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MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜,MCF7[MCF-7]
  • MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜,MCF7[MCF-7]

MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜

價格 詢價
包裝 1000000細胞數(shù) 2000000細胞數(shù)
最小起訂量 1000000細胞數(shù)
發(fā)貨地 上海
更新日期 2025-02-22
QQ交談 微信洽談

產(chǎn)品詳情

中文名稱:MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜英文名稱:MCF7[MCF-7]
品牌: ATCC\RCB等產(chǎn)地: 國外
保存條件: 常溫培養(yǎng)或液氮凍存純度規(guī)格: MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜
產(chǎn)品類別: 化學(xué)試劑
種屬: 詳見產(chǎn)品資料組織: 詳見產(chǎn)品資料
細胞系: 詳見產(chǎn)品資料細胞形態(tài): 詳見產(chǎn)品資料
生長狀態(tài): 詳見產(chǎn)品資料靶點: 詳見產(chǎn)品資料
應(yīng)用: 詳見產(chǎn)品資料
2025-02-22 MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜 MCF7[MCF-7] 1000000細胞數(shù)/RMB;2000000細胞數(shù)/RMB ATCC\RCB等 國外 常溫培養(yǎng)或液氮凍存 MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜 化學(xué)試劑

"MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜

傳代比例:1:2-1:4(首次傳代建議1:2)

生長特性:貼壁生長

【細胞培養(yǎng)經(jīng)驗分享】啟蒙老師的重要性:一般進實驗室都有師兄師姐帶著做,他們就是你做細胞的啟蒙老師。他們的操作手法、細節(jié)、理論講解就成了你操作的準則,如營養(yǎng)液、細胞瓶的擺放位置、滅菌處理程序、開蓋手法、細胞吹打手法等等。要學(xué)會他們的正確操作,在第一次的時候就要重視。像養(yǎng)孩子一樣養(yǎng)細胞,細胞有時真的很脆弱,最好每天都去看看它,以防止出現(xiàn)培養(yǎng)箱缺水、缺二氧化碳、停電、溫度不夠等異?,F(xiàn)象,也好及時解決這些意外,避免重復(fù)實驗帶來的更大痛苦。好細胞要及時保種:細胞要分批傳代,這樣即使有一批出了問題,還有一批備用的。像后者一般人可能不容易做到。但這是我血的教訓(xùn),有一次細胞污染了,全軍覆沒。當(dāng)時可后悔沒有保種。細胞跟人一樣,不同的細胞,培養(yǎng)特性是不一樣的。培養(yǎng)過程中要細細體會,不同細胞系使用不同的培養(yǎng)基和血清。

換液周期:每周2-3次

NCI-H2228 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代,每周2-3次。;生長特性:貼壁生長;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:HEM細胞、CaES-17細胞、Jiyoye(P-2003)細胞

PL-11 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2傳代;生長特性:貼壁生長;形態(tài)特性:上皮樣;相關(guān)產(chǎn)品有:PA1細胞、RINm-5F細胞、B 95.8細胞

4175 Cells;背景說明:乳腺癌;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:OVCAR433細胞、MDCK II細胞、Human Melanoma Cell Bowes細胞

背景信息:MCF-7細胞保留了多個分化了的乳腺上皮的特性,包括:能通過胞質(zhì)雌激素受體加工雌二醇并能形成圓形復(fù)合物(domes)。該細胞含有Tx-4癌基因。腫瘤壞死因子α(TNFalpha)可以抑制MCF-7細胞的生長??勾萍に靥幚砑毎苷{(diào)變IGFBP'S的分泌。

MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜

產(chǎn)品包裝:復(fù)蘇發(fā)貨:T25培養(yǎng)瓶(一瓶)或凍存發(fā)貨:1ml凍存管(兩支)

