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网站主页 MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱
  • MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱
  • MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱
  • MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱

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MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱

MCF7[MCF-7]
询价 1000000Cells/瓶 起订
2000000Cells/瓶 起订
上海 更新日期:2025-02-07

上海宾穗生物科技有限公司

VIP1年
联系人:刘经理
手机:13641930791 拨打
邮箱:3180807324@qq.com

产品详情:

中文名称:
MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱
英文名称:
MCF7[MCF-7]
品牌:
ATCC、DSMZ等
产地:
美国、欧洲、德国等
保存条件:
低温避光
纯度规格:
MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱
产品类别:
ATCC细胞库
种属:
详见细胞说明书
组织:
详见细胞说明书
细胞系:
详见细胞说明书
细胞形态:
详见细胞说明书
生长状态:
详见细胞说明书
靶点:
详见细胞说明书
应用:
详见细胞说明书
货号:
详见细胞说明书
规格:
1*10^6cells/T25(1瓶)或1ml冻存管(2支)
是否进口:
来源ATCC、DSMZ、ECACC等细胞库
组织来源:
详见细胞说明书
是否是肿瘤细胞:
详见细胞说明书
器官来源:
详见细胞说明书
品系:
详见细胞说明书
免疫类型:
详见细胞说明书
物种来源:
人源或其它动物来源等
保质期:
可长期保存(液氮低温冻存)

"MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱

传代比例:1:2-1:4(首次传代建议1:2)

生长特性:贴壁生长

常见细胞贴壁较弱原因:在遇到运输低温及震荡、室温静置太长时间、添加的培养基或其他试剂过冷、密度较高、聚集未吹散、加液吹打到细胞面等情况时会出现明显的成片脱落现象,此时若脱落现象不严重应尽快放回培养基继续培养,若呈大片脱落的情况时需要收集细胞重新消化吹散并接种;建议使用经过包被或者高贴壁培养瓶培养细胞,尽量避免接触低温或密度过高。

换液周期:每周2-3次

CA922 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:MOLT4细胞、Mv.1.Lu细胞、SK-N-SH细胞

ARH77 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮生长;形态特性:淋巴母细胞样 ;相关产品有:H-9细胞、SNU407细胞、P19细胞

HDSMC Cells;背景说明:表皮血管平滑肌;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:LTEPsm细胞、MHH-CALL-2细胞、Kit 225-K6细胞

MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱

背景信息:MCF-7细胞保留了多个分化了的乳腺上皮的特性,包括:能通过胞质雌激素受体加工雌二醇并能形成圆形复合物(domes)。该细胞含有Tx-4癌基因。肿瘤坏死因子α(TNFalpha)可以抑制MCF-7细胞的生长。抗雌激素处理细胞能调变IGFBP'S的分泌。

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DSMZ菌株保藏中心成立于1969年,是德国的国家菌种保藏中心。该中心一直致力于细菌、真菌、质粒、抗菌素、人体和动物细胞、植物病毒等的分类、鉴定和保藏工作。DSMZ菌种保藏中心是欧洲规模最大的生物资源中心,保藏有动物细胞500多株。Riken BRC成立于1920年,是英国的国家菌种保藏中心。该中心一直致力于细菌、真菌、植物病毒等的分类、鉴定和保藏工作。日本Riken BRC(Riken生物资源保藏中心)是全球三大典型培养物收集中心之一。Riken保藏中心提供了很多细胞系。在世界范围内,这些细胞系,都在医学、科学和兽医中具有重要意义。Riken生物资源中心支持了各种学术、健康、食品和兽医机构的研究工作,并在世界各地不同组织的微生物实验室和研究机构中使用。

产品包装:复苏发货:T25培养瓶(一瓶)或冻存发货:1ml冻存管(两支)

来源说明:细胞主要来源ATCC、ECACC、DSMZ、RIKEN等细胞库

MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱

物种来源:人源、鼠源等其它物种来源

OCI-LY-18 Cells;背景说明:弥漫大B细胞淋巴瘤;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明书;相关产品有:ROS17/2.8细胞、MCA38细胞、HCC-9724细胞

D283-MED Cells;背景说明:详见相关文献介绍;传代方法:每周换液2-3次。;生长特性:悬浮细胞的多细胞聚集体,和一些贴壁 Cells;形态特性:上皮细胞;相关产品有:MBVP细胞、CAL 78细胞、WM115-mel细胞

