Trolox selectively enhances arsenic-mediated oxidative stress and apoptosis in APL and other malignant cell lines.
Although arsenic trioxide (As(2)O(3)) is an effective therapy in acute promyelocytic leukemia (APL),its use in other malignancies is limited by the toxicity of concentrations required to induce apoptosis in non-APL tumor cells. We looked for agents that would synergize with As(2)O(3) to induce apoptosis in malignant cells,but not in normal cells. We found that trolox (6-hydroxy-2,5,7,8-tetramethylchroman-2-carboxylic acid),a widely known antioxidant,enhances As(2)O(3)-mediated apoptosis in APL,myeloma,and breast cancer cells. Treatment with As(2)O(3) and trolox increased intracellular oxidative stress,as evidenced by heme oxygenase-1 (HO-1) protein levels,c-Jun terminal kinase (JNK) activation,and protein and lipid oxidation. The synergistic effects of trolox may be specific to As(2)O(3),as trolox does not add to toxicity induced by other chemotherapeutic drugs. We explored the mechanism of this synergy using electron paramagnetic resonance and observed the formation of trolox radicals when trolox was combined with As(2)O(3),but not with doxorubicin. Importantly,trolox protected nonmalignant cells from As(2)O(3)-mediated cytotoxicity. Our data provide the first evidence that trolox may extend the therapeutic spectrum of As(2)O(3). Furthermore,the combination of As(2)O(3) and trolox shows potential specificity for tumor cells,suggesting it may not increase the toxicity associated with As(2)O(3) monotherapy in vivo.
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产品号#:
100-0572
100-0573
产品名:
Trolox
Trolox
P. Deng et al. (feb 2021)
Cell stem cell
Loss of KDM4B exacerbates bone-fat imbalance and mesenchymal stromal cell exhaustion in skeletal aging.
Skeletal aging is a complex process,characterized by a decrease in bone formation,an increase in marrow fat,and stem cell exhaustion. Loss of H3K9me3,a heterochromatin mark,has been proposed to be associated with aging. Here,we report that loss of KDM4B in mesenchymal stromal cells (MSCs) exacerbated skeletal aging and osteoporosis by reducing bone formation and increasing marrow adiposity via increasing H3K9me3. KDM4B epigenetically coordinated $\beta$-catenin/Smad1-mediated transcription by removing repressive H3K9me3. Importantly,KDM4B ablation impaired MSC self-renewal and promoted MSC exhaustion by inducing senescence-associated heterochromatin foci formation,providing a mechanistic explanation for stem cell exhaustion with aging. Moreover,while KDM4B was required for parathyroid hormone-mediated bone anabolism,KDM4B depletion accelerated bone loss and marrow adiposity induced by a high-fat diet. Our results suggest that the epigenetic rejuvenation and reversing bone-fat imbalance might be new strategies for preventing and treating skeletal aging and osteoporosis by activating KDM4B in MSCs.
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产品号#:
05513
产品名:
MesenCult™ 扩增试剂盒 (小鼠)
J. Dalli et al. (jul 2010)
The American journal of pathology 177 1 176--86
CFTR inhibition provokes an inflammatory response associated with an imbalance of the annexin A1 pathway.
Cystic fibrosis (CF),a disease caused by mutations in the CF transmembrane conductance regulator (CFTR) gene,is characterized by chronic bacterial infections and inflammation in the lung. Having previously shown that deletion of CFTR is associated with lower expression of the endogenous anti-inflammatory protein Annexin A1 (AnxA1),we investigated further this possible functional connection using a validated CFTR inhibitor. Treatment of mice with the CFTR inhibitor-172 (CFTR(172)) augmented the acute peritonitis promoted by zymosan,an effect associated with lower AnxA1 levels in peritoneal cells. Similar results were obtained with another,chemically distinct,CFTR inhibitor. The pro-inflammatory effect of CFTR(172) was lost in AnxA1(-/-),as well as CFTR(-/-) mice. Importantly,administration of hrAnxA1 and its peptido-mimetic to CFTR(-/-) animals or to animals treated with CFTR(172) corrected the exaggerated leukocyte migration seen in these animals. In vitro assays with human Polymorphonuclear leukocyte (PMN) demonstrated that CFTR(172) reduced cell-associated AnxA1 by promoting release of the protein in microparticles. We propose that the reduced impact of the counterregulatory properties of AnxA1 in CF cells contributes to the inflammatory phenotype characteristic of this disease. Thus,these findings provide an important insight into the mechanism underlying the inflammatory disease associated with CFTR inhibition while,at the same time,providing a novel pharmacological target for controlling the inflammatory phenotype of CF.
