Konishi Kenji, Yasutake Yoshiaki, Muramatsu Shuji, Murata Satomi, Yoshida Keitaro, Ishiya Koji, Aburatani Sachiyo, Sakasegawa Shin-Ichi, Tamura Tomohiro
Asahi Kasei Pharma Corporation, Shizuoka, 410-2321, Japan.
Laboratory of Molecular Environmental Microbiology, Graduate School of Agriculture, Hokkaido University, Sapporo, 060-8589, Japan.
Appl Microbiol Biotechnol. 2022 Dec;106(24):8093-8110. doi: 10.1007/s00253-022-12277-3. Epub 2022 Nov 18.
Burkholderia stabilis strain FERMP-21014 secretes cholesterol esterase (BsChe), which is used in clinical settings to determine serum cholesterol levels. Previously, we constructed an expression plasmid with an endogenous constitutive promoter to enable the production of recombinant BsChe. In this study, we obtained one mutant strain with 13.1-fold higher BsChe activity than the wild type, using N-methyl-N'-nitro-N-nitrosoguanidine as a mutagen. DNA-sequencing analysis revealed that the strain had lost chromosome 3 (∆Chr3), suggesting that the genes hindering BsChe production may be encoded on Chr3. We also identified common mutations in the functionally unknown BSFP_068720/30 genes in the top 10 active strains generated during transposon mutagenesis. As BSFP_068720/30/40 comprised an operon on Chr3, we created the BSFP_068720/30/40 disruption mutant and confirmed that each disruption mutant containing the expression plasmid exhibited ~ 16.1-fold higher BsChe activity than the wild type. Quantitative PCR showed that each disruption mutant and ΔChr3 had a ~ 9.4-fold higher plasmid copy number than the wild type. Structural prediction models indicate that BSFP_068730/40 is structurally homologous to the structural maintenance of chromosomes (SMC) protein MukBE, which is responsible for chromosome segregation during cell division. Conversely, BSFP_068720/30/40 disruption did not lead to a Chr3 drop-out. These results imply that BSFP_068720/30/40 is not a SMC protein but is involved in destabilizing foreign plasmids to prevent the influx of genetic information from the environment. In conclusion, the disruption of BSFP_068720/30/40 improved plasmid stability and copy number, resulting in exceptionally high BsChe production. KEY POINTS: • Disruption of BSFP_068720/30/40 enabled mass production of Burkholderia Che/Lip. • BSFP_068730/40 is an SMC protein homolog not involved in chromosome retention. • BSFP_068720/30/40 is likely responsible for the exclusion of exogenous plasmids.
稳定伯克霍尔德菌菌株FERMP - 21014分泌胆固醇酯酶(BsChe),该酶用于临床检测血清胆固醇水平。此前,我们构建了一个带有内源性组成型启动子的表达质粒,以实现重组BsChe的生产。在本研究中,我们使用N - 甲基 - N'- 硝基 - N - 亚硝基胍作为诱变剂,获得了一株BsChe活性比野生型高13.1倍的突变菌株。DNA测序分析表明,该菌株缺失了3号染色体(∆Chr3),这表明阻碍BsChe生产的基因可能在Chr3上编码。我们还在转座子诱变过程中产生的前10个活性菌株中,鉴定了功能未知的BSFP_068720/30基因中的常见突变。由于BSFP_068720/30/40在Chr3上构成一个操纵子,我们构建了BSFP_068720/30/40缺失突变体,并证实每个含有表达质粒的缺失突变体的BsChe活性比野生型高约16.1倍。定量PCR显示,每个缺失突变体和∆Chr3的质粒拷贝数比野生型高约9.4倍。结构预测模型表明,BSFP_068730/40在结构上与负责细胞分裂过程中染色体分离的染色体结构维持(SMC)蛋白MukBE同源。相反,BSFP_068720/30/40的缺失并没有导致Chr3缺失。这些结果表明,BSFP_068720/30/40不是一种SMC蛋白,但参与了使外源质粒不稳定,以防止遗传信息从环境中流入。总之,BSFP_068720/30/40的缺失提高了质粒稳定性和拷贝数,从而导致BsChe产量异常高。要点:• BSFP_068720/30/40的缺失使伯克霍尔德菌Che/Lip能够大量生产。• BSFP_068730/40是一种不参与染色体保留的SMC蛋白同源物。• BSFP_068720/30/40可能负责排除外源质粒。