WERI-Rb1 Cells;背景说明:WERI-Rb-I细胞株是1974年R.M. McFall 和 T.W. Sery建立的两株人眼癌细胞系中的一株。 细胞能在Difco Bacto-Agar中存活但不形成克隆。 扫描电镜显示在表面囊泡,板状伪足和微绒毛在数量上和频率上的改变。 细胞分化研究,肿瘤治疗的动物模型和生化评价都涉及这株细胞。;传代方法:消化3-5分钟。1:2。3天内可长满。;生长特性:贴壁生长;形态特性:圆形细胞聚集成葡萄状;相关产品有:GCT细胞、Human Intestinal Epithelial Cell-6细胞、CAOV3细胞

HeLa S3 Cells;背景说明:该细胞是1955年由PuckTT,MarcusPI和CieciuraSJ建系的,含HPV-18序列;角蛋白阳性;可用于与染色体突变、细胞营养、集落形成相关的哺乳动物细胞的克隆分析。;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:NCI-H82细胞、H676B细胞、Mink细胞

┈订┈购(技术服务)┈热┈线:1┈3┈6┈4┈1┈9┈3┈0┈7┈9┈1【微信同号】┈Q┈Q:3┈1┈8┈0┈8┈0┈7┈3┈2┈4;

形态特性:上皮细胞样

正确的细胞复苏需知事项:细胞冻存HAO了,接下来要注意什么问题呢?没错,就是记得到时间了,拿出来复苏。那么,细胞复苏的过程中又有哪些该注意的事项呢?细胞活力和形态检查的作用何在?活力检查——千万不要使用不健康的细胞,可能有污染(真菌、支原体等),如果发现有污染毫不犹豫的丢弃!形态检查——检查细胞的固有形态和生长行为。冻存细胞:补充新的培养——在您开始冻存细胞的前一天补充新的培养。在细胞长至70%单层时收获细胞,计数活细胞数,用冻存调整细胞密度~5 x106  s/ml (根据不同的细胞类型调整);冻存——用冻存洗细胞并用冻存重悬细胞,有不同类型的冻存,根据细胞类型选择Zui合适的冻存(常用的冻存成分有):5-10% DMSO——注意确保DMSO不含有其他的毒性物质;5-15%甘油;如果细胞在无血清培养基内生长,应在50%条件培养基内(细胞在无血清培养基内生长24小时)内冻存和复苏。在冻存管上标记HAO细胞类型,日期,冻存人等信息,并保证每冻存管不超过1.5ml。放入罐之前记录冻存管的数量和位置。以Zui快的速度转移冻存管知罐内,因此,此步骤ZuiHAO使用干冰,或者把冻存管浸入装有的小盒内。此外还要注意,在冻存管上没有足够的空间记录细胞的详细信息,做HAO记录是非常非常重要的!还有一个Zui重要的,一定要在异地的罐内保存同样的一份细胞,以免其中的一个罐出现问题!细胞正确的复苏方式和正确的冻存方式同样重要,熟记以下要点:当从罐内取出细胞时,有可能会出现冻存管破裂的情况,使用保护面罩和防护服十分必要;其实,细胞复苏只是一个简单的实验,不过这其中却不可避免有一些需要注意的细节,不然,也不一定会尽如人意。例如说,人身健康方面:一定要记得做HAO防冻工作,戴上护目镜;尽量降低DMSO对细胞的损伤等等。

Strain L-929 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:LED-WiDr细胞、H1915细胞、MT-4细胞

MM.1S Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,2-3天换液1次。;生长特性:混合生长;形态特性:淋巴母细胞样;相关产品有:HCC-1419细胞、C-4I细胞、F36P细胞

KNS-81 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:H-1876细胞、RS1细胞、BRL 3A细胞

T98 G Cells;背景说明:详见相关文献介绍;传代方法:按1:3传代;生长特性:贴壁生长;形态特性:详见产品说明书;相关产品有:Colon38细胞、MMQ细胞、32D.cl3细胞

SK-LMS-1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:5传代,2-3天换液1次。;生长特性:贴壁生长;形态特性:成纤维细胞;相关产品有:HNE1细胞、MDCC-MSB-1细胞、NCI-SNU-1细胞

H-1703 Cells;背景说明:该细胞1987年建系,源自一位54岁患有非小细胞肺癌的白人男性,该患者为吸烟者。;传代方法:1:3—1:6传代,每周换液2—3次;生长特性:贴壁生长;形态特性:上皮细胞样;相关产品有:Porcine Kidney-13细胞、IOSE 80细胞、U343MG细胞

Rat Skin 1 Cells;背景说明:该细胞系来源于一大鼠的皮肤组织。2007年由中国科学院昆明细胞库建立。;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明书;相关产品有:UCLA SO M21细胞、B16BL-6细胞、CAL39细胞

