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网站主页 化工产品目录 生物 细胞培养 细胞系 人细胞系 A549[A-549]细胞系|人肺癌细胞 A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书
  • A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书

A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书

A549[A-549]
询价 1000000细胞数 起订
2000000细胞数 起订
上海 更新日期:2025-03-09

上海冠导生物工程有限公司

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产品详情:

中文名称:
A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书
英文名称:
A549[A-549]
品牌:
ATCC\RCB等
产地:
国外
保存条件:
常温培养或液氮冻存
纯度规格:
A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书
产品类别:
化学试剂
种属:
详见产品资料
组织:
详见产品资料
细胞系:
详见产品资料
细胞形态:
详见产品资料
生长状态:
详见产品资料
靶点:
详见产品资料
应用:
详见产品资料

"A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书

传代比例:1:2-1:4(首次传代建议1:2)

生长特性:贴壁生长

贴壁细胞消化传代时通常采用两种方法:一、加入胰酶等细胞脱落后,再加培养基中止胰酶作用,离心传代;二、加入胰酶后,镜下观察待细胞始脱落时,弃胰酶,加培养分瓶。但前者太麻烦,而后者有可能对细胞施加胰酶选择,因为总是贴壁不牢的细胞先脱落,对肿瘤细胞来说,这部分细胞有可能是恶性程度较GAO的细胞亚群。一种简单的消化传代方法。加入PBS洗去血清或加入胰酶先中和血清的作用(30s),弃之,再加入适量胰酶作用10s-40s(根据细胞消化的难易程度),弃之,这样依赖残余的胰酶就可将细胞消化单细胞。对于较难消化的细胞,可以用2%利多卡因消化5-8分钟,然后再弃去,加培养基吹打也可以,对细胞的影响不大。不用PBS也不用Hanks洗,只要把旧培养吸的干净一点,直接加酶消化应该不会有什么问题。弃培养后,用0.04%的EDA冲洗一次,再用1/4v的0.04%的EDA室温孵育5min,弃取大部分EDA,加入与剩余EDA等量的胰酶(预热)总体积1/10v。消化到有细胞脱落。不过有人说EDA对细胞不HAO,有证据吗?培养的BASMC:倒掉旧培养加入少量胰酶冲一下,倒掉再加入0.125-0.25%胰酶约6-10滴或1ml(25ml bole)消化再加入适量新培养基中和,并分瓶这种方法简单、省事;效果很HAO并且不损失细胞!

换液周期:每周2-3次

CHP-126 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:OKT 3细胞、CCC-HIE-2细胞、HOC1细胞

H-1238 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:ARH77细胞、Anip[973]细胞、THLE-3细胞

SKMES1 Cells;背景说明:源于一位65岁患有肺鳞状细胞癌的白人男性,自转移性胸腔积液分离而来。;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:MG63细胞、NU-GC-4细胞、SW-982细胞

A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书

背景信息:最初分离自一名58岁白人男性的非小细胞肺癌组织,于1972年由科学家D. J. Giard等人培养成功。能通过胞苷二磷酸胆碱途径合成含有高含量不饱和脂肪酸的卵磷脂。

细胞系的选择需要考虑到细胞系的功能特点、生长速率、铺板效率、生长条件和生长特征、克隆效率、培养方式等因素,如果您想高产量表达重组蛋白,您可以选择可以悬浮生长的快速生长细胞系。细胞培养的操作步骤主要包括传代、换液、冻存和复苏。这些步骤确保了细胞能够在实验室环境中长期存活并继续增殖。传代是将细胞从一个容器转移到另一个容器的过程,以扩大细胞数量;换液是为了清除代谢废物并补充新鲜培养基;冻存则是为了长期保存细胞,而复苏则是重新激活冷冻保存的细胞使其恢复正常生长。

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

AN3CA Cells;背景说明:AN3CA细胞建系于1964年。它衍生于子宫内膜癌患者淋巴结转移组织,具有癌细胞的基本特性,能在体外长期传代培养,接种实验动物产生明显肿瘤。但细胞的生物学特性及超微结构尚未深入研究,仅发现该细胞系促黑激素合成为阴性。细胞常用于人子宫内膜癌细胞生物学及其相关特性研究。;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:MB 157细胞、C6661细胞、Rat podocyte细胞

