References
Items 1741 to 1752 of 9355 total
- Hü et al. (JAN 2010) International immunology 22 1 35--44
Intact LFA-1 deactivation promotes T-cell activation and rejection of cardiac allograft.
Leucocyte function-associated antigen-1 (LFA-1) is known to be involved in immune reactions leading to allograft rejection. The role of deactivating LFA-1 in this context has not been investigated yet, although it is accepted that regulating LFA-1 activity is essential for T-cell function. Expressing LFA-1 locked in an active state in mice (LFA-1(d/d)) allowed us to investigate the in vivo function of LFA-1 deactivation for allograft rejection in a model of heterotopic cardiac transplantation. We provide in vivo evidence that regulating LFA-1 activity from an active to an inactive state controls antigen-specific priming and proliferation of T cells in response to allogeneic stimuli. Consequently, defective LFA-1 deactivation significantly prolonged cardiac allograft survival. Furthermore, reduced numbers of alloantigen-specific T cells and non-allo-specific innate immune cells within allografts of LFA-1(d/d) recipients indicate that expression of active LFA-1 impairs inflammatory responses involving all major leucocyte subpopulations. Taken together, our in vivo data suggest that LFA-1 deactivation is important for the formation of inflammatory lesions and rejection of cardiac allografts. Thus, the dynamic regulation of LFA-1 activity, rather than the mere presence of LFA-1, appears to contribute to the control of immune reactions inducing allogeneic transplant rejection.Catalog #: Product Name: 20155 RoboSepâ„¢ Tube Kit 21000 ¸é´Ç²ú´Ç³§±ð±èâ„¢-³§ Catalog #: 20155 Product Name: RoboSepâ„¢ Tube Kit Catalog #: 21000 Product Name: ¸é´Ç²ú´Ç³§±ð±èâ„¢-³§ Saraiya M et al. (APR 2010) Tissue engineering. Part A 16 4 1443--55Reversine enhances generation of progenitor-like cells by dedifferentiation of annulus fibrosus cells.
The aim of this study was to determine if treatment with reversine, a purine analog, promoted generation of skeletal progenitor cells from lineage-committed annulus fibrosus cells. Reversine modulated cell growth, morphology, and the actin cytoskeleton of annulus fibrosus cells. Microarray profiling coupled with Ingenuity Pathway Analysis revealed that reversine treatment resulted in a significant expression change in many genes including those required for cell-cell interaction, cell movement, cell growth, and development. Further analysis revealed that there was involvement of gene networks concerned with cellular assembly and organization, DNA replication and repair, tissue morphology, and cell-to-cell signaling. The gene expression profile was dependent on reversine concentration. In osteogenic media, cells pretreated with 300 nM reversine exhibited an increased induction in alkaline phosphatase activity and enhanced expression of alkaline phosphatase, bone sialoprotein, osteocalcin, and collagen type I mRNA. Maintained in adipogenic media, the reversine-pretreated annulus cells displayed evidence of adipogenic differentiation: accumulation of cytosolic lipid droplets and increased expression of PPAR-gamma2, LPL, and Fabp mRNA. In chondrogenic media, cells pretreated with reversine exhibited marked increase in the induction of aggrecan, collagen types II, IX, and XI, and versican. It is concluded that reversine treatment induced annulus fibrosus cell plasticity and promoted their differentiation along mesenchymal lineages. This agent could be used to generate skeletal progenitor cells to orchestrate the repair of the intervertebral disc.Catalog #: Product Name: 72612 Reversine Catalog #: 72612 Product Name: Reversine Kranc KR et al. (DEC 2009) Cell stem cell 5 6 659--65Cited2 is an essential regulator of adult hematopoietic stem cells.
