scholarly journals In vitro proliferation of hematopoietic stem cells in the absence of an adherent monolayer

Blood ◽  
1982 ◽  
Vol 60 (1) ◽  
pp. 130-135
Author(s):  
C Eastment ◽  
E Denholm ◽  
I Katsnelson ◽  
E Arnold ◽  
PO Ts'o

Experiments on long-term murine bone marrow cultures indicate that the production and maintenance of the hematopoietic stem cell is dependent on the establishment of an adherent monolayer and a secondary repopulation of the culture with fresh marrow. In contrast, we have found that bone marrow cultures derived from the Syrian hamster do not require a repopulation step and produce stem cells that proliferate and differentiate for more than 12 wk in the absence of an adherent layer. Stem cells were grown in Fisher's medium (pH 7.0–7.2) containing 20% horse serum in a fully humidified atmosphere of 5% CO2 in air at 37 degrees C. Cultures were fed twice weekly by removal of half of the medium and supernatant cells and replacement with an equal volume of fresh medium. No hormones or exogenous growth factors were required for the maintenance of myeloid cells, monocytes, and megakaryocytes in either the adherent or suspension cells cultures.

Blood ◽  
1982 ◽  
Vol 60 (1) ◽  
pp. 130-135 ◽  
Author(s):  
C Eastment ◽  
E Denholm ◽  
I Katsnelson ◽  
E Arnold ◽  
PO Ts'o

Abstract Experiments on long-term murine bone marrow cultures indicate that the production and maintenance of the hematopoietic stem cell is dependent on the establishment of an adherent monolayer and a secondary repopulation of the culture with fresh marrow. In contrast, we have found that bone marrow cultures derived from the Syrian hamster do not require a repopulation step and produce stem cells that proliferate and differentiate for more than 12 wk in the absence of an adherent layer. Stem cells were grown in Fisher's medium (pH 7.0–7.2) containing 20% horse serum in a fully humidified atmosphere of 5% CO2 in air at 37 degrees C. Cultures were fed twice weekly by removal of half of the medium and supernatant cells and replacement with an equal volume of fresh medium. No hormones or exogenous growth factors were required for the maintenance of myeloid cells, monocytes, and megakaryocytes in either the adherent or suspension cells cultures.


Blood ◽  
1975 ◽  
Vol 45 (5) ◽  
pp. 659-664
Author(s):  
Y Moriyama ◽  
JW Fisher

Erythropoietin-responsive stem cell (ERC) kinetics in anephric uremic rabbits were studied in vitro using the growth of erythroid colonies in a methyl cellulose system in cultures with and without the addition of erythropoietin (ESF). Approximately 68 hr after bilateral nephrectomy, an increase in BUN and decreases in hematocrit and marrow erythroid cellularity were seen. However, the numbers of erythroid colonies formed in response to ESF on plates inoculated with 2 times 10–5 cells were greater in anephric rabbit marrows than in normal controls. In addition, the numbers of erythroid colonies produced by the uremic and normal marrows in the presence of ESF were increased in proportion to the number of precursors plated. These findings suggest that, in uremia, the concentration of ERC is increased and that the ERC are capable of responding normally to ESF. The increase in the number of erythroid colonies of uremia may be due to the undisturbed flow of uncommitted hematopoietic stem cells into the ERC compartment in the presence of a delay of differentiation of ERC into heme-synthesizing nucleated erythroid cells due to a lack of ESF.


Blood ◽  
1975 ◽  
Vol 45 (5) ◽  
pp. 659-664 ◽  
Author(s):  
Y Moriyama ◽  
JW Fisher

Abstract Erythropoietin-responsive stem cell (ERC) kinetics in anephric uremic rabbits were studied in vitro using the growth of erythroid colonies in a methyl cellulose system in cultures with and without the addition of erythropoietin (ESF). Approximately 68 hr after bilateral nephrectomy, an increase in BUN and decreases in hematocrit and marrow erythroid cellularity were seen. However, the numbers of erythroid colonies formed in response to ESF on plates inoculated with 2 times 10–5 cells were greater in anephric rabbit marrows than in normal controls. In addition, the numbers of erythroid colonies produced by the uremic and normal marrows in the presence of ESF were increased in proportion to the number of precursors plated. These findings suggest that, in uremia, the concentration of ERC is increased and that the ERC are capable of responding normally to ESF. The increase in the number of erythroid colonies of uremia may be due to the undisturbed flow of uncommitted hematopoietic stem cells into the ERC compartment in the presence of a delay of differentiation of ERC into heme-synthesizing nucleated erythroid cells due to a lack of ESF.