GM00346B 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:ReNcell CX细胞、RCC10 RGB细胞、TR-146细胞

Hs 611.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:混合型;形态特性:淋巴母细胞样;相关产品有:PE/CA-PJ34 (clone C12)细胞、P3/X63-Ag8细胞、HPAF/CD18细胞

WC00044 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:HEK 293 EBNA细胞、Stanford University-Diffuse Histiocytic Lymphoma-16细胞、MDA-175细胞

A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书

物种来源:人源、鼠源等其它物种来源

形态特性:上皮细胞样

其实绝大部分细胞消化的时候是只要用胰酶润洗一遍即可,吸去胰酶后,残留的那些无法计算体积的附着在细胞表面的微量胰酶在37度一般不到2min足够消化细胞(绝大部分1min不到)。对于这些细胞原则上不要用胰酶孵育细胞,连续这样传代,对细胞伤害很大。简单的程序是PBS润洗吸去,胰酶润洗吸去,然后37度消化;什么算是消化HAO了呢?不是细胞全部成间隔分布很离散的单个圆形才算消化HAO了,一般你肉眼观察贴壁细胞层,只要能移动了,多半呈沙壮移动,其实已经可以了,很多人喜欢把细胞消化或者吹打成完全分离细胞,这是没有必要的。一般能移动了,说明细胞与培养基质材料的附着已经消失了,细胞之间的附着也已经消失了,细胞已经独立分布了(虽然没有呈现很广的离散分布)。这个时候应该停止消化,不要等到看到镜下所有细胞都分离得非常HAO,间隙很大,才停止。细胞就是完全成单个细胞悬,之后在贴壁的过程中仍然会聚集,这个是贴壁培养的细胞,尤其是肿瘤细胞的一个性,无论死活的细胞都是如此,你可以尝试,准备100%的单个细胞悬,贴壁后观察细胞,仍然是几个几个细胞聚集在一起。一些悬浮培养细胞也是如此,容易聚集,不要去尝试过几个小时就拿出来吹打成单细胞悬(不要笑,这个是初养悬浮细胞的人常犯的错误,以为悬浮培养就是一个一个分开)。细胞只要能从基质上脱离下来,这个时候即使是成片的(比如Calu-3细胞),吹打不超过20次后(一般10次即可),成小规模聚集(10个细胞左右),是正常的,不要试图再去延长消化时间,或者像有的同学那样吹打1h,等待单细胞悬出现。

KTCTL140 Cells;背景说明:肾透明细胞癌;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:H-2009细胞、Evsa-T细胞、COLO 678细胞

RASMC Cells;背景说明:主动脉;平滑肌 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:OCI-Ly8细胞、TPC-1细胞、WSU-DLCL-2细胞

BHK 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1-2次。;生长特性:贴壁生长;形态特性:成纤维细胞样;相关产品有:TEC细胞、I90细胞、H2085细胞

alpha TC1 clone 6 Cells;背景说明:胰岛素瘤;a细胞;C57BL/6xDBA/2;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:Leukemic 1210细胞、COLO-320-HSR细胞、H19-7细胞

COLO 357 Cells;背景说明:胰腺癌;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:MB-49细胞、PC 61-5-3细胞、AR42J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:253JB-V细胞、L 428细胞、BC3H1细胞

GM02132C 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:HR-8348细胞、GLC82细胞、MC57G细胞

HCC-38 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—3次;生长特性:贴壁生长;形态特性:上皮样;相关产品有:KLM1细胞、KE39细胞、SW-756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:Co 115细胞、HCT.116细胞、PLA801C细胞

MB-49 Cells;背景说明:膀胱癌;雄性;C57BL/Icrfa(t);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:HT29细胞、KOPN-8细胞、UC-3细胞

HcaF Cells;背景说明:肝癌;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:H8细胞、YD-15细胞、RT-112细胞

MILE SVEN1 Cells;背景说明:MS1是1994年建株的胰岛内皮细胞株。原代培养的胰岛内皮细胞用抗G418的温度敏感型SV40大T抗原(tsA-58-3)转染。抗性克隆用克隆环分离,并筛选吸收dil-Ac-LDL的。这株细胞保留了内皮细胞的许多特性,如吸收乙酰化LDL和表达八因子相关抗原及BEGF受体。;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:详见产品说明书;相关产品有:3T3-A31细胞、HuH7细胞、IFRS1细胞

