• 제목/요약/키워드: Molecular Chaperone

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Structure and Function of HtrA Family Proteins, the Key Players in Protein Quality Control

  • Kim, Dong-Young;Kim, Kyeong-Kyu
    • BMB Reports
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    • 제38권3호
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    • pp.266-274
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    • 2005
  • High temperature requirement A (HtrA) and its homologues constitute the HtrA familiy proteins, a group of heat shock-induced serine proteases. Bacterial HtrA proteins perform crucial functions with regard to protein quality control in the periplasmic space, functioning as both molecular chaperones and proteases. In contrast to other bacterial quality control proteins, including ClpXP, ClpAP, and HslUV, HtrA proteins contain no regulatory components or ATP binding domains. Thus, they are commonly referred to as ATP-independent chaperone proteases. Whereas the function of ATP-dependent chaperone-proteases is regulated by ATP hydrolysis, HtrA exhibits a PDZ domain and a temperature-dependent switch mechanism, which effects the change in its function from molecular chaperone to protease. This mechanism is also related to substrate recognition and the fine control of its function. Structural and biochemical analyses of the three HtrA proteins, DegP, DegQ, and DegS, have provided us with clues as to the functional regulation of HtrA proteins, as well as their roles in protein quality control at atomic scales. The objective of this brief review is to discuss some of the recent studies which have been conducted regarding the structure and function of these HtrA proteins, and to compare their roles in the context of protein quality control.

대장균에서 분자 chaperone에 의한 alginate lyase의 가용성 발현 증대 (Enhancement of Soluble Expression of Alginate Lyase By Molecular Chaperone in E. coli.)

  • 신은정;이재형;박소림;김형락;남수완
    • 생명과학회지
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    • 제17권1호
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    • pp.132-136
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    • 2007
  • E. coli에서 Pseudoalteromonas elyakovii 유래의 alginate lyase유전자(aly)를 발현시킬 때, 대부분의 단백질이 불용성 내포체 형태로 발현됨을 확인하였다. Alginate lyase를 가용성 활성형으로 생산하기 위해 aly와 DnaK/DnaJ/GrpE 또는 aly와 GroEL/ES을 공발현하는 형질전환체를 얻었다. 공발현 결과, 단백질의 올바른 접힘을 도와주는 DnaK/DnaJ/GrpE chaperone이 가용성 및 활성형의 alginate lyase 생산에 매우 효과적임을 알 수 있었다. DnaK/DnaJ/GrpE chaperone의 발현에 유도제인 L-arabinose 최적 농도는 0.05 mg/ml이었으며, 이러한 공발현에 의해 약 34%의 alginate lyase가 가용성 분획에서 생산되었다. 또한 10%의 cetylpyridinium chloride를 첨가함으로써, 공발현 콜로니 주위에 투명환이 형성됨을 확인할 수 있었고, 이는 활성형 alginate lyase 효소에 의해 alginate가 분해되었음을 시사하였다.

A chaperone surveillance system in plant circadian rhythms

  • Cha, Joon-Yung;Khaleda, Laila;Park, Hee Jin;Kim, Woe-Yeon
    • BMB Reports
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    • 제50권5호
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    • pp.235-236
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    • 2017
  • The circadian clock is an internal system that is synchronized by external stimuli, such as light and temperature, and influences various physiological and developmental processes in living organisms. In the model plant Arabidopsis, transcriptional, translational and post-translational processes are interlocked by feedback loops among morning- and evening-phased genes. In a post-translational loop, plant-specific single-gene encoded GIGANTEA (GI) stabilize the F-box protein ZEITLUPE (ZTL), driving the targeted-proteasomal degradation of TIMING OF CAB EXPRESSION 1 (TOC1) and PSEUDO-RESPONSE REGULATOR 5 (PRR5). Inherent to this, we demonstrate the novel biochemical function of GI as a chaperone and/or co-chaperone of Heat-Shock Protein 90 (HSP90). GI prevents ZTL degradation as a chaperone and facilitates ZTL maturation together with HSP90/HSP70, enhancing ZTL activity in vitro and in planta. GI is known to be involved in a wide range of physiology and development as well as abiotic stress responses in plants, but it could also interact with diverse client proteins to increase protein maturation. Our results provide evidence that GI helps proteostasis of ZTL by acting as a chaperone and a co-chaperone of HSP90 for proper functioning of the Arabidopsis circadian clock.

