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相似文献

1
Virus production with a newly developed microcarrier system.使用新开发的微载体系统进行病毒生产。
Appl Environ Microbiol. 1977 Dec;34(6):668-72. doi: 10.1128/aem.34.6.668-672.1977.
2
Monkey kidney cell growth optimization and poliovirus propagation in microcarrier culture.微载体培养中猴肾细胞生长优化及脊髓灰质炎病毒增殖
Dev Biol Stand. 1981;47:41-53.
3
Production of sindbis, influenza, and vesicular stomatitis viruses in chicken embryo and rat embryo cell suspensions.辛德毕斯病毒、流感病毒和水疱性口炎病毒在鸡胚和大鼠胚胎细胞悬液中的产生。
Biotechnol Bioeng. 1974 Aug;16(8):1025-44. doi: 10.1002/bit.260160804.
4
Production of reovirus type-1 and type-3 from Vero cells grown on solid and macroporous microcarriers.在固体和大孔微载体上生长的非洲绿猴肾细胞中生产1型和3型呼肠孤病毒。
Biotechnol Bioeng. 1999 Jan 5;62(1):12-9. doi: 10.1002/(sici)1097-0290(19990105)62:1<12::aid-bit2>3.0.co;2-g.
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Cell growth optimization in microcarrier culture.微载体培养中的细胞生长优化
In Vitro. 1980 Oct;16(10):859-65. doi: 10.1007/BF02619423.
6
A microcarrier cell culture system for large scale production of hepatitis A virus.
J Virol Methods. 1984 Feb;8(1-2):63-71. doi: 10.1016/0166-0934(84)90041-7.
7
Rhinovirus replication in HeLa cells cultured under conditions of simulated microgravity.在模拟微重力条件下培养的HeLa细胞中鼻病毒的复制
Aviat Space Environ Med. 1998 Sep;69(9):851-6.
8
Growth of fish cell lines on microcarriers.鱼细胞系在微载体上的生长。
Appl Environ Microbiol. 1980 Feb;39(2):394-7. doi: 10.1128/aem.39.2.394-397.1980.
9
Cell and virus propagation on cylindrical cellulose based microcarriers.细胞和病毒在基于圆柱形纤维素的微载体上的增殖。
Dev Biol Stand. 1981;50:115-23.
10
Production of a feline parvovirusvaccine using monolayer cell systems in roller flasks and microcarriers.
Dev Biol Stand. 1983;55:77-8.

引用本文的文献

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Professor Daniel I.C. Wang: A Legacy of Education, Innovation, Publication, and Leadership.丹尼尔·I.C. 王教授:教育、创新、出版与领导力的传承。
Biotechnol Bioeng. 2020 Dec;117(12):3615-3627. doi: 10.1002/bit.27644.
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Three dimensional microcarrier system in mesenchymal stem cell culture: a systematic review.间充质干细胞培养中的三维微载体系统:一项系统综述。
Cell Biosci. 2020 Jun 3;10:75. doi: 10.1186/s13578-020-00438-8. eCollection 2020.
3
Cell confluency analysis on microcarriers by micro-flow imaging.通过微流成像对微载体上的细胞汇合度进行分析。
Cytotechnology. 2016 Dec;68(6):2469-2478. doi: 10.1007/s10616-016-9967-0. Epub 2016 May 14.
4
Attachment and growth of anchorage-dependent cells on a novel, charged-surface microcarrier under serum-free conditions.在无血清条件下,新型荷正电荷表面微载体上锚定依赖性细胞的黏附和生长。
Cytotechnology. 1998 Nov;28(1-3):101-9. doi: 10.1023/A:1008029715765.
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Production of high titre disabled infectious single cycle (DISC) HSV from a microcarrier culture.从微载体培养物中生产高滴度失活传染性单循环(DISC)HSV。
Cytotechnology. 1999 Jul;30(1-3):203-10. doi: 10.1023/A:1008005200711.
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Growth of fish cell lines on microcarriers.鱼细胞系在微载体上的生长。
Appl Environ Microbiol. 1980 Feb;39(2):394-7. doi: 10.1128/aem.39.2.394-397.1980.
7
Use of recombinant and synthetic peptides as attachment factors for cells on microcarriers.使用重组肽和合成肽作为细胞在微载体上的附着因子。
Cytotechnology. 1993;13(2):89-98. doi: 10.1007/BF00749935.
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Growth of anchorage dependent mammalian cells on glycine-derivatized polystyrene in suspension culture.贴壁依赖型哺乳动物细胞在悬浮培养中于甘氨酸衍生化聚苯乙烯上的生长。
In Vitro. 1981 Oct;17(10):901-6. doi: 10.1007/BF02618286.
9
Feasibility studies of oncornavirus production in microcarrier cultures.微载体培养中致癌病毒生产的可行性研究。
In Vitro. 1980 Jun;16(6):507-15. doi: 10.1007/BF02626464.
10
Cell growth optimization in microcarrier culture.微载体培养中的细胞生长优化
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本文引用的文献

