scholarly journals Reconsidering marrow stem cell cycle status: insights into an actively cycling hematopoietic stem cell population

2014 ◽  
Vol 3 (S1) ◽  
pp. S12-S13
Author(s):  
L R Goldberg
2017 ◽  
Vol 53 ◽  
pp. S105
Author(s):  
Alexander Gerbaulet ◽  
Kristina Schoedel ◽  
Mina Morcos ◽  
Thomas Zerjatke ◽  
Ingo Roeder ◽  
...  

Haematologica ◽  
2019 ◽  
Vol 105 (2) ◽  
pp. e43-e47
Author(s):  
Loïc Maillard ◽  
Sandra Sanfilippo ◽  
Carine Domenech ◽  
Nassima Kasmi ◽  
Laurence Petit ◽  
...  

2007 ◽  
Vol 39 (2) ◽  
pp. 178-188 ◽  
Author(s):  
Ying Liang ◽  
Michael Jansen ◽  
Bruce Aronow ◽  
Hartmut Geiger ◽  
Gary Van Zant

2016 ◽  
Vol 44 (9) ◽  
pp. S97
Author(s):  
Kristina Schoedel ◽  
Mina Morcos ◽  
Thomas Zerjatke ◽  
Ingo Roeder ◽  
Tatyana Grinenko ◽  
...  

Blood ◽  
2011 ◽  
Vol 118 (21) ◽  
pp. 1274-1274
Author(s):  
Elizabeth Csaszar ◽  
Daniel Kirouac ◽  
Mei Yu ◽  
Caryn Ito ◽  
Peter W. Zandstra

Abstract Abstract 1274 Clinical outcomes of hematopoietic stem cell (HSC) transplantation are correlated with infused progenitor cell dose. Limited cell numbers in a typical umbilical cord blood (UCB) unit restricts the therapeutic potential of UCB and motivates ex vivo expansion of these cells. Strategies to grow HSCs have relied on the supplement of molecules acting directly on the stem cell population; however, in all cases, sustained HSC growth is limited by the concurrent growth of more mature cells and their endogenously produced inhibitory signaling factors. Despite increasing evidence for the important role of intercellular (between cell) communication networks, the identity and impact of non-stem cell autonomous feedback signaling remains poorly understood. Simultaneous kinetic tracking of more than 30 secreted factors produced during UCB culture, including TGF-b1, MIP-1b, and MCP-1, in combination with computational simulations of cell population dynamics, enabled us to develop a global control strategy predicted to reduce inhibitory paracrine signaling and, consequently, increase HSC self-renewal. By maintaining endogenously produced ligands at specified levels using a tuneable fed-batch (automated media dilution) strategy, we achieved significant improvements in expansions of total cell numbers (∼180-fold), CD34+ cells (∼80-fold), and NOD/SCID/IL-2Rgc-null (NSG) repopulating cells (∼11-fold, detected at limiting dilution). The fed-batch strategy has been integrated into an automated bioreactor, allowing for the generation of a clinically-relevant cell product after 12 days of culture, with minimal user manipulation. As this strategy targets the HSC environment and not the stem cells directly, it has the ability to act in combination with other expansion strategies to produce synergistic results. Unexpectedly, supplementation of the soluble protein, TAT-HOXB4, to the system, yielded the expected boost in progenitor expansion only in “sub-optimal” control conditions but not in the fed-batch system. Hypothesizing that the efficacy of HOXB4 may be dependent on the skewing of supportive vs. non-supportive cell populations, and the consequent impact of paracrine ligand production, we performed kinetic tracking of 20 hematopoietic cell types during several supportive (fed-batch, HOXB4 supplemented, Notch ligand Delta1 supplemented) vs. non-supportive (control) cultures. Meta analysis of these data revealed a non-autonomous link between HOXB4, increased megakaryocyte production, and stem cell proliferation, as well as between Notch delta-1 ligand, decreased myeloid cell production, and a decrease in the growth inhibition of stem cells. These predictions have been experimentally validated using co-cultures of sorted purified HSCs and CD41+ megakaryocykes and CD14+ monocytes. Our results identify complex connections between mature cell lineages and stem cell fate decisions and we expect to report a direct link between cell-cell interactions emerging from culture manipulations and the resulting impact on HSC self-renewal. Collectively, these studies support a dominant role for non-stem cell autonomous feedback signaling in the regulation of HSC self-renewal. Overcoming cell non-autonomous inhibition of HSC self-renewal has allowed for novel strategies to enhance HSC numbers ex vivo, thereby facilitating the production of clinically relevant quantities of stem and progenitor cells and enabling more effective strategies to treat hematologic disease. Disclosures: No relevant conflicts of interest to declare.


Science ◽  
2016 ◽  
Vol 354 (6316) ◽  
pp. 1156-1160 ◽  
Author(s):  
K. Ito ◽  
R. Turcotte ◽  
J. Cui ◽  
S. E. Zimmerman ◽  
S. Pinho ◽  
...  

