• 제목/요약/키워드: Catalytic domain

검색결과 188건 처리시간 0.025초

배초향으로부터 Grb2-Shc domain 결합저해 물질의 분리 (Isolation of Grb2-Shc Domain Binding Inhibition Component from Agastache rugosa)

  • 이은숙;안병태;이새봄;김혜경;복성해;정태숙
    • 생약학회지
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    • 제30권4호
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    • pp.404-408
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    • 1999
  • SH2 domains and their associated catalytic or noncatalytic proteins constitute critical signal transduction targets for drug discovery. Grb2 associates with phosphotyrosine sites of the activated receptors or Shc via their SH2 domain to link receptor tyrosine kinases to ras signalling. Blocking of the Grb2-Shc complex may be to intervene the oncogenic signal transduction pathways and to develop a new antitumor drug. In the search for blockers of Grb2 SH2-Shc interaction, Lutein, a family of carotenoids, was isolated from the extract of the leaf of Agastache rugosa O. Kuntze as SH2 domain antagonists. The $IC_{50}$ of Lutein against Grb2-Shc binding was $6.8\;{\mu}M$.

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Affinity between TBC1D4 (AS160) phosphotyrosine-binding domain and insulin-regulated aminopeptidase cytoplasmic domain measured by isothermal titration calorimetry

  • Park, Sang-Youn;Kim, Keon-Young;Kim, Sun-Min;Yu, Young-Seok
    • BMB Reports
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    • 제45권6호
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    • pp.360-364
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    • 2012
  • Uptake of circulating glucose into the cells happens via the insulin-mediated signalling pathway, which translocates the glucose transporter 4 (GLUT4) vesicles from the intracellular compartment to the plasma membrane. Rab GTPases are involved in this vesicle trafficking, where Rab GTPases-activating proteins (RabGAP) enhance the GTP to GDP hydrolysis. TBC1D4 (AS160) and TBC1D1 are functional RabGAPs in the adipocytes and the skeletonal myocytes, respectively. These proteins contain two phosphotyrosine-binding domains (PTBs) at the amino-terminus of the catalytic RabGAP domain. The second PTB has been shown to interact with the cytoplasmic region of the insulin-regulated aminopeptidase (IRAP) of the GLUT4 vesicle. In this study, we quantitatively measured the ${\sim}{\mu}M$ affinity ($K_D$) between TBC1D4 PTB and IRAP using isothermal titration calorimetry, and further showed that IRAP residues 1-49 are the major region mediating this interaction. We also demonstrated that the IRAP residues 1-15 are necessary but not sufficient for the PTB interaction.

Mechanisms Underlying Plk1 Polo-Box Domain-Mediated Biological Processes and Their Physiological Significance

  • Lee, Kyung S.;Park, Jung-Eun;Kang, Young Hwi;Kim, Tae-Sung;Bang, Jeong K.
    • Molecules and Cells
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    • 제37권4호
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    • pp.286-294
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    • 2014
  • Mammalian polo-like kinase 1 (Plk1) has been studied intensively as a key regulator of various cell cycle events that are critical for proper M-phase progression. The polobox domain (PBD) present in Plk1's C-terminal noncatalytic region has been shown to play a central role in targeting the N-terminal kinase domain of Plk1 to specific subcellular locations. Subsequent studies reveal that PBD binds to a phosphorylated motif generated by one of the two mechanisms - self-priming by Plk1 itself or non-self-priming by a Pro-directed kinase, such as Cdc2. Here, we comparatively review the differences in the biochemical steps of these mechanisms and discuss their physiological significance. Considering the diverse functions of Plk1 during the cell cycle, a better understanding of how the catalytic activity of Plk1 functions in concert with its cisacting PBD and how this coordinated process is intricately regulated to promote Plk1 functions will be important for providing new insights into different mechanisms underlying various Plk1-mediated biological events that occur at the multiple stages of the cell cycle.

ErmSF에서 두 도메인 사이에 존재하는 잘 보존된 237번 아르지닌 잔기의 위치 지정 치환 변이의 효소 활성 검색을 통한 역할 규명 (Mutational Analysis Elucidates the Role of Conserved 237 Arginine in 23S rRNA Methylation, Which is in the Concave Cleft Region of ErmSF)