貼壁細胞的傳代培養(yǎng),詳細步驟如下:首先倒掉培養(yǎng)基,在這一步驟可以收集一些細胞上清做支原體檢測;加入胰蛋白酶,一般T25是加2mL,蓋好瓶蓋,搖晃T25培養(yǎng)瓶,使胰蛋白酶均勻覆蓋在細胞表面,放入培養(yǎng)箱2-3min,期間可在顯微鏡下觀察,看到大部分細胞變圓,即可放入超凈臺,加入2倍的完全培養(yǎng)基,這里就是加4mL培養(yǎng)基,終止消化;將含有胰蛋白酶,細胞和培養(yǎng)基一起轉(zhuǎn)移到離心管中,1000rpm/3min離心,去掉上清;新鮮的完全培養(yǎng)基重懸,根據(jù)細胞的生長特性和后續(xù)的實驗需求進行傳代,比如我養(yǎng)的Hepa1-6就長的比較快,不是著急用的話,我就會按1E6個細胞/T75培養(yǎng)瓶進行傳代;但如果后兩天要用,就會適當(dāng)多傳一點;還可通過顯微鏡計數(shù)后,直接用于細胞鋪板,繼續(xù)后續(xù)的實驗。

TE8 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:消化3-5分鐘。1:2。3天內(nèi)可長滿。;生長特性:貼壁生長;形態(tài)特性:上皮樣;相關(guān)產(chǎn)品有:RASMC細胞、NKM-1細胞、PLA-801D細胞

WiDr-TC Cells;背景說明:結(jié)腸癌;女性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:Los Angeles Prostate Cancer-4細胞、SUM-190PT細胞、WIL2 Secreting細胞

U031 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:3-1:6傳代;2-3天換液1次。;生長特性:貼壁生長;形態(tài)特性:上皮樣;相關(guān)產(chǎn)品有:HEL299細胞、NCIH1385細胞、CCF-STTG1細胞

4F2 [Mouse hybridoma against fenitrothion] Cells(提供STR鑒定圖譜)

來源說明:細胞主要來源ATCC、ECACC、DSMZ、RIKEN等細胞庫

物種來源:人源、鼠源等其它物種來源

MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜

形態(tài)特性:上皮細胞樣

貼壁細胞消化傳代時通常采用兩種方法:一、加入胰酶等細胞脫落后,再加培養(yǎng)基中止胰酶作用,離心傳代;二、加入胰酶后,鏡下觀察待細胞始脫落時,棄胰酶,加培養(yǎng)分瓶。但前者太麻煩,而后者有可能對細胞施加胰酶選擇,因為總是貼壁不牢的細胞先脫落,對腫瘤細胞來說,這部分細胞有可能是惡性程度較GAO的細胞亞群。一種簡單的消化傳代方法。加入PBS洗去血清或加入胰酶先中和血清的作用(30s),棄之,再加入適量胰酶作用10s-40s(根據(jù)細胞消化的難易程度),棄之,這樣依賴殘余的胰酶就可將細胞消化單細胞。對于較難消化的細胞,可以用2%利多卡因消化5-8分鐘,然后再棄去,加培養(yǎng)基吹打也可以,對細胞的影響不大。不用PBS也不用Hanks洗,只要把舊培養(yǎng)吸的干凈一點,直接加酶消化應(yīng)該不會有什么問題。棄培養(yǎng)后,用0.04%的EDA沖洗一次,再用1/4v的0.04%的EDA室溫孵育5min,棄取大部分EDA,加入與剩余EDA等量的胰酶(預(yù)熱)總體積1/10v。消化到有細胞脫落。不過有人說EDA對細胞不HAO,有證據(jù)嗎?培養(yǎng)的BASMC:倒掉舊培養(yǎng)加入少量胰酶沖一下,倒掉再加入0.125-0.25%胰酶約6-10滴或1ml(25ml bole)消化再加入適量新培養(yǎng)基中和,并分瓶這種方法簡單、省事;效果很HAO并且不損失細胞!

BNL 1ME A.7R.1 Cells;背景說明:肝;上皮細胞;BALB/c;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:HCC2218細胞、SW 1573細胞、COLO 684細胞

SW-1463 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:3—1:8傳代,每周換液1-2次;生長特性:貼壁生長;形態(tài)特性:上皮細胞;相關(guān)產(chǎn)品有:HO1-N-1細胞、MCF.7細胞、BEAS2B細胞

