发布时间:2019-04-28 20:24 原文链接: ProcedureforCulturingBG01VHumanEmbryonicStemCells

Introduction

Human embryonic stem (hES) cells are pluripotent stem cells derived from pre-implantation embryos that can be maintained and expanded in an undifferentiated state or induced to differentiate along somatic or germ cell lineages. They can be maintained either on a layer of mitotically inactivated human or mouse feeder cells (1) or using mouse or human feeder cell conditioned medium (2) (R&D Systems, Catalog # AR005 or AR007, respectively). The protocol below has been used with the BG01V line of hES cells (3, 4).
Please note that other hES cell lines may require modifications of this protocol. Optimal culture conditions must be determined by the investigator for each hES line.

Materials Required

Reagents:

  • Recombinant human FGF basic (R&D Systems, Catalog # 233-FB, 4114-TC, or equivalent)

  • Accutase (Innovative Cell Technologies, Catalog # AT104 or equivalent)

  • Cultrex® Basement Membrane Extract (BME) (R&D Systems, Catalog # 3433-005-01 or equivalent)

  • DMEM/F12 (Invitrogen, Catalog # 12500-096 or equivalent)

Materials:

  • BG01V human embryonic stem cells

  • Tissue culture dishes (60 mm; Fisher, Catalog # 08-772B, 100 mm; Fisher, Catalog # 08-772E, or equivalent)

  • 15 mL conical tubes (Corning Costar, Catalog # 430052 or equivalent)

  • Pipettes and pipette tips

Equipment:

  • 37° C and 5% CO2 humidified incubator

  • Centrifuge (low speed clinical or equivalent)

  • Hemacytometer

  • Inverted microscope

Procedure

  1. Thawing and Expanding Cryopreserved Cells:

    1. Prepare the desired number of plates by coating with Cultrex BME as described above, 1 - 2 hours prior to passaging the cells.

    2. Warm the Human Feeder Cell Conditioned Medium to 37° C.

    3. Remove the Human Feeder Cell Conditioned Medium from the cells. Add 1 mL of Accutase solution to each 60 mm plate. Incubate at room temperature for 5 - 10 minutes or until the cells begin to slough off the plate.

    4. Pipette gently over the plate until all the cells have been detached.

    5. Pipette the cell suspension up and down to break up large cell clumps.

    6. Remove the cell suspension to a 15 mL conical tube containing 5 mL of Human Feeder Cell Conditioned Medium and spin at 200 x g for 4 minutes.

    7. Resuspend the pellet in Human Feeder Cell Conditioned Medium and count the cells using a hemacytometer.

    8. Plate the desired number of cells (approximately 1.0 x 106 cells/60 mm plate) on the Cultrex BME coated plate in Human Feeder Cell Conditioned Medium containing 4 ng/mL of rhFGF basic.

    9. Change the medium daily. Monitor the cells for the desired confluency.

    10. Warm the Human Feeder Cell Conditioned Medium to 37° C.

    11. Thaw the vial of BG01V hES cells by warming until just thawed and then immediately transfer to a 15 mL conical tube containing at least 5 mL of pre-warmed Human Feeder Cell Conditioned Medium.

    12. Spin at 200 x g for 4 minutes.

    13. Remove the supernatant and gently flick the pellet. Resuspend the pellet in an appropriate amount of Human Feeder Cell Conditioned Medium supplemented with 4 ng/mL of recombinant human FGF basic.

    14. Add the BG01V hES cell suspension to the Cultrex BME coated plate.

    15. Grow in the 37° C, 5% CO2 incubator. Change the medium daily and monitor the cells. Passage the cells at the desired confluency.

    16. Thaw Cultrex BME on ice at 2 - 8° C overnight.

    17. Aliquot thawed Cultrex BME into pre-cooled tubes and store at = -20° C.

    18. Thaw the aliquot on ice at 2 - 8° C overnight.

    19. Dilute Cultrex BME 1:40 in DMEM/F12. This can be stored for up to 2 weeks at 2 - 8° C.

    20. Coat the desired number of plates with diluted Cultrex BME (approximately 2.5 mL per 60 mm plate) and incubate for 1 - 2 hours at room temperature.

