• 제목/요약/키워드: Proteome analysis

검색결과 320건 처리시간 0.064초

Analysis of Poly(3-Hydroxybutyrate) Granule-Associated Proteome in Recombinant Escherichia coli

  • Han Mee-Jung;Park Si-Jae;Lee Jeong-Wook;Min Byoung-Hoon;Lee Sang-Yup;Kim Soo-Jin;Yoo Jong-Shin
    • Journal of Microbiology and Biotechnology
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    • 제16권6호
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    • pp.901-910
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    • 2006
  • Poly(3-hydroxybutyrate) [P(3HB)] is a microbial polyester intracellularly accumulated as distinct granules in numerous microorganisms as an energy and carbon storage material. Recombinant Escherichia coli harboring the heterologous P(3HB) biosynthesis genes accumulates large amounts of P(3HB) granules, yet the granule-associated proteins have not been identified. Therefore, this study reports on an analysis of the P(3HB) granule-associated proteome in recombinant E. coli. Fiye proteins out of 7 spots identified were found to be involved in functions of translation, heat-stress responses, and P(3HB) biosynthesis. Two of the major granule-associated proteins, IbpA/B, which are already known to bind to recombinant proteins forming inclusion bodies in E. coli, were further analyzed. Immunoblotting and immunoelectron microscopic studies with IbpA/B antibodies clearly demonstrated the binding and localization of IbpA/B to P(3HB) granules. IbpA/B seemed to play an important role in recombinant E. coli producing P(3HB) by stabilizing the interface between the hydrophobic P(3HB) granules and the hydrophilic cytoplasm. Thus, IbpA/B were found to act like phasins in recombinant E. coli, as they are the major proteins bound to the P(3HB) granules, affect the morphology of the granules, and reduce the amount of cytosolic proteins bound to the P(3HB) granules.

프로테오믹스를 이용한 내분비계 교란물질 환경독성 연구 (Proteome in Toxicological Assessment of Endocrine Disrupting Chemicals)

  • 김호승;계명찬
    • 환경생물
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    • 제21권2호
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    • pp.87-100
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    • 2003
  • 환경오염이 심각해짐에 따라 국내외적으로 환경에 대한 관심이 고조되고 인체에 해를 끼치는 환경요인으로부터 방어하기 위한 많은 노력들이 기울여지고 있다. 특히 내분비계장애물질이 생식기능과 면역기능을 약화시키고, 행동 이상을 일으키며, 암 발생률을 높인다는 점이 밝혀지기 시작하면서 많은 연구들이 발표되고 여러 가지 방법들이 내분비계장애물질과 더불어 환경분야연구에 응용되어왔지만 단백질을 대상으로 연구하여 유전자기능을 연구하는 프로테오믹스(proteomics) 연구를 접목시키려는 시도가 아직까지는 빈약하다. 프로테오믹스는 기능을 갖는 단백질들의 발현을 종합적이고 정량적으로 측정하는 가장 직접적인 수단이고, 질병, 약물투여, shock 등 생물학적인 동요(perturbation)에 의하여 변하는 단백질들의 발현양상의 변화를 정확하게 관찰할 수 있으며, 생체내 유전자발현의 궁극적인 양상을 규명할 수 있고, 또한 유전자, 단백질 및 질병간의 연결고리를 제공한다. 기존의 biomarker는 다른 질병 표지자와 연관성이 높아 직접적인 유해물질 노출 위험도를 정확히 판정하기 어렵다. 따라서 대량발굴탐색(high-throughput screen-ing)이 가능한 2차원 전기영동 분석과 MALDI-TOF 또는 protein chip array와 SELDI-TOF에 의한 단백질 분자구조 분석기술 및 이들을 지원하는 생물정보학(bio-informatics)의 발전을 이용하여 환경독성 연구에 이용 할 수 있는 표적단백질(biomarker)발굴에 적절한 이용이 가능할 것이다.

Proteomic Analysis to Identify Tightly-Bound Cell Wall Protein in Rice Calli

  • Cho, Won Kyong;Hyun, Tae Kyung;Kumar, Dhinesh;Rim, Yeonggil;Chen, Xiong Yan;Jo, Yeonhwa;Kim, Suwha;Lee, Keun Woo;Park, Zee-Yong;Lucas, William J.;Kim, Jae-Yean
    • Molecules and Cells
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    • 제38권8호
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    • pp.685-696
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    • 2015
  • Rice is a model plant widely used for basic and applied research programs. Plant cell wall proteins play key roles in a broad range of biological processes. However, presently, knowledge on the rice cell wall proteome is rudimentary in nature. In the present study, the tightly-bound cell wall proteome of rice callus cultured cells using sequential extraction protocols was developed using mass spectrometry and bioinformatics methods, leading to the identification of 1568 candidate proteins. Based on bioinformatics analyses, 389 classical rice cell wall proteins, possessing a signal peptide, and 334 putative non-classical cell wall proteins, lacking a signal peptide, were identified. By combining previously established rice cell wall protein databases with current data for the classical rice cell wall proteins, a comprehensive rice cell wall proteome, comprised of 496 proteins, was constructed. A comparative analysis of the rice and Arabidopsis cell wall proteomes revealed a high level of homology, suggesting a predominant conservation between monocot and eudicot cell wall proteins. This study importantly increased information on cell wall proteins, which serves for future functional analyses of these identified rice cell wall proteins.