LNCaP-Clone-FGC Cells;背景說明:人前列腺癌細胞LNCaP克隆FGC是從一位50歲白人男性(血型B+)的左鎖骨淋巴結(jié)針刺活檢中分離,該患者經(jīng)確診為前列腺癌轉(zhuǎn)移。 這株細胞對5-α-二睪酮(生長調(diào)節(jié)子和酸性脂酶產(chǎn)物)有響應(yīng)。這株細胞并不形成一致的單層,而是形成集落,在傳代時可以用滴管反復(fù)吹吸打碎。它們僅僅輕輕地吸附在基底上,不形成匯合,很快使培養(yǎng)基變酸。生長很慢。傳代后48小時內(nèi)不應(yīng)擾動。當(dāng)培養(yǎng)瓶封包后,多數(shù)細胞從培養(yǎng)瓶底分離,懸浮在培養(yǎng)基中。收到后,在通常培養(yǎng)單層細胞的條件下培養(yǎng)24到48小時,以合細胞再貼壁。;傳代方法:消化3-5分鐘。1:2。3天內(nèi)可長滿。;生長特性:貼壁生長;形態(tài)特性:上皮細胞;相關(guān)產(chǎn)品有:H1954細胞、3T6 Swiss Albino細胞、Tj-905細胞

BE2-C Cells;背景說明:神經(jīng)母細胞瘤;骨髓轉(zhuǎn)移;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:HCT/FU細胞、U-2-OS細胞、NCI-841細胞

GM00637F Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁或懸浮,詳見產(chǎn)品說明書部分;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:TMD-8細胞、H766T細胞、X63-Ag8細胞

SN12-PM6 Cells;背景說明:腎癌;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:Panc08.13細胞、CNE-1細胞、108CC15細胞

CCLP-1 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁或懸浮,詳見產(chǎn)品說明書部分;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:NPC-TW-039細胞、CORL51細胞、A20細胞

Balb/3T3-4-Cl31 Cells;背景說明:胚胎;成纖維;自發(fā)永生;雄性;BALB/c;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:PL-5細胞、Tb1.Lu細胞、CHG5細胞

SBC3 Cells;背景說明:小細胞肺癌;骨髓轉(zhuǎn)移;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:L-M[TK-]細胞、RPE1細胞、WERI Rb-1細胞

H125 Cells;背景說明:腺鱗狀肺癌;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:MOLM16細胞、LLC-WRC 256細胞、RPPVEC細胞

PG-4 S+L- Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁或懸浮,詳見產(chǎn)品說明書部分;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:PLMVEC細胞、SW-780細胞、HSC-3細胞

HEL-92.1.7 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:每周2-3次。;生長特性:懸浮生長;形態(tài)特性:成淋巴細胞;相關(guān)產(chǎn)品有:H-35 Reuber細胞、SW620細胞、H-1836細胞

U-138 MG Cells;背景說明:星形細胞瘤;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:NCIH196細胞、A549/DDP細胞、VMRCRCZ細胞

16HBE140 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2傳代;生長特性:貼壁生長 ;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:NCI-SNU-475細胞、LCLC-103H細胞、BTI-TN5B1-4細胞

QGY Cells;背景說明:該細胞系來自35歲女性的肝癌。染色體數(shù)目變化大,異倍體多。免疫熒光間接法AFP陽性反應(yīng)。異體移植能力強。亞顯微結(jié)構(gòu)方面,核與細胞質(zhì)的比例高,大的多形核和多種細胞器亞顯微結(jié)構(gòu)改變。在ConA作用下凝集。倍增時間約為20.5小時。用Northernblot方法,未能檢測到細胞中1.3kbLFIRE-1/HFREP-1mRNA的表達。;傳代方法:消化3-5分鐘,1:2,3天內(nèi)可長滿;生長特性:貼壁生長;形態(tài)特性:上皮樣;相關(guān)產(chǎn)品有:CCD-1112sk細胞、IPLB-SF-21細胞、HCC-4006細胞

SN12C Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:2x10^4 cells/ml;生長特性:貼壁生長;形態(tài)特性:上皮細胞樣;相關(guān)產(chǎn)品有:H727細胞、D283-MED細胞、TJ905細胞

MV 4;11 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁或懸浮,詳見產(chǎn)品說明書部分;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:KYSE 140細胞、CV-1.K細胞、RAW2647細胞

5HL2-B Cells(提供STR鑒定圖譜)

Abcam K-562 PDHB KO Cells(提供STR鑒定圖譜)

AP38S Cells(提供STR鑒定圖譜)

BayGenomics ES cell line RRM013 Cells(提供STR鑒定圖譜)

BayGenomics ES cell line XN258 Cells(提供STR鑒定圖譜)

cAMP Hunter CHO-K1 GIPR Gs Cells(提供STR鑒定圖譜)

DA00703 Cells(提供STR鑒定圖譜)