The regulatory pathways necessary for the maintenance of adult hematopoietic stem cells (HSCs) remain poorly defined. By using loss-of-function approaches, we report a selective and cell-autonomous requirement for the p300/CBP-binding transcriptional coactivator Cited2 in adult HSC maintenance. Conditional deletion of Cited2 in the adult mouse results in loss of HSCs causing multilineage bone marrow failure and increased lethality. In contrast, conditional ablation of Cited2 after lineage specification in lymphoid and myeloid lineages has no impact on the maintenance of these lineages. Additional deletion of Ink4a/Arf (encoding p16(Ink4a) and p19(Arf)) or Trp53 (encoding p53, a downstream target of p19(Arf)) in a Cited2-deficient background restores HSC functionality and rescues mice from bone marrow failure. Furthermore, we show that the critical role of Cited2 in primitive hematopoietic cells is conserved in humans. Taken together, our studies provide genetic evidence that Cited2 selectively maintains adult HSC functions, at least in part, via Ink4a/Arf and Trp53.Catalog #: Product Name: 70008 Human Cord Blood CD34+ Cells, Frozen Catalog #: 70008 Product Name: Human Cord Blood CD34+ Cells, Frozen Hagn F et al. (JAN 2010) The Journal of biological chemistry 285 5 3439--50BclxL changes conformation upon binding to wild-type but not mutant p53 DNA binding domain.
p53 can induce apoptosis through mitochondrial membrane permeabilization by interaction of its DNA binding region with the anti-apoptotic proteins BclxL and Bcl2. However, little is known about the action of p53 at the mitochondria in molecular detail. By using NMR spectroscopy and fluorescence polarization we characterized the binding of wild-type and mutant p53 DNA binding domains to BclxL and show that the wild-type p53 DNA binding domain leads to structural changes in the BH3 binding region of BclxL, whereas mutants fail to induce such effects due to reduced affinity. This was probed by induced chemical shift and residual dipolar coupling data. These data imply that p53 partly achieves its pro-apoptotic function at the mitochondria by facilitating interaction between BclxL and BH3-only proteins in an allosteric mode of action. Furthermore, we characterize for the first time the binding behavior of Pifithrin-mu, a specific small molecule inhibitor of the p53-BclxL interaction, and present a structural model of the protein-ligand complex. A rather unusual behavior is revealed whereby Pifithrin-mu binds to both sides of the protein-protein complex. These data should facilitate the rational design of more potent specific BclxL-p53 inhibitors.Catalog #: Product Name: 72802 Pifithrin-mu Catalog #: 72802 Product Name: Pifithrin-mu Gibbons JJ et al. (DEC 2009) Seminars in oncology 36 Suppl 3 S3--S17Mammalian target of rapamycin: discovery of rapamycin reveals a signaling pathway important for normal and cancer cell growth.
Since the discovery of rapamycin, considerable progress has been made in unraveling the details of the mammalian target of rapamycin (mTOR) signaling network, including the upstream mechanisms that modulate mTOR signaling functions, and the roles of mTOR in the regulation of mRNA translation and other cell growth-related responses. mTOR is found in two different complexes within the cell, mTORC1 and mTORC2, but only mTORC1 is sensitive to inhibition by rapamycin. mTORC1 is a master controller of protein synthesis, integrating signals from growth factors within the context of the energy and nutritional conditions of the cell. Activated mTORC1 regulates protein synthesis by directly phosphorylating 4E-binding protein 1 (4E-BP1) and p70S6K (S6K), translation initiation factors that are important to cap-dependent mRNA translation, which increases the level of many proteins that are needed for cell cycle progression, proliferation, angiogenesis, and survival pathways. In normal physiology, the roles of mTOR in both glucose and lipid catabolism underscore the importance of the mTOR pathway in the production of metabolic energy in quantities sufficient to fuel cell growth and mitotic cell division. Several oncogenes and tumor-suppressor genes that activate mTORC1, often through the phosphatidylinositol 3-kinase (PI3K)/AKT pathway, are frequently dysregulated in cancer. Novel analogs of rapamycin (temsirolimus, everolimus, and deforolimus), which have improved pharmaceutical properties, were designed for oncology indications. Clinical trials of these analogs have already validated the importance of mTOR inhibition as a novel treatment strategy for several malignancies. Inhibition of mTOR now represents an attractive anti-tumor target, either alone or in combination with strategies to target other pathways that may overcome resistance. The far-reaching downstream consequences of mTOR inhibition make defining the critical molecular effector mechanisms that mediate the anti-tumor response and associated biomarkers that predict responsiveness to mTOR inhibitors a challenge and priority for the field.Catalog #: Product Name: 73362 Rapamycin Catalog #: 73362 Product Name: Rapamycin Laurent B et al. (JAN 2010) Blood 115 3 687--95High-mobility group protein HMGB2 regulates human erythroid differentiation through trans-activation of GFI1B transcription.