NIH3T3 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:MGH-U1细胞、266 Bl细胞、TE-4细胞

293S 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:CL-34细胞、LC1sq细胞、RBL-2H3细胞

HCO Cells;背景说明:颅骨;成骨 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:SNU368细胞、Wien 133细胞、SJSA-1细胞

SKN-AS 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:上皮样;相关产品有:NCI-H1238细胞、Glioma-261细胞、Earle's L cells细胞

IOSE 80 Cells;背景说明:卵巢;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:H2330细胞、NALM-6细胞、FHC细胞

A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书

Abcam HEK293 DIAPH1 KO Cells(提供STR鉴定图谱)

AG08615 Cells(提供STR鉴定图谱)

BayGenomics ES cell line KST109 Cells(提供STR鉴定图谱)

BayGenomics ES cell line XB748 Cells(提供STR鉴定图谱)

BP8 Cells(提供STR鉴定图谱)

CoE 45 Cells(提供STR鉴定图谱)

DA03814 Cells(提供STR鉴定图谱)

DA05324 Cells(提供STR鉴定图谱)

GENEA057 Cells(提供STR鉴定图谱)

OCI-Ly 8 Cells;背景说明:弥漫大B淋巴瘤;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:K562/ADP细胞、MOLT3细胞、MDA-MB-436细胞

Hs-27 Cells;背景说明:包皮;成纤维细胞;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:SKNBE2细胞、NTERA2-D1细胞、SNU5细胞

NCI-H64 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:HepaRG细胞、D-324 Med细胞、McA-RH7777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

CHP 126 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-23细胞、OVCAR.3细胞、Cates-1B细胞

KM12 SM Cells;背景说明:结肠癌;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:Madin Darby Bovine Kidney细胞、SCH细胞、GAK细胞

1B3-18 Cells(提供STR鉴定图谱)

RIN Cl-5F Cells;背景说明:胰岛β细胞瘤;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:SNB19细胞、HCC9204细胞、GM15452细胞

GDM1 Cells;背景说明:详见相关文献介绍;传代方法:2-3天换液1次。;生长特性:悬浮生长;形态特性:淋巴母细胞样 ;相关产品有:Jurkat-FHCRC细胞、WPMY-1细胞、MKN-1细胞

HCe-8693 Cells;背景说明:盲肠腺癌;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:MOLM-16细胞、UACC893细胞、OCIAML5细胞

OCI-AML-5 Cells;背景说明:急性髓系白血病细胞;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:SNU398细胞、16HBE细胞、SK-N-BE(2C)细胞

HFT 8810 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:CAL-85-1细胞、MPC 11细胞、HEC-151细胞

RKOAS451 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:T2(174 x CEM.T2)细胞、H-2141细胞、H-820细胞

HMO6 Cells;背景说明:小胶质 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:NG 108-15细胞、CNE2Z细胞、H-378细胞

HEK293 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:U-343-MG细胞、HIMEC细胞、Murine Carcinoma-38细胞

GM10018 Cells(提供STR鉴定图谱)

HAP1 BTBD9 (-) Cells(提供STR鉴定图谱)

Acanthosis Nigricans 3rd attempt-CArcinoma Cells;背景说明:AN3CA细胞建系于1964年。它衍生于子宫内膜癌患者淋巴结转移组织,具有癌细胞的基本特性,能在体外长期传代培养,接种实验动物产生明显肿瘤。但细胞的生物学特性及超微结构尚未深入研究,仅发现该细胞系促黑激素合成为阴性。细胞常用于人子宫内膜癌细胞生物学及其相关特性研究。;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:U251细胞、SNU1040细胞、MLFC细胞

PL 45 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:RK 13细胞、HC-11细胞、Human Embryo Lung-1细胞

OVCA-433 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:HOS细胞、NCC-IT细胞、Bowes melanoma cells细胞

MDA-MB435 Cells;背景说明:乳腺癌;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:详见产品说明书;相关产品有:BHK-21细胞、Me-Wo细胞、NCI-H1238细胞