Detroit 98/AG Cells(提供STR鑒定圖譜)

GM02631 Cells(提供STR鑒定圖譜)

BT549 Cells;背景說明:該細胞1978年由W.G.Coutinho和E.Y.Lasfargues建系,源自一位72歲患有乳腺導(dǎo)管癌的白人女性,來源組織包括乳頭及浸潤導(dǎo)管。該細胞形態(tài)包括上皮樣細胞及多核巨細胞,可分泌一種粘性物質(zhì)。;傳代方法:1:2傳代;生長特性:貼壁生長;形態(tài)特性:上皮樣;相關(guān)產(chǎn)品有:HEC1-A細胞、U343MG細胞、DMS79細胞

HCC2185 Cells;背景說明:轉(zhuǎn)移性小葉乳腺癌;胸腔積液轉(zhuǎn)移;女性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:BEL-7402細胞、CCD-33Co細胞、B16/F0細胞

WM-266-mel Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2傳代;生長特性:貼壁生長;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:H2066細胞、SK-RC-39細胞、SPC-A1細胞

NOZAWA Cells;背景說明:患者有癌性腹膜炎。細胞為中等分化的管狀膽囊癌。會分泌AFP和CEA。倍增時間48小時,板植率14-19%。細胞可在裸鼠中成瘤,形態(tài)與原發(fā)腫瘤相似。;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:上皮細胞樣;相關(guān)產(chǎn)品有:ME180細胞、NCI-SNU-878細胞、HepaRG細胞

RBMEC Cells;背景說明:腦微血管;內(nèi)皮 Cells;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:mRTEC細胞、Hs 729細胞、Ramos(RA1)細胞

NB-9 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:10 1:50每2 - 3周;每周換液2-3次。;生長特性:貼壁生長;形態(tài)特性:成神經(jīng)細胞;相關(guān)產(chǎn)品有:LYR細胞、HEM細胞、HEK-AD 293細胞

HS5 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:上皮細胞樣;相關(guān)產(chǎn)品有:huH 1細胞、PLB985細胞、COLO829細胞

SF126 Cells;背景說明:該細胞來源于星形膠質(zhì)細胞瘤;膠質(zhì)纖維酸性蛋白(GFAP)陰性;可以特異地結(jié)合β-內(nèi)啡肽。;傳代方法:1:3傳代;3-4天1次。;生長特性:貼壁生長;形態(tài)特性:成纖維細胞;相關(guān)產(chǎn)品有:KMH-2細胞、MCA 205細胞、MKN 7細胞

MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜

H1648 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:3-1:6傳代;生長特性:貼壁生長;形態(tài)特性:上皮細胞;相關(guān)產(chǎn)品有:HFSF細胞、Wills Eye Research Institute-Retinoblastoma-1細胞、HBE細胞

KM932 Cells;背景說明:B淋巴細胞;EBV轉(zhuǎn)化;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:懸浮;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:T-24細胞、Caco-2細胞、HRC-99細胞

MOLT-3 Cells;背景說明:急性T淋巴細胞白血病;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:懸浮;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:HKBML細胞、NE1-E6E7細胞、BEL-7402細胞

B-104 Cells;背景說明:神經(jīng)母細胞瘤;BDIX;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:COLO-320DM細胞、SaOS細胞、RMS 13細胞

hCMEC/D3 Cells;背景說明:腦微血管;內(nèi)皮 Cells;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:SACC-83細胞、EBTr細胞、MN9D細胞

hCMEC/D3 Cells;背景說明:腦微血管;內(nèi)皮 Cells;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:SACC-83細胞、EBTr細胞、MN9D細胞

Panc 4.03 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2傳代;生長特性:貼壁生長;形態(tài)特性:上皮樣;相關(guān)產(chǎn)品有:WEHI-3細胞、RTE細胞、NCI-H2452細胞

GM28211 Cells(提供STR鑒定圖譜)

HAP1 PCDH9 (-) 2 Cells(提供STR鑒定圖譜)

253JB-V Cells;背景說明:膀胱癌;淋巴結(jié)轉(zhuǎn)移;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:OV2008細胞、HSC-6細胞、NCI-HUT-520細胞

HEK293E Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:4-1:10傳代;每周2次。;生長特性:貼壁生長;形態(tài)特性:上皮細胞樣;相關(guān)產(chǎn)品有:RPMI-7951細胞、H920細胞、Tn-5B1-4細胞