1
The measurement of proliferation in tissue cultures by enumeration of cell nuclei.通过细胞核计数来测量组织培养中的细胞增殖。
J Natl Cancer Inst. 1951 Feb;11(4):773-95.
2
Some distinctive characteristics of high density perfusion cultures of diverse cell types.不同细胞类型的高密度灌注培养的一些独特特征。
In Vitro. 1970 Jul-Aug;6(1):75-88. doi: 10.1007/BF02616136.
3
Homogeneous cultivation of animal cells for the production of virus and virus products.用于生产病毒及病毒产物的动物细胞均匀培养。
Biotechnol Bioeng. 1969 Sep;11(5):875-85. doi: 10.1002/bit.260110513.
4
Method for bulk culture of animal cells on plastic film.在塑料薄膜上进行动物细胞大规模培养的方法。
Exp Cell Res. 1972;71(2):293-6. doi: 10.1016/0014-4827(72)90296-0.
5
Incorporation of 3H-uridine and 3H-uracil into RNA: a simple technique for the detection of mycoplasma contamination of cultured cells.将3H-尿苷和3H-尿嘧啶掺入RNA:一种检测培养细胞支原体污染的简单技术。
Exp Cell Res. 1974 Mar 15;84(1):311-8. doi: 10.1016/0014-4827(74)90411-x.
6
New trends in the preparation of cell substrates for the production of virus vaccines.用于生产病毒疫苗的细胞基质制备的新趋势。
Prog Immunobiol Stand. 1971;5:187-92.
7
Growth of cell-strains and primary cells on micro-carriers in homogeneous culture.细胞系和原代细胞在微载体上进行均匀培养时的生长情况。
Nature. 1967 Oct 7;216(5110):64-5. doi: 10.1038/216064a0.
8
Plaque assay techniques for murine leukemia viruses.小鼠白血病病毒的噬斑测定技术
Virology. 1970 Dec;42(4):1136-9. doi: 10.1016/0042-6822(70)90362-4.
9
Microcarrier cell culture: new methods for research-scale application.微载体细胞培养:研究规模应用的新方法。
Somatic Cell Genet. 1977 Mar;3(2):149-55. doi: 10.1007/BF01551811.
10
The production of foot-and-mouth disease virus from BHK 21 C 13 cells grown on the surface of DEAE sephadex A50 beads.在二乙氨基乙基葡聚糖A50珠粒表面生长的BHK 21 C 13细胞中口蹄疫病毒的产生。
Biotechnol Bioeng. 1976 May;18(5):659-67. doi: 10.1002/bit.260180506.

使用新开发的微载体系统进行病毒生产。

Virus production with a newly developed microcarrier system.

作者信息

Giard D J, Thilly W G, Wang D I, Levine D W

出版信息

Appl Environ Microbiol. 1977 Dec;34(6):668-72. doi: 10.1128/aem.34.6.668-672.1977.

DOI:10.1128/aem.34.6.668-672.1977
PMID:202193
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC242728/
Abstract

Primary cell cultures as well as established lines have been grown on a recently developed microcarrier configuration that overcomes the problem of toxicity attendant on earlier developments in this technology. Virus yields from these cells propagated on the new microcarriers have been measured. Microcarrier-grown cells, when compared to roller-bottle-grown cells, gave virus yields on a per-cell basis that varied from slightly greater with the Sindbis virus-Chinese hamster ovary cells and polio-WI-38 combinations to approximately one-third with Moloney murine leukemia virus-Cl-1 mouse cells and vesicular stomatitis virus-chicken embryo fibroblasts. Yields ranged from 8.0 X 10(7) to 3.6 X 10(8) cells per 100-ml microcarrier culture and from 3.7 X 10(7) to 4.1 X 20(8) cells per roller-bottle culture. Secondary chicken embryo fibroblast yields were approximately four times as great in microcarrier cultures as in standard roller-bottle cultures, per unit volume of medium consumed. In spite of the reduced virus yields per cell seen in some instances, the greater cellular productivity of microcarrier cultures appears to hold great promise for large-scale virus production. Optimizing microcarrier conditions for specific cell-virus systems should result in improved yields.

摘要

原代细胞培养物以及已建立的细胞系已在最近开发的微载体配置上生长,这种配置克服了该技术早期发展中伴随的毒性问题。已测量了在这些新微载体上增殖的细胞产生的病毒产量。与滚瓶培养的细胞相比,微载体培养的细胞按每个细胞计算的病毒产量有所不同,从辛德毕斯病毒 - 中国仓鼠卵巢细胞和脊髓灰质炎病毒 - WI - 38组合的略高,到莫洛尼鼠白血病病毒 - Cl - 1小鼠细胞和水疱性口炎病毒 - 鸡胚成纤维细胞组合的约三分之一。产量范围为每100毫升微载体培养物8.0×10⁷至3.6×10⁸个细胞,以及每滚瓶培养物3.7×10⁷至4.1×10⁸个细胞。每消耗单位体积的培养基,微载体培养中的第二代鸡胚成纤维细胞产量约为标准滚瓶培养中的四倍。尽管在某些情况下每个细胞的病毒产量有所降低,但微载体培养物更高的细胞生产力似乎对大规模病毒生产具有巨大的潜力。针对特定细胞 - 病毒系统优化微载体条件应会提高产量。