Gfi-1B is a transcriptional repressor that is crucial for erythroid differentiation: inactivation of the GFI1B gene in mice leads to embryonic death due to failure to produce differentiated red cells. Accordingly, GFI1B expression is tightly regulated during erythropoiesis, but the mechanisms involved in such regulation remain partially understood. We here identify HMGB2, a high-mobility group HMG protein, as a key regulator of GFI1B transcription. HMGB2 binds to the GFI1B promoter in vivo and up-regulates its trans-activation most likely by enhancing the binding of Oct-1 and, to a lesser extent, of GATA-1 and NF-Y to the GFI1B promoter. HMGB2 expression increases during erythroid differentiation concomitantly to the increase of GfI1B transcription. Importantly, knockdown of HMGB2 in immature hematopoietic progenitor cells leads to decreased Gfi-1B expression and impairs their erythroid differentiation. We propose that HMGB2 potentiates GATA-1-dependent transcription of GFI1B by Oct-1 and thereby controls erythroid differentiation.Catalog #: Product Name: 09600 StemSpanâ„¢ SFEM 04100 MethoCultâ„¢ H4100 04230 MethoCultâ„¢ H4230 Catalog #: 09600 Product Name: StemSpanâ„¢ SFEM Catalog #: 04100 Product Name: MethoCultâ„¢ H4100 Catalog #: 04230 Product Name: MethoCultâ„¢ H4230 Ingersoll MA et al. (JAN 2010) Blood 115 3 e10--9Comparison of gene expression profiles between human and mouse monocyte subsets.
Blood of both humans and mice contains 2 main monocyte subsets. Here, we investigated the extent of their similarity using a microarray approach. Approximately 270 genes in humans and 550 genes in mice were differentially expressed between subsets by 2-fold or more. More than 130 of these gene expression differences were conserved between mouse and human monocyte subsets. We confirmed numerous of these differences at the cell surface protein level. Despite overall conservation, some molecules were conversely expressed between the 2 species' subsets, including CD36, CD9, and TREM-1. Other differences included a prominent peroxisome proliferator-activated receptor gamma (PPARgamma) signature in mouse monocytes, which is absent in humans, and strikingly opposed patterns of receptors involved in uptake of apoptotic cells and other phagocytic cargo between human and mouse monocyte subsets. Thus, whereas human and mouse monocyte subsets are far more broadly conserved than currently recognized, important differences between the species deserve consideration when models of human disease are studied in mice.Catalog #: Product Name: 15028 RosetteSepâ„¢ Human Monocyte Enrichment Cocktail Catalog #: 15028 Product Name: RosetteSepâ„¢ Human Monocyte Enrichment Cocktail Peng C et al. (JAN 2010) Blood 115 3 626--35PTEN is a tumor suppressor in CML stem cells and BCR-ABL-induced leukemias in mice.