WI38 Cells;背景说明:LeonardHayflick建系;有限传代细胞系;寿命为50±10代(倍增时间24h);来自妊娠3个月的正常胚胎肺组织。该细胞系是第一个用于人制备的人二倍体细胞;培养基中添加TNFα可以加快细胞生长。;传代方法:1:2-1:4传代;2-3天换液1次;生长特性:贴壁生长;形态特性:成纤维细胞样;相关产品有:NCIH748细胞、WC00059细胞、CCRF/CEM-C7细胞

SW403 Cells;背景说明:详见相关文献介绍;传代方法:1:2—1:6传代,每周换液2-3次;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:V-79细胞、no-11细胞、6T-CEM细胞

GM-346 Cells;背景说明:皮下结缔组织;自发永生;雄性;C3H/An;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:OVHM细胞、KM H-2细胞、NBLS细胞

AZ-521 Cells;背景说明:详见相关文献介绍;传代方法:1:4传代;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:上皮样;相关产品有:MADISON LUNG TA-109细胞、MOLT.4细胞、T98-G细胞

GM05372E Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:SNU423细胞、NBL-7细胞、L5178YR细胞

HMVEC Cells;背景说明:微血管;内皮 Cells;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:NCI H226细胞、MCF12A细胞、H4细胞

MDA-MB-134 VI Cells;背景说明:该细胞1973年由R. Cailleau建系,源自74岁乳腺导管癌女性患者的胸腔积液,细胞生长缓慢,松散贴壁,生长过程中会脱落到培养基,不会汇合,过表达FGF受体;传代方法:1:2—1:4传代,每周换液2—3次;生长特性:松散贴壁生长;形态特性:上皮细胞样;相关产品有:G292细胞、Centre Antoine Lacassagne-33细胞、Plaepi 34细胞

EBC-1 Cells;背景说明:肺鳞癌;皮肤转移;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:HCMEC细胞、Institute for Medical Research-32细胞、NCI-H650细胞

L-WRN Cells;背景说明:皮下结缔组织;自发永生;雄性;C3H/An;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:LC-1细胞、NCIH1836细胞、CW-2细胞

Neuro 2a Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代;2-3天换液1次;生长特性:贴壁生长;形态特性:详见产品说明书;相关产品有:A10细胞、HCC-95细胞、OLN 93细胞

7.2-02 Cells(提供STR鉴定图谱)

Abcam MCF-7 CD80 KO Cells(提供STR鉴定图谱)

ASE [Salmo] Cells(提供STR鉴定图谱)

BayGenomics ES cell line RRN056 Cells(提供STR鉴定图谱)

BayGenomics ES cell line XST176 Cells(提供STR鉴定图谱)

CBiPS6-2F-4 Cells(提供STR鉴定图谱)

DA00867 Cells(提供STR鉴定图谱)

EHT C10 Cells(提供STR鉴定图谱)

GM05637 Cells(提供STR鉴定图谱)

H1838 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:4传代;每周换液2次。;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:DCS细胞、P3.NS-1/1.Ag4.1细胞、MDAMB157细胞

MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱

NCI-H1650 Cells;背景说明:该细胞是从一名27岁白人男性(10年烟龄)支气管肺泡癌患者的胸腔积液中分离得到的。;传代方法:1:4-1:6传代;2-3天换液1次。;生长特性:贴壁生长;形态特性:上皮细胞样;相关产品有:P30/0HK细胞、Normal fibroblast-10细胞、SKRC-42细胞

HS-766-T Cells;背景说明:详见相关文献介绍;传代方法:1:2—1:8传代,每周换液2—3次;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:HuCCT-1细胞、COLO 394细胞、ONS-76细胞

P3-X63-Ag8-653 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:H250细胞、JKT1细胞、SJSA细胞

Scott and White No. 13 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:NCI-H735细胞、MCF-7ADR细胞、NCIH740细胞

F81 Cells;背景说明:肾;自发永生;雌性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:UPCI-SCC-90细胞、Natural Killer-92细胞、BHK21细胞

A5GR1 Cells(提供STR鉴定图谱)

H-292 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:8传代;2-3天换液1次。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:WEHI164细胞、PC3M细胞、NCI-H-128细胞

hFOB 1.19 Cells;背景说明:成骨细胞;SV40转化;条件永生;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:HTR8细胞、MiaPaCa2细胞、THP-1(ATCC)细胞

RPMI1788 Cells;背景说明:B淋巴细胞;EBV转化;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明书;相关产品有:NCI-H1436细胞、UM-UC14细胞、NCI-H1436细胞

