• Title/Summary/Keyword: Phosphorylation site

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Two Threonine Residues Required for Role of AfsKav in Controlling Morphogenesis and Avermectin Production in Streptomyces avermitilis

  • Rajkarnikar, Arishma;Kwon, Hyung-Jin;Ryu, Yeon-Woo;Suh, Joo-Won
    • Journal of Microbiology and Biotechnology
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    • v.17 no.9
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    • pp.1563-1567
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    • 2007
  • AfsKav is a eukaryotic-type serine/threonine protein kinase, required for sporulation and avermectin production in Streptomyces avermitilis. In terms of their ability to complement SJW4001 (${\Delta}afsK$-av), afsK-av mutants T165A and T168A were not functional, whereas mutants T165D and T168D retained their ability, indicating that Thr-165 and Thr-168 are the phosphorylation sites required for the role of AfsKav. Expression of the S-adenosylmethione synthetase gene promoted avermectin production in the wild-type S. avermitilis, yet not in the mutant harboring T168D or T165D, demonstrating that tandem phosphorylation on Thr-165 and Thr-168 in AfsKav is the mechanism modulating avermectin production in response to S-adenosylmethione accumulation in S. avermitilis.

Acebutolol, a Cardioselective Beta Blocker, Promotes Glucose Uptake in Diabetic Model Cells by Inhibiting JNK-JIP1 Interaction

  • Li, Yi;Jung, Nan-Young;Yoo, Jae Cheal;Kim, Yul;Yi, Gwan-Su
    • Biomolecules & Therapeutics
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    • v.26 no.5
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    • pp.458-463
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    • 2018
  • The phosphorylation of JNK is known to induce insulin resistance in insulin target tissues. The inhibition of JNK-JIP1 interaction, which interferes JNK phosphorylation, becomes a potential target for drug development of type 2 diabetes. To discover the inhibitors of JNK-JIP1 interaction, we screened out 30 candidates from 4320 compound library with In Cell Interaction Trap method. The candidates were further confirmed and narrowed down to five compounds using the FRET method in a model cell. Among those five compounds, Acebutolol showed notable inhibition of JNK phosphorylation and elevation of glucose uptake in diabetic models of adipocyte and liver cell. Structural computation showed that the binding affinity of Acebutolol on the JNK-JIP1 interaction site was comparable to the known inhibitor, BI-78D3. Our results suggest that Acebutolol, an FDA-approved beta blocker for hypertension therapy, could have a new repurposed effect on type 2 diabetes elevating glucose uptake process by inhibiting JNK-JIP1 interaction.

Chemical Synthesis of Oligodeoxyribonucleotide ; Improvement of Deoxyribonucleoside Phosphorylation and Dideoxyribonucleotide Synthesis (Oligodeoxyribonucleotide의 화학적 합성 ; Deoxyribonucleoside의 인산화와 이량체 합성 방법의 개선)

  • Sang Jik Lee;Byung Soo Song;Jong Dae Kim
    • Journal of the Korean Chemical Society
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    • v.31 no.1
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    • pp.84-93
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    • 1987
  • The study was done with a focus on making the optimum condition on phosphorylation of deoxyribonucleoside with o-chlorophenylphosphoroditriazole as a phosphorylating agent. The result showed that the addition of 5 volume % pyridine to the dioxane solution accelerated the rate of reaction to a great extent and turned out to nearly quantitative yields on phosphorylation. On the basis of this improvement of optimum reaction conditions, a more efficient method to synthesize all-protected dideoxyribonucleotide from N, 5-O-blocked deoxyribonucleoside was developed. The dodecamer with a Hind Ⅲ recognition site was readily synthesized from five different dimers which were prepared through the newly improved method.

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Cytotoxicity by Lead-induced nNOS Phosphorylation in a Dopaminergic CATH.a Cells: Roles of Protein Kinase A

