"Daudi人Burkitt's淋巴瘤复苏细胞保种中心|带STR证书
传代比例:1:2-1:4(首次传代建议1:2)
生长特性:悬浮生长
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。
换液周期:每周2-3次
3T3 L1 Cells;背景说明:3T3-L1是从3T3细胞(Swissalbino)中经克隆分离得到的连续传代的亚系。该细胞从快速分裂到汇合和接触性抑制状态经历了前脂肪细胞到脂肪样细胞的转变。该细胞鼠痘病毒阴性;可产生甘油三酯,高浓度血清可增强细胞内脂肪堆积。;传代方法:1:2传代;生长特性:贴壁生长;形态特性:成纤维细胞样;相关产品有:NL20SV细胞、IEC6细胞、NALM 6细胞
RPMI7666 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:MFD-1细胞、EFM192C细胞、Panc_05_04细胞
Hs 274 Cells;背景说明:详见相关文献介绍;传代方法:1:2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:CFPAC-1细胞、TK-10细胞、AML 12细胞
Daudi人Burkitt's淋巴瘤复苏细胞保种中心|带STR证书
背景信息:1967年,该细胞系KleinE和KleinG建系,源于一名16岁患有Burkitt's淋巴瘤的黑人男性,beta-2-微球蛋白阴性,表达EBNA,VCA,sIg。该细胞携带EB病毒,是一个典型的B淋巴母细胞系,可用于白血病发病机制的研究。
【细胞培养经验分享】启蒙老师的重要性:一般进实验室都有师兄师姐带着做,他们就是你做细胞的启蒙老师。他们的操作手法、细节、理论讲解就成了你操作的准则,如营养液、细胞瓶的摆放位置、灭菌处理程序、开盖手法、细胞吹打手法等等。要学会他们的正确操作,在第一次的时候就要重视。像养孩子一样养细胞,细胞有时真的很脆弱,最好每天都去看看它,以防止出现培养箱缺水、缺二氧化碳、停电、温度不够等异常现象,也好及时解决这些意外,避免重复实验带来的更大痛苦。好细胞要及时保种:细胞要分批传代,这样即使有一批出了问题,还有一批备用的。像后者一般人可能不容易做到。但这是我血的教训,有一次细胞污染了,全军覆没。当时可后悔没有保种。细胞跟人一样,不同的细胞,培养特性是不一样的。培养过程中要细细体会,不同细胞系使用不同的培养基和血清。
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
NCIH226 Cells;背景说明:1980年分离建立。;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:H-524细胞、LTPA细胞、COLO320DM细胞
MES-SA/Dx-5 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2-3次。;生长特性:贴壁生长;形态特性:成纤维细胞样 ;相关产品有:RS1细胞、HEK 293T/17细胞、HSCT6细胞
SK-MEL-5 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6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:H28细胞、Mel624细胞、NCI-SNU-C1细胞
BrCL12 Cells;背景说明:乳腺癌;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:LM2-4175细胞、HM06.A1细胞、EOL1细胞
Daudi人Burkitt's淋巴瘤复苏细胞保种中心|带STR证书
物种来源:人源、鼠源等其它物种来源
形态特性:淋巴母细胞样
常规的细胞实验(增殖,凋亡,迁移,分化之类的),受消化影响不是很大,如果不用胰酶去孵育而使用润洗的方法消化的话(难消化细胞例外)。但少数实验,比如病毒包装,对细胞代数,对细胞状态要求GAO。这个时候,胰酶消化,就是润洗,都会对细胞包装病毒的能力有影响,传代次数一多,细胞包装能力就会逐渐下降(当然也有其它因素影响包装效率)。这个时候都不用胰酶消化,用一些盐溶(不是EDA)即可。这些盐溶通过影响ECM相关酶的活性,来使得细胞脱离基质附着表面,但不切割任何蛋白;EDA的作用。许多人不用胰酶,只用EDA,或者用rypsin/EDA联合作用。这里要明白,rypsin切割ECM的一些负责粘连和附着的蛋白,而EDA通过螯合Ca离子,作用于Inegrin的活性,所以EDA的作用更加温和。有的人在rypsin里添加一些EDA,或者对付别难消化的细胞,添加多一些EDA,就是这个道理。一般不要试图延长消化时间(如果10min还消化不彻底的话),而应该想其它办法;PBS洗涤。消化之前用PBS洗涤,是常见的操作,因为Serum含有抑制rypsin的蛋白。但这里面也有学问可以讲,对于一些难消化细胞,那么可以配制不含Ca,Mg离子的PBS,因为这些离子也会抑制rypsin的活性。但对于绝大部分胰酶或者EDA溶润洗即可消化的细胞,不需要配制如此溶。
CHOS 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:MCF 7细胞、HBE 135-E6E7细胞、TYKnu细胞
MES 23.5 Cells;背景说明:多巴胺能神经元 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:C2A细胞、Mono Mac6细胞、P3/ag细胞
Walker/LLC-WRC256 Cells;背景说明:腹水癌;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:详见产品说明书;相关产品有:INS1-E细胞、CL1-0细胞、Vero 76 clone E-6细胞
NIH/3T3 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:MDAPC2B细胞、MDA-MB 468细胞、MX-1细胞
SN12C-PM6 Cells;背景说明:肾癌;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:NBL-5细胞、SK-N-FI细胞、Strain KB细胞
FaDu Cells;背景说明:1968年从一位印度下咽骨肿瘤患者的钻孔活组织切片中建立了FaDu细胞株。在建立的细胞株中发现细胞质中含有成束的细丝,并且细胞分界上的桥粒特别突出。;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:Farage细胞、D-407细胞、SK-MES-1细胞
Tu177 Cells;背景说明:喉鳞癌;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:详见产品说明书;相关产品有:CMT64细胞、Mhh-Call 2细胞、HPDE细胞
Pt K2 (NBL-5) 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:NP69SV40T细胞、Cor L88细胞、NCIH1650细胞
Hs819.T 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:成纤维;相关产品有:SKO-007细胞、H-524细胞、NCIH2073细胞
COLO320HSR Cells;背景说明:该细胞1984年建系,源自一位33岁患有大肠腺癌男性经5-fu治疗后的腹水。;传代方法:1:2传代。3天内可长满。;生长特性:半贴壁生长;形态特性:详见产品说明书;相关产品有:H2110细胞、SuDHL 4细胞、H2073细胞
RPMI no. 8226 Cells;背景说明:来源于一位61岁的男性浆细胞瘤患者;可产生免疫球蛋白轻链,未检测到重链。;传代方法:按1:2传代,5-6小时可以看到细胞分裂;生长特性:悬浮生长;形态特性:淋巴母细胞样;相关产品有:BHT-101细胞、G292细胞、Rat Basophilic Leukemia-1细胞
CHL/IU 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-747细胞、DoTc2细胞、MOLP8细胞