RIN-m 14B Cells;背景说明:胰岛素瘤;雄性;NEDH;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:SW-1783细胞、SHG44细胞、SupB15W细胞

X63.Ag8.653 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:NCIH211细胞、GC9811-P细胞、NCI-BL1339细胞

MKN1 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:MDCK2细胞、KLN-205细胞、Ly3细胞

HCC-366 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:NCIH2591细胞、A 549细胞、LC-1细胞

MNNG/HOS Clone F-5 Cells;背景说明:骨肉瘤;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:SJSA1细胞、DHL-16细胞、GM02131A细胞

GM10529 Cells(提供STR鉴定图谱)

HAP1 CD24 (-) 1 Cells(提供STR鉴定图谱)

H125 Cells;背景说明:腺鳞状肺癌;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:MOLM16细胞、LLC-WRC 256细胞、RPPVEC细胞

SW780 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:TOV-21G细胞、EB3 [Human Burkitt lymphoma]细胞、Vero E6细胞

BV-2 Cells;背景说明:源于C57BL/6小鼠小胶质细胞,表达核v-myc、染色体v-raf癌基因,表面表达envgp70抗原,在形态学、表型及功能上有吞噬细胞的特征。;传代方法:1:6传代;2-3天1次。;生长特性:半贴壁生长;形态特性:多形型;相关产品有:SKG IIIa细胞、INS1-E细胞、Mo7e细胞

B16-F1 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮细胞样;相关产品有:Huh7.5.1细胞、PAN 02细胞、143B TK-细胞

Hk-2 Cells;背景说明:该细胞属源于正常肾的近曲小管细胞,通过导入HPV-16 E6/E7基因而获得永生化。将含有HPV-16 E6/E7基因的重组的逆转录病毒载体pLXSN 16 E6/E7转染外生包装细胞Psi-2,Psi-2细胞产生的病毒再去感染兼嗜性包装细胞系PA317,最后将PA317产生的病毒颗粒导入正常的肾皮质近曲小管细胞。尽管pLXSN 16 E6/E7中含有新霉素抗性,但未用G418筛选转导克隆。Southern和FISH分析显示HK-2细胞来源于单克隆。PCR检测证实HK-2细胞基因组中含有E6/E7基因。;传代方法:1:4传代;2-3天换液1次;生长特性:贴壁生长;形态特性:上皮样;相关产品有:B5537SKIN细胞、BT20细胞、PC-10细胞

H1355 Cells;背景说明:详见相关文献介绍;传代方法:每周换液2次。;生长特性:悬浮生长;形态特性:详见产品说明书;相关产品有:NBL-3细胞、SN-12C细胞、NCI-H250细胞

C-Li-7 Cells;背景说明:人肝癌细胞株。这株细胞从裸鼠体外移植瘤中建立。;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明书;相关产品有:SW-780细胞、SJSA1细胞、KU 812F细胞

Colon-26 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:LN 382细胞、PM6细胞、COLO 357细胞

HG03842 Cells(提供STR鉴定图谱)

iKLF1.1 Cells(提供STR鉴定图谱)

LSTM-AS-43 Cells(提供STR鉴定图谱)

ND00902 Cells(提供STR鉴定图谱)

PC3-Fluc-Puro Cells(提供STR鉴定图谱)

Ubigene HEK293 DGKD KO Cells(提供STR鉴定图谱)

WG0308 Cells(提供STR鉴定图谱)

HEV0349 Cells(提供STR鉴定图谱)

H-596 Cells;背景说明:详见相关文献介绍;传代方法:1:4-1:8传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:H-661细胞、CAL62细胞、Tb1Lu细胞

M-20 Cells;背景说明:黑色素瘤;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:HCCC9810细胞、CAL148细胞、MUVEC细胞

SJSA-1 Cells;背景说明:详见相关文献介绍;传代方法:1:5-1:10传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:成纤维细胞;相关产品有:PECAPJ34细胞、HAC-84细胞、MDA.MB.435细胞

SK.OV.3 Cells;背景说明:SK-OV-3由G.Trempe和L.J.Old在1973年从卵巢肿瘤病人的腹水分离得到。 此细胞对肿瘤坏死因子和几种细胞毒性药物包括白喉毒素、顺铂和阿霉素均耐受。 在裸鼠中致瘤,且形成与卵巢原位癌一致的中度分化的腺癌。;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:上皮细胞样;相关产品有:HME1细胞、NUGC2细胞、Emory University-2细胞

