986 resultados para casein kinase II


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The protein kinase CK2 (formerly casein kinase II) is thought to be involved in light-regulated gene expression in plants because of its ability to phosphorylate transcription factors that bind to the promoter regions of light-regulated genes in vitro. To address this possibility in vivo and to learn more about the potential physiological roles of CK2 in plants, we transformed Arabidopsis with an antisense construct of the CK2 α-subunit gene and investigated both morphological and molecular phenotypes. Antisense transformants had a smaller adult leaf size and showed increased expression of chs in darkness and of cab and rbcS after red-light treatment. The latter molecular phenotype implied that CK2 might serve as one of several negative and quantitative effectors in light-regulated gene expression. The possible mechanism of CK2 action and its involvement in the phytochrome signal transduction pathway are discussed.

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It has previously been shown that the N-terminal domain of tobacco (Nicotiana tabacum) nitrate reductase (NR) is involved in the inactivation of the enzyme by phosphorylation, which occurs in the dark (L. Nussaume, M. Vincentz, C. Meyer, J.P. Boutin, and M. Caboche [1995] Plant Cell 7: 611–621). The activity of a mutant NR protein lacking this N-terminal domain was no longer regulated by light-dark transitions. In this study smaller deletions were performed in the N-terminal domain of tobacco NR that removed protein motifs conserved among higher plant NRs. The resulting truncated NR-coding sequences were then fused to the cauliflower mosaic virus 35S RNA promoter and introduced in NR-deficient mutants of the closely related species Nicotiana plumbaginifolia. We found that the deletion of a conserved stretch of acidic residues led to an active NR protein that was more thermosensitive than the wild-type enzyme, but it was relatively insensitive to the inactivation by phosphorylation in the dark. Therefore, the removal of this acidic stretch seems to have the same effects on NR activation state as the deletion of the N-terminal domain. A hypothetical explanation for these observations is that a specific factor that impedes inactivation remains bound to the truncated enzyme. A synthetic peptide derived from this acidic protein motif was also found to be a good substrate for casein kinase II.

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We analyzed whether synaptic membrane trafficking proteins are substrates for casein kinase II, calcium/calmodulin-dependent protein kinase II, and cAMP-dependent protein kinase (PKA), three kinases implicated in the modulation of synaptic transmission. Each kinase phosphorylates a specific set of the vesicle proteins syntaxin 1A, N-ethylmaleimide-sensitive factor (NSF), vesicle-associated membrane protein (VAMP), synaptosome-associated 25-kDa protein (SNAP-25), n-sec1, alpha soluble NSF attachment protein (alpha SNAP), and synaptotagmin. VAMP is phosphorylated by calcium/calmodulin-dependent protein kinase II on serine 61. alpha SNAP is phosphorylated by PKA; however, the beta SNAP isoform is phosphorylated only 20% as efficiently. alpha SNAP phosphorylated by PKA binds to the core docking and fusion complex 10 times weaker than the dephosphorylated form. These studies provide a first glimpse at regulatory events that may be important in modulating neurotransmitter release during learning and memory.

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The AMPA-receptor subunit GluA4 is expressed transiently in CA1 pyramidal neurons at the time synaptic connectivity is forming, but its physiological significance is unknown. Here we show that GluA4 expression is sufficient to alter the signaling requirements of long-term potentiation (LTP) and can fully explain the switch in the LTP kinase dependency from PKA to Ca2(+)/calmodulin-dependent protein kinase II during synapse maturation. At immature synapses, activation of PKA leads to a robust potentiation of AMPA-receptor function via the mobilization of GluA4. Analysis of GluA4-deficient mice indicates that this mechanism is critical for neonatal PKA-dependent LTP. Furthermore, lentiviral expression of GluA4 in CA1 neurons conferred a PKA-dependent synaptic potentiation and LTP regardless of the developmental stage. Thus, GluA4 defines the signaling requirements for LTP and silent synapse activation during a critical period of synapse development.

