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首页> 外文期刊>Journal of Biotechnology >Incomplete protein disulphide bond conformation and decreased protein expression result from high cell growth during heterologous protein expression in Pichia pastoris
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Incomplete protein disulphide bond conformation and decreased protein expression result from high cell growth during heterologous protein expression in Pichia pastoris

机译:毕赤酵母异源蛋白表达过程中高细胞生长导致不完整的蛋白二硫键构象和蛋白表达降低

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Previous report has shown that the expression of recombinant human consensus interferon-alpha mutant (cIFN) in Pichia pastoris in bioreactor is limited with respect to the incorrectly folded cIFN with incomplete disulfide bond, which lead to the degradation and aggregation of cIFN. In this study, the origin of incorrectly folded cIFN is firstly studied. Fed-batch fermentation in bioreactor shows that the incorrectly folded cIFN is formed intramolecularly and secreted to the extracellular environment. Further chemostat cultures indicate that the specific growth rate is the critical factor for the production of incorrect cIFN. In addition, cell shows reduced expression level of cIFN at high specific growth rate. We also demonstrate that the incorrectly folded cIFN could form aggregates intracellularly and these aggregates are non-covalent forms. Taken together, these results suggest that the efficient heterologous expression of cIFN is limited by high cell growth that is unique from expression limitations seen for soluble proteins. A balance has to be found between the increase for high efficient expression of heterologous proteins and requirement of the high cell growth during the expression of recombinant proteins in P. pastoris. (C) 2011 Elsevier B.V. All rights reserved.
机译:先前的报道表明,重组人共有干扰素-α突变体(cIFN)在生物反应器中的巴斯德毕赤酵母中的表达相对于具有不完全二硫键的不正确折叠的cIFN是有限的,这导致cIFN的降解和聚集。在这项研究中,首先研究了错误折叠的cIFN的起源。在生物反应器中的分批补料发酵显示,错误折叠的cIFN在分子内形成并分泌到细胞外环境。进一步的化学恒温培养表明,特定的生长速率是产生错误cIFN的关键因素。另外,细胞在高比生长速率下显示出降低的cIFN表达水平。我们还证明了错误折叠的cIFN可以在细胞内形成聚集体,而这些聚集体是非共价形式。综上所述,这些结果表明,cIFN的有效异源表达受到细胞高生长的限制,而高细胞生长是可溶性蛋白表达限制所独有的。在高效表达异源蛋白与在巴斯德毕赤酵母中表达重组蛋白期间对高细胞生长的需求之间必须找到平衡。 (C)2011 Elsevier B.V.保留所有权利。

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