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1.
Early signaling pathways activated by c-Kit in hematopoietic cells 总被引:14,自引:0,他引:14
Linnekin D 《The international journal of biochemistry & cell biology》1999,31(10):1053-1074
c-Kit is a receptor tyrosine kinase that binds stem cell factor (SCF). Structurally, c-Kit contains five immunoglobulin-like domains extracellularly and a catalytic domain divided into two regions by a 77 amino acid insert intracellularly. Studies in white spotting and steel mice have shown that functional SCF and c-Kit are critical in the survival and development of stem cells involved in hematopoiesis, pigmentation and reproduction. Mutations in c-Kit are associated with a variety of human diseases. Interaction of SCF with c-Kit rapidly induces receptor dimerization and increases in autophosphorylation activity. Downstream of c-Kit, multiple signal transduction components are activated, including phosphatidylinositol-3-kinase, Src family members, the JAK/STAT pathway and the Ras-Raf-MAP kinase cascade. Structure-function studies have begun to address the role of these signaling components in SCF-mediated responses. This review will focus on the biochemical mechanism of action of SCF in hematopoietic cells. 相似文献
2.
Type III Nrg1, a member of the Nrg1 family of signaling proteins, is expressed in sensory neurons, where it can signal in a bi-directional manner via interactions with the ErbB family of receptor tyrosine kinases (ErbB RTKs). Type III Nrg1 signaling as a receptor (Type III Nrg1 back signaling) can acutely activate phosphatidylinositol-3-kinase (PtdIns3K) signaling, as well as regulate levels of α7* nicotinic acetylcholine receptors, along sensory axons. Transient receptor potential vanilloid 1 (TRPV1) is a cation-permeable ion channel found in primary sensory neurons that is necessary for the detection of thermal pain and for the development of thermal hypersensitivity to pain under inflammatory conditions. Cell surface expression of TRPV1 can be enhanced by activation of PtdIns3K, making it a potential target for regulation by Type III Nrg1. We now show that Type III Nrg1 signaling in sensory neurons affects functional axonal TRPV1 in a PtdIns3K-dependent manner. Furthermore, mice heterozygous for Type III Nrg1 have specific deficits in their ability to respond to noxious thermal stimuli and to develop capsaicin-induced thermal hypersensitivity to pain. Cumulatively, these results implicate Type III Nrg1 as a novel regulator of TRPV1 and a molecular mediator of nociceptive function. 相似文献
3.
4.
Thomas J Park Thomas J Park Thomas J Park Thomas J Park Thomas J Park Thomas J Park Thomas J Park Thomas J Park Thomas J Park Thomas J Park 《PLoS biology》2008,6(1):e13
In all mammals, tissue inflammation leads to pain and behavioral sensitization to thermal and mechanical stimuli called hyperalgesia. We studied pain mechanisms in the African naked mole-rat, an unusual rodent species that lacks pain-related neuropeptides (e.g., substance P) in cutaneous sensory fibers. Naked mole-rats show a unique and remarkable lack of pain-related behaviors to two potent algogens, acid and capsaicin. Furthermore, when exposed to inflammatory insults or known mediators, naked mole-rats do not display thermal hyperalgesia. In contrast, naked mole-rats do display nocifensive behaviors in the formalin test and show mechanical hyperalgesia after inflammation. Using electrophysiology, we showed that primary afferent nociceptors in naked mole-rats are insensitive to acid stimuli, consistent with the animal's lack of acid-induced behavior. Acid transduction by sensory neurons is observed in birds, amphibians, and fish, which suggests that this tranduction mechanism has been selectively disabled in the naked mole-rat in the course of its evolution. In contrast, nociceptors do respond vigorously to capsaicin, and we also show that sensory neurons express a transient receptor potential vanilloid channel-1 ion channel that is capsaicin sensitive. Nevertheless, the activation of capsaicin-sensitive sensory neurons in naked mole-rats does not produce pain-related behavior. We show that capsaicin-sensitive nociceptors in the naked mole-rat are functionally connected to superficial dorsal horn neurons as in mice. However, the same nociceptors are also functionally connected to deep dorsal horn neurons, a connectivity that is rare in mice. The pain biology of the naked mole-rat is unique among mammals, thus the study of pain mechanisms in this unusual species can provide major insights into what constitutes “normal” mammalian nociception. 相似文献
5.