HCC-9724 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:LN299细胞、L-6 myoblast细胞、697细胞
AML12 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:MC-3T3-E1细胞、PIG3细胞、Panc-08.13细胞
CMECs Cells;背景说明:心肌微血管;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:H-1573细胞、JHH2细胞、mREC细胞
ARO Cells;背景说明:甲状腺癌;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:2PK3细胞、MOLM-14细胞、A375.S2细胞
OCI-LY-19 Cells;背景说明:弥漫大B淋巴瘤;女性;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:CCD-18Co细胞、A-427细胞、NCIH2452细胞
Daudi人Burkitt's淋巴瘤复苏细胞保种中心|带STR证书
Abcam HCT 116 TET3 KO Cells(提供STR鉴定图谱)
AG08495 Cells(提供STR鉴定图谱)
BayGenomics ES cell line HMA338 Cells(提供STR鉴定图谱)
BayGenomics ES cell line XB518 Cells(提供STR鉴定图谱)
BoPr-15 Cells(提供STR鉴定图谱)
cNF98.4c Cells(提供STR鉴定图谱)
DA03730 Cells(提供STR鉴定图谱)
DA04794 Cells(提供STR鉴定图谱)
FS/D1h Cells(提供STR鉴定图谱)
T2(174 x CEM.T2) Cells;背景说明:详见相关文献介绍;传代方法:1:3—1:6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:PANC.1细胞、H295R细胞、CNE2Z细胞
NCI-BL2141 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:UO31细胞、H3255_DA细胞、HO8910/PM细胞
Hs 729.T Cells;背景说明:详见相关文献介绍;传代方法:1:2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:H-820细胞、KYSE-50细胞、WM115mel细胞
BPH-1 Cells;背景说明:良性前列腺增生;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:H711细胞、HEK;293细胞、Hs-746T细胞
Y3-Ag 1.2.3 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:0V-1063细胞、DU_145细胞、ECC-10细胞
NCIH1155 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:悬浮生长;形态特性:上皮细胞;相关产品有:LS 1034细胞、IEC18细胞、Opossum Kidney细胞
12-40 Cells(提供STR鉴定图谱)
SW579 Cells;背景说明:在裸鼠中成瘤(产生三级恶性纺锤状巨细胞瘤)。 ;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:Human ErythroLeukemia细胞、HS766T细胞、Ej138细胞
SCC-15 Cells;背景说明:详见相关文献介绍;传代方法:1:4-1:8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:MKN 28细胞、SK-MEL-1细胞、OB2细胞
L-Wnt3A 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:Hk-2细胞、Hs1.Tes细胞、MUGCHOR1细胞
Stanford University-Diffuse Histiocytic Lymphoma-8 Cells;背景说明:弥漫大B淋巴瘤;腹腔积液转移;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明书;相关产品有:AGS细胞、P388.D1细胞、P3X63 AG8-653细胞
BN-CL2 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:SW-1271细胞、OCI/AML-4细胞、Calu-3细胞
MHCC 97-L Cells;背景说明:来源于中山医院,生长较缓慢;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:CT-26 WT细胞、U-2OS细胞、Colon38细胞
HeLa Cells;背景说明:HeLa是第一个来自人体组织经连续培养获得的非整倍体上皮样细胞系,它由GeyGO等在1951年从31岁女性黑人的宫颈癌组织建立。经原始组织切片重新观察,Jones等将其诊断为腺癌。已知该细胞系含有人乳头状瘤病毒HPV18序列,需在2级生物安全防护台操作。该细胞角蛋白阳性,p53表达量较低,但表达正常水平的pRB(视网膜母细胞瘤抑制因子)。;传代方法:1:3传代,2-3天换液一次;生长特性:贴壁生长;形态特性:上皮样;相关产品有:Panc2_03细胞、SK-N-SH细胞、PC-9S1细胞
SW 1463 Cells;背景说明:详见相关文献介绍;传代方法:1:3—1:8传代,每周换液1-2次;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:HCC202细胞、H-345细胞、GT38细胞
GM21250 Cells(提供STR鉴定图谱)
HAP1 LYRM2 (-) 1 Cells(提供STR鉴定图谱)
Hs 688(A).T Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;生长特性:贴壁生长;形态特性:成纤维细胞;相关产品有:SCC25细胞、E.G7-OVA细胞、SK LU 1细胞
Colo699 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:H-2330细胞、H-661细胞、HCT116/L细胞
NTHY-ORI3.1 Cells;背景说明:甲状腺;SV40转化;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:hEEC细胞、Mv1Lu细胞、HMy2.CIR细胞
RCSMC Cells;背景说明:冠状动脉平滑肌;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:OVCAR.8细胞、H-2073细胞、LAN-5细胞
H2591 Cells;背景说明:上皮样间皮瘤;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:Hep G2-Luc细胞、SKOV-3细胞、CEMC7细胞
ROS 17/2.8 Cells;背景说明:骨肉瘤;ACI 9935;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:HLFa细胞、293 Ad5细胞、UMNSAH-DF 1细胞
PC-9S1 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:TK 10细胞、MDA-MB436细胞、RMG-I细胞
OCI Ly3 Cells;背景说明:弥漫大B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:Tokyo Medical and Dental university 8细胞、MDAMB436细胞、CESS细胞
HPSI0513i-dovq_3 Cells(提供STR鉴定图谱)
K9 Cells(提供STR鉴定图谱)
Mel min-13 Cells(提供STR鉴定图谱)
NH50251 Cells(提供STR鉴定图谱)
R1-hiPSC6 Cells(提供STR鉴定图谱)
