Enhanced CHO Clone Screening: Application of Targeted Locus Amplification and Next-Generation Sequencing Technologies for Cell Line Development

被引:13
|
作者
Aeschlimann, Samuel H. [1 ]
Graf, Christian [2 ]
Mayilo, Dmytro [1 ]
Lindecker, Helene [1 ]
Urda, Lorena [1 ]
Kappes, Nora [1 ]
Burr, Alicia Leone [1 ]
Simonis, Marieke [3 ]
Splinter, Erik [3 ]
van Min, Max [3 ]
Laux, Holger [1 ]
机构
[1] Novartis Inst BioMed Res, Integrated Biol Profiling Unit, CH-4002 Basel, Switzerland
[2] Hexal AG, Novartis Tech R&D, Tech Dev Biosimilars, Keltenring 1 3, D-82041 Oberhaching, Germany
[3] Cergentis BV, Yalelaan 62, NL-3584 CM Utrecht, Netherlands
关键词
Chinese hamster ovary; clone selection; LC-MS; next-generation sequencing; targeted locus amplification; CHIMERIC ANTIBODY; PROTEIN; EXPRESSION; VARIANT; STABILITY; ACID; TYR;
D O I
10.1002/biot.201800371
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Early analytical clone screening is important during Chinese hamster ovary (CHO) cell line development of biotherapeutic proteins to select a clonally derived cell line with most favorable stability and product quality. Sensitive sequence confirmation methods using mass spectrometry have limitations in throughput and turnaround time. Next-generation sequencing (NGS) technologies emerged as alternatives for CHO clone analytics. We report an efficient NGS workflow applying the targeted locus amplification (TLA) strategy for genomic screening of antibody expressing CHO clones. In contrast to previously reported RNA sequencing approaches, TLA allows for targeted sequencing of genomic integrated transgenic DNA without prior locus information, robust detection of single-nucleotide variants (SNVs) and transgenic rearrangements. During clone selection, TLA/NGS revealed CHO clones with high-level SNVs within the antibody gene and we report in another case the utility of TLA/NGS to identify rearrangements at transgenic DNA level. We also determined detection limits for SNVs calling and the potential to identify clone contaminations by TLA/NGS. TLA/NGS also allows to identify genetically identical clones. In summary, we demonstrate that TLA/NGS is a robust screening method useful for routine clone analytics during cell line development with the potential to process up to 24 CHO clones in less than 7 workdays.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Targeted next-generation sequencing for congenital hypothyroidism with positive neonatal TSH screening results
    Yamaguchi, Takeshi
    [J]. HORMONE RESEARCH IN PAEDIATRICS, 2019, 91 : 93 - 93
  • [32] Quick Genetic Screening Using Targeted Next-Generation Sequencing in Patients With Tuberous Sclerosis
    Liu, Qing
    Huang, Yan
    Zhang, Mingrong
    Wang, Lian Qing
    Guo, Xia Nan
    Si, Nuo
    Qi, Zhan
    Zhou, Xiang Qin
    Cui, Li-ying
    [J]. JOURNAL OF CHILD NEUROLOGY, 2015, 30 (05) : 610 - 614
  • [33] Development and Validation of a Targeted Next-Generation Sequencing Gene Panel for Children With Neuroinflammation
    McCreary, Dara
    Omoyinmi, Ebun
    Hong, Ying
    Mulhern, Ciara
    Papadopoulou, Charalampia
    Casimir, Marina
    Hacohen, Yael
    Nyanhete, Rodney
    Ahlfors, Helena
    Cullup, Thomas
    Lim, Ming
    Gilmour, Kimberly
    Mankad, Kshitij
    Wassmer, Evangeline
    Berg, Stefan
    Hemingway, Cheryl
    Brogan, Paul
    Eleftheriou, Despina
    [J]. JAMA NETWORK OPEN, 2019, 2 (10)
  • [34] Assessing the performance and utility of targeted next-generation sequencing for screening and genotyping of human papillomaviruses
    Lee, Jung Hoon
    Park, Yun Mi
    Kim, Jimyung
    Kwon, Gye Cheol
    Kim, Seon Young
    [J]. DIAGNOSTIC MICROBIOLOGY AND INFECTIOUS DISEASE, 2024, 109 (02)
  • [35] New era of mutation screening in breast cancer using targeted next-generation sequencing
    Kwong, A.
    Au, T.
    Law, F.
    Ho, D.
    Ip, B.
    Wong, A.
    Shin, V.
    Chan, C.
    Ma, E.
    [J]. EUROPEAN JOURNAL OF CANCER, 2014, 50 : S74 - S74
  • [36] Transcriptome Analysis of Cucumber Fruit Development Using Next-Generation Sequencing Technologies
    Grumet, Rebecca
    [J]. HORTSCIENCE, 2010, 45 (08) : S7 - S7
  • [37] Targeted next-generation sequencing identification of mutations in patients with disorders of sex development
    Dong, Yanling
    Yi, Yuting
    Yao, Hong
    Yang, Ziying
    Hu, Huamei
    Liu, Jiucheng
    Gao, Changxin
    Zhang, Ming
    Zhou, Liying
    Asan
    Yi, Xin
    Liang, Zhiqing
    [J]. BMC MEDICAL GENETICS, 2016, 17
  • [38] Application of next-generation sequencing technology for comprehensive aneuploidy screening of blastocysts in ART
    Alexandrova, N.
    Ekimov, A.
    Shubina, E.
    Kodyleva, T.
    Makarova, N.
    Levkov, L.
    Korostin, D.
    Trofimov, D.
    Kulakova, E.
    Gennady, S.
    [J]. HUMAN REPRODUCTION, 2016, 31 : 385 - 385
  • [39] Application and insights of targeted next-generation sequencing in a large cohort of 46,XY disorders of sex development in Chinese
    Chen, Hongyu
    Chen, Guangjie
    Li, Fengxia
    Huang, Yong
    Zhu, Linfeng
    Zhao, Yijun
    Jiang, Ziyi
    Yan, Xiang
    Yu, Lan
    [J]. BIOLOGY OF SEX DIFFERENCES, 2024, 15 (01)
  • [40] Application of targeted enrichment to next-generation sequencing of retroviruses integrated into the host human genome
    Paola Miyazato
    Hiroo Katsuya
    Asami Fukuda
    Yoshikazu Uchiyama
    Misaki Matsuo
    Michiyo Tokunaga
    Shinjiro Hino
    Mitsuyoshi Nakao
    Yorifumi Satou
    [J]. Scientific Reports, 6