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Angiotensin II (Ang II), acting via the AT1 receptor, induces an increase in intracellular calcium [Ca(2+)]i that then interacts with calmodulin (CaM). The Ca(2+)/CaM complex directly or indirectly activates sodium hydrogen exchanger 1 (NHE1) and phosphorylates calmodulin kinase II (CaMKII), which then regulates sodium hydrogen exchanger 3 (NHE3) activity. In this study, we investigated the cellular signaling pathways responsible for Ang II-mediated regulation of NHE1 and NHE3 in Madin-Darby canine kidney (MDCK) cells. The NHE1- and NHE3-dependent pHi recovery rates were evaluated by fluorescence microscopy using the fluorescent probe BCECF/AM, messenger RNA was evaluated with the reverse transcription polymerase chain reaction (RT-PCR), and protein expression was evaluated by immunoblot. We demonstrated that treatment with Ang II (1pM or 1 nM) for 30 min induced, via the AT1 but not the AT2 receptor, an equal increase in NHE1 and NHE3 activity that was reduced by the specific inhibitors HOE 694 and S3226, respectively. Ang II (1 nM) did not change the total expression of NHE1, NHE3 or calmodulin, but it induced CaMKII, cRaf-1, Erk1/2 and p90(RSK) phosphorylation. The stimulatory effects of Ang II (1 nM) on NHE1 or NHE3 activity or protein abundance was reduced by ophiobolin-A (CaM inhibitor), KN93 (CaMKII inhibitor) or PD98059 (Mek inhibitor). These results indicate that after 30 min, Ang II treatment may activate G protein-dependent pathways, including the AT1/PLC/Ca(2+)/CaM pathway, which induces CaMKII phosphorylation to stimulate NHE3 and induces cRaf-1/Mek/Erk1/2/p90(RSK) activity to stimulate NHE1

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Regulatorische T-Zellen (Tregs) leisten durch ihre suppressiven Eigenschaften einen essenziellen Beitrag zur Aufrechterhaltung der immunologischen Toleranz. Sie verhindern schädliche Immunreaktionen gegen Autoantigene, kommensale Bakterien, sowie harmlose Nahrungsmittel-bestandteile. Gleichzeitig gewährleisten sie die Entwicklung effektiver Immunantworten gegen eindringende Pathogene, wie z.B. Parasiten, Bakterien und Viren. Damit haben Tregs direkten Einfluss auf das Gleichgewicht zwischen Immunität und Toleranz. Fehler in der suppressiven Funktionsweise von Tregs begünstigen daher auf der einen Seite die Entstehung zahlreicher autoimmuner Erkrankungen und Allergien. Auf der anderen Seite können Tregs Immunreaktionen bei chronischen Infektionen reduzieren, sowie die Entstehung effektiver Immunantworten gegen Tumore hemmen. Ihre Beteiligung an der Ätiologie all dieser Krankheiten macht Tregs zu einem bedeutenden potenziellen Zielobjekt, um diese Krankheiten effektiv zu therapieren. Die Erweiterung des Grundwissens um die molekularen Mechanismen der Treg-vermittelten Suppression ist daher ein notwendiger Schritt bei der Entwicklung Treg-basierter Theraphieansätze. 2003 konnte mit Foxp3 ein Transkriptionsfaktor identifiziert werden, der maßgeblich die suppressiven Funktionen von Tregs steuert. Um weiteren Einblick in die der Suppression zugrundeliegenden Signalwege zu erhalten, wurde im Institut für Immunologie ein komparativer Kinomarray durchgeführt, anhand dessen die Casein Kinase 2 (CK2) als eine der aktivsten Kinasen in Tregs identifiziert wurde (Daten freundlicherweise von Prof. Dr. Tobias Bopp bereitgestellt). rnBasierend auf den Ergebnissen des Kinomarrays wurde in dieser Arbeit die Funktion der CK2 in Tregs untersucht. Dabei konnte in in vitro Experimenten die Treg-vermittelte Suppression durch den pharmakologische CK2 Inhibitor DMAT aufgehoben werden. Weil derartige Inhibitoren jedoch nicht absolut spezifisch die Aktivität nur einer Kinase supprimieren, wurden außerdem Mäuse mit konditionalem „knockout“ der CK2β Untereinheit spezifisch in Tregs gekreuzt (CK2βTreg-/- Mäuse). Die Analyse dieser Tiere offenbarte eine essenzielle Beteiligung der CK2 an den suppressiven Funktionen von Tregs. So entwickeln CK2βTreg-/- Mäuse mit zunehmendem Alter Splenomegalien und Lymphadenopathien, von denen in besonderem Maße die Mukosa-assoziierten Lymphknoten betroffen sind. Eine Analyse des Aktivierungsstatus der T-Zellen in den Tieren konnte zudem einen erhöhten Anteil sogenannter Effektor-Gedächtnis T-Zellen aufdecken, die charakteristische Merkmale eines Th2 Phänotyps zeigten. Erhöhte Titer des Antikörperisotyps IgE in den Seren von CK2βTreg-/- Mäusen suggerieren zusätzlich eine fehlerhafte Suppression speziell Th2-vermittelter Immunantworten durch CK2β-defiziente Tregs. In Th2-vermittelten Asthma Experimenten in vivo konnte der Verdacht der fehlerhaften Kontrolle von Th2-Antwort bestätigt werden, wobei zusätzlich aufgedeckt wurde, dass bereits unbehandelte CK2βTreg-/- Mäuse Zeichen einer Entzündungsreaktion in der Lunge aufweisen. Bei der Suche nach den molekularen Ursachen der fehlerhaften Suppression Th2-vermittelter Immunantworten durch CK2β-defiziente Tregs konnten zwei mögliche Erklärungsansätze gefunden werden. Zum einen zeigen CK2β-defiziente Tregs eine verringerte Expression von Foxp3, was, in Analogie zu Ergebnissen der Gruppe von R. Flavell (Wang Y.Y. Nature. 445, 766-770 (2007)), zu einer Konversion von Tregs zu Th2 Zellen und damit zur Entstehung eines Th2-basierten, autoimmunen Phänotyps führt. Des Weiteren weisen CK2β-defiziente Tregs eine reduzierte Expression des Transkriptionsfaktors IRF4 auf, der in Tregs entscheidend für die Kontrolle Th2-basierter Immunreaktionen ist (Zheng Y. Nature. 19; 351-356 (2009)). Die dargelegten Ergebnisse identifizieren die CK2 damit als Kinase, die entscheidend an der Treg-vermittelten Suppression speziell Th2-basierter Immunantworten beteiligt ist. Demnach könnten pharmakologische CK2 Inhibitoren beispielsweise dazu eingesetzt werden, um die Treg-vermittelte Suppression im Rahmen chronischer Parasiten-Infektionen aufzuheben. Die in CK2βTreg-/- Mäusen beobachtete Prävalenz der Funktion der CK2 für Mukosa-assoziierte Organe stellt dabei einen zusätzlichen Vorteil dar, weil systemische Nebenwirkungen, die durch die Blockade der Treg-vermittelte Suppression entstehen, zumindest in nicht-Mukosa-assoziierten Geweben nicht zu erwarten sind.rn