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产品号#:
100-0530
100-0554
100-0531
100-0555
产品名:
GlyH-101
CFTR(inh)-172
GlyH-101
CFTR(inh)-172
M. Cou\'e et al. (mar 1987)
FEBS letters 213 2 316--8
Inhibition of actin polymerization by latrunculin A.
Latrunculin A,a toxin purified from the red sea sponge Latrunculia magnifica,was found previously to induce striking reversible changes in the morphology of mammalian cells in culture and to disrupt the organization of their microfilaments. We now provide evidence that latrunculin A affects the polymerization of pure actin in vitro in a manner consistent with the formation of a 1:1 molar complex between latrunculin A and G-actin. The equilibrium dissociation constant (Kd) for the reaction in vitro is about 0.2 microM whereas the effects of the drug on cultured cells are detectable at concentrations in the medium of 0.1-1 microM.
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产品号#:
100-0562
100-0563
产品名:
Latrunculin A
Latrunculin A
J. N. Contessa et al. (may 2008)
Cancer research 68 10 3803--9
Inhibition of N-linked glycosylation disrupts receptor tyrosine kinase signaling in tumor cells.
Receptor tyrosine kinases (RTK) are therapeutic targets for the treatment of malignancy. However,tumor cells develop resistance to targeted therapies through the activation of parallel signaling cascades. Recent evidence has shown that redundant or compensatory survival signals responsible for resistance are initiated by nontargeted glycoprotein RTKs coexpressed by the cell. We hypothesized that disrupting specific functions of the posttranslational machinery of the secretory pathway would be an effective strategy to target both primary and redundant RTK signaling. Using the N-linked glycosylation inhibitor,tunicamycin,we show that expression levels of several RTKS (EGFR,ErbB2,ErbB3,and IGF-IR) are exquisitely sensitive to inhibition of N-linked glycosylation. Disrupting this synthetic process reduces both cellular protein levels and receptor activity in tumor cells through retention of the receptors in the endoplasmic reticulum/Golgi compartments. Using U251 glioma and BXPC3 pancreatic adenocarcinoma cell lines,two cell lines resistant to epidermal growth factor receptor-targeted therapies,we show that inhibiting N-linked glycosylation markedly reduces RTK signaling through Akt and radiosensitizes tumor cells. In comparison,experiments in nontransformed cells showed neither a reduction in RTK-dependent signaling nor an enhancement in radiosensitivity,suggesting the potential for a therapeutic ratio between tumors and normal tissues. This study provides evidence that enzymatic steps regulating N-linked glycosylation are novel targets for developing approaches to sensitize tumor cells to cytotoxic therapies.
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产品号#:
100-0570
100-0571
产品名:
衣霉素
衣霉素
J. L. Coles et al. (nov 2020)
Journal of clinical medicine 9 11 3753
A Revised Protocol for Culture of Airway Epithelial Cells as a Diagnostic Tool for Primary Ciliary Dyskinesia.
Air-liquid interface (ALI) culture of nasal epithelial cells is a valuable tool in the diagnosis and research of primary ciliary dyskinesia (PCD). Ex vivo samples often display secondary dyskinesia from cell damage during sampling,infection or inflammation confounding PCD diagnostic results. ALI culture enables regeneration of healthy cilia facilitating differentiation of primary from secondary ciliary dyskinesia. We describe a revised ALI culture method adopted from April 2018 across three collaborating PCD diagnostic sites,including current University Hospital Southampton COVID-19 risk mitigation measures,and present results. Two hundred and forty nasal epithelial cell samples were seeded for ALI culture and 199 (82.9{\%}) were ciliated. Fifty-four of 83 (63.9{\%}) ex vivo samples which were originally equivocal or insufficient provided diagnostic information following in vitro culture. Surplus basal epithelial cells from 181 nasal brushing samples were frozen in liquid nitrogen; 39 samples were ALI-cultured after cryostorage and all ciliated. The ciliary beat patterns of ex vivo samples (by high-speed video microscopy) were recapitulated,scanning electron microscopy demonstrated excellent ciliation,and cilia could be immuno-fluorescently labelled (anti-alpha-tubulin and anti-RSPH4a) in representative cases that were ALI-cultured after cryostorage. In summary,our ALI culture protocol provides high ciliation rates across three centres,minimising patient recall for repeat brushing biopsies and improving diagnostic certainty. Cryostorage of surplus diagnostic samples was successful,facilitating PCD research.
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产品号#:
05001
05022
05021
05040
产品名:
PneumaCult™-ALI 培养基
PneumaCult™-ALI 培养基含6.5 mm Transwell®插件
PneumaCult™-ALI 培养基含12 mm Transwell®插件
PneumaCult™-Ex Plus 培养基
M. S. Choe et al. (jul 2019)
Cell biology international
Trolox-induced cardiac differentiation is mediated by the inhibition of Wnt/$\beta$-catenin signaling in human embryonic stem cells.