TE-1 Cells;背景说明:详见相关文献介绍;传代方法:消化3-5分钟。1:2。3天内可长满。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:OC316细胞、Sf-21细胞、HCC-1395细胞

TE-1 Cells;背景说明:详见相关文献介绍;传代方法:消化3-5分钟。1:2。3天内可长满。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:OC316细胞、Sf-21细胞、HCC-1395细胞

M619 Cells;背景说明:脉络膜黑色素瘤;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:H498细胞、PC-10细胞、UM-RC-2细胞

P36 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:8传代,2-3天换液1次。;生长特性:贴壁生长;形态特性:星形的;相关产品有:MGSMC细胞、NCIH2227细胞、NHDF细胞

UT-7 Cells;背景说明:该细胞于1988年建系;源于一名64岁患有急性粒细胞白血病(AMLM7)的男性的骨髓;对多种细胞因子有反应。;传代方法:维持细胞浓度在1.0-1.5×106cells/ml,1:2传代,2-3天1次。;生长特性:悬浮生长,有1%~2%的细胞可轻微贴壁。;形态特性:圆形;相关产品有:HCCC-9810细胞、Panc_04_03细胞、FL62891细胞

SK-N-BE(2)-M17 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:MAntle cell VERona-1细胞、Mono-Mac-1细胞、J111细胞

TE-1 Cells;背景说明:详见相关文献介绍;传代方法:消化3-5分钟。1:2。3天内可长满。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:OC316细胞、Sf-21细胞、HCC-1395细胞

TE-11 Cells;背景说明:详见相关文献介绍;传代方法:消化3-5分钟。1:2。3天内可长满。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:HuPT4细胞、COV434细胞、RPMI6666细胞

H4-II-E Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:Hmy.2 CIR细胞、PANC 203细胞、624细胞

H1341 Cells;背景说明:详见相关文献介绍;传代方法:3-4天换液1次。;生长特性:悬浮生长;形态特性:圆形细胞;相关产品有:T47D:A细胞、TE354.T细胞、H-1666细胞

CORL23 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:DoTc2细胞、Madin Darby Bovine Kidney细胞、RF/6A细胞

SCp2-Id-1A Cells(提供STR鉴定图谱)

H740 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:Neuro2a细胞、SUM-190细胞、IOSE80细胞

McA-RH7777 Cells;背景说明:肝癌;雌性;Buffalo;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明书;相关产品有:H-1373细胞、SUM-149细胞、SMC-1细胞

JJN3 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:DrG细胞、SK-RC 39细胞、MiaPaca.2细胞

H1650_CO Cells;背景说明:该细胞是从一名27岁白人男性(10年烟龄)支气管肺泡癌患者的胸腔积液中分离得到的。;传代方法:1:4-1:6传代;2-3天换液1次。;生长特性:贴壁生长;形态特性:上皮细胞样;相关产品有:SNGM细胞、SW948细胞、H295R细胞

Large Cell Lung Cancer-103H Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:WPMY-1细胞、A2780CP细胞、NCI-SNU-423细胞

HS-294-T Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,2-3天换液1次。;生长特性:贴壁生长;形态特性:混合星状和多边形;相关产品有:HSAEC1-KT细胞、TC-1[JHU-1]细胞、TALL1细胞

MCF7[MCF-7]人乳腺癌细胞代次低|培养基|送STR图谱

16HBEo- Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明书;相关产品有:NCIH3255细胞、MH7A细胞、aNK细胞

NCIH2030 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:4传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:上皮细胞样;相关产品有:DoHH-2细胞、RH-30细胞、GP2-293细胞

NS1-Ag4 Cells;背景说明:这是P3X63Ag8(ATCCTIB-9)的一个不分泌克隆。Kappa链合成了但不分泌。能抗0.1mM8-氮杂鸟嘌呤但不能在HAT培养基中生长。据报道它是由于缺失了3-酮类固醇还原酶活性的胆固醇营养缺陷型。检测表明肢骨发育畸形病毒(鼠痘)阴性。;传代方法:1:2传代,3天内可长满。;生长特性:悬浮生长;形态特性:淋巴母细胞;相关产品有:NCI-H2196细胞、OCI-Ly 3细胞、SW-626细胞

H-2122 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:4传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:淋巴母细胞;相关产品有:SF126细胞、OV-CA 432细胞、H-1650细胞