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Time-dependent refractoriness of calcium (Ca2+) release in cardiac myocytes is an important factor in determining whether pro-arrhythmic release patterns develop. At the subcellular level of the Ca2+ spark, recent studies have suggested that recovery of spark amplitude is controlled by local sarcoplasmic reticulum (SR) refilling whereas refractoriness of spark triggering depends on both refilling and the sensitivity of the ryanodine receptor (RyR) release channels that produce sparks. Here we studied regulation of Ca2+ spark refractoriness in mouse ventricular myocytes by examining how β-adrenergic stimulation influenced sequences of Ca2+ sparks originating from individual RyR clusters. Our protocol allowed us to separately measure recovery of spark amplitude and delays between successive sparks, and data were interpreted quantitatively through simulations with a stochastic mathematical model. We found that, compared with spark sequences measured under control conditions: (1) β-adrenergic stimulation with isoproterenol accelerated spark amplitude recovery and decreased spark-to-spark delays; (2) activating protein kinase A (PKA) with forskolin accelerated amplitude recovery but did not affect spark-to-spark delays; (3) inhibiting PKA with H89 retarded amplitude recovery and increased spark- to-spark delays; (4) preventing phosphorylation of the RyR at serine 2808 with a knock-in mouse prevented the decrease in spark-to-spark delays seen with β-adrenergic stimulation; (5) inhibiting either PKA or Ca2+/calmodulin-dependent protein kinase II (CaMKII) during β-adrenergic stimulation prevented the decrease in spark-to-spark delays seen) without inhibition. The results suggest that activation of either PKA or CaMKII is sufficient to speed SR refilling, but activation of both kinases appears necessary to observe increased RyR sensitivity. The data provide novel insight into β-adrenergic regulation of Ca2+ release refractoriness in mouse myocytes.