NSI/1-Ag4-1 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-H2066细胞、Nthy-ori 3.1细胞、alpha TC1 clone 6细胞

ChaGo-K1 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次。;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:U-118 MG细胞、MDA-330细胞、alpha TC1.6细胞

YES-2 Cells;背景说明:食管鳞癌;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:NCI-H889细胞、OCI-LY-18细胞、BNL 1MEA.7R.1细胞

MC-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:HCC-1428细胞、C3A细胞、Hs 683细胞

HG03466 Cells(提供STR鉴定图谱)

ID00085 Cells(提供STR鉴定图谱)

LOPRA-1/4 Cells(提供STR鉴定图谱)

NCI-H69/IFN-gamma Cells(提供STR鉴定图谱)

PathHunter U2OS HTR1F beta-arrestin Cells(提供STR鉴定图谱)

Ubigene HeLa VIPR2 KO Cells(提供STR鉴定图谱)

XPHM12BE Cells(提供STR鉴定图谱)

hFIB2-iPS5 Cells(提供STR鉴定图谱)

E304 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:SR-786细胞、3LL细胞、U138细胞

WM 266-4 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:CMT 167细胞、SNU484细胞、CTLL-2细胞

NuTu-19 Cells;背景说明:卵巢癌;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:SUP-B15细胞、WI 38细胞、Tb 1-Lu细胞

LN 229 Cells;背景说明:详见相关文献介绍;传代方法:1:4-1:6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:RBMVEC细胞、SUM 52PE细胞、COLO-679细胞

AML 12 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:Kit225 K6细胞、NCI-H1882细胞、NCIN87细胞

AML 12 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:Kit225 K6细胞、NCI-H1882细胞、NCIN87细胞

Lilly Laboratories Cell-Porcine Kidney 1 Cells;背景说明:肾;自发永生;Hampshire;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:LIM 1215细胞、HMC-1细胞、HuH28细胞

Mv1.Lu 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:MDA-MB-361细胞、H1975细胞、P3X63细胞

KALS-1 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:多边形;相关产品有:RA 1细胞、SUDHL1细胞、OVCA433细胞

MC57 Cells;背景说明:纤维肉瘤;C57BL/6J;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:NB19-RIKEN细胞、Moorfields/Institute of Ophthalmology-Muller 1细胞、NPA细胞

AG 9 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:Ramos-RA1细胞、IAR20细胞、NCIH345细胞

Alexander Cells;背景说明:该细胞系分泌乙肝病毒表面抗原(HBsAg)。 此细胞系原先被支原体污染,后用BM-cycline去除支原体;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:IPLB-SF-21-AE细胞、95D细胞、Sp2/0-Ag-14细胞

THC-8307 Cells;背景说明:高分化结肠癌;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:LS 123细胞、SW-403细胞、Medical Research Council cell strain-9细胞

Kit225/K6 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:J111细胞、GM00215细胞、OCI-AML4细胞

PANC-1 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:HIEC-6细胞、HIT T15细胞、Leghorn Male Hepatoma cell line细胞

SBB-W1 Cells(提供STR鉴定图谱)

Hs-578Bst Cells;背景说明:乳腺 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:MN 60细胞、P3-Jiyoye细胞、UMR-106细胞

Japanese Tissue Culture-39 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:HCT-8细胞、Human Embryo Lung-1细胞、LLC-PK(1)细胞

Homo sapiens No. 578, tumor cells 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:HS852.T细胞、NCI-H146细胞、Giant Cell Tumor细胞

WM-451Lu 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:MD Anderson-Metastatic Breast-453细胞、H-1666细胞、LN-18细胞

TFK-1 Cells;背景说明: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:PNT1A细胞、MES-SA-Dx5细胞、MDA PCa 2b细胞

Moorfields/Institute of Ophthalmology-Muller 1 Cells;背景说明:视网膜Muller细胞;自发永生;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:PC 12细胞、NCI-H810细胞、Hs 578.T细胞

CHO cell clone K1 Cells;背景说明:1957年,PuckTT从成年中国仓鼠卵巢的活检组织建立了CHO细胞,CHO-K1是CHO的一个亚克隆。CHO-K1的生长需要脯酸。;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:HCC-95细胞、SKNSH细胞、HCC9724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