THP-1(ATCC) Cells;背景说明:该细胞从一名1岁的患有急性单核细胞性白血病的男孩的外周血中分离建立。该细胞可以吞噬乳胶颗粒和激活的红细胞,细胞膜和胞浆内均没有免疫球蛋白,表达C3R和FcR;可受佛波酯TPA诱导向单核系方向分化;可作为转染宿主。;传代方法:维持细胞浓度在2-4×105-8×105/ml,勿超过1×106/ml;2-3天换液1次。;生长特性:悬浮生长;形态特性:单核细胞;相关产品有:J.E6-1细胞、HUT 125细胞、Caco-2 BBe细胞

RIN-m Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明书部分;形态特性:详见产品说明书;相关产品有:MOLM-13细胞、P3J-HR-1细胞、H-1792细胞

COLO320-DM Cells;背景说明:该细胞可产生5-羟色胺、去甲、、ACTH和甲状旁腺素。角蛋白、波形蛋白弱阳性。培养条件: RPMI 1640  10%FBS;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮+贴壁;形态特性:淋巴细胞;相关产品有:Adeno-293细胞、MEG-01细胞、SU-DHL2细胞

NCIH209 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代;每周换液2次。;生长特性:悬浮生长,有少数细胞疏松贴壁;形态特性:上皮样;相关产品有:Lu-65细胞、RGM1细胞、Panc 08.13细胞

BayGenomics ES cell line RRI483 Cells(提供STR鉴定图谱)

BayGenomics ES cell line XI447 Cells(提供STR鉴定图谱)

FA6-152 Cells(提供STR鉴定图谱)

NFS-5 C-1 Cells(提供STR鉴定图谱)

Vk38291.VITRO Cells(提供STR鉴定图谱)

MCF-7/182R-7 Cells(提供STR鉴定图谱)

" "PubMed=1000504

Lippman M.E., Bolan G., Huff K.

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Lippman M.E., Bolan G., Huff K.

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PubMed=23856246; DOI=10.1158/0008-5472.CAN-12-3342; PMCID=PMC4893961

Abaan O.D., Polley E.C., Davis S.R., Zhu Y.-L.J., Bilke S., Walker R.L., Pineda M.A., Gindin Y., Jiang Y., Reinhold W.C., Holbeck S.L., Simon R.M., Doroshow J.H., Pommier Y., Meltzer P.S.

The exomes of the NCI-60 panel: a genomic resource for cancer biology and systems pharmacology.

Cancer Res. 73:4372-4382(2013)


PubMed=23868472; DOI=10.1038/ncomms3175; PMCID=PMC3759040

Johansson H.J., Sanchez B.C., Mundt F., Forshed J., Kovacs A., Panizza E., Hultin-Rosenberg L., Lundgren B., Martens U., Mathe G., Yakhini Z., Helou K., Krawiec K., Kanter L., Hjerpe A., Stal O., Linderholm B.K., Lehtio J.

Retinoic acid receptor alpha is associated with tamoxifen resistance in breast cancer.

Nat. Commun. 4:2175.1-2175.10(2013)


PubMed=23933261; DOI=10.1016/j.celrep.2013.07.018

Moghaddas Gholami A., Hahne H., Wu Z.-X., Auer F.J., Meng C., Wilhelm M., Kuster B.

Global proteome analysis of the NCI-60 cell line panel.

Cell Rep. 4:609-620(2013)


PubMed=24009699; DOI=10.1371/journal.pone.0072704; PMCID=PMC3751845

Liu X., Nie H., Zhang Y.-B., Yao Y.-F., Maitikabili A., Qu Y.-P., Shi S.-L., Chen C.-Y., Li Y.

Cell surface-specific N-glycan profiling in breast cancer.

PLoS ONE 8:E72704-E72704(2013)


PubMed=24094812; DOI=10.1016/j.ccr.2013.08.020; PMCID=PMC3931310

Timmerman L.A., Holton T., Yuneva M., Louie R.J., Padro M., Daemen A., Hu M., Chan D.A., Ethier S.P., van 't Veer L.J., Polyak K., McCormick F., Gray J.W.

Glutamine sensitivity analysis identifies the xCT antiporter as a common triple-negative breast tumor therapeutic target.

Cancer Cell 24:450-465(2013)


PubMed=24162158; DOI=10.1007/s10549-013-2743-3; PMCID=PMC3832776

Prat A., Karginova O., Parker J.S., Fan C., He X.-P., Bixby L.M., Harrell J.C., Roman E., Adamo B., Troester M.A., Perou C.M.

Characterization of cell lines derived from breast cancers and normal mammary tissues for the study of the intrinsic molecular subtypes.