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Calcium/calmodulin-dependent protein kinase II (CaM kinase) is a multifunctional Ser/Thr protein kinase, that is highly enriched in brain and is involved in regulating many aspects of neuronal function. We observed that forebrain CaM kinase from crude homogenates, cytosolic fractions and purified preparations inactivates and translocates into the particulate fraction following autophosphorylation. Using purified forebrain CaM kinase as well as recombinant $\alpha$ isozyme, we determined that the formation of particulate enzyme was due to enzyme self-association. The conditions of autophosphorylation determine whether enzyme self-association and/or inactivation will occur. Self-association of CaM kinase is sensitive to pH, ATP concentration, and enzyme autophosphorylation. This process is prevented by saturating concentrations of ATP. However, in limiting ATP, pH is the dominant factor, and enzyme self-association occurs at pH values $\rm{<}7.0.$ Site-specific mutants were produced by substituting Ala for Thr286, Thr253, or Thr305,306 to determine whether these sites of autophosphorylation affect enzyme inactivation and self-association. The only mutation that influenced these processes was Ala286, which removed the protective effect afforded by autophosphorylation in saturating ATP. Enzyme inactivation occurs in the presence and absence of self-association and appears predominantly sensitive to nucleotide concentration, because saturating concentrations of $\rm Mg\sp{2+}/ADP$ or $\rm Mg\sp{2+}/ATP$ prevent this process. These data implicate the ATP binding pocket in both inactivation and self-association. We also observed that select peptide substrates and peptide inhibitors modeled after the autoregulatory domain of CaM kinase prevented these processes. The $\alpha$ and $\beta$ isozymes of CaM kinase were characterized independently, and were observed to exhibit differences in both enzyme inactivation and self-association. The $\beta$ isozyme was less sensitive to inactivation, and was never observed to self-associate. Biophysical characterization, and transmission electron microscopy coupled with image analysis indicated both isozymes were multimeric, however, the $\alpha$ and $\beta$ isozymes appeared structurally different. We hypothesize that the $\alpha$ subunit of CaM kinase plays both a structural and enzymatic role, and the $\beta$ subunit plays an enzymatic role. The ramifications for the functional differences observed for inactivation and self-association are discussed based on potential structural differences and autoregulation of the $\alpha$ and $\beta$ isozymes in both calcium-induced physiological and pathological processes. ^

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To determine the mechanisms responsible for the termination of Ca2+-activated Cl− currents (ICl(Ca)), simultaneous measurements of whole cell currents and intracellular Ca2+ concentration ([Ca2+]i) were made in equine tracheal myocytes. In nondialyzed cells, or cells dialyzed with 1 mM ATP, ICl(Ca) decayed before the [Ca2+]i decline, whereas the calcium-activated potassium current decayed at the same rate as [Ca2+]i. Substitution of AMP-PNP or ADP for ATP markedly prolonged the decay of ICl(Ca), resulting in a rate of current decay similar to that of the fall in [Ca2+]i. In the presence of ATP, dialysis of the calmodulin antagonist W7, the Ca2+/calmodulin-dependent kinase II (CaMKII) inhibitor KN93, or a CaMKII-specific peptide inhibitor the rate of ICl(Ca) decay was slowed and matched the [Ca2+]i decline, whereas H7, a nonspecific kinase inhibitor with low affinity for CaMKII, was without effect. When a sustained increase in [Ca2+]i was produced in ATP dialyzed cells, the current decayed completely, whereas in cells loaded with 5′-adenylylimidodiphosphate (AMP-PNP), KN93, or the CaMKII inhibitory peptide, ICl(Ca) did not decay. Slowly decaying currents were repeatedly evoked in ADP- or AMP-PNP-loaded cells, but dialysis of adenosine 5′-O-(3-thiotriphosphate) or okadaic acid resulted in a smaller initial ICl(Ca), and little or no current (despite a normal [Ca2+]i transient) with a second stimulation. These data indicate that CaMKII phosphorylation results in the inactivation of calcium-activated chloride channels, and that transition from the inactivated state to the closed state requires protein dephosphorylation.

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A large family of isoquinoline sulfonamide compounds inhibits protein kinases by competing with adenosine triphosphates(ATP), yet interferes little with the activity of other ATP-using enzymes such as ATPases and adenylate cyclases. One such compound, N-(2-aminoethyl)-5-chloroisoquinoline-8-sulfonamide (CK17), is selective for casein kinase-1 isolated from a variety of sources. Here we report the crystal structure of the catalytic domain of Schizosaccharomyces pombe casein kinase-1 complexed with CK17, refined to a crystallographic R-factor of 17.8% at 2.5 angstrom resolution. The structure provides new insights into the mechanism of the ATP-competing inhibition and the origin of their selectivity toward different protein kinases. Selectivity for protein kinases versus other enzymes is achieved by hydrophobic contacts and the hydrogen bond with isoquinoline ring. We propose that the hydrogen bond involving the ring nitrogen-2 atom of the isoquinoline must be preserved, but that the ring can flip depending on the chemical substituents at ring positions 5 and 8. Selectivity for individual members of the protein kinase family is achieved primarily by interactions with these substituents.

