首页> 外文期刊>Journal of microbiology and biotechnology >Development of a genome-wide random mutagenesis system using proofreading-deficient DNA polymerase δ in the methylotrophic yeast Hansenula polymorpha.
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Development of a genome-wide random mutagenesis system using proofreading-deficient DNA polymerase δ in the methylotrophic yeast Hansenula polymorpha.

机译:使用甲基营养型多形汉逊酵母中的校对缺陷型DNA聚合酶δ开发全基因组随机诱变系统。

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摘要

The thermotolerant methylotrophic yeast Hansenula polymorpha is attracting interest as a potential strain for the production of recombinant proteins and biofuels. However, only limited numbers of genome engineering tools are currently available for H. polymorpha. In the present study, we identified the HpPOL3 gene encoding the catalytic subunit of DNA polymerase δ of H. polymorpha and mutated the sequence encoding conserved amino acid residues that are important for its proofreading 3'-->5' exonuclease activity. The resulting HpPOL3* gene encoding the error-prone proofreading-deficient DNA polymerase δ was cloned under a methanol oxidase promoter to construct the mutator plasmid pHIF8, which also contains additional elements for site-specific chromosomal integration, selection, and excision. In a H. polymorpha mutator strain chromosomally integrated with pHIF8, a URA3(-) mutant resistant to 5-fluoroorotic acid was generated at a 50-fold higher frequency than in the wild-type strain, due to the dominant negative expression of HpPOL3*. Moreover, after obtaining the desired mutant, the mutator allele was readily removed from the chromosome by homologous recombination to avoid the uncontrolled accumulation of additional mutations. Our mutator system, which depends on the accumulation of random mutations that are incorporated during DNA replication, will be useful to generate strains with mutant phenotypes, especially those related to unknown or multiple genes on the chromosome.
机译:耐高温甲基营养型多形汉逊酵母作为生产重组蛋白和生物燃料的潜在菌株引起了人们的兴趣。但是,目前只有有限数量的基因组工程工具可用于多形汉逊酵母。在本研究中,我们鉴定了HpPOL3基因,该基因编码H.polymorpha的DNA聚合酶δ的催化亚基,并突变了编码保守氨基酸残基的序列,这对于其校对3'-> 5'核酸外切酶活性很重要。在甲醇氧化酶启动子下克隆所得的编码易错校对缺陷的DNA聚合酶δ的HpPOL3 *基因,以构建突变质粒pHIF8,该质粒还包含用于位点特异性染色体整合,选择和切除的其他元件。在染色体上与pHIF8整合的多形汉逊酵母突变株中,由于HpPOL3 *的显性负表达,产生了对5-氟乳清酸具有抗性的URA3(-)突变体的频率是野生型菌株的50倍。 。此外,获得所需的突变体后,通过同源重组很容易从染色体上除去突变体等位基因,从而避免了不受控制的其他突变积累。我们的突变系统取决于DNA复制过程中掺入的随机突变的积累,将有助于产生具有突变表型的菌株,特别是那些与染色体上未知或多个基因相关的菌株。

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