Endocrinology ◽  
2002 ◽  
Vol 143 (1) ◽  
pp. 74-83 ◽  
Author(s):  
D. Gaddy-Kurten ◽  
J. K. Coker ◽  
E. Abe ◽  
R. L. Jilka ◽  
S. C. Manolagas

Abstract Using primary murine bone marrow cell cultures, we demonstrate that inhibin suppresses osteoblastogenesis and osteoclastogenesis. In contrast, activin supports osteoblast formation (by alkaline phosphatase-positive and mineralized colony formation); and activin also stimulates osteoclast formation (as measured by staining tartrate-resistant acid phosphatase-positive multinucleated cells). Inhibin, the activin antagonist follistatin, and the bone morphogenetic protein antagonist noggin can all suppress endogenous activin accumulation in bone marrow cultures. Associated with this decrease in activin is the loss of mineralized osteoblastic colony formation (colony forming unit-osteoblast; CFU-OB). However, exogenous activin administration, even in the presence of noggin, permits both alkaline phosphatase-positive and CFU-OB colony formation in vitro. In contrast, the stimulatory effects of locally produced activin on osteoblast and osteoclast development are not likely to be dominant over the suppressive effects of gonadally derived inhibin. The suppressive effect of inhibin is maintained in the presence of either activin or bone morphogenetic protein, suggesting the presence of a distinct inhibin-specific receptor. Taken together, the direct regulation of osteoblastogenesis and osteoclastogenesis by inhibin and activin in vitro suggest that changes in the inhibin/activin ratio detected by bone marrow cells, during the perimenopausal transition, contribute to altered cell differentiation and may be associated with the increased bone resorption observed at this time.


Blood ◽  
1984 ◽  
Vol 64 (2) ◽  
pp. 516-525 ◽  
Author(s):  
RJ Gualtieri ◽  
RK Shadduck ◽  
DG Baker ◽  
PJ Quesenberry

The nature of hematopoietic regulatory factors elaborated by the adherent (stromal) cells of long-term murine bone marrow cultures and the effect of in vitro stromal irradiation (XRT) on the production of these factors was investigated. Using an in situ stromal assay employing a double layer of semisolid agar, it was possible to demonstrate stromal elaboration of at least two colony-stimulating activities, ie, granulocyte/macrophage colony-stimulating activity (G/M- CSA) and megakaryocyte colony-stimulating activity (Meg-CSA). Exposure of the stroma to XRT resulted in dose-dependent elevations of both activities that correlated inversely with total myeloid cell mass as determined by concurrent reductions in total supernatant cell recoveries from irradiated cultures. Mixture experiments that combined control and irradiated stroma revealed that the hematopoietically active control stroma could block detection of XRT-related G/M-CSA elevations. These data implicate a local negative feedback mechanism in the regulation of hematopoiesis. Antiserum directed against purified L cell colony-stimulating factor (CSF) reduced granulocyte/macrophage colony formation in the target layer but did not effect the increased Meg-CSA. While a radioimmunoassay for L-cell type CSF was unable to detect significant differences in concentrated media from control and irradiated cultures, bioassays of these media revealed XRT-related G/M- CSA elevations. These results indicate that the G/M-CSA elaborated in these cultures is immunologically distinct from the Meg-CSA produced, and although distinct from L cell CSF, the G/M-CSA is crossreactive with the L cell CSF antiserum. Morphologic, histochemical, and factor VII antigen immunofluorescent studies were performed on the stromal cell population responsible for production of these stimulatory activities. In addition to “fat” cells, the stromal cells remaining after XRT were composed of two predominant cell populations. These included a major population of acid phosphatase and nonspecific esterase-positive macrophage-like cells and a minor population of factor VII antigen negative epithelioid cells.


Blood ◽  
1983 ◽  
Vol 61 (4) ◽  
pp. 770-774
Author(s):  
I Touw ◽  
B Lowenberg

Long-term cultures of human bone marrow were established for 5–13 wk to study the role of adipocytes in sustaining hematopoiesis. At weekly intervals, the numbers of nucleated cells and granulocyte-macrophage progenitor cells (GM-CFU) in culture were estimated in relation to the numbers of fat-containing cells present in the adherent stroma layer. In these quantifications, the numbers of GM-CFU trapped in the adherent cell layer were considered separately. It was found that the presence of adipocytes did not correlate with more active hematopoiesis. Fat cells appeared at late stages when successful cultures were being exhausted or early in cultures with poor activity. These observations suggest that human marrow continuous hematopoiesis in vitro, unlike hematopoiesis in the analogous murine bone marrow cultures, does not depend on the presence of adipocytes.