Holland S Coste O Zhang DD Pierre SC Geisslinger G Scholich K 《The Journal of biological chemistry》2011,286(5):3671-3680
The E3 ubiquitin ligase MYCBP2 negatively regulates neuronal growth, synaptogenesis, and synaptic strength. More recently it was shown that MYCBP2 is also involved in receptor and ion channel internalization. We found that mice with a MYCBP2-deficiency in peripheral sensory neurons show prolonged thermal hyperalgesia. Loss of MYCBP2 constitutively activated p38 MAPK and increased expression of several proteins involved in receptor trafficking. Surprisingly, loss of MYCBP2 inhibited internalization of transient receptor potential vanilloid receptor 1 (TRPV1) and prevented desensitization of capsaicin-induced calcium increases. Lack of desensitization, TRPV internalization and prolonged hyperalgesia were reversed by inhibition of p38 MAPK. The effects were TRPV-specific, since neither mustard oil-induced desensitization nor behavioral responses to mechanical stimuli were affected. In summary, we show here for the first time that p38 MAPK activation can inhibit activity-induced ion channel internalization and that MYCBP2 regulates internalization of TRPV1 in peripheral sensory neurons as well as duration of thermal hyperalgesia through p38 MAPK. 相似文献
6.
Li F Obrosova IG Abatan O Tian D Larkin D Stuenkel EL Stevens MJ 《American journal of physiology. Endocrinology and metabolism》2005,288(1):E29-E36
The etiology of painful diabetic neuropathy is poorly understood, but may result from neuronal hyperexcitability secondary to alterations of Ca2+ signaling in sensory neurons. The naturally occurring amino acid taurine functions as an osmolyte, antioxidant, Ca2+ modulator, inhibitory neurotransmitter, and analgesic such that its depletion in diabetes may predispose one to neuronal hyperexcitability and pain. This study reports the effects of taurine replacement on hyperalgesia and sensory neuron Ca2+ homeostasis in streptozotocin-diabetic (STZ-D) rats. Nondiabetic and STZ-D rats were treated with a 2% taurine-supplemented diet for 6-12 wk. Thermal hyperalgesia and mechanical allodynia were determined by measuring hindpaw withdrawal latency to radiant heat and the withdrawal threshold to the von Frey anesthesiometer. Intracellular Ca2+ signaling was explored in neurons from L4-L6 dorsal root ganglia (DRG), using fura 2 fluorescence. Taurine replacement of diabetic rats attenuated deficits of nerve conduction and prevented reductions of mechanical and thermal withdrawal threshold and latency, respectively. In small DRG sensory neurons from diabetic rats, recovery of intracellular Ca2+ concentration ([Ca2+]i) in response to KCl was slowed and 73% corrected by taurine. The amplitudes of caffeine and ATP-induced [Ca2+]i transients were decreased by 47 and 27% (P < 0.05), respectively, in diabetic rat DRG sensory neurons and corrected by 74 and 93% (P < 0.05), respectively, by taurine replacement. These data indicate that taurine is important in the regulation of neuronal Ca2+ signaling and that taurine deficiency may predispose one to nerve hyperexcitability and pain, complicating diabetes. 相似文献
7.
