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1 vity, but, instead, was dependent on the p38 stress kinase.
2 , which is not associated with activation of stress kinases.
3 ion of oxidative stress and its signaling to stress kinases.
4 3 kinase/Akt signaling and the activation of stress kinases.
5 e in hepatotoxicity, we examined the role of stress kinases.
6 activation of any of four diverse eIF2alpha stress kinases.
7 ein phosphatases in balancing the effects of stress kinases.
8 tested couple to activation of NFkappaB and stress kinases.
9 s provide new insight into the regulation of stress kinases.
10 portant for its stabilization in response to stress kinases activated following selective stress cond
12 kinase activation, supporting a link between stress kinase activation and apoptotic cell death in the
13 sensitize the cells to apoptosis induction, stress kinase activation and cell cycle arrest in respon
15 viruses, we demonstrate a critical role for stress kinase activation in cell intrinsic and extrinsic
17 astrocytes, including proteasome inhibition, stress kinase activation, mechanistic target of rapamyci
19 CM-induced renal cell apoptosis by reducing stress kinases activation and (2) restored the survival
20 nd JNK, which indicated that the MHV-induced stress-kinase activation was not restricted to any parti
21 ve against oxidative damage and can decrease stress kinase activity, was decreased in the striatum of
22 to amplification in the activity of the p38 stress kinase and a diminution in the activity of the an
23 at-fed mice manifested striking induction of stress kinase and neural inflammasome activation at 3 mo
24 ed with palmitate (CM-P), phosphorylation of stress kinases and endoplasmic reticulum stress signalin
25 response, inasmuch as (i) the activation of stress kinases and gene expression in response to UV req
26 bypassed direct activation of the eIF2alpha stress kinases and instead relied on the inhibition of t
27 TNFalpha -induced apoptosis by inhibition of stress kinases and provide the first evidence that AKT i
29 checkpoint is primarily mediated by the p38 stress kinases and requires the Chfr protein that is abs
30 actin stability is coordinately regulated by stress kinases and the ubiquitin-proteasomal network.
32 al cellular RNA analyses have shown that the stress kinase ATM and the transcription factor p53 are i
33 , which could be attenuated by inhibitors of stress kinases but also by actinomycin D-inhibitor of tr
34 a suggest that the coordinated regulation of stress kinases by GSTp, as reflected by increased p38, E
36 The results also show that CDDO activates stress kinases by increasing levels of reactive oxygen s
37 both the cytotoxicity and the activation of stress kinases by palytoxin, we found that palytoxin is
38 ation of c-Jun NH(2)-terminal kinase and p38 stress kinases by PD169316 completely blocked all signs
39 nd Delta Hsp72EEVD blocked activation of the stress kinase c-jun N-terminal kinase (JNK) by TNF, and
41 ion initiation factor 2alpha (eIF2alpha) and stress kinase c-Jun NH2-terminal kinase 1 (JNK1) (all P
42 ver, 3-AP and 3-AP-Me activated the cellular stress kinases c-Jun N-terminal kinase (JNK) and p38 mit
43 preceded by increased phosphorylation of the stress kinases c-Jun N-terminal kinase and p38, and of a
45 a 2-fold increase in phosphorylation of the stress kinase ERK in control (but not Ames dwarf) mice a
46 ) and inhibitor of kappaB kinase (IKK-beta), stress kinases implicated in insulin resistance, and upr
48 ant for the regulation of c-myc stability by stress kinases in response to selective stress condition
49 phorylation of the key endoplasmic reticulum stress kinases IRE1alpha and PERK (PKR-like ER kinase) a
50 nt activation of Jun N-terminal kinase (JNK) stress kinase is a necessary step, licensing TBK1 phosph
51 randed RNA-activated protein kinase (PKR), a stress kinase, is involved in HIV/gp120-associated neuro
52 loss of plasma membrane integrity include a stress kinase JNK activated at early steps of recovery f
53 a significant increase in activation of the stress kinase JNK and production of the matrix metallopr
55 provide the first evidence that AKT inhibits stress kinase JNK through activation of the NF kappa B p
56 ury is mediated in part by activation of the stress kinase JNK, but whether MIF modulates JNK in this
57 shock protein Hsp72 involves suppression of stress kinase JNK, we suggested that Hsp72-mediated JNK
60 e that anisomycin, a potent activator of the stress kinase JNK/SAPK, can induce Bcl2 phosphorylation
63 ncurrent with drug-induced activation of the stress kinases, known to be linked with cell death pathw
65 ng that the activation of the aforementioned stress kinases maintain breast acinar structures as part
66 ression in response to p38 but not the other stress kinase, N-terminal Jun kinase (JNK); p38-activati
67 results demonstrate that early activation of stress kinases or change of cellular redox states plays
68 s activation of multiple caspases and of the stress kinase p38 and c-Jun NH2-terminal kinase (JNK) wa
69 ies in Fancc(-/-) BM cells overactivates the stress kinase p38 and requires prolonged activation of t
70 m SB203580 and siRNA experiments suggest the stress kinase p38 is important for Ran gradient recovery
71 tion of Rho-associated kinase (ROCK) and the stress kinase p38, leads to further p53 elevation, causi
73 of ERK1/2, as well as phosphorylation of the stress kinases p38 and c-Jun N-terminal protein kinase.
74 AKT/FOXO3 pathway by redox activation of the stress kinases p38 and JNK is instrumental in neuronal d
76 (IKK)/nuclear factor kappaB (NF-kappaB) and stress kinase (p38 and c-Jun N-terminal kinase [JNK]) pa
77 L-3 from dependent lymphocytes activates the stress kinase, p38 MAPK, which phosphorylates Cdc25A, in
78 cells correlates with the activation of the stress kinases, p38 mitogen-activated protein (MAP) kina
80 ion and degradation of IkappaBalpha) and the stress kinase pathway (phosphorylation of ATF-2, p38, an
83 as a critical regulator of the NF-kappaB and stress kinase pathways and thus a key intermediary in ce
85 hough TNF-alpha stimulates the NF-kappaB and stress kinase pathways in HSF, these effects of TNF-alph
86 h axonal transport is sufficient to activate stress kinase pathways initiating a biochemical cascade
87 cal changes that induce activation of axonal stress kinase pathways leading to abnormal tau hyperphos
91 include mitochondrial dysfunction, oxidative stress, kinase pathways, calcium dysregulation, inflamma
93 uded activation of the endoplasmic reticulum stress kinase protein kinase R-like endoplasmic reticulu
94 molecular switch to initiate and amplify the stress kinase response in the TNF-alpha signaling pathwa
95 se embryonic fibroblasts deficient in the ER stress kinase RNA-activated protein kinase-like ER-resid
99 TLR4-dependent activation of the Ste20-type stress kinase SPAK, which binds, phosphorylates, and sti
100 hway leading to downstream signaling by this stress kinase to LKB1 and AMPK kinases, and activation o
101 eas retinoid agonists such as CD437 activate stress kinases via inhibition of the phosphatase MKP-1,
102 To map c-myc domains that are responsive to stress kinases, we monitored changes in the level of c-m
103 ole of ATF2 in this process, suggesting that stress kinases, which contribute to regulation of ATF2 s
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