U2OS CHRM1 HiTSeeker Cells(提供STR鉴定图谱)
UMCGi002-B Cells(提供STR鉴定图谱)
HEK 293/TLR7/NF-kB Luciferase Reporter Cells(提供STR鉴定图谱)
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
OVCAR3 Cells;背景说明:该细胞1982年由T.C. Hamilton等建系,源自一位60卵巢腺癌的腹水,是卵巢癌抗药性研究的模型。;传代方法:1:2—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:BLO-11细胞、SNB.19细胞、NCI-H711细胞
OVCA 432 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:YES2细胞、NT-2细胞、HOC细胞
RGC-6 Cells;背景说明:胶质细胞株C6是由Benda等用N-nitrosomethylurea诱导的大鼠胶质瘤克隆,并经过一系列的体外培养和动物传代交替后建成的。 当细胞从低密度生长到满瓶时,S-100产量增加10倍。;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:RPMI7666细胞、RKO-AS45-1细胞、RCC10 RGB细胞
NL20SV Cells;背景说明:支气管上皮细胞;SV40转化;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:MA-c细胞、NCI-SNU-398细胞、Jiyoye细胞
NL20SV Cells;背景说明:支气管上皮细胞;SV40转化;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:MA-c细胞、NCI-SNU-398细胞、Jiyoye细胞
HEK AD293 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:P3-X63.Ag8.653细胞、C918细胞、SF-767细胞
SKMEL2 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6传代,2-3天换液1次。;生长特性:贴壁生长;形态特性:多边形的;相关产品有:Tca-83细胞、SW1353细胞、GM04679细胞
CAL 33 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:HO1-N1细胞、HOP 92细胞、KM932细胞
High5 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:C2BBe 1细胞、Kit225 K6细胞、BrCL15细胞
NMCG1 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:HBVSMC细胞、SaOS-2细胞、HEK-EBNA细胞
NPA87-1 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:SUM 52PE细胞、Y3细胞、HT 1376细胞
WM35 Cells;背景说明: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:A-172细胞、293F细胞、H-2286细胞
H-2066 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:悬浮生长;形态特性:聚团悬浮;相关产品有:OVCA433_Bast细胞、RKO-AS-45-1细胞、Panc 02细胞
UM-UC14 Cells;背景说明:肾癌;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:NCIH510细胞、OVCAR 8细胞、Psi2-DAP细胞
SRD-6D Cells(提供STR鉴定图谱)
SF539 Cells;背景说明:胶质瘤;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:K562细胞、SJ-Rh 30细胞、3T3NIH细胞
Hs 739.T 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:混合型;相关产品有:U138-MG细胞、HUVSMC细胞、OVCA 432细胞
SV-HUC 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:AD-293细胞、231-luc细胞、NCM356细胞
H-157 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:U266 B1细胞、NCI-H1876细胞、Panc10.05细胞
NCIH2126 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:GM05862细胞、H1954细胞、HS-766T细胞
Glioma-261 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;形态特性:上皮细胞样;相关产品有:BHP 10-3细胞、H2141细胞、COLO 205细胞
PanC1 Cells;背景说明:这株人胰腺癌细胞株源自于胰腺癌导管细胞,其倍增时间为52小时。染色体研究表明,该细胞染色体众数为63,包括3个独特标记的染色体和1个小环状染色体。该细胞的生长可被1unit/ml的左旋天冬酰胺酶抑制;能在软琼脂上生长;能在裸鼠上成瘤。;传代方法:1:2-1:4传代;每周2-3次。;生长特性:贴壁生长;形态特性:上皮样;多角形;相关产品有:TB1 Lu细胞、OLN-93细胞、M-20细胞
67NR Cells;背景说明:乳腺癌;BALB/cfC3H;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:Hs839T细胞、H2195细胞、LLCMK2细胞
CCD 841 CoN Cells;背景说明:结肠上皮细胞;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:SUD4细胞、DF-1细胞、GM05887A细胞
HCC-1359 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:SUM-159PT细胞、LA-795细胞、LCMS细胞
Michigan Cancer Foundation-12F Cells;背景说明:乳腺上皮细胞;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:HBL 100细胞、NCI-H1385细胞、TE14细胞
OVCAR-420 Cells;背景说明:卵巢癌;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:LICR-HN-6细胞、Rat Fetal Lung-6细胞、AE 1201细胞
IPLB-SF 21AE 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:SAS细胞、NRK52E细胞、NCI-H1404细胞
PCI-SG231 Cells;背景说明:肝内胆管癌;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:JeKo 1细胞、DV-90细胞、High5细胞
Daudi人Burkitt's淋巴瘤复苏细胞保种中心|带STR证书
BayGenomics ES cell line RRK372 Cells(提供STR鉴定图谱)
BayGenomics ES cell line XM192 Cells(提供STR鉴定图谱)
GM10322 Cells(提供STR鉴定图谱)
Onc-M10 Cells(提供STR鉴定图谱)
1D3 [Rat hybridoma against mouse Itgb1] Cells(提供STR鉴定图谱)
McWT2 Cells(提供STR鉴定图谱)
" "PubMed=4321974
Maurer B.A., Imamura T., Wilbert S.M.