Proinflammatory cytokines are major mediators in the pathogenesis of diseases of joints such as rheumatoid arthritis and osteoarthritis. This review emphasizes that proinflammatory cytokines such as tumor necrosis factor-alpha, interleukin-1beta, interleukin-6 and interleukin-17 are also mediators of pain by directly acting on the nociceptive system. Proportions of nociceptive sensory neurons express receptors for these cytokines, and the application of cytokines rapidly changes the excitability, ion currents and second messenger systems of these neurons. By inducing persistent sensitization of nociceptive sensory neurons (C- and a proportion of Aδ-fibers) for mechanical stimuli in the joint (a process called peripheral sensitization), these cytokines significantly contribute to the persistent hyperalgesia typical for many disease states of the joint. In addition, the disease-associated release of cytokines in the spinal cord supports the generation of central sensitization. The therapeutic neutralization of proinflammatory cytokines thus not only reduces the process of inflammation but may directly reduce hyperalgesia and pain by reversing the neuronal effects of cytokines. It is emerging that different cytokines have different actions on neurons. The neutralization of tumor necrosis factor-alpha reduces both mechanical and thermal hyperalgesia of the joint. The neutralization of interleukin-1beta attenuates thermal hyperalgesia whereas the neutralization of interleukin-6 and interleukin-17 mainly reduces mechanical hyperalgesia. These different effects are partly explained by influencing different target molecules in sensory neurons. For example, in cultured sensory neurons tumor necrosis factor-alpha and interleukin-1beta upregulate the TRPV1 ion channel, which is involved in the transduction of heat stimuli, consistent with an effect of these cytokines in thermal hyperalgesia. By contrast, interleukin-17 upregulates the TRPV4 ion channel, which has a role in the transduction of mechanical stimuli. Thus, the analgesic potential of neutralizing cytokines seems to depend on which cytokine is mainly involved in the particular pain state. 相似文献
8.
Park TJ Lu Y Jüttner R Smith ES Hu J Brand A Wetzel C Milenkovic N Erdmann B Heppenstall PA Laurito CE Wilson SP Lewin GR 《PLoS biology》2008,6(1):e13
In all mammals, tissue inflammation leads to pain and behavioral sensitization to thermal and mechanical stimuli called hyperalgesia. We studied pain mechanisms in the African naked mole-rat, an unusual rodent species that lacks pain-related neuropeptides (e.g., substance P) in cutaneous sensory fibers. Naked mole-rats show a unique and remarkable lack of pain-related behaviors to two potent algogens, acid and capsaicin. Furthermore, when exposed to inflammatory insults or known mediators, naked mole-rats do not display thermal hyperalgesia. In contrast, naked mole-rats do display nocifensive behaviors in the formalin test and show mechanical hyperalgesia after inflammation. Using electrophysiology, we showed that primary afferent nociceptors in naked mole-rats are insensitive to acid stimuli, consistent with the animal's lack of acid-induced behavior. Acid transduction by sensory neurons is observed in birds, amphibians, and fish, which suggests that this tranduction mechanism has been selectively disabled in the naked mole-rat in the course of its evolution. In contrast, nociceptors do respond vigorously to capsaicin, and we also show that sensory neurons express a transient receptor potential vanilloid channel-1 ion channel that is capsaicin sensitive. Nevertheless, the activation of capsaicin-sensitive sensory neurons in naked mole-rats does not produce pain-related behavior. We show that capsaicin-sensitive nociceptors in the naked mole-rat are functionally connected to superficial dorsal horn neurons as in mice. However, the same nociceptors are also functionally connected to deep dorsal horn neurons, a connectivity that is rare in mice. The pain biology of the naked mole-rat is unique among mammals, thus the study of pain mechanisms in this unusual species can provide major insights into what constitutes “normal” mammalian nociception. 相似文献
9.
Heightened nociceptor function caused by inflammatory mediators such as bradykinin (BK) contributes to increased pain sensitivity (hyperalgesia) to noxious mechanical and thermal stimuli. Although it is known that sensitization of the heat transducer TRPV1 largely subserves thermal hyperalgesia, the cellular mechanisms underlying mechanical hyperalgesia have been elusive. The role of the mechanically activated (MA) channel piezo2 (known as FAM38B) present in mammalian sensory neurons is unknown. We test the hypothesis that piezo2 activity is enhanced by BK, an algogenic peptide that induces mechanical hyperalgesia within minutes. Piezo2 current amplitude is increased and inactivation is slowed by bradykinin receptor beta 2 (BDKRB2) activation in heterologous expression systems. Protein kinase A (PKA) and protein kinase C (PKC) agonists enhance piezo2 activity. BDKRB2-mediated effects are abolished by PKA and PKC inhibitors. Finally, piezo2-dependent MA currents in a class of native sensory neurons are enhanced 8-fold by BK via PKA and PKC. Thus, piezo2 sensitization may contribute to PKA- and PKC-mediated mechanical hyperalgesia. 相似文献
10.