The tumor suppressor gene phosphatase and tensin homolog (PTEN) is inactivated in many human cancers. However, it is unknown whether PTEN functions as a tumor suppressor in human Philadelphia chromosome-positive leukemia that includes chronic myeloid leukemia (CML) and B-cell acute lymphoblastic leukemia (B-ALL) and is induced by the BCR-ABL oncogene. By using our mouse model of BCR-ABL-induced leukemias, we show that Pten is down-regulated by BCR-ABL in leukemia stem cells in CML and that PTEN deletion causes acceleration of CML development. In addition, overexpression of PTEN delays the development of CML and B-ALL and prolongs survival of leukemia mice. PTEN suppresses leukemia stem cells and induces cell-cycle arrest of leukemia cells. Moreover, PTEN suppresses B-ALL development through regulating its downstream gene Akt1. These results demonstrate a critical role of PTEN in BCR-ABL-induced leukemias and suggest a potential strategy for the treatment of Philadelphia chromosome-positive leukemia.Catalog #: Product Name: 09600 StemSpanâ„¢ SFEM Catalog #: 09600 Product Name: StemSpanâ„¢ SFEM Zeng F-Y et al. ( 2010) Biochemical and biophysical research communications 391 1 1049--1055Glycogen synthase kinase 3 regulates PAX3-FKHR-mediated cell proliferation in human alveolar rhabdomyosarcoma cells.
Patients with alveolar rhabdomyosarcoma (ARMS) have poorer response to conventional chemotherapy and lower survival rates than those with embryonal RMS (ERMS). To identify compounds that preferentially block the growth of ARMS, we conducted a small-scale screen of 160 kinase inhibitors against the ARMS cell line Rh30 and ERMS cell line RD and identified inhibitors of glycogen synthase kinase 3 (GSK3), including TWS119 as ARMS-selective inhibitors. GSK3 inhibitors inhibited cell proliferation and induced apoptosis more effectively in Rh30 than RD cells. Ectopic expression of fusion protein PAX3-FKHR in RD cells significantly increased their sensitivity to TWS119. Down-regulation of GSK3 by GSK3 inhibitors or siRNA significantly reduced the transcriptional activity of PAX3-FKHR. These results suggest that GSK3 is directly involved in regulating the transcriptional activity of PAX3-FKHR. Also, GSK3 phosphorylated PAX3-FKHR in vitro, suggesting that GSK3 might regulate PAX3-FKHR activity via phosphorylation. These findings support a novel mechanism of PAX3-FKHR regulation by GSK3 and provide a novel strategy to develop GSK inhibitors as anti-ARMS therapies.Catalog #: Product Name: 73512 TWS119 Catalog #: 73512 Product Name: TWS119 Menendez P et al. (DEC 2009) The Journal of experimental medicine 206 13 3131--41Bone marrow mesenchymal stem cells from infants with MLL-AF4+ acute leukemia harbor and express the MLL-AF4 fusion gene.
MLL-AF4 fusion is a hallmark genetic abnormality in infant B-acute lymphoblastic leukemia (B-ALL) known to arise in utero. The cellular origin of leukemic fusion genes during human development is difficult to ascertain. The bone marrow (BM) microenvironment plays an important role in the pathogenesis of several hematological malignances. BM mesenchymal stem cells (BM-MSC) from 38 children diagnosed with cytogenetically different acute leukemias were screened for leukemic fusion genes. Fusion genes were absent in BM-MSCs of childhood leukemias carrying TEL-AML1, BCR-ABL, AML1-ETO, MLL-AF9, MLL-AF10, MLL-ENL or hyperdiploidy. However, MLL-AF4 was detected and expressed in BM-MSCs from all cases of MLL-AF4(+) B-ALL. Unlike leukemic blasts, MLL-AF4(+) BM-MSCs did not display monoclonal Ig gene rearrangements. Endogenous or ectopic expression of MLL-AF4 exerted no effect on MSC culture homeostasis. These findings suggest that MSCs may be in part tumor-related, highlighting an unrecognized role of the BM milieu on the pathogenesis of MLL-AF4(+) B-ALL. MLL-AF4 itself is not sufficient for MSC transformation and the expression of MLL-AF4 in MSCs is compatible with a mesenchymal phenotype, suggesting a differential impact in the hematopoietic system and mesenchyme. The absence of monoclonal rearrangements in MLL-AF4(+) BM-MSCs precludes the possibility of cellular plasticity or de-differentiation of B-ALL blasts and suggests that MLL-AF4 might arise in a population of prehematopoietic precursors.Catalog #: Product Name: 05401 MesenCultâ„¢ MSC Basal Medium (Human) 05402 MesenCultâ„¢ MSC Stimulatory Supplement (Human) 05411 MesenCultâ„¢ Proliferation Kit (Human) Catalog #: 05401 Product Name: MesenCultâ„¢ MSC Basal Medium (Human) Catalog #: 05402 Product Name: MesenCultâ„¢ MSC Stimulatory Supplement (Human) Catalog #: 05411 Product Name: MesenCultâ„¢ Proliferation Kit (Human) Balasubramaniam V et al. (MAR 2010) American journal of physiology. Lung cellular and molecular physiology 298 3 L315--23Bone marrow-derived angiogenic cells restore lung alveolar and vascular structure after neonatal hyperoxia in infant mice.