Incidence of EB virus-containing cells in primary and secondary clones of several Burkitt lymphoma cell lines.
Cancer Res. 30:2870-2875(1970)
PubMed=4122458; DOI=10.1002/ijc.2910100108
Klein G., Dombos L., Gothoskar B.
Sensitivity of Epstein-Barr virus (EBV) producer and non-producer human lymphoblastoid cell lines to superinfection with EB-virus.
Int. J. Cancer 10:44-57(1972)
PubMed=5021706; PMCID=PMC1407864
van Furth R., Gorter H., Nadkarni J.S., Nadkarni J.J., Klein E., Clifford P.
Synthesis of immunoglobulins by biopsied tissues and cell lines from Burkitt's lymphoma.
Immunology 22:847-857(1972)
PubMed=4364259; DOI=10.1002/ijc.2910110210
Klein G., Dombos L.
Relationship between the sensitivity of EBV-carrying lymphoblastoid lines to superinfection and the inducibility of the resident viral genome.
Int. J. Cancer 11:327-337(1973)
PubMed=170370; DOI=10.1099/0022-1317-28-2-207
Adams A., Strander H., Cantell K.
Sensitivity of the Epstein-Barr virus transformed human lymphoid cell lines to interferon.
J. Gen. Virol. 28:207-217(1975)
PubMed=216485
Higgins N.P., Strauss B.S.
Differences in the ability of human lymphoblastoid lines to exclude bromodeoxyuridine and in their sensitivity to methyl methanesulfonate and to incorporated [3H]thymidine.
Cancer Res. 39:312-320(1979)
PubMed=7316467; DOI=10.1111/j.1469-1809.1980.tb00953.x
Povey S., Jeremiah S., Arthur E., Steel M., Klein G.
Differences in genetic stability between human cell lines from patients with and without lymphoreticular malignancy.
Ann. Hum. Genet. 44:119-133(1980)
PubMed=6935474; DOI=10.1093/jnci/66.2.239
Wright W.C., Daniels W.P., Fogh J.
Distinction of seventy-one cultured human tumor cell lines by polymorphic enzyme analysis.
J. Natl. Cancer Inst. 66:239-247(1981)
PubMed=6286763; DOI=10.4049/jimmunol.129.3.1336
Benjamin D., Magrath I.T., Maguire R.T., Janus C., Todd-Kulikowsk H.D., Parsons R.G.
Immunoglobulin secretion by cell lines derived from African and American undifferentiated lymphomas of Burkitt's and non-Burkitt's type.
J. Immunol. 129:1336-1342(1982)
PubMed=6806672; DOI=10.1038/298474a0
Lenoir G.M., Preud'homme J.-L., Bernheim A., Berger R.
Correlation between immunoglobulin light chain expression and variant translocation in Burkitt's lymphoma.
Nature 298:474-476(1982)
PubMed=6954533; DOI=10.1073/pnas.79.7.2194; PMCID=PMC346157
Westin E.H., Gallo R.C., Arya S.K., Eva A., Souza L.M., Baluda M.A., Aaronson S.A., Wong-Staal F.
Differential expression of the amv gene in human hematopoietic cells.
Proc. Natl. Acad. Sci. U.S.A. 79:2194-2198(1982)
PubMed=6186604; DOI=10.1007/BF00364753
de Preval C., Mach B.
The absence of beta 2-microglobulin in Daudi cells: active gene but inactive messenger RNA.
Immunogenetics 17:133-140(1983)
PubMed=11894933; DOI=10.1002/j.1460-2075.1983.tb01412.x; PMCID=PMC555120
Rosa F.M., Berissi H., Weissenbach J., Maroteaux L., Fellous M., Revel M.
The beta2-microglobulin mRNA in human Daudi cells has a mutated initiation codon but is still inducible by interferon.
EMBO J. 2:239-243(1983)
PubMed=6200433; DOI=10.1007/BF00364762
Brodsky F.M.
A matrix approach to human class II histocompatibility antigens: reactions of four monoclonal antibodies with the products of nine haplotypes.
Immunogenetics 19:179-194(1984)
PubMed=6231253; DOI=10.1002/ijc.2910330407
Ehlin-Henriksson B., Klein G.
Distinction between Burkitt lymphoma subgroups by monoclonal antibodies: relationships between antigen expression and type of chromosomal translocation.
Int. J. Cancer 33:459-463(1984)
PubMed=6500159; DOI=10.1159/000163283
Gershwin M.E., Lentz D., Owens R.B.
Relationship between karyotype of tissue culture lines and tumorigenicity in nude mice.
Exp. Cell Biol. 52:361-370(1984)
PubMed=6547209; DOI=10.1038/309592a0
Rabbitts T.H., Forster A., Hamlyn P.H., Baer R.
Effect of somatic mutation within translocated c-myc genes in Burkitt's lymphoma.
Nature 309:592-597(1984)
PubMed=6582512; DOI=10.1073/pnas.81.2.568; PMCID=PMC344720
Mattes M.J., Cordon-Cardo C., Lewis J.L. Jr., Old L.J., Lloyd K.O.
Cell surface antigens of human ovarian and endometrial carcinoma defined by mouse monoclonal antibodies.
Proc. Natl. Acad. Sci. U.S.A. 81:568-572(1984)
PubMed=6592381; DOI=10.1093/jnci/73.4.841
Favrot M.-C., Philip I., Philip T., Portoukalian J., Dore J.-F., Lenoir G.M.