  • 진형종
    • 미생물학회지
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    • 제49권2호
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    • pp.105-111
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    • 2013
  • Erm 단백질은 23S rRNA의 특정 아데닌 잔기 $N_6$ 위치에 methylation을 일으켜 임상적으로 중요하게 사용되는 macrolide-lincosamide-streptogramin B계 항생제에 내성을 유발시킨다. 최근 ErmC'에서 N-말단 catalytic domain과 C-말단 substrate binding domain를 연결하는 오목한 홈 형성부위에 존재하는 잘 보존된 아미노산 잔기가 기질과 상호작용하는 것으로 제안되었다. 우리는 ErmSF에서 두 domain의 연결 부위의 오목한 홈에 위치하여 기질과의 상호작용이 예상되며 또한 Erm 단백질들 사이에서 매우 높게 보존되어있는 237번 아르지닌 잔기를 치환하여 그 기능을 in vivo, in vitro상에서 검색하여 분석하였다. R237A 변이 단백질을 발현하는 세균은 야생형 단백질을 발현하는 세균과 비교하여 in vivo 상에서는 차이를 나타내지 않았으나 순수분리 한 후 in vitro에서의 효소 활성은 야생형에 비하여 51%만을 나타내어 그 잔기가 기질 부착 기능을 수행하고 있다고 제안할 수 있었다.

골격근 근장그물 칼슘이동에 대한 Phospholamban 펩타이드의 조절 (Effect of a Phospholamban Peptide on the Skeletal Sarcoplasmic Reticulum $Ca^{2+}$ Transport)

  • 김혜원;이희란
    • 대한약리학회지
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    • 제30권1호
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    • pp.117-124
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    • 1994
  • Phospholamban은 심근 근장그물 $Ca^{2+}-ATPase$ 조절단백이다. 조절작용기전은 탈인산화된 phospholamban에 의해 $Ca^{2+}-ATPase$가 억제됨으로 나타나며, 이 phospholamban이 인산화됨으로 $Ca^{2+}-ATPase$에 대한 억제가 반전됨을 보인다. 최근에 phospholamban의 cytoplasmic domain만으로 $Ca^{2+}-ATPase$를 억제하기에는 불충분하다는 보고가 있어 본 실험을 계획하였다. $Ca^{2+}-ATPase$의 활성을 억제하는 phospholamban domain을 밝히기 위하여 합성한 phospholamban 펩타이드(아미노산 1-25)의 $Ca^{2+}$ uptake에 대한 효과를 살펴보았다. 골격근 근장그물에서 $Ca^{2+}-ATPase$를 분리한 후 phosphatidylcholine이나 phosphatidylcholine과 phosphatidylserine을 포함한 liposome에 재조합시켰다. Phospholamban 펩타이드는 phosphatidylcholine을 이용하여 재조합된 vesicles의 초기 $Ca^{2+}$ uptake rate를 억제하고, cAMP 의존성 protein kinase의 catalytic subunit로 인산화시킨 phospholamban 펩타이드는 이 억제를 반전시킴을 보여 주었다. Phosphatidylcholine과 phosphatidylserine을 포함한 제조합 vesicles에서도 같은 양상을 보였다. 이상의 결과로 미루어 볼 때 인산화 sites를 포함하고 있는 phospholamban의 cytoplasmic domain은 그 자체만으로도 근장그물 칼슘펌프를 억제하기에 충분하다고 결론지을 수 있다.

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Cloning and Analysis of Medium-Chain-Length Poly(3-Hydroxyalkanoate) Depolymerase Gene of Pseudomonas luteola M13-4

  • Park, In-Jae;Rhee, Young-Ha;Cho, Nam-Young;Shin, Kwang-Soo
    • Journal of Microbiology and Biotechnology
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    • 제16권12호
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    • pp.1935-1939
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    • 2006
  • The gene encoding the extracellular medium-chain-length poly(3-hydroxyalkanoate) (MCL-PHA) depolymerase of Pseudomonas luteola Ml3-4, $phaZ_{plu}$, was cloned and analyzed. It was found to be 849 bp, with a deduced protein of 282 amino acids, and was revealed to have a typical leader peptide at its N terminus. The amino acid sequence of $PhaZ_{plu}$ revealed relatively low identity (69 to 72%) with those of other Pseudomonas MCL-PHA depolymerases. In comparison with the amino acid sequences of all available MCL-PHA depolymerases, the depolymerase was found to consist of three domains in sequential order; signal peptide, an N-terminal substrate binding domain, and a catalytic domain, indicating that $PhaZ_{plu}$ belongs to the type IV depolymerases family. The enzyme also contained Asn as an oxyanion hole amino acid.