Breast Cancer Res. Treat. 142:237-255(2013)


PubMed=24176112; DOI=10.1186/gb-2013-14-10-r110; PMCID=PMC3937590

Daemen A., Griffith O.L., Heiser L.M., Wang N.J., Enache O.M., Sanborn Z., Pepin F., Durinck S., Korkola J.E., Griffith M., Hur J.S., Huh N., Chung J., Cope L., Fackler M.J., Umbricht C.B., Sukumar S., Seth P., Sume V.P., Jakkula L.R., Lu Y.-L., Mills G.B., Cho R.J., Collisson E.A., van 't Veer L.J., Spellman P.T., Gray J.W.

Modeling precision treatment of breast cancer.

Genome Biol. 14:R110.1-R110.14(2013)


PubMed=24279929; DOI=10.1186/2049-3002-1-20; PMCID=PMC4178206

Dolfi S.C., Chan L.L.-Y., Qiu J., Tedeschi P.M., Bertino J.R., Hirshfield K.M., Oltvai Z.N., Vazquez A.

The metabolic demands of cancer cells are coupled to their size and protein synthesis rates.

Cancer Metab. 1:20.1-20.13(2013)


PubMed=24389870; DOI=10.1038/srep03576; PMCID=PMC3880960

Strauch M., Ludke A., Munch D., Laudes T., Galizia C.G., Martinelli E., Lavra L., Paolesse R., Ulivieri A., Catini A., Capuano R., Di Natale C.

More than apples and oranges -- detecting cancer with a fruit fly's antenna.

Sci. Rep. 4:3576-3576(2014)


PubMed=24456987; DOI=10.1186/1755-8166-7-8; PMCID=PMC3914704

Rondon-Lagos M., Verdun Di Cantogno L., Marchio C., Rangel N., Payan-Gomez C., Gugliotta P., Botta C., Bussolati G., Ramirez-Clavijo S.R., Pasini B., Sapino A.

Differences and homologies of chromosomal alterations within and between breast cancer cell lines: a clustering analysis.

Mol. Cytogenet. 7:8.1-8.14(2014)


PubMed=24618588; DOI=10.1371/journal.pone.0091433; PMCID=PMC3950186

Chernobrovkin A.L., Zubarev R.A.

Detection of viral proteins in human cells lines by xeno-proteomics: elimination of the last valid excuse for not testing every cellular proteome dataset for viral proteins.

PLoS ONE 9:E91433-E91433(2014)


PubMed=24670534; DOI=10.1371/journal.pone.0092047; PMCID=PMC3966786

Varma S., Pommier Y., Sunshine M., Weinstein J.N., Reinhold W.C.

High resolution copy number variation data in the NCI-60 cancer cell lines from whole genome microarrays accessible through CellMiner.

PLoS ONE 9:E92047-E92047(2014)


PubMed=25321415; DOI=10.1210/me.2014-1229; PMCID=PMC4250366

Li Y., Arao Y., Hall J.M., Burkett S.S., Liu L.-W., Gerrish K., Cavailles V., Korach K.S.

Research resource: STR DNA profile and gene expression comparisons of human BG-1 cells and a BG-1/MCF-7 clonal variant.

Mol. Endocrinol. 28:2072-2081(2014)


PubMed=25960936; DOI=10.4161/21624011.2014.954893; PMCID=PMC4355981

Boegel S., Lower M., Bukur T., Sahin U., Castle J.C.

A catalog of HLA type, HLA expression, and neo-epitope candidates in human cancer cell lines.

OncoImmunology 3:e954893.1-e954893.12(2014)


PubMed=25984343; DOI=10.1038/sdata.2014.35; PMCID=PMC4432652

Cowley G.S., Weir B.A., Vazquez F., Tamayo P., Scott J.A., Rusin S., East-Seletsky A., Ali L.D., Gerath W.F.J., Pantel S.E., Lizotte P.H., Jiang G.-Z., Hsiao J., Tsherniak A., Dwinell E., Aoyama S., Okamoto M., Harrington W., Gelfand E.T., Green T.M., Tomko M.J., Gopal S., Wong T.C., Li H.-B., Howell S., Stransky N., Liefeld T., Jang D., Bistline J., Meyers B.H., Armstrong S.A., Anderson K.C., Stegmaier K., Reich M., Pellman D., Boehm J.S., Mesirov J.P., Golub T.R., Root D.E., Hahn W.C.

Parallel genome-scale loss of function screens in 216 cancer cell lines for the identification of context-specific genetic dependencies.