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Do different brains forming a specific memory allocate the same groups of neurons to encode it? One way to test this question is to map neurons encoding the same memory and quantitatively compare their locations across individual brains. In a previous study, we used this strategy to uncover a common topography of neurons in the dorsolateral amygdala (LAd) that expressed a learning-induced and plasticity-related kinase (p42/44 mitogen-activated protein kinase; pMAPK), following auditory Pavlovian fear conditioning. In this series of experiments, we extend our initial findings to ask to what extent this functional topography depends upon intrinsic neuronal structure. We first showed that the majority (87 %) of pMAPK expression in the lateral amygdala was restricted to principal-type neurons. Next, we verified a neuroanatomical reference point for amygdala alignment using in vivo magnetic resonance imaging and in vitro morphometrics. We then determined that the topography of neurons encoding auditory fear conditioning was not exclusively governed by principal neuron cytoarchitecture. These data suggest that functional patterning of neurons undergoing plasticity in the amygdala following Pavlovian fear conditioning is specific to memory formation itself. Further, the spatial allocation of activated neurons in the LAd was specific to cued (auditory), but not contextual, fear conditioning. Spatial analyses conducted at another coronal plane revealed another spatial map unique to fear conditioning, providing additional evidence that the functional topography of fear memory storing cells in the LAd is non-random and stable. Overall, these data provide evidence for a spatial organizing principle governing the functional allocation of fear memory in the amygdala.

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Periodontal inflammation can inhibit cell differentiation of periodontal ligament cells (PDLCs), resulting in decreased bone/cementum regeneration ability. The Wnt signaling pathway, including canonical Wnt/β-catenin signaling and noncanonical Wnt/Ca2+ signaling, plays essential roles in cell proliferation and differentiation during tooth development. However, little is still known whether noncanonical Wnt/Ca2+ signaling cascade could regulate cementogenic/osteogenic differentiation capability of PDLCs within an inflammatory environment. Therefore, in this study, human PDLCs (hPDLCs) and their cementogenic differentiation potential were investigated in the presence of cytokines. The data demonstrated that both cytokines interleukin-6 (IL-6) and tumor necrosis factor alpha (TNF-α) inhibited cell proliferation, relative alkaline phosphatase activity, bone/cementum-related gene/protein expression, and canonical Wnt pathway-related gene/protein expression in hPDLCs. Interestingly, both cytokines upregulated the noncanonical Wnt/Ca2+ signaling-related gene and protein expression in hPDLCs. When the Wnt/Ca2+ pathway was blocked by Ca2+/calmodulin-dependent protein kinase II inhibitor KN93, even in the presence of IL-6 and TNF-α, cementogenesis could be stimulated in hPDLCs. Our data indicate that the Wnt/Ca2+ pathway plays an inhibitory role on PDLC cementogenic differentiation in inflammatory microenvironments. Therefore, targeting the Wnt/Ca2+ pathway may provide a novel therapeutic approach to improve periodontal regeneration for periodontal diseases.

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Background information. The pathology causing stages of the human malaria parasite Plasmodium falciparum reside within red blood cells that are devoid of any regulated transport system. The parasite, therefore, is entirely responsible for mediating vesicular transport within itself and in the infected erythrocyte cytoplasm, and it does so in part via its family of 11 Rab GTPases. Putative functions have been ascribed to Plasmodium Rabs due to their homology with Rabs of yeast, particularly with Saccharomyces that has an equivalent number of rab/ypt genes and where analyses of Ypt function is well characterized. Results. Rabs are important regulators of vesicular traffic due to their capacity to recruit specific effectors. In order to identify P. falciparum Rab (PfRab) effectors, we first built a Ypt-interactome by exploiting genetic and physical binding data available at the Saccharomyces genome database (SGD). We then constructed a PfRab-interactome using putative parasite Rab-effectors identified by homology to Ypt-effectors. We demonstrate its potential by wet-bench testing three predictions; that casein kinase-1 (PfCK1) is a specific Rab5B interacting protein and that the catalytic subunit of cAMP-dependent protein kinase A (PfPKA-C) is a PfRab5A and PfRab7 effector. Conclusions. The establishment of a shared set of physical Ypt/PfRab-effector proteins sheds light on a core set Plasmodium Rab-interactants shared with yeast. The PfRab-interactome should benefit vesicular trafficking studies in malaria parasites. The recruitment of PfCK1 to PfRab5B+ and PfPKA-C to PfRab5A+ and PfRab7+ vesicles, respectively, suggests that PfRab-recruited kinases potentially play a role in early and late endosome function in malaria parasites.