The influence of Id1 protein on human stem cells differentiation into neuronal pathway 总被引:1,自引:0,他引:1
Evidence that stem cell factor (SCF) and c-Kit receptor tyrosine kinase expressed in the cerebellum during postnatal development, suggests a possible contribution of the SCF/Kit signaling pathway in the cerebellar development. In the present study, we prepared cerebellar cultures from C57Bl/6J mouse at postnatal day 6 to investigate the role of c-Kit receptor and SCF in regulation of cell growth and viability in the postnatal cerebellar cells. SCF increased the number of survival cells and density of calbindin and GFAP expression in the immunoblot analysis. Treatment with c-Kit antibody accelerated cellular loss in serum-free media and decreased the expression of calbindin and GFAP. The recovery effects of SCF on the cellular proliferation and the expression of functional proteins in the cultures containing c-Kit antibody suggest an involvement of SCF/Kit pathways in the control of postnatal development of cerebellar cells. 相似文献
11.
Jianmin Sun Malin Pedersen Lars R?nnstrand 《The Journal of biological chemistry》2009,284(17):11039-11047
The receptor tyrosine kinase c-Kit plays a critical role in hematopoiesis,
and gain-of-function mutations of the receptor are frequently seen in several
malignancies, including acute myeloid leukemia, gastrointestinal stromal
tumors, and testicular carcinoma. The most common mutation of c-Kit in these
disorders is a substitution of the aspartic acid residue in position 816 to a
valine (D816V), leading to constitutive activation of the receptor. In this
study, we aimed to investigate the role of Src family kinases in c-Kit/D816V
signaling. Src family kinases are necessary for the phosphorylation of
wild-type c-Kit as well as of activation of downstream signaling pathways
including receptor ubiquitination and the Ras/Mek/Erk pathway. Our data
demonstrate that, unlike wild-type c-Kit, the phosphorylation of c-Kit/D816V
is not dependent on Src family kinases. In addition, we found that neither
receptor ubiquitination nor Erk activation by c-Kit/D816V required activation
of Src family kinases. In vitro kinase assay using synthetic peptides
revealed that c-Kit/D816V had an altered substrate specificity resembling Src
and Abl tyrosine kinases. We further present evidence that, in contrast to
wild-type c-Kit, Src family kinases are dispensable for c-Kit/D816V cell
survival, proliferation, and colony formation. Taken together, we demonstrate
that the signal transduction pathways mediated by c-Kit/D816V are markedly
different from those activated by wild-type c-Kit and that altered substrate
specificity of c-Kit circumvents a need for Src family kinases in signaling of
growth and survival, thereby contributing to the transforming potential of
c-Kit/D816V.The receptor for stem cell factor
(SCF),2 c-Kit, is a
type III receptor tyrosine kinase that belongs to the same subfamily as the
platelet-derived growth factor receptors, the Flt3 receptor, and the
macrophage colony-stimulating factor receptor
(1). The c-Kit gene is
identical to the white spotting locus (W) in the mouse. c-Kit is expressed in
the hematopoietic system, in the gastrointestinal system, in melanocytes, and
in germ cells, and therefore loss-of-function mutations in c-Kit lead to
defects in hematopoiesis, melanogenesis, and gametogenesis. Stimulation of the
c-Kit receptor with its ligand, SCF, leads to receptor dimerization and
activation of its intrinsic tyrosine kinase activity. Specific tyrosine
residues are autophosphorylated, which results in the activation of downstream
signaling pathways, including the Ras/Erk pathway and the PI3-kinase pathway
(for review, see Ref. 2).One of the crucial steps in oncogenic transformation of cells is the gain
of independence of external growth stimuli. This can be achieved in several
different ways, including mutations that render receptor tyrosine kinases
constitutively active in the absence of ligand stimulation. In the case of
c-Kit, these mutations most commonly occur either in exon 11 (encoding the
juxtamembrane region) and are found predominantly in gastrointestinal stromal
tumors or in exon 17 (encoding the activation loop of the kinase domain). A
frequently occurring type of mutation in exon 17 in c-Kit is at codon 816.
This type of mutation has been found in several human malignancies including
acute myeloid leukemia, mastocytosis, germ cell tumors of the seminoma or
dysgerminoma types, sinonasal natural killer/T-cell lymphomas, and in
intracranial teratomas
(3–10).