Cardiac differentiation of human pluripotent stem cells may be induced under chemically defined conditions,wherein the regulation of Wnt/$\beta$-catenin pathway is often desirable. Here,we examined the effect of trolox,a vitamin E analog,on the cardiac differentiation of human embryonic stem cells (hESCs). 6-Hydroxy-2,5,7,8-tetramethylchromane-2-carboxylic acid (Trolox) significantly enhanced cardiac differentiation in a time- and dose-dependent manner after the mesodermal differentiation of hESCs. Trolox promoted hESC cardiac differentiation through its inhibitory activity against the Wnt/$\beta$-catenin pathway. This study demonstrates an efficient cardiac differentiation method and reveals a novel Wnt/$\beta$-catenin regulator.
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产品号#:
100-0572
100-0573
产品名:
Trolox
Trolox
S. B. Chia et al. (sep 2020)
Redox biology 37 101720
Glutaredoxin deficiency promotes activation of the transforming growth factor beta pathway in airway epithelial cells, in association with fibrotic airway remodeling.
S-glutathionylation of reactive protein cysteines is a post-translational event that plays a critical role in transducing signals from oxidants into biological responses. S-glutathionylation can be reversed by the deglutathionylating enzyme glutaredoxin (GLRX). We have previously demonstrated that ablation of Glrx sensitizes mice to the development of parenchymal lung fibrosis(1). It remains unclear whether GLRX also controls airway fibrosis,a clinical feature relevant to asthma and chronic obstructive pulmonary disease,and whether GLRX controls the biology of airway epithelial cells,which have been implicated in the pathophysiology of these diseases. In the present study we utilized a house dust mite (HDM) model of allergic airway disease in wild type (WT) and Glrx-/- mice on a C57BL/6 background prone to develop airway fibrosis,and tracheal basal stem cells derived from WT mice,global Glrx-/- mice,or bi-transgenic mice allowing conditional ablation of the Glrx gene. Herein we show that absence of Glrx led to enhanced HDM-induced collagen deposition,elevated levels of transforming growth factor beta 1 (TGFB1) in the bronchoalveolar lavage,and resulted in increases in airway hyperresponsiveness. Airway epithelial cells isolated from Glrx-/- mice or following conditional ablation of Glrx showed spontaneous increases in secretion of TGFB1. Glrx-/- basal cells also showed spontaneous TGFB pathway activation,in association with increased expression of mesenchymal genes,including collagen 1a1 and fibronectin. Overall,these findings suggest that GLRX regulates airway fibrosis via a mechanism(s) that involve the plasticity of basal cells,the stem cells of the airways.
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产品号#:
05001
05022
05021
产品名:
PneumaCult™-ALI 培养基
PneumaCult™-ALI 培养基含6.5 mm Transwell®插件
PneumaCult™-ALI 培养基含12 mm Transwell®插件
Y. Chen et al. (oct 2020)
Blood advances 4 20 5257--5268
Acute myeloid leukemia-induced remodeling of the human bone marrow niche predicts clinical outcome.
Murine models of myeloid neoplasia show how leukemia infiltration alters the hematopoietic stem cell (HSC) niche to reinforce malignancy at the expense of healthy hematopoiesis. However,little is known about the bone marrow architecture in humans and its impact on clinical outcome. Here,we dissect the bone marrow niche in patients with acute myeloid leukemia (AML) at first diagnosis. We combined immunohistochemical stainings with global gene expression analyses from these AML patients and correlated them with clinical features. Mesenchymal stem and progenitor cells (MSPCs) lost quiescence and significantly expanded in the bone marrow of AML patients. Strikingly,their HSC- and niche-regulating capacities were impaired with significant inhibition of osteogenesis and bone formation in a cell contact-dependent manner through inhibition of cytoplasmic $\beta$-catenin. Assessment of bone metabolism by quantifying peripheral blood osteocalcin levels revealed 30{\%} lower expression in AML patients at first diagnosis than in non-leukemic donors. Furthermore,patients with osteocalcin levels ≤11 ng/mL showed inferior overall survival with a 1-year survival rate of 38.7{\%} whereas patients with higher osteocalcin levels reached a survival rate of 66.8{\%}. These novel insights into the human AML bone marrow microenvironment help translate findings from preclinical models and detect new targets which might pave the way for niche-targeted therapies in AML patients.
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产品号#:
07811
07861
17898
17898RF
18060
18061
产品名:
Lymphoprep™
Lymphoprep™
EasySep™人CD45去除试剂盒II
RoboSep™ 人CD45去除试剂盒II
Lymphoprep™
Lymphoprep™
L. Chen et al. (sep 2015)
Stem cell research 15 2 281--9
Inhibiting actin depolymerization enhances osteoblast differentiation and bone formation in human stromal stem cells.