SW 579 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:ATN-1细胞、WM 115细胞、EPC细胞

786-0 Cells;背景说明:该细胞源自一位原发性肾透明细胞癌患者。该细胞有微绒毛和桥粒,能在软琼脂上生长。此细胞生成一种PTH(甲状旁腺素)样的多肽,与乳癌和肺癌中生成的肽相似,其N端序列与PTH相似,具有PTH样活性,分子量为6000D。;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:NCIH716细胞、SNB.19细胞、H810细胞

Caco2BBe Cells;背景说明:详见相关文献介绍;传代方法:1:6—1:10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:Tn-5B1-4细胞、SK-MEL-31细胞、H841细胞

H-1395 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;5-6天传代一次。;生长特性:贴壁生长;形态特性:上皮样;多角形;相关产品有:A549-Taxol细胞、PC-3M-IE8细胞、NCI-522细胞

CHP-212 Cells;背景说明:详见相关文献介绍;传代方法:1:10 1:50每2 - 3周;每周换液2-3次。;生长特性:贴壁生长;形态特性:成神经细胞;相关产品有:HOS细胞、Colon-38细胞、RBE4细胞

RTE Cells;背景说明:详见相关文献介绍;传代方法:1:3传代,3-4天换液一次;生长特性:贴壁生长;形态特性:多角;相关产品有:Vero细胞、NCIH2023细胞、GM06141细胞

A549[A-549]人非小细胞肺癌复苏细胞保种中心|带STR证书

BayGenomics ES cell line RRR235 Cells(提供STR鉴定图谱)

BayGenomics ES cell line YHD208 Cells(提供STR鉴定图谱)

HT22 TR/TO-rKlf9 clone 2.1 Cells(提供STR鉴定图谱)

PCRP-HEY2-1H7 Cells(提供STR鉴定图谱)

ERC-13 Cells(提供STR鉴定图谱)

HPS2724 Cells(提供STR鉴定图谱)

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Human melanoma cells have both nerve growth factor and nerve growth factor-specific receptors on their cell surfaces.

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Human tumor cell strains defective in the repair of alkylation damage.

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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=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=26202522; DOI=10.1021/acs.jproteome.5b00477; PMCID=PMC4761227

Kitata R.B., Dimayacyac-Esleta B.R.T., Choong W.-K., Tsai C.-F., Lin T.-D., Tsou C.-C., Weng S.-H., Chen Y.-J., Yang P.-C., Arco S.D., Nesvizhskii A.I., Sung T.-Y., Chen Y.-J.

Mining missing membrane proteins by high-pH reverse-phase stagetip fractionation and multiple reaction monitoring mass spectrometry.

J. Proteome Res. 14:3658-3669(2015)


PubMed=26554430; DOI=10.1021/acs.analchem.5b03639

Dimayacyac-Esleta B.R.T., Tsai C.-F., Kitata R.B., Lin P.-Y., Choong W.-K., Lin T.-D., Wang Y.-T., Weng S.-H., Yang P.-C., Arco S.D., Sung T.-Y., Chen Y.-J.

Rapid high-pH reverse phase stagetip for sensitive small-scale membrane proteomic profiling.

Anal. Chem. 87:12016-12023(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=27377824; DOI=10.1038/sdata.2016.52; PMCID=PMC4932877

Mestdagh P., Lefever S., Volders P.-J., Derveaux S., Hellemans J., Vandesompele J.

Long non-coding RNA expression profiling in the NCI60 cancer cell line panel using high-throughput RT-qPCR.

Sci. Data 3:160052-160052(2016)


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=27807467; DOI=10.1186/s13100-016-0078-4; PMCID=PMC5087121

Zampella J.G., Rodic N., Yang W.R., Huang C.R.L., Welch J., Gnanakkan V.P., Cornish T.C., Boeke J.D., Burns K.H.

A map of mobile DNA insertions in the NCI-60 human cancer cell panel.

Mob. DNA 7:20.1-20.11(2016)


PubMed=28114404; DOI=10.1371/journal.pone.0170609; PMCID=PMC5256872

Fang Y.-N., Zhang C., Wu T., Wang Q., Liu J.-H., Dai P.-G.