Sci. Data 1:140035-140035(2014)


PubMed=25485619; DOI=10.1038/nbt.3080

Klijn C., Durinck S., Stawiski E.W., Haverty P.M., Jiang Z.-S., Liu H.-B., Degenhardt J., Mayba O., Gnad F., Liu J.-F., Pau G., Reeder J., Cao Y., Mukhyala K., Selvaraj S.K., Yu M.-M., Zynda G.J., Brauer M.J., Wu T.D., Gentleman R.C., Manning G., Yauch R.L., Bourgon R., Stokoe D., Modrusan Z., Neve R.M., de Sauvage F.J., Settleman J., Seshagiri S., Zhang Z.-M.

A comprehensive transcriptional portrait of human cancer cell lines.

Nat. Biotechnol. 33:306-312(2015)


PubMed=25807930; DOI=10.1002/anie.201500342; PMCID=PMC4471546

Broncel M., Serwa R.A., Ciepla P., Krause E., Dallman M.J., Magee A.I., Tate E.W.

Multifunctional reagents for quantitative proteome-wide analysis of protein modification in human cells and dynamic profiling of protein lipidation during vertebrate development.

Angew. Chem. Int. Ed. Engl. 54:5948-5951(2015)


PubMed=25828948; DOI=10.1093/jnci/djv073

Lee A.V., Oesterreich S., Davidson N.E.

MCF-7 cells -- changing the course of breast cancer research and care for 45 years.

J. Natl. Cancer Inst. 107:djv073.1-djv073.4(2015)


PubMed=25877200; DOI=10.1038/nature14397

Yu M., Selvaraj S.K., Liang-Chu M.M.Y., Aghajani S., Busse M., Yuan J., Lee G., Peale F.V., Klijn C., Bourgon R., Kaminker J.S., Neve R.M.

A resource for cell line authentication, annotation and quality control.

Nature 520:307-311(2015)


PubMed=25892236; DOI=10.1016/j.celrep.2015.03.050; PMCID=PMC4425736

Lawrence R.T., Perez E.M., Hernandez D., Miller C.P., Haas K.M., Irie H.Y., Lee S.-I., Blau C.A., Villen J.

The proteomic landscape of triple-negative breast cancer.

Cell Rep. 11:630-644(2015)


PubMed=26026074

Comsa S., Cimpean A.M., Raica M.

The story of MCF-7 breast cancer cell line: 40 years of experience in research.

Anticancer Res. 35:3147-3154(2015)


PubMed=26055192; DOI=10.1021/acs.jproteome.5b00375

Cifani P., Kirik U., Waldemarson S., James P.

Molecular portrait of breast-cancer-derived cell lines reveals poor similarity with tumors.

J. Proteome Res. 14:2819-2827(2015)


PubMed=26116361; DOI=10.1158/1535-7163.MCT-15-0143

Ribas R., Pancholi S., Guest S.K., Marangoni E., Gao Q., Thuleau A., Simigdala N., Polanska U.M., Campbell H., Rani A., Liccardi G., Johnston S.R.D., Davies B.R., Dowsett M., Martin L.-A.

AKT antagonist AZD5363 influences estrogen receptor function in endocrine-resistant breast cancer and synergizes with fulvestrant (ICI182780) in vivo.

Mol. Cancer Ther. 14:2035-2048(2015)


PubMed=26330541; DOI=10.1074/mcp.M115.050484; PMCID=PMC4638033

Wu X.-Y., Zahari M.S., Renuse S., Nirujogi R.S., Kim M.-S., Manda S.S., Stearns V., Gabrielson E.W., Sukumar S., Pandey A.

Phosphoproteomic analysis identifies focal adhesion kinase 2 (FAK2) as a potential therapeutic target for tamoxifen resistance in breast cancer.

Mol. Cell. Proteomics 14:2887-2900(2015)


PubMed=26589293; DOI=10.1186/s13073-015-0240-5; PMCID=PMC4653878

Scholtalbers J., Boegel S., Bukur T., Byl M., Goerges S., Sorn P., Loewer M., Sahin U., Castle J.C.

TCLP: an online cancer cell line catalogue integrating HLA type, predicted neo-epitopes, virus and gene expression.

Genome Med. 7:118.1-118.7(2015)


PubMed=27331101; DOI=10.1016/j.dib.2016.05.040; PMCID=PMC4905937

Aumsuwan P., Khan S.I., Khan I.A., Walker L.A., Dasmahapatra A.K.

Gene expression profiling and pathway analysis data in MCF-7 and MDA-MB-231 human breast cancer cell lines"


MCF7[MCF-7]人乳腺癌细胞代次低;复苏细胞系;细胞STR鉴定报告;细胞STR鉴定图谱;ATCC|DSMZ细胞库;

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