Remodeling of the actin cytoskeleton through actin dynamics is involved in a number of biological processes,but its role in human stromal (skeletal) stem cells (hMSCs) differentiation is poorly understood. In the present study,we demonstrated that stabilizing actin filaments by inhibiting gene expression of the two main actin depolymerizing factors (ADFs): Cofilin 1 (CFL1) and Destrin (DSTN) in hMSCs,enhanced cell viability and differentiation into osteoblastic cells (OB) in vitro,as well as heterotopic bone formation in vivo. Similarly,treating hMSC with Phalloidin,which is known to stabilize polymerized actin filaments,increased hMSCs viability and OB differentiation. Conversely,Cytocholasin D,an inhibitor of actin polymerization,reduced cell viability and inhibited OB differentiation of hMSC. At a molecular level,preventing Cofilin phosphorylation through inhibition of LIM domain kinase 1 (LIMK1) decreased cell viability and impaired OB differentiation of hMSCs. Moreover,depolymerizing actin reduced FAK,p38 and JNK activation during OB differentiation of hMSCs,while polymerizing actin enhanced these signaling pathways. Our results demonstrate that the actin dynamic reassembly and Cofilin phosphorylation loop is involved in the control of hMSC proliferation and osteoblasts differentiation.
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产品号#:
100-0556
100-0557
产品名:
细胞松弛素D
细胞松弛素D
A. M. Cameron et al. ( 2019)
Nature immunology 20 4 420--432
Inflammatory macrophage dependence on NAD+ salvage is a consequence of reactive oxygen species-mediated DNA damage.
The adoption of Warburg metabolism is critical for the activation of macrophages in response to lipopolysaccharide. Macrophages stimulated with lipopolysaccharide increase their expression of nicotinamide phosphoribosyltransferase (NAMPT),a key enzyme in NAD+ salvage,and loss of NAMPT activity alters their inflammatory potential. However,the events that lead to the cells' becoming dependent on NAD+ salvage remain poorly defined. We found that depletion of NAD+ and increased expression of NAMPT occurred rapidly after inflammatory activation and coincided with DNA damage caused by reactive oxygen species (ROS). ROS produced by complex III of the mitochondrial electron-transport chain were required for macrophage activation. DNA damage was associated with activation of poly(ADP-ribose) polymerase,which led to consumption of NAD+. In this setting,increased NAMPT expression allowed the maintenance of NAD+ pools sufficient for glyceraldehyde-3-phosphate dehydrogenase activity and Warburg metabolism. Our findings provide an integrated explanation for the dependence of inflammatory macrophages on the NAD+ salvage pathway.
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产品号#:
100-0263
产品名:
FK - 866
S. L. Brenner and E. D. Korn (feb 1980)
The Journal of biological chemistry 255 3 841--4
The effects of cytochalasins on actin polymerization and actin ATPase provide insights into the mechanism of polymerization.
Substoichiometric concentrations of cytochalasin D inhibited the rate of polymerization of actin in 0.5 mM MgCl2,increased its critical concentration and lowered its steady state viscosity. Stoichiometric concentrations of cytochalasin D in 0.5 mM MgCl2 and even substoichiometric concentrations of cytochalasin D in 30 mM KCl,however,accelerated the rate of actin polymerization,although still lowering the final steady state viscosity. Cytochalasin B,at all concentrations in 0.5 mM MgCl2 or in 30 mM KCl,accelerated the rate of polymerization and lowered the final steady state viscosity. In 0.5 mM MgCl2,cytochalasin D uncoupled the actin ATPase activity from actin polymerization,increasing the ATPase rate by at least 20 times while inhibiting polymerization. Cytochalasin B had a very much lower stimulating effect. Neither cytochalasin D nor B affected the actin ATPase activity in 30 mM KCl. The properties of cytochalasin E were intermediate between those of cytochalasin D and B. Cytochalasin D also stimulated the ATPase activity of monomeric actin in the absence of MgCl2 and KCl and,to a much greater extent,stimulated the ATPase activity of monomeric actin below its critical concentration in 0.5 mM MgCl2. Both above and below its critical concentration and in the presence and absence of cytochalasin D,the initial rate of actin ATPase activity,when little or no polymerization had occurred,was directly proportional to the actin concentration and,therefore,apparently was independent of actin-actin interactions. To rationalize all these data,a working model has been proposed in which the first step of actin polymerization is the conversion of monomeric actin-bound ATP,A . ATP,to monomeric actin-bound ADP and Pi,A* . ADP . Pi,which,like the preferred growing end of an actin filament,can bind cytochalasins.
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