LAC Cells;背景說明:肺癌;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:SGC 7901細胞、CFSC-8B細胞、Panc 5.04細胞

LuCL4 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁或懸浮,詳見產(chǎn)品說明書部分;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:CD 18細胞、BC-025細胞、Baby Hamster Kidney 21細胞

GM00215A Cells;背景說明:肺;自發(fā)永生;雄性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:HOSEpiC細胞、H2122細胞、GM02219D細胞

U-226AR1 Cells;背景說明:骨髓瘤;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:懸浮;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:H-1417細胞、U-937細胞、WML2細胞

HEK/293 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁或懸浮,詳見產(chǎn)品說明書部分;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:VMM5A細胞、Human Corneal Epithelial cells-Transformed細胞、L-M[TK-]細胞

SNU484 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2傳代;生長特性:貼壁或懸浮,詳見產(chǎn)品說明書部分;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:Hs819T細胞、NCIH64細胞、OV-2008細胞

HS306 Cells(提供STR鑒定圖譜)

KOLF2.1J LRRK2 R1441C SNV/SNV Cells(提供STR鑒定圖譜)

MNNG/HOS/DXR1000 Cells(提供STR鑒定圖譜)

NUIGi050-B Cells(提供STR鑒定圖譜)

RG-236 Cells(提供STR鑒定圖譜)

TMPi005-B Cells(提供STR鑒定圖譜)

UD-SCC-7A Cells(提供STR鑒定圖譜)

HG01325 Cells(提供STR鑒定圖譜)

TW01 Cells;背景說明:鼻咽癌;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:WEHI3B細胞、CCD966SK細胞、SKRC-39細胞

38C-13 Cells;背景說明:B淋巴瘤;C3H/eB;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:半貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:MAVER細胞、HT-3細胞、U343細胞

C6661 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:上皮細胞樣;相關(guān)產(chǎn)品有:MOLP-8細胞、THLE-3細胞、NS1細胞

RAW264.7 Cells;背景說明:單核巨噬細胞白血?。恍坌?;BALB/c;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:SK MEL 5細胞、U-266細胞、Panc02-H0細胞

BEAS2B Cells;背景說明:從一位非癌個體的正常人支氣管上皮病理切片分離出上皮細胞。這些細胞用腺病毒12-SV40病毒雜交病毒感染并克隆。DEAS-2B細胞保留了對血清反應(yīng)進行鱗關(guān)分化的能力,并有用于篩選誘導(dǎo)或影響分化及致癌的化學(xué)或生物制劑。細胞角蛋白及SV40抗原染色陽性。;傳代方法:消化3-5分鐘。1:2。3天內(nèi)可長滿;生長特性:貼壁生長;形態(tài)特性:上皮細胞樣;相關(guān)產(chǎn)品有:JOSK-M細胞、MCA 38細胞、WM-239-A細胞

BEAS2B Cells;背景說明:從一位非癌個體的正常人支氣管上皮病理切片分離出上皮細胞。這些細胞用腺病毒12-SV40病毒雜交病毒感染并克隆。DEAS-2B細胞保留了對血清反應(yīng)進行鱗關(guān)分化的能力,并有用于篩選誘導(dǎo)或影響分化及致癌的化學(xué)或生物制劑。細胞角蛋白及SV40抗原染色陽性。;傳代方法:消化3-5分鐘。1:2。3天內(nèi)可長滿;生長特性:貼壁生長;形態(tài)特性:上皮細胞樣;相關(guān)產(chǎn)品有:JOSK-M細胞、MCA 38細胞、WM-239-A細胞

SW 403 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2—1:6傳代,每周換液2-3次;生長特性:貼壁生長;形態(tài)特性:上皮細胞;相關(guān)產(chǎn)品有:NBL_S細胞、4T1-LUC細胞、A375細胞

HCC-4006 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:4-1:6傳代,每周2-3次。;生長特性:貼壁生長;形態(tài)特性:上皮細胞樣;相關(guān)產(chǎn)品有:SNU869細胞、H-841細胞、Suzhou Human Glioma-44細胞

CAOV4 Cells;背景說明:卵巢癌;女性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:G-292, clone A141B1細胞、Hs 766細胞、Panc08.13細胞

G361 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:4傳代,2-3天換液1次。;生長特性:貼壁生長;形態(tài)特性:上皮細胞;相關(guān)產(chǎn)品有:EBNA-293細胞、H-1755細胞、Ly10細胞

