Lee Jong Hyun, Jeong Yeong Ran, Kim Yeon-Gu, Lee Gyun Min
Department of Biological Sciences, KAIST, 335 Gwahak-ro, Yuseong-gu, Daejeon 305-701, Republic of Korea.
Biotechnology Process Engineering Center, KRIBB, Ochang-eup, Cheongwon-gu, Cheongju, Republic of Korea.
Biotechnol Bioeng. 2017 Aug;114(8):1721-1732. doi: 10.1002/bit.26284. Epub 2017 Mar 30.
To understand the effects of hyperosmolality on protein glycosylation, recombinant Chinese hamster ovary (rCHO) cells producing the Fc-fusion protein were cultivated in hyperosmolar medium resulting from adding NaCl (415 mOsm/kg). The hyperosmotic culture showed increased specific Fc-fusion protein productivity (q ) but a decreased proportion of acidic isoforms and sialic acid content of the Fc-fusion protein. The intracellular and extracellular sialidase activities in the hyperosmotic cultures were similar to those in the control culture (314 mOsm/kg), indicating that reduced sialylation of Fc-fusion protein at hyperosmolality was not due to elevated sialidase activity. Expression of 52 N-glycosylation-related genes was assessed by the NanoString nCounter system, which provides a direct digital readout using custom-designed color-coded probes. After 3 days of hyperosmotic culture, nine genes (ugp, slc35a3, slc35d2, gcs1, manea, mgat2, mgat5b, b4galt3, and b4galt4) were differentially expressed over 1.5-fold of the control, and all these genes were down-regulated. N-linked glycan analysis by anion exchange and hydrophilic interaction HPLC showed that the proportion of highly sialylated (di-, tri-, tetra-) and tetra-antennary N-linked glycans was significantly decreased upon hyperosmotic culture. Addition of betaine, an osmoprotectant, to the hyperosmotic culture significantly increased the proportion of highly sialylated and tetra-antennary N-linked glycans (P ≤ 0.05), while it increased the expression of the N-glycan branching/antennary genes (mgat2 and mgat4b). Thus, decreased expression of the genes with roles in the N-glycan biosynthesis pathway correlated with reduced sialic acid content of Fc-fusion protein caused by hyperosmolar conditions. Taken together, the results obtained in this study provide a better understanding of the detrimental effects of hyperosmolality on N-glycosylation, especially sialylation, in rCHO cells. Biotechnol. Bioeng. 2017;114: 1721-1732. © 2017 Wiley Periodicals, Inc.
为了解高渗对蛋白质糖基化的影响,将产生Fc融合蛋白的重组中国仓鼠卵巢(rCHO)细胞在添加NaCl(415 mOsm/kg)形成的高渗培养基中培养。高渗培养显示Fc融合蛋白的比生产率(q)增加,但Fc融合蛋白的酸性异构体比例和唾液酸含量降低。高渗培养中的细胞内和细胞外唾液酸酶活性与对照培养(314 mOsm/kg)中的相似,这表明在高渗条件下Fc融合蛋白唾液酸化减少并非由于唾液酸酶活性升高。使用NanoString nCounter系统评估了52个与N-糖基化相关基因的表达,该系统使用定制设计的颜色编码探针提供直接的数字读数。高渗培养3天后,9个基因(ugp、slc35a3、slc35d2、gcs1、mania、mgat2、mgat5b、b4galt3和b4galt4)的差异表达超过对照的1.5倍,且所有这些基因均下调。通过阴离子交换和亲水相互作用HPLC进行的N-聚糖分析表明,高渗培养后高度唾液酸化的(二、三、四)和四天线N-聚糖的比例显著降低。向高渗培养物中添加渗透保护剂甜菜碱可显著增加高度唾液酸化和四天线N-聚糖的比例(P≤0.05),同时增加N-聚糖分支/天线基因(mgat2和mgat4b) 的表达。因此,在N-聚糖生物合成途径中起作用的基因表达降低与高渗条件导致的Fc融合蛋白唾液酸含量减少相关。综上所述,本研究获得的结果有助于更好地理解高渗对rCHO细胞中N-糖基化,尤其是唾液酸化的有害影响。《生物技术与生物工程》2017年;114:1721 - 1732。©2017威利期刊公司