Distinct reactivity of Burkitt's lymphoma cell lines with eight monoclonal antibodies correlated with the ethnic origin.
J. Natl. Cancer Inst. 73:841-847(1984)
PubMed=2985879; DOI=10.1016/0145-2126(85)90084-0
Drexler H.G., Gaedicke G., Minowada J.
Isoenzyme studies in human leukemia-lymphoma cell lines -- 1 carboxylic esterase.
Leuk. Res. 9:209-229(1985)
PubMed=2998993
Steel C.M., Morten J.E.N., Foster E.
The cytogenetics of human B lymphoid malignancy: studies in Burkitt's lymphoma and Epstein-Barr virus-transformed lymphoblastoid cell lines.
IARC Sci. Publ. 60:265-292(1985)
PubMed=3159941; DOI=10.1016/0145-2126(85)90134-1
Drexler H.G., Gaedicke G., Minowada J.
Isoenzyme studies in human leukemia-lymphoma cell lines -- III Beta-hexosaminidase (E.C. 3.2.1.30).
Leuk. Res. 9:549-559(1985)
PubMed=3874327; DOI=10.1016/0145-2126(85)90133-x
Drexler H.G., Gaedicke G., Minowada J.
Isoenzyme studies in human leukemia-lymphoma cells lines -- II. Acid phosphatase.
Leuk. Res. 9:537-548(1985)
PubMed=3905596
Favrot M.-C., Philip I., Philip T., Cabrillat H., Pinatel C., Dore J.-F., Lenoir G.M.
Immunophenotypic classification of 28 Burkitt cell lines with monoclonal antibodies and reagent selection for bone-marrow purging.
IARC Sci. Publ. 60:447-452(1985)
PubMed=3080238
Sieverts H., Alabaster O., Goldschmidts W., Magrath I.T.
Expression of surface antigens during the cell cycle in different growth phases of American and African Burkitt's lymphoma cell lines.
Cancer Res. 46:1182-1188(1986)
PubMed=3100061; DOI=10.1016/0008-8749(86)90099-7
Benjamin D., Bazar L.S., Wallace B., Jacobson R.J.
Heterogeneity of B-cell growth factor receptor reactivity in healthy donors and in patients with chronic lymphatic leukemia: relationship to B-cell-derived lymphokines.
Cell. Immunol. 103:394-408(1986)
PubMed=3518877; DOI=10.3109/07357908609038260
Fogh J.
Human tumor lines for cancer research.
Cancer Invest. 4:157-184(1986)
PubMed=3785169; DOI=10.1128/mcb.6.5.1374-1378.1986; PMCID=PMC367660
Dron M., Modjtahedi N., Brison O., Tovey M.G.
Interferon modulation of c-myc expression in cloned Daudi cells: relationship to the phenotype of interferon resistance.
Mol. Cell. Biol. 6:1374-1378(1986)
PubMed=3026973; DOI=10.1002/ijc.2910390215
Ehlin-Henriksson B., Manneborg-Sandlund A., Klein G.
Expression of B-cell-specific markers in different Burkitt lymphoma subgroups.
Int. J. Cancer 39:211-218(1987)
PubMed=3034807; DOI=10.1002/ijc.2910390622
Ohno H., Fukuhara S., Takahashi R., Mihara K.-i., Sugiyama T., Doi S., Uchino H., Toyoshima K.
c-yes and bcl-2 genes located on 18q21.3 in a follicular lymphoma cell line carrying a t(14;18) chromosomal translocation.
Int. J. Cancer 39:785-788(1987)
PubMed=3116544; DOI=10.1073/pnas.84.19.6835; PMCID=PMC299179
Haluska F.G., Tsujimoto Y., Croce C.M.
The t(8;14) chromosome translocation of the Burkitt lymphoma cell line Daudi occurred during immunoglobulin gene rearrangement and involved the heavy chain diversity region.
Proc. Natl. Acad. Sci. U.S.A. 84:6835-6839(1987)
PubMed=2470097; DOI=10.1073/pnas.86.9.3257; PMCID=PMC287109
Shtivelman E., Henglein B., Groitl P., Lipp M., Bishop J.M.
Identification of a human transcription unit affected by the variant chromosomal translocations 2;8 and 8;22 of Burkitt lymphoma.
Proc. Natl. Acad. Sci. U.S.A. 86:3257-3260(1989)
PubMed=2140233; DOI=10.1111/j.1440-1827.1990.tb01549.x
Nakano A., Harada T., Morikawa S., Kato Y.
Expression of leukocyte common antigen (CD45) on various human leukemia/lymphoma cell lines.
Acta Pathol. Jpn. 40:107-115(1990)
PubMed=2052620; DOI=10.1073/pnas.88.12.5413; PMCID=PMC51883
Gaidano G., Ballerini P., Gong J.Z., Inghirami G., Neri A., Newcomb E.W., Magrath I.T., Knowles D.M., Dalla-Favera R.
p53 mutations in human lymphoid malignancies: association with Burkitt lymphoma and chronic lymphocytic leukemia.
Proc. Natl. Acad. Sci. U.S.A. 88:5413-5417(1991)
CLPUB00447
Mulivor R.A., Suchy S.F.
1992/1993 catalog of cell lines. NIGMS human genetic mutant cell repository. 16th edition. October 1992.
(In misc. document) Institute for Medical Research (Camden, N.J.) NIH 92-2011; pp.1-918; National Institutes of Health; Bethesda; USA (1992)
PubMed=1325212; DOI=10.1182/blood.V80.5.1289.1289
Benjamin D., Knobloch T.J., Dayton M.A.
Human B-cell interleukin-10: B-cell lines derived from patients with acquired immunodeficiency syndrome and Burkitt's lymphoma constitutively secrete large quantities of interleukin-10.