    21. Remove the Cultrex BME solution immediately prior to plating the cells.

    22. Prepare the Cultrex BME coated plate.

    23. Thawing of BG01V hES Cells:

    24. Passaging of BG01V hES Cells:

    References

    1. Thomson, J.A. et al. (1998) Science 282:1145.

    2. Xu, C. et al. (2001) Nature Biotechnology 19:971.

    3. Zeng, X. et al. (2004) Restor. Neuro. Neurosci. 22:421.

    4. Plaia, T. et al. (2006) Stem Cells 24:531.


    相关文章

    全球STEM教育发展指数发布,中国位居第二

    7月13日,同济大学STEM(科学、技术、工程、数学)教育智库发布全球首个国家与地区STEM教育发展综合评估工具——全球STEM教育发展指数2025在校发布。指数结果显示,中国STEM教育位居第二,尤......

    每年主刀800台手术,“大师姐”抽空发顶刊刷新历史

    文|《中国科学报》记者李思辉实习生何睿她是一位知名三甲医院的科室主任:不仅负责科室的管理工作,而且每周4个半天坐诊,每年主刀800多台手术;她是院士师门的“大师姐”:繁忙的临床工作之余,做研究、带学生......

    2024年张锋团队迎来首篇Cell

    Fanzor(Fz)是一种广泛存在于真核生物结构域的ωRNA引导内切酶,具有独特的基因编辑潜力。2024年8月28日,麻省理工学院/博德研究所张锋团队在Cell在线发表题为“Structuralins......

    创造新的记录!西湖大学1天2篇Cell

    叶绿体蛋白在ATP酶马达的驱动下,通过叶绿体外膜(TOC)转座子和叶绿体内膜(TIC)超复合体的转座子导入。Ycf2-FtsHi复合体已被确定为叶绿体进口马达。然而,其在前蛋白转运过程中与TIC复合物......

    半夜灵机一动,武大教授获得一个神奇的“工具”

    文| 《中国科学报》记者李思辉实习生毕若雪“2021年暑假的一个凌晨,我突然灵机一动,思考了很久的一个模型突然清晰起来。我立即从床上蹦起来,花了5分钟,在纸上把它清楚地画了出来!”说起最近发......

    Cell和Wiley开放“一稿多投”系统涉及这些期刊

    “一稿多投”一直被认为是不端的行为,但这个“规矩”是在纸质时代信息沟通不畅的情况下制定的,近年来广大作者呼吁取消这一观念的声音已振聋发聩!让人欣喜的是,截止目前,已经有两大国际知名出版社响应了这一呼吁......

    北京理工大学,Cell+1

    2024年4月23日,北京理工大学生命学院肖振宇副教授、中国科学院动物研究所王红梅、于乐谦、郭靖涛研究员、中国农业大学魏育蕾教授、郑州大学第一附属医院何南南助理研究员在国际学术期刊Cell发表文章《3......

    Cell论文遭曝20幅图作假,引发学术界震动

    2019年10月3日,加州大学圣地亚哥分校BrendaL.Bloodgood团队(G.StefanoBrigidi为第一作者)在Cell在线发表题为“GenomicDecodingofNeuronal......

    布鲁克收购透射电镜制造商Nion高端STEM扩展材料科学研究产品组合

    高端STEM技术扩展了布鲁克的材料科学研究产品组合    马萨诸塞州比勒里卡--布鲁克宣布收购Nion,这是一家开发和制造创新型高端扫描透射电子显微镜(STEM......

    研究揭示血脑屏障控制蚂蚁行为的生物学机制

    美国宾夕法尼亚大学佩雷尔曼医学院科研人员发现,蚂蚁的血脑屏障在控制其行为方面起着积极的作用。血脑屏障可以调节蚂蚁大脑中的激素水平,从而影响他们在蚁群中的行为。相关研究成果发表在《Cell》杂志上。研究......