Transcriptome sequencing reveals key pathways and genes associated with cisplatin resistance in lung adenocarcinoma A549 cells.

PLoS ONE 12:E0170609-E0170609(2017)


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=28408844; DOI=10.2147/OTT.S128416; PMCID=PMC5384690

Townsend M.H., Anderson M.D., Weagel E.G., Velazquez E.J., Weber K.S., Robison R.A., O'Neill K.L.

Non-small-cell lung cancer cell lines A549 and NCI-H460 express hypoxanthine guanine phosphoribosyltransferase on the plasma membrane.

Onco Targets Ther. 10:1921-1932(2017)


PubMed=28601559; DOI=10.1016/j.cels.2017.05.009; PMCID=PMC5493283

Bekker-Jensen D.B., Kelstrup C.D., Batth T.S., Larsen S.C., Haldrup C., Bramsen J.B., Sorensen K.D., Hoyer S., Orntoft T.F., Lindbjerg Andersen C., Nielsen M.L., Olsen J.V.

An optimized shotgun strategy for the rapid generation of comprehensive human proteomes.

Cell Syst. 4:587-599.e4(2017)


PubMed=28746345; DOI=10.1371/journal.pone.0181081; PMCID=PMC5528889

Sarin N., Engel F., Kalayda G.V., Mannewitz M., Cinatl J. Jr., Rothweiler F., Michaelis M., Saafan H., Ritter C.A., Jaehde U., Frotschl R.

Cisplatin resistance in non-small cell lung cancer cells is associated with an abrogation of cisplatin-induced G2/M cell cycle arrest.

PLoS ONE 12:E0181081-E0181081(2017)


PubMed=29444439; DOI=10.1016/j.celrep.2018.01.051; PMCID=PMC6343826

Yuan T.L., Amzallag A., Bagni R., Yi M., Afghani S., Burgan W., Fer N., Strathern L.A., Powell K., Smith B., Waters A.M., Drubin D.A., Thomson T., Liao R., Greninger P., Stein G.T., Murchie E., Cortez E., Egan R.K., Procter L., Bess M., Cheng K.T., Lee C.-S., Lee L.C., Fellmann C., Stephens R., Luo J., Lowe S.W., Benes C.H., McCormick F.

Differential effector engagement by oncogenic KRAS.

Cell Rep. 22:1889-1902(2018)


PubMed=29457907; DOI=10.1021/acs.jproteome.7b00782

Tomin T., Fritz K., Gindlhuber J., Waldherr L., Pucher B., Thallinger G.G., Nomura D.K., Schittmayer M., Birner-Gruenberger R.

Deletion of adipose triglyceride lipase links triacylglycerol accumulation to a more-aggressive phenotype in A549 lung carcinoma cells.

J. Proteome Res. 17:1415-1425(2018)


PubMed=29468137; DOI=10.5501/wjv.v7.i1.10; PMCID=PMC5807893

Himmelsbach K., Hildt E.

Identification of various cell culture models for the study of Zika virus.

World J. Virol. 7:10-20(2018)


PubMed=29681454; DOI=10.1016/j.cell.2018.03.028; PMCID=PMC5935540

McMillan E.A., Ryu M.-J., Diep C.H., Mendiratta S., Clemenceau J.R., Vaden R.M., Kim J.-H., Motoyaji T., Covington K.R., Peyton M., Huffman K., Wu X.-F., Girard L., Sung Y., Chen P.-H., Mallipeddi P.L., Lee J.Y., Hanson J., Voruganti"


A549[A-549]人非小细胞肺癌复苏;传代细胞;复苏细胞;实验细胞;科研细胞;

公司简介

上海冠导生物工程有限公司,先后从ATCC、DSMZ、ECACC、RIKEN、PromoCell、ScienCell、JCRB等国内外细胞库引进细胞2000余株。以此为契机,公司组建了冠导细胞库,我司细胞均由资深细胞培养工程师进行培养。我司可以提供的细胞有:①细胞系②原代细胞③稳转株④耐药株⑤标记细胞⑥细胞配套试剂等。

成立日期 (10年)
注册资本 100万(元)
员工人数 50-100人
年营业额 ¥ 1000万-5000万
经营模式 工厂,试剂,定制,服务
主营行业 细胞培养,微生物学,细胞生物学

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