Neonatal hyperoxia impairs vascular and alveolar growth in mice and decreases endothelial progenitor cells. To determine the role of bone marrow-derived cells in restoration of neonatal lung structure after injury, we studied a novel bone marrow myeloid progenitor cell population from Tie2-green fluorescent protein (GFP) transgenic mice (bone marrow-derived angiogenic cells; BMDAC). We hypothesized that treatment with BMDAC would restore normal lung structure in infant mice during recovery from neonatal hyperoxia. Neonatal mice (1-day-old) were exposed to 80% oxygen for 10 days. BMDACs (1 x 10(5)), embryonic endothelial progenitor cells, mouse embryonic fibroblasts (control), or saline were then injected into the pulmonary circulation. At 21 days of age, saline-treated mice had enlarged alveoli, reduced septation, and a reduction in vascular density. In contrast, mice treated with BMDAC had complete restoration of lung structure that was indistinguishable from room air controls. BMDAC comprised 12% of distal lung cells localized to pulmonary vessels or alveolar type II (AT2) cells and persist (8.8%) for 8 wk postinjection. Coculture of AT2 cells or lung endothelial cells (luEC) with BMDAC augmented AT2 and luEC cell growth in vitro. We conclude that treatment with BMDAC after neonatal hyperoxia restores lung structure in this model of bronchopulmonary dysplasia.Catalog #: Product Name: 03534 MethoCultâ„¢ GF M3534 Catalog #: 03534 Product Name: MethoCultâ„¢ GF M3534 Verstovsek S ( 2009) Hematology / the Education Program of the American Society of Hematology. American Society of Hematology. Education Program 2009 1 636--642Therapeutic potential of JAK2 inhibitors.
The discovery of an activating tyrosine kinase mutation JAK2V617F in myeloproliferative neoplasms (MPNs), polycythemia vera (PV), essential thrombocythemia (ET) and primary myelofibrosis (PMF) has resulted in the development of JAK2 inhibitors, of which several are being evaluated in phase I/II clinical studies. It is important to recognize that because the V617F mutation is localized in a region outside the adenosine triphosphate (ATP)-binding pocket of JAK2 enzyme, ATP-competitive inhibitors of JAK2 kinase (like the current JAK2 inhibitors in the clinic) are not likely to discriminate between wild-type and mutant JAK2 enzymes. Therefore, JAK2 inhibitors, by virtue of their near equipotent activity against wild-type JAK2 that is important for normal hematopoiesis, may have adverse myelosuppression as an expected side effect, if administered at doses that aim to completely inhibit the mutant JAK2 enzyme. While they may prove to be effective in controlling hyperproliferation of hematopoietic cells in PV and ET, they may not be able to eliminate mutant clones. On the other hand, JAK inhibitors may have great therapeutic benefit by controlling the disease for patients with MPNs who suffer from debilitating signs (eg, splenomegaly) or constitutional symptoms (which presumably result