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(第二部分的摘要) 酪蛋白激酶在许多物种的细胞分裂及分化过程中都有重要作用。在水稻中,以经过油菜素内酯处理的水稻幼苗为材料,通过cDNA微矩阵的方法得到了一个全长1939bp的基因OsCKI1(Accession number AJ487966)。该基因编码的蛋白产物属I型酪蛋白激酶(CKIs),含463个氨基酸。RT-PCR及Northern blot结果显示,基因OsCKI1在水稻各组织中表现为组成型表达,并且其表达受油菜素内酯(BR)及脱落酸(ABA)的诱导。在大肠杆菌中对该基因进行原核表达,并用表达后的蛋白粗提物进行酶活测定,显示该蛋白产物可磷酸化CKIs的特异性底物酪蛋白。通过构建OsCKI1的反义载体并转化水稻,对该基因的生理功能进行了研究。对转基因植株的纯系表型进行了观察,显示其根部发育异常,表现为具有较短的初生根、侧根及不定根数目少于对照。进一步研究显示初生根的变短是由于细胞延伸受抑制引起的。以CKI的特异性抑制剂,CKI-7处理野生型植株,也对OsCKI1缺失引起的表型进行了确认。值得注意的是,以外源生长素(IAA)处理转基因及经CKI-7处理过的野生型植株,都能恢复根部表型,使其生长正常。对反义植株初生根及次生根的游离生长素含量测定结果显示,OsCKI1可能在IAA的代谢途径中发挥作用。转基因植株的种子在萌发时对ABA及BR的处理都表现为不敏感,暗示该基因可能在各种激素信号转导途径中都有作用。OsCKI1-GFP双元表达载体的亚细胞定位的研究显示该基因主要定位于核中,可能参与了基因表达的调节。同时,以该反义转基因植株为材料,通过cDNA芯片的技术研究了受OsCKI1调节的基因的表达谱,结果显示该基因的缺失的确影响了参与信号转导及激素代谢途径的许多基因的表达。 (第四部分的摘要) 以OsCKI1反义转基因植株对照植株为材料,研究它们处于4℃低温胁迫下的反应情况。植株种子在室温下萌发并生长一段时间后,移入4℃低温下进一步生长。取对照及低温处理后的材料,对其表型进行观察,显示低温下转基因植株初生根生长受抑制程度小于对照,其生长的延缓程度低;相对电导率测定结果显示,经低温处理后,转基因植株相对电导率变化较小,质膜受害程度小;微管观察结果也显示在短期低温处理下对照根部延伸区细胞的皮层微管解聚,而转基因植株其根部延伸区细胞的皮层微管仍能保持正常状态。基因OsCKI1在低温下的表达模式表现为先升高之后又降低,推测其在低温信号的转导途径中发挥作用。通过总结以上结果,我们认为基因OsCKI1的反义转基因植株虽然在短期冷害下具有一定的抗冷能力,但其不具备形成长期稳定的冷适应的能力。

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Acid-sensing ion channels (ASICs) composed of ASIC1a subunit exhibit a high Ca2+ permeability and play important roles in synaptic plasticity and acid-induced cell death. Here, we show that ischemia enhances ASIC currents through the phosphorylation at Ser478 and Ser479 of ASIC1a, leading to exacerbated ischemic cell death. The phosphorylation is catalyzed by Ca2+/calmodulin-dependent protein kinase II (CaMKII) activity, as a result of activation of NR2B-containing N-methyl-D-aspartate subtype of glutamate receptors (NMDARs) during ischemia. Furthermore, NR2B-specific antagonist, CaMKII inhibitor, or overexpression of mutated form of ASIC1a with Ser478 or Ser479 replaced by alanine (ASICla-S478A, ASIC1a-S479A) in cultured hippocampal neurons prevented ischemia-induced enhancement of ASIC currents, cytoplasmic Ca2+ elevation, as well as neuronal death. Thus, NMDAR-CaMKII cascade is functionally coupled to ASICs and contributes to acidotoxicity during ischemia. Specific blockade of NMDAR/CaMKII-ASIC coupling may reduce neuronal death after ischemia and other pathological conditions involving excessive glutamate release and acidosis.