A Cytosolic Thioredoxin Acts as a Molecular Chaperone for Peroxisome Matrix Proteins as Well as Antioxidant in Peroxisome

  • Du, Hui;Kim, Sunghan;Hur, Yoon-Sun;Lee, Myung-Sok;Lee, Suk-Ha;Cheon, Choong-Ill
    • Molecules and Cells
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    • 제38권2호
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    • pp.187-194
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    • 2015
  • Thioredoxin (TRX) is a disulfide reductase present ubiquitously in all taxa and plays an important role as a regulator of cellular redox state. Recently, a redox-independent, chaperone function has also been reported for some thioredoxins. We previously identified nodulin-35, the subunit of soybean uricase, as an interacting target of a cytosolic soybean thioredoxin, GmTRX. Here we report the further characterization of the interaction, which turns out to be independent of the disulfide reductase function and results in the co-localization of GmTRX and nodulin-35 in peroxisomes, suggesting a possible function of GmTRX in peroxisomes. In addition, the chaperone function of GmTRX was demonstrated in in vitro molecular chaperone activity assays including the thermal denaturation assay and malate dehydrogenase aggregation assay. Our results demonstrate that the target of GmTRX is not only confined to the nodulin-35, but many other peroxisomal proteins, including catalase (AtCAT), transthyretin-like protein 1 (AtTTL1), and acyl-coenzyme A oxidase 4 (AtACX4), also interact with the GmTRX. Together with an increased uricase activity of nodulin-35 and reduced ROS accumulation observed in the presence of GmTRX in our results, especially under heat shock and oxidative stress conditions, it appears that GmTRX represents a novel thioredoxin that is co-localized to the peroxisomes, possibly providing functional integrity to peroxisomal proteins.

In vitro에서 핵산치환인자 BAP이 단백질-분자 샤페론 복합체 해리에 미치는 영향 (A Nucleotide Exchange Factor, BAP, dissociated Protein-Molecular Chaperone Complex in vitro)

  • 이명주;김동은;이태호;정영기;김영희;정경태
    • 생명과학회지
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    • 제16권3호
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    • pp.409-414
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    • 2006
  • 소포체는 세포막의 합성뿐만 아니라 세포막에 존재하거나 세포외로 분비되어져야 할 단백질을 합성하는 세포내 소기관이다. 소포체에서 단백질이 합성되어질 경우 이황화결합이 형성되고 glycosylation 등의 수식이 일어나며, 이와 동시에 folding과 assembly과정을 거쳐 삼차원적 구조로 성숙이 되는데 이 과정은 folding enzyme과 molecular chaperone의 도움을 받아 이루어진다. 소포체 내에 존재하는 molecular chaperone 중 가장 잘 알려진 것으로 BiP이 있다. BiP의 기능은 N-terminus의 ATPase domain에 의해 조절되고 ATPase domain은 이것과 선택적으로 결합하는 조절인자에 의해 ATPase의 활성이 영향을 받는다. BiP의 핵산치환조절인자로서 발견된 BAP은 ATPase domain에 결합된 ADP를 ATP로 치환하는 것으로 기능이 알려져 있다. 이 BAP의 핵산치환기능이 BiP의 샤페론 작용에 어떤 영향을 미치는지를 in vitro에서 항체 heavy chain을 이용하여 알아보았다. BAP은 ATP보다 ADP가 결합되어 있는 BiP과 더 잘 결합을 하며, in vitro에서 BiP과 결합하고 있는 unfolded 단백질을 BAP은 BiP으로부터 해리하였다. 또한 소포체내에 존재하는 Hsp70 homologue chaperone인 BiP과 Grp170에 대한 BAP의 결합특이성을 anti-Grp170과 anti-BAP 항체로 co-immunoprecipitation을 하여 확인한 결과 BAP은 Grp170과 결합을 하지 않았다. 따라서 BAP은 ER내에 존재하는 동일한 family group에 속하는 Grp170과 BiP에 대하여 BiP에만 특이성을 갖는 것으로 나타났다.

High-Level Expression of Human Cytochrome P450 3A4 by Co-Expression with Human Molecular Chaperone HDJ-1 (Hsp40)

  • Ahn, Tae-Ho;Yun, Chul-Ho
    • Archives of Pharmacal Research
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    • 제27권3호
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    • pp.319-323
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    • 2004
  • Cytochrome P450 (CYP) 3A4 is of great interest because of its important roles in the oxidation of numerous drugs and xenobiotics. HDJ-1, a molecular chaperone in human, is known to assist the correct folding of unfolded proteins. To achieve a high yield of recombinant human CYP3A4 in Escherichia coli, the CYP3A4 encoding gene was co-expressed with the chaperone HDJ-1, under the control of an inducible tac promoter in a bicistronic format. The levels of expression of the CYP3A4 in the bicistronic construct reached up to 715 nmol $(liter culture)^{-1}$ within 16 h at $37^{\circ}C$, which was about a 3.3-fold increase compared to that of the CYP3A4 alone without the HDJ-1. By co-expression with HDJ-1, the catalytic activity of CYP3A4 was also increased by -15-fold. The amount of activity increase was similar to that of the CYP production at the whole cell level. The present over-expression system may be useful for the rapid production of large amounts of active CYP3A4 in E. coli.