BE(2)C Cells;背景說明:神經(jīng)母細胞瘤;骨髓轉(zhuǎn)移;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:SUM 149PT細胞、NT2/D1細胞、BALB/c 3T3 clone A31細胞

BEAS2B Cells;背景說明:從一位非癌個體的正常人支氣管上皮病理切片分離出上皮細胞。這些細胞用腺病毒12-SV40病毒雜交病毒感染并克隆。DEAS-2B細胞保留了對血清反應(yīng)進行鱗關(guān)分化的能力,并有用于篩選誘導(dǎo)或影響分化及致癌的化學(xué)或生物制劑。細胞角蛋白及SV40抗原染色陽性。;傳代方法:消化3-5分鐘。1:2。3天內(nèi)可長滿;生長特性:貼壁生長;形態(tài)特性:上皮細胞樣;相關(guān)產(chǎn)品有:JOSK-M細胞、MCA 38細胞、WM-239-A細胞

BC-021 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁或懸浮,詳見產(chǎn)品說明書部分;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:Highly Aggressively Proliferating Immortalized細胞、BRL細胞、MDA-MB 453細胞

DHL10 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:懸浮;形態(tài)特性:淋巴母細胞;相關(guān)產(chǎn)品有:H1793細胞、TB-1 Lu細胞、32D CL3細胞

TE-14 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:消化3-5分鐘。1:2。3天內(nèi)可長滿。;生長特性:貼壁生長;形態(tài)特性:上皮樣;相關(guān)產(chǎn)品有:A-20細胞、C33A細胞、HEC1A細胞

STBCi314-A Cells(提供STR鑒定圖譜)

UWB1.289 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2傳代;生長特性:貼壁生長 ;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:118MG細胞、NCIH196細胞、FD-LSC-1細胞

TYK-nu Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2傳代;生長特性:貼壁生長;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:SEG-1細胞、Mv 1 Lu (NBL-7)細胞、HTSMC細胞

OCIAML4 Cells;背景說明:急性髓系白血??;女性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:懸浮;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:NG10815細胞、A2780/Taxol細胞、3T3 clone A31細胞

786-0WT Cells;背景說明:該細胞源自一位原發(fā)性腎透明細胞癌患者。該細胞有微絨毛和橋粒,能在軟瓊脂上生長。此細胞生成一種PTH(甲狀旁腺素)樣的多肽,與乳癌和肺癌中生成的肽相似,其N端序列與PTH相似,具有PTH樣活性,分子量為6000D。;傳代方法:1:2傳代;生長特性:貼壁生長;形態(tài)特性:上皮樣;相關(guān)產(chǎn)品有:PATU-S細胞、BXPC3細胞、TW 01細胞

MNNG-HOS (Cl#5) Cells;背景說明:骨肉瘤;女性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:P31-FUJ細胞、HCGC細胞、Hi-5細胞

3T3 clone A31 Cells;背景說明:胚胎;成纖維;自發(fā)永生;雄性;BALB/c;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:EC-109細胞、NB-4細胞、BDCM細胞

Ly3 Cells;背景說明:彌漫大B淋巴瘤;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:懸浮;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:NCI-H295R細胞、MDA-MB-330細胞、LLC-WRC 256細胞

Hu-P-T4 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2傳代;生長特性:貼壁生長;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:COV362細胞、697細胞、Menschliche Und Tierische Zellkulture-3細胞

MCF7[MCF-7]人乳腺癌細胞全年復(fù)蘇|已有STR圖譜

H2122 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:3-1:4傳代;每周換液2-3次。;生長特性:貼壁生長;形態(tài)特性:淋巴母細胞;相關(guān)產(chǎn)品有:HTR-8/SV-neo細胞、H2023細胞、RMa-bm細胞

SKRC-20 Cells;背景說明:腎癌;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:NCI-H2342細胞、Line 697細胞、CNE2Z細胞

YES 2 Cells;背景說明:食管鱗癌;男性;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:SNU520細胞、149 PT細胞、aTC1 Clone 6細胞

Madison 109 Cells;背景說明:肺癌;BALB/c;傳代方法:1:2-1:3傳代;每周換液2-3次。;生長特性:貼壁;形態(tài)特性:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:NCI-BL2141細胞、GC9811-P細胞、TSU-Pr1細胞