  • Kwon, Yong-Hyun;Choi, Ji-Young;Shin, Mi-Kyung;Lim, Woo-Sung;Lee, Sung-Keun;Kang, Ju-Hee;Park, Chang-Shin
    • Molecular & Cellular Toxicology
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    • v.3 no.4
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    • pp.215-221
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    • 2007
  • Neuronal cell toxicity induced by decreased nitric oxide (NO) production may be caused by modulation of constitutive neuronal NO synthase (nNOS). We used lead acetate ($Pb^{2+}$) to modulate physiological NO release and the related pathways of protein kinases like PKC, CaM-KII, and PKA in CATH.a cells, a dopaminergic cell line that has constitutive nNOS activity. In the cells treated with $Pb^{2+}$, cell viability and modulation (phosphorylation) levels of nNOS were determined by MTT assay and Western blot analysis, respectively. nNOS reductase activity (cytochrome c) was also assessed to compare the phosphorylation site-specific nNOS activity. nNOS activity was also determined by NADPH consumption rates. $Pb^{2+}$ treatment alone increased the phosphorylation of nNOS with decreased reductase activity. The phosphorylation levels increased markedly with decreased nNOS reductase activity, when $Pb^{2+}$ was combined with inhibitors for two (PKC and CaM-KII) or three (PKA, PKC and CaM-KII) protein kinases. Interestingly, when the cells were exposed to $Pb^{2+}$ plus PKC or CaM-KII inhibitor, the nNOS was phosphorylated strongly with the lowest activity. However, the levels of phosphorylated nNOS following $Pb^{2+}$ treatment decreased significantly after combined treatment with the PKA inhibitor, and $Pb^{2+}$-induced suppression of reductase activity did not occur. These results demonstrate that physiological NO release in the neuronal cells exposed to $Pb^{2+}$ can be decreased by PKA-mediated nNOS phosphorylation that may be caused by interactions with PKC and/or CaM-KII.

Hydroquinone suppresses IFN-β expression by targeting AKT/IRF3 pathway

  • Kim, Yong;Kim, Han Gyung;Han, Sang Yun;Jeong, Deok;Yang, Woo Seok;Kim, Jung-Il;Kim, Ji Hye;Yi, Young-Su;Cho, Jae Youl
    • The Korean Journal of Physiology and Pharmacology
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    • v.21 no.5
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    • pp.547-554
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    • 2017
  • Previous studies have demonstrated the role of hydroquinone (HQ), a hydroxylated benzene metabolite, in modulating various immune responses; however, its role in macrophage-mediated inflammatory responses is not fully understood. In this study, the role of HQ in inflammatory responses and the underlying molecular mechanism were explored in macrophages. HQ down-regulated the expression of interferon $(IFN)-{\beta}$ mRNA in LPS-stimulated RAW264.7 cells without any cytotoxicity and suppressed interferon regulatory factor (IRF)-3-mediated luciferase activity induced by TIR-domain-containing adapter-inducing interferon-${\beta}$ (TRIF) and TANK-binding kinase 1 (TBK1). A mechanism study revealed that HQ inhibited IRF-3 phosphorylation induced by lipopolysaccharide (LPS), TRIF, and AKT by suppressing phosphorylation of AKT, an upstream kinase of the IRF-3 signaling pathway. IRF-3 phosphorylation is highly induced by wild-type AKT and poorly induced by an AKT mutant, AKT C310A, which is mutated at an inhibitory target site of HQ. We also showed that HQ inhibited IRF-3 phosphorylation by targeting all three AKT isoforms (AKT1, AKT2, and AKT3) in RAW264.7 cells and suppressed IRF-3-mediated luciferase activities induced by AKT in HEK293 cells. Taken together, these results strongly suggest that HQ inhibits the production of a type I IFN, $IFN-{\beta}$, by targeting AKTs in the IRF-3 signaling pathway during macrophage-mediated inflammation.

Ser1778 of 53BP1 Plays a Role in DNA Double-strand Break Repairs

  • Lee, Jung-Hee;Cheong, Hyang-Min;Kang, Mi-Young;Kim, Sang-Young;Kang, Yoon-Sung
    • The Korean Journal of Physiology and Pharmacology
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    • v.13 no.5
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    • pp.343-348
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    • 2009
  • 53BP1 is an important genome stability regulator, which protects cells against double-strand breaks. Following DNA damage, 53BP1 is rapidly recruited to sites of DNA breakage, along with other DNA damage response proteins, including ${\gamma}$-H2AX, MDC1, and BRCA1. The recruitment of 53BP1 requires a tandem Tudor fold which associates with methylated histones H3 and H4. It has already been determined that the majority of DNA damage response proteins are phosphorylated by ATM and/or ATR after DNA damage, and then recruited to the break sites. 53BP1 is also phosphorylated at several sites, like other proteins after DNA damage, but this phosphorylation is not critically relevant to recruitment or repair processes. In this study, we evaluated the functions of phosphor-53BP1 and the role of the BRCT domain of 53BP1 in DNA repair. From our data, we were able to detect differences in the phosphorylation patterns in Ser25 and Ser1778 of 53BP1 after neocarzinostatin-induced DNA damage. Furthermore, the foci formation patterns in both phosphorylation sites of 53BP1 also evidenced sizeable differences following DNA damage. From our results, we concluded that each phosphoryaltion site of 53BP1 performs different roles, and Ser1778 is more important than Ser25 in the process of DNA repair.