Blood 80:1289-1298(1992)
PubMed=8301159; DOI=10.1089/jir.1993.13.377
Dron M., Tovey M.G.
Interferon-resistant Daudi cells are deficient in interferon-alpha-induced ISGF3 alpha activation, but remain sensitive to the interferon-alpha-induced increase in ISGF3 gamma content.
J. Interferon Res. 13:377-383(1993)
PubMed=8515068; DOI=10.4049/jimmunol.150.12.5418
Jain V.K., Judde J.-G., Max E.E., Magrath I.T.
Variable IgH chain enhancer activity in Burkitt's lymphomas suggests an additional, direct mechanism of c-myc deregulation.
J. Immunol. 150:5418-5428(1993)
PubMed=8176200; DOI=10.4049/jimmunol.152.10.4749
Benjamin D., Sharma V., Knobloch T.J., Armitage R.J., Dayton M.A., Goodwin R.G.
B cell IL-7. Human B cell lines constitutively secrete IL-7 and express IL-7 receptors.
J. Immunol. 152:4749-4757(1994)
PubMed=8197130; DOI=10.1073/pnas.91.11.4751; PMCID=PMC43866
Bicknell D.C., Rowan A.J., Bodmer W.F.
Beta 2-microglobulin gene mutations: a study of established colorectal cell lines and fresh tumors.
Proc. Natl. Acad. Sci. U.S.A. 91:4751-4755(1994)
PubMed=7849311; DOI=10.1182/blood.V85.4.893.bloodjournal854893
Stranks G., Height S.E., Mitchell P., Jadayel D.M., Yuille M.A.R., De Lord C.F.M., Clutterbuck R.D., Treleaven J.G., Powles R.L., Nacheva E., Oscier D.G., Karpas A., Lenoir G.M., Smith S.D., Millar J.L., Catovsky D., Dyer M.J.S.
Deletions and rearrangement of CDKN2 in lymphoid malignancy.
Blood 85:893-901(1995)
PubMed=8558913
Morita S., Tsuchiya S., Fujie H., Itano M., Ohashi Y., Minegishi M., Imaizumi M., Endo M., Takano N., Konno T.
Cell surface c-kit receptors in human leukemia cell lines and pediatric leukemia: selective preservation of c-kit expression on megakaryoblastic cell lines during adaptation to in vitro culture.
Leukemia 10:102-105(1996)
PubMed=8558920
Dirks W.G., Zaborski M., Jager K., Challier C., Shiota M., Quentmeier H., Drexler H.G.
The (2;5)(p23;q35) translocation in cell lines derived from malignant lymphomas: absence of t(2;5) in Hodgkin-analogous cell lines.
Leukemia 10:142-149(1996)
PubMed=8568269; DOI=10.4049/jimmunol.156.4.1626
Benjamin D., Sharma V., Kubin M., Klein J.L., Sartori A., Holliday J., Trinchieri G.
IL-12 expression in AIDS-related lymphoma B cell lines.
J. Immunol. 156:1626-1637(1996)
PubMed=8847894
Tani A., Tatsumi E., Nakamura F., Kumagai S., Kosaka Y., Sano K., Nakamura H., Amakawa R., Ohno H.
Sensitivity to dexamethasone and absence of bcl-2 protein in Burkitt's lymphoma cell line (Black93) derived from a patient with acute tumor lysis syndrome: comparative study with other BL and non-BL lines.
Leukemia 10:1592-1603(1996)
PubMed=9192833
Cherney B.W., Bhatia K.G., Sgadari C., Gutierrez M.I., Mostowski H.S., Pike S.E., Gupta G., Magrath I.T., Tosato G.
Role of the p53 tumor suppressor gene in the tumorigenicity of Burkitt's lymphoma cells.
Cancer Res. 57:2508-2515(1997)
PubMed=9473234; DOI=10.1182/blood.V91.5.1680
Klangby U., Okan I., Magnusson K.P., Wendland M., Lind P., Wiman K.G.
p16/INK4a and p15/INK4b gene methylation and absence of p16/INK4a mRNA and protein expression in Burkitt's lymphoma.
Blood 91:1680-1687(1998)
PubMed=9510473; DOI=10.1111/j.1349-7006.1998.tb00476.x; PMCID=PMC5921588
Hosoya N., Hangaishi A., Ogawa S., Miyagawa K., Mitani K., Yazaki Y., Hirai H.
Frameshift mutations of the hMSH6 gene in human leukemia cell lines.
Jpn. J. Cancer Res. 89:33-39(1998)
PubMed=9685479; DOI=10.1093/nar/26.16.3651; PMCID=PMC147775
Hultdin M., Gronlund E., Norrback K.-F., Eriksson-Lindstrom E., Just T., Roos G.
Telomere analysis by fluorescence in situ hybridization and flow cytometry.
Nucleic Acids Res. 26:3651-3656(1998)
PubMed=9737686; DOI=10.1038/sj.leu.2401112
Zhang W.-J., Ohnishi K., Shigeno K., Fujisawa S., Naito K., Nakamura S., Takeshita K., Takeshita A., Ohno R.
The induction of apoptosis and cell cycle arrest by arsenic trioxide in lymphoid neoplasms.
Leukemia 12:1383-1391(1998)
PubMed=9738977; DOI=10.1111/j.1349-7006.1998.tb03275.x; PMCID=PMC5921886
Takizawa J., Suzuki R., Kuroda H., Utsunomiya A., Kagami Y., Joh T., Aizawa Y., Ueda R., Seto M.
Expression of the TCL1 gene at 14q32 in B-cell malignancies but not in adult T-cell leukemia.