These mutations at codon 816 lead to conversion of an aspartic acid residue to
a valine, a tyrosine, a phenylalanine, an asparagine, or a histidine residue.
The recently elucidated crystal structure of the c-Kit kinase domain has
helped define the mechanism of activation by this type of mutation
(11). In the unstimulated
wild-type c-Kit, the juxtamembrane region inserts directly into the clefts
between the amino- and carboxyl-terminal lobes of the kinase domain,
disrupting the c-Kit control helix, and physically blocking the conserved
kinase DFG motif from attaining a productive conformation. The activation loop
folds back over the substrate binding groove and interacts with the active
center of the kinase as a pseudosubstrate. It is not fully known how mutation
of aspartic acid 816 leads to activation of c-Kit. It has been suggested
either that the mutation inverts the conformation of the protein backbone so
that the side chain of arginine 815 is being flipped from its position in the
autoinhibited or that the effect of aspartic acid 816 mutations may be derived
from its ability to stabilize the small positively charge α-helical
dipole through its negative charge of its side chain. Asp-816 mutations in
c-Kit promote receptor autophosphorylation and thereby constitutively activate
downstream signaling pathways independent of SCF binding and therefore
contribute to cell transformation
(12). Imatinib (Gleevec) is a
well known inhibitor of c-Kit juxtamembrane mutations and has been used in the
treatment of gastrointestinal stromal tumors with activating mutations in the
juxtamembrane region of c-Kit. In contrast, cells expressing c-Kit/D816V are
resistant to Imatinib, whereas the Abl/Src dual inhibitor Dasatinib also
inhibits the D816V mutant of c-Kit
(13).Negative regulation of c-Kit signaling has been shown to occur mainly
through ubiquitin-mediated internalization and degradation of the receptor
(14,
15). Ubiquitination is
mediated by ubiquitin E3 ligases that attach ubiquitin to their target
proteins, resulting in either monoubiquitination or polyubiquitination. Key
components in this machinery are the Cbl family of ubiquitin E3 ligases,
represented by Cbl, Cbl-b, and Cbl-c
(16). Signaling through
receptor tyrosine kinases must be tightly regulated, and inhibition of Cbl
activation and receptor ubiquitination can lead to cell transformation
(17). It has been shown that
both direct and indirect binding of Cbl to wild-type c-Kit can induce Cbl
activation and receptor ubiquitination followed by receptor internalization
and degradation (15,
18). In contrast, the
mechanisms behind negative regulation of the oncogenic c-Kit/D816V are so far
unknown.Extracellular signal-regulated kinase (Erk) proteins are the evolutionary
conserved products of the two genes, Erk1 and Erk2, and are
central proteins in the Ras/Erk signaling pathway. Erk1 and Erk2 are activated
by dual phosphorylation on their regulatory tyrosine and threonine residues
(19). The serine/threonine
kinase Akt, also known as protein kinase B, is activated downstream of
PI3-kinase and plays a central role in signaling induced by growth factors,
cytokines, and other cellular stimuli
(20). The Ras/Erk pathway and
the PI3-kinase pathway are key signaling pathways involved in the regulation
of cell proliferation, survival, and differentiation induced by c-Kit. A key
player in the relay of signals from c-Kit into the cells is Src. Binding of
Src to Tyr-568 in c-Kit leads to its activation and subsequent phosphorylation
of Shc and activation of the Ras/Erk pathway
(21). PI3-kinase is activated
by c-Kit through two alternate routes, either through direct binding to
Tyr-721 in c-Kit (22) or
through indirect binding to the scaffolding protein Gab2, which associates to
c-Kit via the adapter protein Grb2. Activation of PI3-kinase is dependent on
Src-mediated phosphorylation of Gab2
(23). Other investigators have
shown that neither Erk nor Akt is constitutively activated in cells expressing
c-Kit/D816V (24).In this report, we demonstrate that in c-Kit/D816V-expressing Ba/F3 cells,
a low constitutive activation of both Erk and Akt exists and that this
activation can be further augmented by SCF stimulation. We also present data
showing that c-Kit/D816V evades the need of Src family kinases for receptor
ubiquitination and Erk activation by having an altered substrate specificity
resembling Src family kinases. We conclude that Src family kinases play
different roles in wild-type c-Kit and c-Kit/D816V-induced cell survival and
growth. 相似文献
12.
