Increased expression and secretion of recombinant hIFNγ through amino acid starvation-induced selective pressure on the adjacent HIS4 gene in Pichia pastoris

Ali Razaghi, R. Huerlimann, L. Owens, K. Heimann
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引用次数: 4

Abstract

Abstract Transcriptional co-regulation of adjacent genes has been observed for prokaryotic and eukaryotic organisms, alike. High levels of gene adjacency were also found in a wide variety of yeast species with a high frequency of co-regulated gene sets. The aim of this research was to study how selective pressure on the Histidinol dehydrogenase gene (HIS4), using amino acid starvation, affects the level of expression and secretion of the adjacent human interferon gamma gene (hIFNγ) in the recombinant Pichia pastoris GS115 strain, a histidine-deficient mutant. hIFNγ was cloned into the pPIC9 vector adjacent to the HIS4 gene, a gene essential for histidine biosynthesis, which was then transformed into P. pastoris. The transformed P. pastoris was cultured under continuous amino acid starvation in amino acid-free minimal medium for ten days, with five inoculations into unspent medium every second day. Under these conditions, only successfully transformed cells (hIFNγ -HIS4+) are able to synthesise histidine and therefore thrive. As shown by ELISA, amino acid starvation-induced selective pressure on HIS4 improved expression and secretion of the adjacent hIFNγ by 55% compared to unchallenged cells. RT-qPCR showed that there was also a positive correlation between duration of amino acid starvation and increased levels of the hIFNγ RNA transcripts. According to these results, it is suggested that these adjacent genes (hIFNγ and HIS4) in the transformed P. pastoris are transcriptionally co-regulated and their expression is synchronised. To the best of the knowledge of the authors; this is the first study demonstrating that amino acid starvationinduced selective pressure on HIS4 can alter the regulation pattern of adjacent genes in P. pastoris.
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通过氨基酸饥饿诱导的HIS4基因的选择性压力,毕赤酵母中重组hIFNγ的表达和分泌增加
在原核生物和真核生物中都观察到邻近基因的转录共调控。高水平的基因邻接也被发现在各种各样的酵母物种与高频率的共调节基因集。本研究的目的是研究利用氨基酸饥饿对组氨酸脱氢酶基因(HIS4)的选择性压力如何影响组氨酸缺乏突变体毕赤酵母GS115重组菌株中邻近人干扰素γ基因(hIFNγ)的表达和分泌水平。hIFNγ被克隆到HIS4基因附近的pPIC9载体中,HIS4基因是组氨酸生物合成所必需的基因,然后将其转化为P. pastoris。转化后的巴斯德梭菌在无氨基酸最小培养基中连续氨基酸饥饿培养10天,每隔一天在未消耗的培养基中接种5次。在这些条件下,只有成功转化的细胞(hIFNγ -HIS4+)能够合成组氨酸并因此茁壮成长。ELISA结果显示,氨基酸饥饿诱导的HIS4选择性压力使邻近hIFNγ的表达和分泌比未激食细胞提高55%。RT-qPCR结果显示,氨基酸饥饿持续时间与hIFNγ RNA转录物水平升高之间也存在正相关。根据这些结果,这些邻近基因(hIFNγ和HIS4)在转化的帕斯德酵母中受到转录共调控,其表达是同步的。尽作者所知;这是首次证明氨基酸饥饿诱导的HIS4选择性压力可以改变巴斯德酵母中邻近基因的调控模式的研究。
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