Jpn. J. Cancer Res. 89:712-718(1998)
PubMed=9973220
Gutierrez M.I., Cherney B.W., Hussain A., Mostowski H.S., Tosato G., Magrath I.T., Bhatia K.G.
Bax is frequently compromised in Burkitt's lymphomas with irreversible resistance to Fas-induced apoptosis.
Cancer Res. 59:696-703(1999)
PubMed=10739008; DOI=10.1016/S0145-2126(99)00182-4
Inoue K., Kohno T., Takakura S., Hayashi Y., Mizoguchi H., Yokota J.
Frequent microsatellite instability and BAX mutations in T cell acute lymphoblastic leukemia cell lines.
Leuk. Res. 24:255-262(2000)
PubMed=11021758; DOI=10.1038/sj.leu.2401891
Majka M., Rozmyslowicz T., Honczarenko M.J., Ratajczak J., Wasik M.A., Gaulton G.N., Ratajczak M.Z.
Biological significance of the expression of HIV-related chemokine coreceptors (CCR5 and CXCR4) and their ligands by human hematopoietic cell lines.
Leukemia 14:1821-1832(2000)
PubMed=11226526; DOI=10.1016/S0145-2126(00)00121-1
Inoue K., Kohno T., Takakura S., Hayashi Y., Mizoguchi H., Yokota J.
Corrigendum to: Frequent microsatellite instability and BAX mutations in T cell acute lymphoblastic leukemia cell lines Leukemia Research 24 (2000), 255-262.
Leuk. Res. 25:275-278(2001)
PubMed=12145705; DOI=10.1038/sj.leu.2402519
Langerak A.W., Moreau E.J., van Gastel-Mol E.J., van der Burg M., van Dongen J.J.M.
Detection of clonal EBV episomes in lymphoproliferations as a diagnostic tool.
Leukemia 16:1572-1573(2002)
PubMed=12967475; DOI=10.1111/j.1349-7006.2003.tb01518.x; PMCID=PMC11160262
Maesako Y., Uchiyama T., Ohno H.
Comparison of gene expression profiles of lymphoma cell lines from transformed follicular lymphoma, Burkitt's lymphoma and de novo diffuse large B-cell lymphoma.
Cancer Sci. 94:774-781(2003)
PubMed=14504097; DOI=10.1182/blood-2003-02-0418
Taketani T., Taki T., Sugita K., Furuichi Y., Ishii E., Hanada R., Tsuchida M., Sugita K., Ida K., Hayashi Y.
FLT3 mutations in the activation loop of tyrosine kinase domain are frequently found in infant ALL with MLL rearrangements and pediatric ALL with hyperdiploidy.
Blood 103:1085-1088(2004)
PubMed=15028022; DOI=10.1111/j.1440-1827.2004.01612.x
Kamimura K., Hojo H., Abe M.
Characterization of expression of protein kinase C isozymes in human B-cell lymphoma: relationship between its expression and prognosis.
Pathol. Int. 54:224-230(2004)
PubMed=19358282; DOI=10.1002/ijc.24351
Inagaki A., Ishida T., Yano H., Ishii T., Kusumoto S., Ito A., Ri M., Mori F., Ding J.-M., Komatsu H., Iida S., Ueda R.
Expression of the ULBP ligands for NKG2D by B-NHL cells plays an important role in determining their susceptibility to rituximab-induced ADCC.
Int. J. Cancer 125:212-221(2009)
PubMed=20164919; DOI=10.1038/nature08768; PMCID=PMC3145113
Bignell G.R., Greenman C.D., Davies H.R., Butler A.P., Edkins S., Andrews J.M., Buck G., Chen L., Beare D., Latimer C., Widaa S., Hinton J., Fahey C., Fu B.-Y., Swamy S., Dalgliesh G.L., Teh B.T., Deloukas P., Yang F.-T., Campbell P.J., Futreal P.A., Stratton M.R.
Signatures of mutation and selection in the cancer genome.
Nature 463:893-898(2010)
PubMed=20215515; DOI=10.1158/0008-5472.CAN-09-3458; PMCID=PMC2881662
Rothenberg S.M., Mohapatra G., Rivera M.N., Winokur D., Greninger P., Nitta M., Sadow P.M., Sooriyakumar G., Brannigan B.W., Ulman M.J., Perera R.M., Wang R., Tam A., Ma X.-J., Erlander M., Sgroi D.C., Rocco J.W., Lingen M.W., Cohen E.E.W., Louis D.N., Settleman J., Haber D.A.
A genome-wide screen for microdeletions reveals disruption of polarity complex genes in diverse human cancers.
Cancer Res. 70:2158-2164(2010)
PubMed=20454443; DOI=10.1155/2010/904767; PMCID=PMC2861168
Uphoff C.C., Denkmann S.A., Steube K.G., Drexler H.G.
Detection of EBV, HBV, HCV, HIV-1, HTLV-I and -II, and SMRV in human and other primate cell lines.
J. Biomed. Biotechnol. 2010:904767.1-904767.23(2010)
PubMed=22460905; DOI=10.1038/nature11003; PMCID=PMC3320027
Barretina J.G., Caponigro G., Stransky N., Venkatesan K., Margolin A.A., Kim S., Wilson C.J., Lehar J., Kryukov G.V., Sonkin D., Reddy A., Liu M., Murray L., Berger M.F., Monahan J.E., Morais P., Meltzer J., Korejwa A., Jane-Valbuena J., Mapa F.A., Thibault J., Bric-Furlong E., Raman P., Shipway A., Engels I.H., Cheng J., Yu G.-Y.K., Yu J.-J., Aspesi P. Jr., de Silva M., Jagtap K., Jones M.D., Wang L., Hatton C., Palescandolo E., Gupta S., Mahan S., Sougnez C., Onofrio R.C., Liefeld T., MacConaill L.E., Winckler W., Reich M., Li N.-X., Mesirov J.P., Gabriel S.B., Getz G., Ardlie K., Chan V., Myer V.E., Weber B.L., Porter J., Warmuth M., Finan P., Harris J.L., Meyerson M.L., Golub T.R., Morrissey M.P., Sellers W.R., Schlegel R., Garraway L.A.
