Lee Jong Hyun, Kim Yeon-Gu, Lee Gyun Min
Dept. of Biological Sciences, KAIST, Daejeon, 305-701, Republic of Korea.
Biotechnology Process Engineering Center, KRIBB, Ochang, 363-883, Republic of Korea.
Biotechnol Prog. 2015 Jul-Aug;31(4):1133-6. doi: 10.1002/btpr.2115. Epub 2015 Jun 26.
The sialic acid of glycoproteins secreted by recombinant Chinese hamster ovary (rCHO) cells can be impaired by sialidase under culture conditions which promote the extracellular accumulation of this enzyme. To investigate the effect of Bcl-xL overexpression on the sialylation of glycoproteins produced in rCHO cell culture, two rCHO cell lines producing the same Fc-fusion protein, which were derived from DUKX-B11 and DG44, respectively, were engineered to have regulated Bcl-xL overexpression using the Tet-off system. For both cell lines, Bcl-xL overexpression improved cell viability and extended culture longevity in batch cultures. As a result, a maximum Fc-fusion protein titer increased by Bcl-xL overexpression though the extent of titer enhancement differed between the two cell lines. With Bcl-xL overexpression, the sialylation of Fc-fusion protein, which was assessed by isoelectric focusing gel and sialic acid content analyses, decreased more slowly toward the end of batch cultures. This was because Bcl-xL overexpression delayed the extracellular accumulation of sialidase activity by reducing cell lysis during batch cultures. Taken together, Bcl-xL overexpression in rCHO cell culture increased Fc-fusion protein production and also reduced the impairment of sialylation of Fc-fusion protein by maintaining high viability during batch cultures.
在促进唾液酸酶胞外积累的培养条件下,重组中国仓鼠卵巢(rCHO)细胞分泌的糖蛋白中的唾液酸可能会被唾液酸酶破坏。为了研究Bcl-xL过表达对rCHO细胞培养中产生的糖蛋白唾液酸化的影响,分别从DUKX-B11和DG44衍生出两种产生相同Fc融合蛋白的rCHO细胞系,利用Tet-off系统对其进行工程改造,使其具有可调控的Bcl-xL过表达。对于这两种细胞系,Bcl-xL过表达均提高了细胞活力,并延长了分批培养中的培养寿命。结果,尽管两种细胞系的滴度增强程度不同,但Bcl-xL过表达使最大Fc融合蛋白滴度增加。通过Bcl-xL过表达,通过等电聚焦凝胶和唾液酸含量分析评估的Fc融合蛋白的唾液酸化在分批培养结束时下降得更慢。这是因为Bcl-xL过表达通过减少分批培养期间的细胞裂解来延迟唾液酸酶活性的胞外积累。综上所述,rCHO细胞培养中Bcl-xL过表达增加了Fc融合蛋白的产量,并且通过在分批培养期间保持高活力,还减少了Fc融合蛋白唾液酸化的损伤。