P31FUJ Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:5傳代;生長特性:懸浮生長;形態(tài)特性:淋巴母細胞;相關(guān)產(chǎn)品有:SNU251細胞、MDA435細胞、EOC20細胞

D324 Med Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:4-1:6傳代;每周換液2-3次。;生長特性:貼壁生長;形態(tài)特性:多邊形;相關(guān)產(chǎn)品有:Vero 76細胞、CL1-0細胞、Ls-174-T細胞

BayGenomics ES cell line CSC010 Cells(提供STR鑒定圖譜)

BayGenomics ES cell line RRS529 Cells(提供STR鑒定圖譜)

BayGenomics ES cell line YTC010 Cells(提供STR鑒定圖譜)

III A4.1 Cells(提供STR鑒定圖譜)

PCRP-RFX5-1D11 Cells(提供STR鑒定圖譜)

L6.C11 Cells(提供STR鑒定圖譜)

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Thirteen new p53 gene mutants identified among 41 human breast cancer cell lines.

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PubMed=17088437; DOI=10.1158/1535-7163.MCT-06-0433; PMCID=PMC2705832

Ikediobi O.N., Davies H.R., Bignell G.R., Edkins S., Stevens C., O'Meara S., Santarius T., Avis T., Barthorpe S., Brackenbury L., Buck G., Butler A.P., Clements J., Cole J., Dicks E., Forbes S., Gray K., Halliday K., Harrison R., Hills K., Hinton J., Hunter C., Jenkinson A., Jones D., Kosmidou V., Lugg R., Menzies A., Miroo T., Parker A., Perry J., Raine K.M., Richardson D., Shepherd R., Small A., Smith R., Solomon H., Stephens P.J., Teague J.W., Tofts C., Varian J., Webb T., West S., Widaa S., Yates A., Reinhold W.C., Weinstein J.N., Stratton M.R., Futreal P.A., Wooster R.

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Neve R.M., Chin K., Fridlyand J., Yeh J., Baehner F.L., Fevr T., Clark L., Bayani N., Coppe J.-P., Tong F., Speed T., Spellman P.T., DeVries S., Lapuk A., Wang N.J., Kuo W.-L., Stilwell J.L., Pinkel D., Albertson D.G., Waldman F.M., McCormick F., Dickson R.B., Johnson M.D., Lippman M.E., Ethier S.P., Gazdar A.F., Gray J.W.

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Azari S., Ahmadi N., Jeddi-Tehrani M., Shokri F.

Profiling and authentication of human cell lines using short tandem repeat (STR) loci: report from the National Cell Bank of Iran.

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Genes Chromosomes Cancer 46:543-558(2007)


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Hughes L., Malone C., Chumsri S., Burger A.M., McDonnell S.

Characterisation of breast cancer cell lines and establishment of a novel isogenic subclone to study migration, invasion and tumourigenicity.

Clin. Exp. Metastasis 25:549-557(2008)


PubMed=19372543; DOI=10.1158/1535-7163.MCT-08-0921; PMCID=PMC4020356

Lorenzi P.L., Reinhold W.C., Varma S., Hutchinson A.A., Pommier Y., Chanock S.J., Weinstein J.N.

DNA fingerprinting of the NCI-60 cell line panel.

Mol. Cancer Ther. 8:713-724(2009)


PubMed=19582160; DOI=10.1371/journal.pone.0006146; PMCID=PMC2702084

Kao J., Salari K., Bocanegra M., Choi Y.-L., Girard L., Gandhi J., Kwei K.A., Hernandez-Boussard T., Wang P., Gazdar A.F., Minna J.D., Pollack J.R.

Molecular profiling of breast cancer cell lines defines relevant tumor models and provides a resource for cancer gene discovery.

PLoS ONE 4:E6146-E6146(2009)


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Wadlow R.C., Wittner B.S., Finley S.A., Bergquist H., Upadhyay R., Finn S.P., Loda M., Mahmood U., Ramaswamy S.

Systems-level modeling of cancer-fibroblast interaction.

PLoS ONE 4:E6888-E6888(2009)


DOI=10.1186/gb-2010-11-s1-p8

Chiang Y.-S., Seng L.Y., Lin Y.-Y., Chen S.-H., Su Y.-C., Chen T.-H., Kuo H.-C., Chen C.-H., Chiu K.-P.

