fevang; P Aukrust; K H Beiske; Y Fløisand; S Frøland; H Rollag; J Olweus
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8.  Normal myeloid development requires both the glutamine-rich transactivation domain and the PEST region of transcription factor PU.1 but not the potent acidic transactivation domain.

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9.  Prospective isolation of human clonogenic common myeloid progenitors.

Authors:  Markus G Manz; Toshihiro Miyamoto; Koichi Akashi; Irving L Weissman
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Review 10.  The Entry and Egress of Monocytes in Atherosclerosis: A Biochemical and Biomechanical Driven Process.

Authors:  Hongyan Kang; Xinyu Li; Kewen Xiong; Zhiyun Song; Jiaxin Tian; Yuqiao Wen; Anqiang Sun; Xiaoyan Deng
Journal:  Cardiovasc Ther       Date:  2021-07-08       Impact factor: 3.023

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