Sensory neurons report a wide range of temperatures, from noxious heat to noxious cold. Natural products that elicit psychophysical sensations of hot or cold, such as capsaicin or menthol, were instrumental in the discovery of thermal detectors belonging to the transient receptor potential (TRP) family of cation channels. Studies are now beginning to reveal how these channels contribute to thermosensation and how chemical signaling pathways, such as those activated by tissue injury, alter thermal sensitivity through TRP channel modulation. Analysis of TRP channel expression among sensory neurons is also providing insight into how thermal stimuli are encoded by the peripheral nervous system. 相似文献
13.
Voytyuk O Lennartsson J Mogi A Caruana G Courtneidge S Ashman LK Rönnstrand L 《The Journal of biological chemistry》2003,278(11):9159-9166
In both mice and humans alternate splicing results in isoforms of c-Kit characterized by the presence or the absence of a tetrapeptide sequence, GNNK, in the juxtamembrane region of the extracellular domain. Dramatic differences in the kinetics and magnitude of activation of the intrinsic tyrosine kinase activity of c-Kit between the GNNK- and GNNK+ isoforms has previously been shown. Here we report the analysis of downstream targets of receptor signaling, which revealed that the signaling was differentially regulated in the two splice forms. The kinetics of phosphorylation of Shc, previously demonstrated to be phosphorylated by Src downstream of c-Kit, was stronger and more rapid in the GNNK- form, whereas it showed slower kinetics in the GNNK+ form. Inhibition of Src family kinases with the specific Src family kinase inhibitor SU6656 altered the kinetics of activation of the GNNK- form of c-Kit so that it resembled that of the GNNK+ form. In cells expressing the GNNK- form, SCF was rapidly degraded, whereas in cells expressing the GNNK+ form only showed a very slow rate of degradation of SCF. In the GNNK+ form the Src inhibitor SU6656 only had a weak effect on degradation, whereas in the GNNK- form it dramatically inhibited degradation. In summary, the two splice forms show, despite only a four-amino acid sequence difference, remarkable differences in their signaling capabilities. 相似文献
14.
Ito A 《Biochemical and biophysical research communications》1999,259(3):611-616
The Csk Homologous Kinase (CHK) has been shown to have an enzymatic activity similar to the tyrosine kinase Csk in that it down-regulates Src family kinase activity by causing phosphorylation of the Src C-terminal tyrosine residue. In megakaryocytic Mo7e cells, CHK associates with a specific phosphotyrosine juxtamembrane sequence of the SCF/KL-activated c-Kit receptor. Here, we show that in Mo7e cells, the major Src family kinase activity is p53/56(Lyn). Studies using immobilized c-Kit phosphopeptides show that Lyn is able to specifically associate with the tyrosine-phosphorylated juxtamembrane 568Y*VY*IDPT sequence of c-Kit which has previously been shown to associate with CHK. In cells over-expressing CHK by means of a recombinant vaccinia virus, we observed an elimination of the SCF/KL-stimulated Lyn kinase peak of activity observed at 2-5 minutes in cells infected with the helper T7-expressing vaccinia virus by itself. Examination of total tyrosine phosphorylation by Western blotting showed that over-expression of CHK resulted in a reduction in the levels of tyrosine phosphorylations in the range of 50-60 kDa, but had no apparent effect on c-Kit autophosphorylation. Taken together, these findings show that CHK is able to down-regulate SCF/KL-stimulated Lyn activity in megakaryocytes. 相似文献
15.