Single cell transcriptome analysis upon MCF-7 breast cancer.

Genome Biol. 11 Suppl. 1:P8-P8(2010)


DOI=10.25904/1912/1434

Morrison B.J.

Breast cancer stem cells: tumourspheres and implications for therapy.

Thesis PhD (2010); Griffith University; Brisbane; Australia


PubMed=19593635; DOI=10.1007/s10549-009-0460-8

Hollestelle A., Nagel J.H.A., Smid M., Lam S., Elstrodt F., Wasielewski M., Ng S.S., French P.J., Peeters J.K., Rozendaal M.J., Riaz M., Koopman D.G., ten Hagen T.L.M., de Leeuw B.H.C.G.M., Zwarthoff E.C., Teunisse A.F.A.S., van der Spek P.J., Klijn J.G.M., Dinjens W.N.M., Ethier S.P., Clevers H.C., Jochemsen A.G., den Bakker M.A., Foekens J.A., Martens J.W.M., Schutte M.

Distinct gene mutation profiles among luminal-type and basal-type breast cancer cell lines.

Breast Cancer Res. Treat. 121:53-64(2010)


PubMed=20070913; DOI=10.1186/1471-2407-10-15; PMCID=PMC2836299

Tsuji K., Kawauchi S., Saito S., Furuya T., Ikemoto K., Nakao M., Yamamoto S., Oka M., Hirano T., Sasaki K.

Breast cancer cell lines carry cell line-specific genomic alterations that are distinct from aberrations in breast cancer tissues: comparison of the CGH profiles between cancer cell lines and primary cancer tissues.

BMC Cancer 10:15.1-15.10(2010)


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)


DOI=10.4172/2157-7145.S2-005

Fang R.-X., Shewale J.G., Nguyen V.T., Cardoso H., Swerdel M.R., Hart R.P., Furtado M.R.

STR profiling of human cell lines: challenges and possible solutions to the growing problem.

J. Forensic Res. 2 Suppl. 2:5-5(2011)


PubMed=21247443; DOI=10.1186/gb-2011-12-1-r6; PMCID=PMC3091304

Edgren H., Murumagi A., Kangaspeska S., Nicorici D., Hongisto V., Kleivi K., Rye I.H., Nyberg S., Wolf M., Borresen-Dale A.-L., Kallioniemi O.-P.

Identification of fusion genes in breast cancer by paired-end RNA-sequencing.

Genome Biol. 12:R6.1-R6.13(2011)


PubMed=21378333

Ford C.H.J., Al-Bader M., Al-Ayadhi B., Francis I.

Reassessment of estrogen receptor expression in human breast cancer cell lines.

Anticancer Res. 31:521-527(2011)


PubMed=22068913; DOI=10.1073/pnas.1111840108; PMCID=PMC3219108

Gillet J.-P., Calcagno A.M., Varma S., Marino M., Green L.J., Vora M.I., Patel C., Orina J.N., Eliseeva T.A., Singal V., Padmanabhan R., Davidson B., Ganapathi R., Sood A.K., Rueda B.R., Ambudkar S.V., Gottesman M.M.

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Proc. Natl. Acad. Sci. U.S.A. 108:18708-18713(2011)


PubMed=22278370; DOI=10.1074/mcp.M111.014050; PMCID=PMC3316730

Geiger T., Wehner A., Schaab C., Cox J., Mann M.

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Kong D.-X., Yamori T.

JFCR39, a panel of 39 human cancer cell lines, and its application in the discovery and development of anticancer drugs.

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PLoS ONE 7:E31628-E31628(2012)


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The Cancer Cell Line Encyclopedia enables predictive modelling of anticancer drug sensitivity.

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Metabolite profiling identifies a key role for glycine in rapid cancer cell proliferation.

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CLPUB00336

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Catherine Frances Mallon's 'immortal cells'.

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miRNA expression profiling of 51 human breast cancer cell lines reveals subtype and driver mutation-specific miRNAs.

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Lu Y.-H., Soong T.D., Elemento O.

A novel approach for characterizing microsatellite instability in cancer cells.

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PLK1 signaling in breast cancer cells cooperates with estrogen receptor-dependent gene transcription.

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Cancer Res. 73:4372-4382(2013)


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

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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.

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Cell Rep. 4:609-620(2013)


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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.

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

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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.

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

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

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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.

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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.

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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"



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2025-02-22
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