Subcloning of Nodulin 26 Wild Type(S262) and Phosphorylation Site Mutant(S262D) into the Yeast Expression Vector pYES2

  • Cha, Youn-Soo
    • Preventive Nutrition and Food Science
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    • v.2 no.1
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    • pp.61-65
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    • 1997
  • Wild type nodulin 26(nod 26) cDNA(S262) and phodphorylation aite mutant(S262D) were constructed by a yeast expression system using pYES2 plasmids(pTES2-D262 and pTES2-S262D) were sc-reened by restriction mapping with BamHI of KpnI. S262 nod 26 contained a sreine residue at position 262 and S262D nod 26 contained the substitution mutation of serine to aspartic acid residue at position 262 were verified by automated floursent DNA sequencing.

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BIOCHEMICAL MODEL AND MECHANISM FOR ACINETOBACTER NITRITE INHIBITION

  • Lee, Chan-Won;Weon, Seung-Yeon
    • Environmental Engineering Research
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    • v.10 no.1
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    • pp.22-30
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    • 2005
  • Nitrite accumulation is not unusual in batch processes such as sequencing batch reactor (SBR) with high-strength of ammonium or nitrate wastewaters. A possible mechanism of nitrite inhibition on Acinetobacter was depicted in a biochemical model, which the protonated species, nitrous acid form of nitrite, affects proton relating transport at the proton-pumping site crossing the cell membrane under unlimited carbon and phosphorus conditions. This effect exerts inhibition of phosphorylation under aerobic condition and yields low APT/ADP ratio, consequently decrease poly-P synthesis and phosphorus uptake from outside the cell in the model.

Comparison of Some 3-(Substituted-Benzylidene)-1, 3-Dihydro-Indolin Derivatives as Ligands of Tyrosine Kinase Based on Binding Mode Studies and Biological Assay

  • Olgen, Sureyya
    • Archives of Pharmacal Research
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    • v.29 no.11
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    • pp.1006-1017
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    • 2006
  • A series of 3-(substituted-benylidene)-1, 3-dihydro- indolin-2-one, 3-(substituted-benylidene)-1, 3-dihydro- indolin-2-thione and 2, 2'-dithiobis 3-(substituted-benylidene)-1, 3-dihydro-indole derivatives was investigated as inhibitor of $p60^{c-Src}$tyrosine kinase by performing receptor docking studies and inhibitory activity toward tyrosine phosphorylation. Some compounds were shown to be docked at the site, where the selective inhibitor PP1 [1-tert-Butyl-3-p-tolyl-1H-pyrazolo[3,4-d]pyrimidine-4-yl-amine] was embedded at the enzyme active site. Evaluation of all compounds for the interactions with the parameters of lowest binding energy levels, capability of hydrogen bond formations and superimposibility on enzyme active site by docking studies, it can be assumed that 3-(substituted-benzylidene)-1, 3-dihydro-indolin-2-one and thione derivatives have better interaction with enzyme active site then 2, 2'-dithiobis 3-(substituted-benzylidene)-1, 3-dihydro indole derivatives. The test results for the inhibitory activity against tyrosine kinase by Elisa method revealed that 3-(substituted-benylidene)-1, 3-dihydro- indolin-2-thione derivatives have more activity then 3-(substituted-benylidene)-1, 3-dihydro- indolin-2-one derivatives.

Inhibition of protein tyrosine phosphatase non-receptor type 2 by PTP inhibitor XIX: Its role as a multiphosphatase inhibitor

  • Le, Hien Thi Thu;Cho, Young-Chang;Cho, Sayeon
    • BMB Reports
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    • v.50 no.6
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    • pp.329-334
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    • 2017
  • Protein tyrosine phosphatases (PTPs) play crucial roles in signal transduction and their functional alteration has been detected in many diseases. PTP inhibitors have been developed as therapeutic drugs for diseases that are related to the activity of PTPs. In this study, PTP inhibitor XIX, an inhibitor of CD45 and PTEN, was investigated whether it inhibits other PTPs. Protein tyrosine phosphatase non-receptor type 2 (PTPN2) was selectively inhibited by the inhibitor in a competitive manner. Drug affinity responsive target stability (DARTS) analysis showed that the inhibitor induces conformational changes in PTPN2. Phosphorylation levels of signal transducer and activator of transcription 3 (STAT3) at Tyr-705, a crucial site for STAT3 activation and target site of PTPN2, decreased upon exposure to the inhibitor. Our results suggest that PTP inhibitor XIX might be considered as an effective regulator of PTPN2 for treating diseases related to PTPN2.