Julhash U. Kazi Marica Vaapil Shruti Agarwal Enrico Bracco Sven Påhlman Lars Rönnstrand 《Cellular signalling》2013,25(9):1852-1860
Type III receptor tyrosine kinases (RTKs), FLT3 and c-Kit play important roles in a variety of cellular processes. A number of SH2-domain containing proteins interact with FLT3 and c-Kit and regulate downstream signaling. The SH2-domain containing non-receptor protein tyrosine kinase CSK is mainly studied in the context of regulating Src family kinases. Here we present an additional role of this kinase in RTK signaling. We show that CSK interacts with FLT3 and c-Kit in a phosphorylation dependent manner. This interaction is facilitated through the SH2-domain of CSK. Under basal conditions CSK is mainly localized throughout the cytosolic compartment but upon ligand stimulation it is recruited to the inner side of cell membrane. CSK association did not alter receptor ubiquitination or phosphorylation but disrupted downstream signaling. Selective depletion of CSK using siRNA, or inhibition with CSK inhibitor, led to increased phosphorylation of Akt and Erk, but not p38, upon FLT3 ligand (FL) stimulation. Stem cell factor (SCF)-mediated Akt and Erk activation was also elevated by CSK inhibition. However, siRNA mediated CSK knockdown increased SCF stimulated Akt phosphorylation but decreased Erk phosphorylation. CSK depletion also significantly increased both FL- and SCF-induced SHC, Gab2 and SHP2 phosphorylation. Furthermore, CSK depletion contributed to oncogenic FLT3- and c-Kit-mediated cell proliferation, but not to cell survival. Thus, the results indicate that CSK association with type III RTKs, FLT3 and c-Kit can have differential impact on receptor downstream signaling. 相似文献
16.
Janyaporn Phuchareon Annemieke van Zante Jonathan B. Overdevest Frank McCormick David W. Eisele Osamu Tetsu 《Translational oncology》2014,7(5):537-545
Adenoid cystic carcinoma (ACC) is an aggressive malignant neoplasm of the salivary glands in which c-Kit is overexpressed and activated, although the mechanism for this is as yet unclear. We analyzed 27 sporadic ACC tumor specimens to examine the biologic and clinical significance of c-Kit activation. Mutational analysis revealed expression of wild-type c-Kit in all, eliminating gene mutation as a cause of activation. Because stem cell factor (SCF) is c-Kit's sole ligand, we analyzed its expression in the tumor cells and their environment. Immunohistochemistry revealed its presence in c-Kit–positive tumor cells, suggesting an activation of autocrine signaling. We observed a significant induction of ERK1/2 in the cells. SCF staining was also found in other types of non-cancerous cells adjacent to tumors within salivary glands, including stromal fibroblasts, neutrophils, peripheral nerve, skeletal muscle, vascular endothelial cells, mucous acinar cells, and intercalated ducts. Quantitative PCR showed that the top quartile of c-Kit mRNA expression distinguished ACCs from normal salivary tissues and was cross-correlated with short-term poor prognosis. Expression levels of SCF and c-Kit were highly correlated in the cases with perineural invasion. These observations suggest that c-Kit is potentially activated by receptor dimerization upon stimulation by SCF in ACC, and that the highest quartile of c-Kit mRNA expression could be a predictor of poor prognosis. Our findings may support an avenue for c-Kit-targeted therapy to improve disease control in ACC patients harboring the top quartile of c-Kit mRNA expression. 相似文献
17.
Stem cell factor/c-Kit interactions regulate human islet-epithelial cluster proliferation and differentiation 总被引:1,自引:0,他引:1
Li J Goodyer CG Fellows F Wang R 《The international journal of biochemistry & cell biology》2006,38(5-6):961-972
Stem cell factor (SCF), a progenitor cell growth factor, binds to and activates the c-Kit receptor tyrosine kinase, which is critical for early stem cell differentiation in haematopoiesis and gametogenesis. Nothing is known regarding these interactions during islet development in the human fetal pancreas. The present study was to investigate whether an increase in c-Kit receptor activity in isolated human fetal islet-epithelial clusters, by giving exogenous SCF, would promote beta-cell development. In the intact fetal pancreas, SCF and c-Kit were observed co-localizing with cytokeratin 19 in both ductal and newly forming islet cells. Islet cells isolated from 14 to 16 weeks fetal pancreata were cultured with SCF (50 ng/ml) or vehicle for 48 h. We observed an increase in the number of c-Kit-, pancreatic and duodenal homeobox gene 1- (PDX-1-), insulin- and glucagon-expressing cells in the SCF-treated group (PDX-1 and insulin, p < 0.05). PDX-1 and c-Kit mRNA levels were also up-regulated in the SCF group (PDX-1, p < 0.05), with no change in preproinsulin or proglucagon gene expression. Co-localization of insulin with PDX-1 or c-Kit was observed frequently in SCF-treated cultures. A significantly (p < 0.05) greater proliferative capacity of islet-epithelial clusters was found in the SCF group in parallel with increased (p < 0.02) phosphorylation of Akt in a phosphatidylinositol-3 kinase (PI3K)-dependent manner. Our results demonstrate that SCF/c-Kit interactions are likely to be involved in mediating islet cell differentiation and proliferation during human fetal pancreatic development, and that phosphorylated Akt may have a role downstream of SCF/c-Kit signaling. 相似文献
18.
