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首页> 外文期刊>Applied Microbiology and Biotechnology >Characterization of Clostridium ljungdahlii OTA1: a non-autotrophic hyper ethanol-producing strain
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Characterization of Clostridium ljungdahlii OTA1: a non-autotrophic hyper ethanol-producing strain

机译:Ljungdahlii OTA1的表征Ljungdahlii OTA1:一种非自养型超乙醇产生菌株

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摘要

A Clostridium ljungdahlii lab-isolated spontaneous-mutant strain, OTA1, has been shown to produce twice as much ethanol as the C. ljungdahlii ATCC 55383 strain when cultured in a mixotrophic medium containing fructose and syngas. Whole-genome sequencing identified four unique single nucleotide polymorphisms (SNPs) in the C. ljungdahlii OTA1 genome. Among these, two SNPs were found in the gene coding for AcsA and HemL, enzymes involved in acetyl-CoA formation from CO/CO2. Homology models of the respective mutated enzymes revealed alterations in the size and hydrogen bonding of the amino acids in their active sites. Failed attempts to grow OTA1 autotrophically suggested that one or both of these mutated genes prevented acetyl-CoA synthesis from CO/CO2, demonstrating that its activity was required for autotrophic growth by C. ljungdahlii. An inoperable Wood-Ljungdahl pathway resulted in higher CO2 and ethanol yields and lower biomass and acetate yields compared to WT for multiple growth conditions including heterotrophic and mixotrophic conditions. The two other SNPs identified in the C. ljungdahlii OTA1 genome were in genes coding for transcriptional regulators (CLJU_c09320 and CLJU_c18110) and were found to be responsible for deregulated expression of co-localized arginine catabolism and 2-deoxy-d-ribose catabolism genes. Growth medium supplementation experiments suggested that increased arginine metabolism and 2-deoxy-d-ribose were likely to have minor effects on biomass and fermentation product yields. In addition, in silico flux balance analysis simulating mixotrophic and heterotrophic conditions showed no change in flux to ethanol when flux through HemL was changed whereas limited flux through AcsA increased the ethanol flux for both simulations. In characterizing the effects of the SNPs identified in the C. ljungdahlii OTA1 genome, a non-autotrophic hyper ethanol-producing strain of C. ljungdahlii was identified that has utility for further physiology and strain performance studies and as a biocatalyst for industrial applications.
机译:已经显示出梭菌Ljungdahlii实验室分离的自发性突变体菌株OTA1,当在含有果糖和合成气的混纺培养基中培养时,产生两倍的乙醇作为C.Ljungdahlii ATCC 55383菌株。全基因组测序在C.Ljungdahlii OTA1基因组中鉴定了四种独特的单一核苷酸多态性(SNP)。其中,在编码ACSA和HEML的基因中发现两个SNP,从CO / CO 2中参与乙酰基COA的酶。各种突变酶的同源模型揭示了活性位点中氨基酸的尺寸和氢键的改变。失败的尝试生长ota1自身营养地表明这些突变的基因中的一种或两种防止了来自CO / CO 2的乙酰基 - COA合成,证明其活性由C.Ljungdahlii进行自养生长所需的活性。与WT相比,不可操作的木质LjungdaHL途径导致较高的CO 2和乙醇产率和乙酸盐产量,用于多种生长条件,包括异养和混纺疾病。在C.Ljungdahlii OTA1基因组中鉴定的另外两种SNP是编码转录调节剂的基因(CLJU_C09320和CLJU_C18110),发现负责针对共局化精氨酸分解代谢和2-脱氧-D-核糖分解代谢基因的令人损失的表达。生长培养基补充实验表明,增加的精氨酸代谢和2-脱氧-D-核糖可能对生物质和发酵产物产率产生轻微影响。另外,在硅通量平衡分析中,模拟混合营养和异养的条件显示,当通过HEML的通量改变时,乙醇的助焊剂没有变化,而通过ACSA的有限通量增加了两种模拟的乙醇通量。在表征C.Ljungdahlii OTA1基因组中鉴定的SNP的作用时,确定了C.Ljungdahlii的非自养基辛醇产生的菌株,其具有进一步的生理和应变性能研究以及工业应用的生物催化剂。

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