Blood ◽  
1997 ◽  
Vol 89 (10) ◽  
pp. 3596-3606 ◽  
Author(s):  
Troy D. Randall ◽  
Irving L. Weissman

Abstract A significant fraction of hematopoietic stem cells (HSCs) have been shown to be resistant to the effects of cytotoxic agents such as 5-fluorouracil (5-FU), which is thought to eliminate many of the rapidly dividing, more committed progenitors in the bone marrow and to provide a relatively enriched population of the most primitive hematopoietic progenitor cells. Although differences between 5-FU–enriched progenitor populations and those from normal bone marrow have been described, it remained unclear if these differences reflected characteristics of the most primitive stem cells that were revealed by 5-FU, or if there were changes in the stem-cell population itself. Here, we have examined some of the properties of the stem cells in the bone marrow before and after 5-FU treatment and have defined several activation-related changes in the stem-cell population. We found that long-term reconstituting stem cells decrease their expression of the growth factor receptor c-kit by 10-fold and increase their expression of the integrin Mac-1 (CD11b). These changes begin as early as 24 hours after 5-FU treatment and are most pronounced within 2 to 3 days. This activated phenotype of HSCs isolated from 5-FU–treated mice is similar to the phenotype of stem cells found in the fetal liver and to the phenotype of transiently repopulating progenitors in normal bone marrow. We found that cell cycle is induced concomitantly with these physical changes, and within 2 days as many as 29% of the stem-cell population is in the S/G2/M phases of the cell cycle. Furthermore, when examined at a clonal level, we found that 5-FU did not appear to eliminate many of the transient, multipotent progenitors from the bone marrow that were found to be copurified with long-term repopulating, activated stem cells. These results demonstrate the sensitivity of the hematopoietic system to changes in its homeostasis and correlate the expression of several important surface molecules with the activation state of HSCs.


Blood ◽  
1997 ◽  
Vol 89 (10) ◽  
pp. 3596-3606 ◽  
Author(s):  
Troy D. Randall ◽  
Irving L. Weissman

A significant fraction of hematopoietic stem cells (HSCs) have been shown to be resistant to the effects of cytotoxic agents such as 5-fluorouracil (5-FU), which is thought to eliminate many of the rapidly dividing, more committed progenitors in the bone marrow and to provide a relatively enriched population of the most primitive hematopoietic progenitor cells. Although differences between 5-FU–enriched progenitor populations and those from normal bone marrow have been described, it remained unclear if these differences reflected characteristics of the most primitive stem cells that were revealed by 5-FU, or if there were changes in the stem-cell population itself. Here, we have examined some of the properties of the stem cells in the bone marrow before and after 5-FU treatment and have defined several activation-related changes in the stem-cell population. We found that long-term reconstituting stem cells decrease their expression of the growth factor receptor c-kit by 10-fold and increase their expression of the integrin Mac-1 (CD11b). These changes begin as early as 24 hours after 5-FU treatment and are most pronounced within 2 to 3 days. This activated phenotype of HSCs isolated from 5-FU–treated mice is similar to the phenotype of stem cells found in the fetal liver and to the phenotype of transiently repopulating progenitors in normal bone marrow. We found that cell cycle is induced concomitantly with these physical changes, and within 2 days as many as 29% of the stem-cell population is in the S/G2/M phases of the cell cycle. Furthermore, when examined at a clonal level, we found that 5-FU did not appear to eliminate many of the transient, multipotent progenitors from the bone marrow that were found to be copurified with long-term repopulating, activated stem cells. These results demonstrate the sensitivity of the hematopoietic system to changes in its homeostasis and correlate the expression of several important surface molecules with the activation state of HSCs.


Blood ◽  
1995 ◽  
Vol 86 (3) ◽  
pp. 868-876 ◽  
Author(s):  
JR Park ◽  
ID Bernstein ◽  
DM Hockenbery

Bcl-2 and its homologue, bcl-xL, encode membrane-associated proteins that suppress programmed cell death of hematopoietic cell lines after growth factor withdrawal, and are expressed in hematopoietic precursor cells. To better understand the maintenance of long-term survival in the hematopoietic stem cell population, we evaluated the expression patterns of Bcl-2 and Bcl-x in primitive hematopoietic precursor populations. Hematopoietic precursor cells expressing CD34 (CD34+) and lacking maturation-linked surface antigens (lin-) were isolated from adult human bone marrow using two-color immunofluorescence cell sorting and fractionated on the basis of forward light scatter characteristics into blast-sized and small to medium lymphocyte-sized cell populations. Bcl-2 expression was shown in 78% to 90% of CD34+ lin- blast-sized cells versus less than 10% of small to medium lymphocyte-sized CD34+ lin- cells by immunohistochemical analysis. Small to medium lymphocyte- sized CD34+ lin- cells were further enriched for primitive precursors by selecting cells that lacked expression of CD38 (CD34+ lin- CD38-). In parallel experiments, only 1% to 4% of CD34+ lin- CD38- cells expressed Bcl-2, whereas 45% to 56% of these cells generated colony- forming cells. In contrast, > or = 94% of cells in all bone marrow subpopulations studied expressed Bcl-x protein. Both alternatively spliced bcl-x transcripts, bcl-xL and bcl-xs, were present. Our data show that the most primitive hematopoietic precursors express Bcl-x but not Bcl-2. Thus, the functional bcl-2 homologue, bcl-xL, may be essential for the long-term survival of the hematopoietic stem cell population.


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