The Cancer Cell Line Encyclopedia enables predictive modelling of anticancer drug sensitivity.
Nature 483:603-607(2012)
PubMed=22885699; DOI=10.1038/nature11378; PMCID=PMC3609867
Schmitz R., Young R.M., Ceribelli M., Jhavar S., Xiao W.-M., Zhang M.-L., Wright G., Shaffer A.L. 3rd, Hodson D.J., Buras E., Liu X.-L., Powell J.I., Yang Y.-D., Xu W.-H., Zhao H., Kohlhammer H., Rosenwald A., Kluin P.M., Muller-Hermelink H.-K., Ott G., Gascoyne R.D., Connors J.M., Rimsza L.M., Campo E., Jaffe E.S., Delabie J., Smeland E.B., Ogwang M.D., Reynolds S.J., Fisher R.I., Braziel R.M., Tubbs R.R., Cook J.R., Weisenburger D.D., Chan W.-C., Pittaluga S., Wilson W., Waldmann T.A., Rowe M., Mbulaiteye S.M., Rickinson A.B., Staudt L.M.
Burkitt lymphoma pathogenesis and therapeutic targets from structural and functional genomics.
Nature 490:116-120(2012)
PubMed=24590883; DOI=10.1002/gcc.22161
Murga Penas E.-M., Schilling G., Behrmann P., Klokow M., Vettorazzi E., Bokemeyer C., Dierlamm J.
Comprehensive cytogenetic and molecular cytogenetic analysis of 44 Burkitt lymphoma cell lines: secondary chromosomal changes characterization, karyotypic evolution, and comparison with primary samples.
Genes Chromosomes Cancer 53:497-515(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=25355872; DOI=10.1128/JVI.02570-14; PMCID=PMC4301145
Cao S.-B., Strong M.J., Wang X., Moss W.N., Concha M., Lin Z., O'Grady T., Baddoo M., Fewell C., Renne R., Flemington E.K.
High-throughput RNA sequencing-based virome analysis of 50 lymphoma cell lines from the Cancer Cell Line Encyclopedia project.
J. Virol. 89:713-729(2015)
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=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=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=27397505; DOI=10.1016/j.cell.2016.06.017; PMCID=PMC4967469
Iorio F., Knijnenburg T.A., Vis D.J., Bignell G.R., Menden M.P., Schubert M., Aben N., Goncalves E., Barthorpe S., Lightfoot H., Cokelaer T., Greninger P., van Dyk E., Chang H., de Silva H., Heyn H., Deng X.-M., Egan R.K., Liu Q.-S., Miroo T., Mitropoulos X., Richardson L., Wang J.-H., Zhang T.-H., Moran S., Sayols S., Soleimani M., Tamborero D., Lopez-Bigas N., Ross-Macdonald P., Esteller M., Gray N.S., Haber D.A., Stratton M.R., Benes C.H., Wessels L.F.A., Saez-Rodriguez J., McDermott U., Garnett M.J.
A landscape of pharmacogenomic interactions in cancer.
Cell 166:740-754(2016)
PubMed=28196595; DOI=10.1016/j.ccell.2017.01.005; PMCID=PMC5501076
Li J., Zhao W., Akbani R., Liu W.-B., Ju Z.-L., Ling S.-Y., Vellano C.P., Roebuck P., Yu Q.-H., Eterovic A.K., Byers L.A., Davies M.A., Deng W.-L., Gopal Y.N.V., Chen G., von Euw E.M., Slamon D.J., Conklin D., Heymach J.V., Gazdar A.F., Minna J.D., Myers J.N., Lu Y.-L., Mills G.B., Liang H.
Characterization of human cancer cell lines by reverse-phase protein arrays.
Cancer Cell 31:225-239(2017)
PubMed=29892436; DOI=10.1098/rsos.172472; PMCID=PMC5990783
Shioda S., Kasai F., Watanabe K., Kawakami K., Ohtani A., Iemura M., Ozawa M., Arakawa A., Hirayama N., Kawaguchi E., Tano T., Miyata S., Satoh M., Shimizu N., Kohara A.
Screening for 15 pathogenic viruses in human cell lines registered at the JCRB Cell Bank: characterization of in vitro human cells by viral infection.
R. Soc. Open Sci. 5:172472-172472(2018)
PubMed=30285677; DOI=10.1186/s12885-018-4840-5; PMCID=PMC6167786
Tan K.-T., Ding L.-W., Sun Q.-Y., Lao Z.-T., Chien W., Ren X., Xiao J.-F., Loh X.-Y., Xu L., Lill M., Mayakonda A., Lin D.-C., Yang H.H., Koeffler H.P.
Profiling the B/T cell receptor repertoire of lymphocyte derived cell lines.
BMC Cancer 18:940.1-940.13(2018)
PubMed=30629668; DOI=10.1371/journal.pone.0210404; PMCID=PMC6328144
Uphoff C.C., Pommerenke C., Denkmann S.A., Drexler H.G.
Screening human cell lines for viral infections applying RNA-Seq data analysis.
PLoS ONE 14:E0210404-E0210404(2019)
PubMed=30894373; DOI=10.1158/0008-5472.CAN-18-2747; PMCID=PMC6445675
Dutil J., Chen Z.-H., Monteiro A.N.A., Teer J.K., Eschrich S.A.
An interactive resource to probe genetic diversity and estimated ancestry in cancer cell lines.
Cancer Res. 79:1263-1273(2019)"