Effect of Molecular Chaperones on the Soluble Expression of Alginate Lyase in E. coli

  • Shin, Eun-Jung;Park, So-Lim;Jeon, Sung-Jong;Lee, Jin-Woo;Kim, Young-Tae;Kim, Yeon-Hee;Nam, Soo-Wan
    • Biotechnology and Bioprocess Engineering:BBE
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    • 제11권5호
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    • pp.414-419
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    • 2006
  • When the alginate lyase gene (aly) from Pseudoalteromonas elyakovii was expressed in E. coli, most of the gene product was organized as aggregated insoluble particles known as inclusion bodies. To examine the effects of chaperones on soluble and nonaggregated form of alginate lyase in E. coli, we constructed plasm ids designed to permit the coexpression of aly and the DnaK/DnaJ/GrpE or GroEL/ES chaperones. The results indicate that coexpression of aly with the DnaK/DnaJ/GrpE chaperone together had a marked effect on the yield alginate lyase as a soluble and active form of the enzyme. It is speculated this result occurs through facilitation of the correct folding of the protein. The optimal concentration of L-arabinose required for the induction of the DnaK/DnaJ/GrpE chaperone was found to be 0.05mg/mL. An analysis of the protein bands on SDS-PAGE gel indicated that at least 37% of total alginate lyase was produced in the soluble fraction when the DnaK/DnaJ/GrpE chaperone was coexpressed.

Tobacco mitochondrial small heat shock protein NtHSP24.6 adopts a dimeric configuration and has a broad range of substrates

  • Kim, Keun-Pill;Yu, Ji-Hee;Park, Soo-Min;Koo, Hyun-Jo;Hong, Choo-Bong
    • BMB Reports
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    • 제44권12호
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    • pp.816-820
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    • 2011
  • There is a broad range of different small heat shock proteins (sHSPs) that have diverse structural and functional characteristics. To better understand the functional role of mitochondrial sHSP, NtHSP24.6 was expressed in Escherichia coli with a hexahistidine tag and purified. The protein was analyzed by non-denaturing PAGE, chemical cross-linking and size exclusion chromatography and the $H_6NtHSP24.6$ protein was found to form a dimer in solution. The in vitro functional analysis of $H_6NtHSP24.6$ using firefly luciferase and citrate synthase demonstrated that this protein displays typical molecular chaperone activity. When cell lysates of E. coli were heated after the addition of $H_6NtHSP24.6$, a broad range of proteins from 10 to 160 kD in size remained in the soluble state. These results suggest that NtHSP24.6 forms a dimer and can function as a molecular chaperone to protect a diverse range of proteins from thermal aggregation.

Biochemical Analysis of a Cytosolic Small Heat Shock Protein, NtHSP18.3, from Nicotiana tabacum

  • Yu, Ji Hee;Kim, Keun Pill;Park, Soo Min;Hong, Choo Bong
    • Molecules and Cells
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    • 제19권3호
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    • pp.328-333
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    • 2005
  • Small heat shock proteins (sHSPs) are widely distributed, and their function and diversity of structure have been much studied in the field of molecular chaperones. In plants, which frequently have to cope with hostile environments, sHSPs are much more abundant and diverse than in other forms of life. In response to high temperature stress, sHSPs of more than twenty kinds can make up more than 1% of soluble plant proteins. We isolated a genomic clone, NtHSP18.3, from Nicotiana tabacum that encodes the complete open reading frame of a cytosolic class I small heat shock protein. To investigate the function of NtHSP18.3 in vitro, it was overproduced in Escherichia coli and purified. The purified NtHSP18.3 had typical molecular chaperone activity as it protected citrate synthase and luciferase from high temperature-induced aggregation. When E. coli celluar proteins were incubated with NtHSP18.3, a large proportion of the proteins remained soluble at temperatures as high as $70^{\circ}C$. Native gel analysis suggested that NtHSP18.3 is a dodecameric oligomer as the form present and showing molecular chaperone activity at the condition tested. Binding of bis-ANS to the oligomers of NtHSP18.3 indicated that exposure of their hydrophobic surfaces increased as the temperature was raised. Taken together, our data suggested that NtHSP18.3 is a molecular chaperone that functions as a dodecameric complex and possibly in a temperature-induced manner.