from high levels of circulating cytokines that signal through JAK enzymes). Indeed, the primary clinical benefits observed so far in MF patients have been significant reduction is splenomegaly, elimination of debilitating disease-related symptoms, and weight gain. Most importantly, patients with and without the JAK2V617F mutation appear to benefit to the same extent. In this review we summarize current clinical experience with JAK2 inhibitors in MPNs.Catalog #: Product Name: 73402 ¸é³Ü³æ´Ç±ô¾±³Ù¾±²Ô¾±²ú​ Catalog #: 73402 Product Name: ¸é³Ü³æ´Ç±ô¾±³Ù¾±²Ô¾±²ú​ Items 1741 to 1752 of 9355 total
Shop ByFilter Results- Resource Type
-
- Reference 9355 items
- Product Type
-
- 24 items
- Area of Interest
-
- 11 items
- Angiogenic Cell Research 48 items
- Cancer 600 items
- Cell Line Development 137 items
- Chimerism 5 items
- Cord Blood Banking 23 items
- Drug Discovery and Toxicity Testing 176 items
- Endothelial Cell Biology 2 items
- Epithelial Cell Biology 156 items
- HIV 51 items
- HLA 7 items
- Immunology 733 items
- Infectious Diseases 1 item
- Neuroscience 487 items
- Stem Cell Biology 2484 items
- Transplantation Research 53 items
- Brand
-
- 0 11 items
- ALDECOUNT 7 items
- ALDEFLUOR 216 items
- AggreWell 55 items
- ArciTect 1 item
- BrainPhys 45 items
- ClonaCell 83 items
- CryoStor 65 items
- ES-Cult 74 items
- EasyPick 1 item
- EasySep 751 items
- EpiCult 12 items
- HepatiCult 1 item
- ImmunoCult 7 items
- IntestiCult 142 items
- Lymphoprep 9 items
- MammoCult 45 items
- MegaCult 33 items
- MesenCult 133 items
- MethoCult 440 items
- MyeloCult 61 items
- MyoCult 2 items
- NeuroCult 350 items
- NeuroFluor 1 item
- PancreaCult 3 items
- PneumaCult 77 items
- RSeT 6 items
- ReLeSR 1 item
- RoboSep 20 items
- RosetteSep 252 items
- STEMdiff 48 items
- STEMvision 3 items
- SepMate 29 items
- StemSpan 219 items
- TeSR 1447 items
- mFreSR 3 items
- Cell and Tissue Source
-
- 24 items
- Cell Line
-
- 24 items
- Cell Type
-
- 12 items
- Airway Cells 40 items
- B Cells 134 items
- Brain Tumor Stem Cells 81 items
- Cancer Cells and Cell Lines 116 items
- Cardiomyocytes, PSC-Derived 8 items
- Dendritic Cells 59 items
- Dermal Cells 1 item
- Endothelial Cells 1 item
- Epithelial Cells 48 items
- Granulocytes and Subsets 61 items
- Hematopoietic Stem and Progenitor Cells 765 items
- Hepatic Cells 2 items
- Hybridomas 73 items
- Innate Lymphoid Cells 3 items
- Intestinal Cells 12 items
- Leukemia/Lymphoma Cells 8 items
- Mammary Cells 68 items
- Mesenchymal Stem and Progenitor Cells 132 items
- Monocytes 105 items
- Mononuclear Cells 32 items
- Myeloid Cells 99 items
- NK Cells 79 items
- Neural Cells, PSC-Derived 17 items
- Neural Stem and Progenitor Cells 377 items
- Neurons 135 items
- Plasma 3 items
- Pluripotent Stem Cells 1676 items
- Prostate Cells 7 items
- Renal Cells 2 items
- T Cells 178 items
- T Cells, CD4+ 84 items
- T Cells, CD8+ 48 items
- T Cells, Regulatory 18 items
Loading...Copyright © 2026 º£½ÇÆÆ½â°æ. All rights reserved.