Blood ◽  
1996 ◽  
Vol 87 (2) ◽  
pp. 518-524 ◽  
Author(s):  
RS Taichman ◽  
MJ Reilly ◽  
SG Emerson

Hematopoietic stem cell differentiation occurs in direct proximity to osteoblasts within the bone marrow cavity. Despite this striking affiliation, surprisingly little is known about the precise cellular and molecular impact of osteoblasts on the bone marrow microenvironment. Recently, we showed that human osteoblasts produce a variety of cytokine mRNAs including granulocyte colony-stimulating factor, granulocyte-macrophage colony-stimulating factor, and interleukin-6. We examined here the ability of osteoblasts to support the development of hematopoietic colonies from progenitors as well the ability to maintain long-term culture-initiating cells (LTC-IC) in vitro. Examination of the hematopoietic cells recovered after 2 weeks of culture showed that osteoblasts support the maintenance of immature hematopoietic phenotypes. In methylcellulose assays, osteoblasts stimulate the development of hematopoietic colonies to a level at least 10-fold over controls from progenitor cells. Using limiting dilutional bone marrow cultures, we observed an activity produced by osteoblasts resulting in an threefold to fourfold expansion of human LTC-IC and progenitor cells in vitro. Thus, the presence of hematopoietic stem cells in close proximity to endosteal surfaces in vivo may be due in part to a requirement for osteoblast-derived products.


Blood ◽  
2004 ◽  
Vol 104 (11) ◽  
pp. 1758-1758
Author(s):  
Axel Schambach ◽  
Bernhard Schiedlmeier ◽  
Jens Bohne ◽  
Dorothee von Laer ◽  
Geoff Margison ◽  
...  

Abstract T20 is a 36-amino-acid peptide that binds to HIV-1 gp41 and thereby acts as a fusion inhibitor, thus mediating potent and selective inhibition of HIV-1 entry in vitro and in vivo. An extended peptide expressed as an artificial, membrane-bound molecule (mbC46) efficiently inhibits HIV infection of primary human T-cells following retroviral vector mediated gene transfer (Egelhofer et al., J Virol, 2004). To develop an even more stringent approach to HIV gene therapy, we targeted hematopoietic stem cells. In 3 experimental groups of C57BL/6 mice (9 animals/group), we investigated the long-term toxicity of murine bone marrow cells transduced with M87o, a therapeutic vector designed to coexpress mbC46 and an HIV-derived RNA RRE-decoy to inhibit HIV replication. As controls we used the same vector containing an inactive C46 peptide and mock-transduced cells. Blood samples were collected monthly. Donor chimerism and transgene expression in multiple lineages were determined by FACS analysis and transgene integration was measured by real time PCR. Six months after transplantation, 4 mice per group were sacrificed and the remaining 5 mice per group were observed for another 6 months. In addition to the parameters mentioned above, we performed complete histopathology, blood counts and clinical biochemistry. Donor chimerism in all groups ranged from 82 – 94% (day 190 and day 349). In the M87o group, 60% of donor cells expressed mbC46. FACS data showed persisting transgene expression in T-cells (CD4, CD8, 65%), B-cells (B220, 46%), myeloid cells (CD11b, 68%), platelets (CD41, 19%), and RBC (60%) of the peripheral blood and bone marrow cells. Highly sustained gene marking (2–4 copies/genome) was noticed on day 190. To reveal latent malignant clones potentially originating from side effects of the genetic manipulation, 1x106 bone marrow cells from 4 primary recipients were transplanted into lethally irradiated secondary recipients (3 recipients/primary mouse) and these mice were observed for 8 months. All together, we could not observe any evidence for leukemogenic capacity. Analysis of peripheral blood and bone marrow showed a similar transgene expression pattern compared to the primary mice. To generate a complete chimerism of transgenic cells, we chose the human drug resistance gene methylguanine-methyltransferase (MGMT, P140K) to select for mbC46-transduced stem cells in vitro and in vivo. Different coexpression strategies were tested. Function of the MGMT protein was confirmed in a quantitative alkyltransferase assay and in a cytotoxicity assay using BCNU or temozolomide. In vitro selection of transduced 32D and PM1 cells with benzylguanine and BCNU showed >95% positive cells with evidence of polyclonal survival. Transduced PM1 cells underwent an HIV challenge assay. In vivo experiments in a murine bone marrow transplantation setting are ongoing to determine the potency and safety of combined retroviral expression of mbC46 and MGMT in relevant preclinical models. Successful conclusion of these studies will hopefully result in a phase I clinical trial testing the concept of generating an HIV-resistant autologous hematopoiesis.


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