Mol CD Lim KB Sridhar V Zou H Chien EY Sang BC Nowakowski J Kassel DB Cronin CN McRee DE 《The Journal of biological chemistry》2003,278(34):31461-31464
The c-Kit proto-oncogene is a receptor protein-tyrosine kinase associated with several highly malignant human cancers. Upon binding its ligand, stem cell factor (SCF), c-Kit forms an active dimer that autophosphorylates itself and activates a signaling cascade that induces cell growth. Disease-causing human mutations that activate SCF-independent constitutive expression of c-Kit are found in acute myelogenous leukemia, human mast cell disease, and gastrointestinal stromal tumors. We report on the phosphorylation state and crystal structure of a c-Kit product complex. The c-Kit structure is in a fully active form, with ordered kinase activation and phosphate-binding loops. These results provide key insights into the molecular basis for c-Kit kinase transactivation to assist in the design of new competitive inhibitors targeting activated mutant forms of c-Kit that are resistant to current chemotherapy regimes. 相似文献
19.
Nakamura Y Une Y Miyano K Abe H Hisaoka K Morioka N Nakata Y 《Journal of neurochemistry》2012,120(6):1036-1047
To examine mechanisms underlying substance P (SP) release from primary sensory neurons in response to activation of the non-selective cation channel transient receptor potential ankyrin 1 (TRPA1), SP release from cultured rat dorsal root ganglion neurons was measured, using radioimmunoassay, by stimulating TRPA1 with allyl isothiocyanate (AITC), a TRPA1 agonist. AITC-evoked SP release occurred in a concentration- and time-dependent manner. Interestingly, p38 mitogen-activated protein kinase (p38) inhibitor SB203580 significantly attenuated AITC-evoked SP release. The in vivo effect of AITC-evoked SP release from primary sensory neurons in mice was evaluated. Hind paw intraplantar injection of AITC induced nociceptive behaviors and inflammation (edema, thermal hyperalgesia). AITC-induced thermal hyperalgesia and edema were inhibited by intraplantar pre-treatment with either SB203580 or neurokinin-1 receptor antagonist CP96345. Moreover, intrathecal pre-treatment with either CP96345 or SB203580 inhibited AITC-induced nociceptive behaviors and thermal hyperalgesia. Immunohistochemical studies demonstrated that intraplantar AITC injection induced the phosphorylation of p38 in mouse dorsal root ganglion neurons containing SP. These findings suggest that activation of TRPA1 evokes SP release from the primary sensory neurons through phosphorylation of p38, subsequent nociceptive behaviors and inflammatory responses. Furthermore, the data also indicate that blocking the effects of TRPA1 activation at the periphery leads to significant antinociception. 相似文献
20.
Todaka H Taniguchi J Satoh J Mizuno A Suzuki M 《The Journal of biological chemistry》2004,279(34):35133-35138
Animals sense various ranges of temperatures by cutaneous thermal stimuli. Transient receptor potential vanilloid 4 (TRPV4) is a cation channel activated at a warm temperature (over 30 degrees C) in exogenously expressed cells. We found in the present study that TRPV4 is essential in thermal hyperalgesia at a warm temperature in vivo. TRPV4-/- and TRPV4+/+ mice exhibited the same latency of escape from 35-50 degrees C hotplates. Neuronal activity in the femoral nerve, however, revealed that the number and activity level of neurons decreased in response to a warm temperature in TRPV4-/- mice. TRPV4-/- mice displayed a significantly longer latency to escape from the plates at 35- 45 degrees C when hyperalgesia was induced by carrageenan without changes in foot volumes. TRPV4 therefore determines the sensitivity rather than the threshold of painful heat detection and plays an essential role in thermal hyperalgesia. 相似文献