Bacterial Hormone-Sensitive Lipases (bHSLs): Emerging Enzymes for Biotechnological Applications

  • Kim, T. Doohun
    • Journal of Microbiology and Biotechnology
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    • 제27권11호
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    • pp.1907-1915
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    • 2017
  • Lipases are important enzymes with biotechnological applications in dairy, detergent, food, fine chemicals, and pharmaceutical industries. Specifically, hormone-sensitive lipase (HSL) is an intracellular lipase that can be stimulated by several hormones, such as catecholamine, glucagon, and adrenocorticotropic hormone. Bacterial hormone-sensitive lipases (bHSLs), which are homologous to the C-terminal domain of HSL, have ${\alpha}/{\beta}-hydrolase$ fold with a catalytic triad composed of His, Asp, and Ser. These bHSLs could be used for a wide variety of industrial applications because of their high activity, broad substrate specificity, and remarkable stability. In this review, the relationships among HSLs, the microbiological origins, the crystal structures, and the biotechnological properties of bHSLs are summarized.

Structural Insights into the Regulation of ACC2 by Citrate

  • Kwon, Seong Jung;Cho, Yong Soon;Heo, Yong-Seok
    • Bulletin of the Korean Chemical Society
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    • 제34권2호
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    • pp.565-568
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    • 2013
  • Acetyl-CoA carboxylases (ACCs) play critical roles in fatty acid synthesis and oxidation by the catalytic activity of the carboxylation of acetyl-CoA to malonyl-CoA. It is known that ACCs are inactivated through reversible phosphorylation by AMP-activated protein kinase (AMPK) and allosterically activated by citrate. Here, we determined the crystal structures of biotin carboxylase (BC) domain of human ACC2 phosphorylated by AMPK in the presence of citrate in order to elucidate the activation mechanism by citrate. This structure shows that phosphorylated Ser222 is released from the dimer interface, and thereby facilitating the dimerization or oligomerization of the BC domain allosterically. This structural explanation is coincident with the experimental result that the phosphorylated Ser222 was dephosphorylated more easily by protein phosphatase 2A (PP2A) as the citrate concentration increases.

The C-terminal domain of PLD2 participates in degradation of protein kinase CKII β subunit in human colorectal carcinoma cells

  • Lee, Young-Hoon;Uhm, Jong-Su;Yoon, Soo-Hyun;Kang, Ji-Young;Kim, Eun-Kyung;Kang, Beom-Sik;Min, Do-Sik;Bae, Young-Seuk
    • BMB Reports
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    • 제44권9호
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    • pp.572-577
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    • 2011
  • Elevated phospholipase D (PLD) expression prevents cell cycle arrest and apoptosis. However, the roles of PLD isoforms in cell proliferation and apoptosis are incompletely understood. Here, we investigated the physiological significance of the interaction between PLD2 and protein kinase CKII (CKII) in HCT116 human colorectal carcinoma cells. PLD2 interacted with the CKII${\beta}$ subunit in HCT116 cells. The C-terminal domain (residues 578-933) of PLD2 and the N-terminal domain of CKII${\beta}$ were necessary for interaction between the two proteins. PLD2 relocalized CKII${\beta}$ to the plasma membrane area. Overexpression of PLD2 reduced CKII${\beta}$ protein level, whereas knockdown of PLD2 led to an increase in CKII${\beta}$ expression. PLD2-induced CKII${\beta}$ reduction was mediated by ubiquitin-dependent degradation. The C-terminal domain of PLD2 was sufficient for CKII${\beta}$ degradation as the catalytic activity of PLD2 was not required. Taken together, the results indicate that the C-terminal domain of PLD2 can regulate CKII by accelerating CKII${\beta}$ degradation in HCT116 cells.

The Molecular Functions of RalBP1 in Lung Cancer

  • Lee, Seunghyung
    • 대한의생명과학회지
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    • 제20권2호
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    • pp.49-55
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    • 2014
  • RalBP1 is an ATP-dependent non-ABC transporter, responsible for the major transport function in many cells including many cancer cell lines, causing efflux of glutathione-electrophile conjugates of both endogenous metabolites and environmental toxins. RalBP1 is expressed in most human tissues, and is over-expressed in non-small cell lung cancer cell lines and in many other tumor types. Blockade of RalBP1 by various approaches has been shown to increase sensitivity to radiation and chemotherapeutic drugs, leading to cell apoptosis. In xenograft tumor models in mice, RalBP1 blockade or depletion results in complete and sustained regression across many cancer cell types including lung cancer cells. In addition to its transport function, RalBP1 has many other cellular and physiological functions, based on its domain structure which includes a unique Ral-binding domain and a RhoGAP catalytic domain, as well as docking sites for multiple signaling proteins. Additionally, RalBP1 is also important for stromal cell function in tumors, as it was recently shown to be required for efficient endothelial cell function and angiogenesis in solid tumors. In this review, we discuss the cellular and physiological functions of RalBP1 in normal and lung cancer cells.