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HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜,HT-29
  • HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜,HT-29
  • HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜,HT-29
  • HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜,HT-29

HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜

價格 詢價
包裝 1000000Cells/瓶 2000000Cells/瓶
最小起訂量 1000000Cells/瓶
發(fā)貨地 上海
文件下載 檢測報告COA
更新日期 2025-02-23
QQ交談 微信洽談

產(chǎn)品詳情

中文名稱:HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜英文名稱:HT-29
品牌: ATCC、DSMZ等產(chǎn)地: 美國、歐洲、德國等
保存條件: 低溫避光純度規(guī)格: HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜
產(chǎn)品類別: ATCC細胞庫
種屬: 詳見細胞說明書組織: 詳見細胞說明書
細胞系: 詳見細胞說明書細胞形態(tài): 詳見細胞說明書
生長狀態(tài): 詳見細胞說明書靶點: 詳見細胞說明書
應(yīng)用: 詳見細胞說明書貨號: 詳見細胞說明書
規(guī)格: 1*10^6cells/T25(1瓶)或1ml凍存管(2支)是否進口: 來源ATCC、DSMZ、ECACC等細胞庫
組織來源: 詳見細胞說明書是否是腫瘤細胞: 詳見細胞說明書
器官來源: 詳見細胞說明書品系: 詳見細胞說明書
免疫類型: 詳見細胞說明書物種來源: 人源或其它動物來源等
保質(zhì)期: 可長期保存(液氮低溫凍存)
2025-02-23 HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜 HT-29 1000000Cells/瓶/1RMB;2000000Cells/瓶/1RMB 1 ATCC、DSMZ等 美國、歐洲、德國等 低溫避光 HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜 ATCC細胞庫

"HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送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

公司細胞系形態(tài)漂亮、增殖倍數(shù)高、純度高、功能性強,細胞培養(yǎng)就跟養(yǎng)孩子一個樣。養(yǎng)孩子要喂奶,養(yǎng)細胞要加補液,都需要在前期補充足夠的營養(yǎng),初始狀態(tài)的細胞或剛剛復(fù)蘇的細胞還要適量加入血清或細胞因子來幫助它們的存活增殖,如果營養(yǎng)物質(zhì)缺乏,細胞就會不生長甚至死亡。養(yǎng)孩子要從小培養(yǎng)學(xué)習(xí),養(yǎng)細胞也得培養(yǎng)寶寶順利生下來,你會經(jīng)常撫摸他,給他看各種顏色,刺激他的五感。細胞也是一樣,分離后的細胞需要使用特定的細胞因子進行活化、增殖。另外加入因子的種類、因子的濃度、加入時間、加入順序都會影響細胞最終的結(jié)果。養(yǎng)孩子最怕孩子生病,養(yǎng)細胞最怕被污染,平時你會仔細觀察寶寶是否嘔吐、是否突然哭鬧,猜測寶寶是否生病了。對于細胞,我們也需要時刻進行觀察的,假如培養(yǎng)液渾濁(污染了),則需要換液后加抗生素;假如細胞增殖不明顯,形態(tài)變差,則可能是因為營養(yǎng)不足了,對貼壁細胞可以消化后重新用新的培養(yǎng)基接種并加倍加入細胞因子含量;對懸浮細胞增殖能力不強的,則不著急補液,只是先補加血清、細胞因子看是否可以好轉(zhuǎn)。培養(yǎng)時還得全程在無菌的環(huán)境,一個小小的偏差,細胞就會死亡。

換液周期:每周2-3次

Potorous tridactylus Kidney 2 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:KYSE30細胞、RCC 7860細胞、Farage細胞

OE33 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:HPMC細胞、Ramos 2G6 4C10細胞、SK Hep1細胞

CWR22Rv1 Cells;背景說明:22RV1是來自異種移植(在閹割引起前列腺癌衰退又在其父親的雄性激素信賴型CWR22嫁接后復(fù)發(fā)的小鼠中連續(xù)傳代)的人前列腺癌上皮細胞系。此細胞系表達前列腺特異抗原。二羥基睪丸脂酮輕微刺激細胞生長,經(jīng)westernblot檢測溶解產(chǎn)物與抗雄性激素受體抗體起免疫反應(yīng)。EGF刺激細胞生長,但TGFβ-1不能抑制細胞生長。該細胞在裸鼠中成瘤。;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:NCI-H2110細胞、Det 562細胞、HME-1細胞

HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜

背景信息:該細胞是1964年由FoghJ用移植培養(yǎng)方法和含15%FBS的F12培養(yǎng)從原發(fā)性腫瘤分離的。近來,已建株的培養(yǎng)細胞用含血清的McCoy's5a培養(yǎng)基培養(yǎng)。該細胞系在裸鼠中成瘤,也能在類固醇處理的地鼠中成瘤。該細胞可合成IgA、A、TGFβ結(jié)合蛋白和黏素;表達尿激酶受體,但沒有檢測到血漿酶原活性;不表達CD4,但細胞表面表達半乳糖神經(jīng)酰胺(HIV的可能替代受體)。該細胞系癌基因c-myc、K-ras、H-ras、N-ras、Myb、sis、fos陽性;p53基因過表達,并且在273位密碼子處發(fā)

┈訂┈購(技術(shù)服務(wù))┈熱┈線:1┈3┈6┈4┈1┈9┈3┈0┈7┈9┈1【微信同號】┈Q┈Q:3┈1┈8┈0┈8┈0┈7┈3┈2┈4;

DSMZ菌株保藏中心成立于1969年,是德國的國家菌種保藏中心。該中心一直致力于細菌、真菌、質(zhì)粒、抗菌素、人體和動物細胞、植物病毒等的分類、鑒定和保藏工作。DSMZ菌種保藏中心是歐洲規(guī)模最大的生物資源中心,保藏有動物細胞500多株。Riken BRC成立于1920年,是英國的國家菌種保藏中心。該中心一直致力于細菌、真菌、植物病毒等的分類、鑒定和保藏工作。日本Riken BRC(Riken生物資源保藏中心)是全球三大典型培養(yǎng)物收集中心之一。Riken保藏中心提供了很多細胞系。在世界范圍內(nèi),這些細胞系,都在醫(yī)學(xué)、科學(xué)和獸醫(yī)中具有重要意義。Riken生物資源中心支持了各種學(xué)術(shù)、健康、食品和獸醫(yī)機構(gòu)的研究工作,并在世界各地不同組織的微生物實驗室和研究機構(gòu)中使用。

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)

來源說明:細胞主要來源ATCC、ECACC、DSMZ、RIKEN等細胞庫

HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜

物種來源:人源、鼠源等其它物種來源

NCC-IT Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:4—1:8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:NCI-H2198細胞、MGHU1細胞、SUP-T1細胞

V 79 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:Liver-02細胞、LS 123細胞、Microbiological Associates-104細胞

NCIH1651 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:KG-1細胞、HuT 78細胞、NCIH1792細胞

HNE-1 Cells;背景說明:鼻咽部;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:SP-2細胞、DMS 79細胞、NCI-SNU-119細胞

┈訂┈購(技術(shù)服務(wù))┈熱┈線:1┈3┈6┈4┈1┈9┈3┈0┈7┈9┈1【微信同號】┈Q┈Q:3┈1┈8┈0┈8┈0┈7┈3┈2┈4;

形態(tài)特性:上皮細胞樣

細胞復(fù)蘇后貼壁細胞較少的問題分析:總結(jié)1:復(fù)蘇過程沒有問題,是否是從拿出直接放入溫水,還有培養(yǎng)箱,二氧化碳濃度,培養(yǎng)基、PH值等環(huán)節(jié)。要么加GAO濃度FBS 15-20%,看看能否幫助貼壁,當(dāng)然也需要考慮血清問題,還有確信拿來的細胞沒問題??偨Y(jié)2:首先應(yīng)該懷疑凍存,實際上復(fù)蘇出問題的可能非常小,因為操作簡單,而且死板。1、你凍存的時候是不是消化的時間過長,這是一般人所注意不到的,即使書上也不講這個問題,太長的消化時間會讓細胞復(fù)蘇時失去貼壁能力,表現(xiàn)為先貼后死,原因是在你復(fù)蘇的時候細胞已進入凋亡程序,不可逆轉(zhuǎn)的死亡。2、你的凍存HAO不HAO,是什么,甘油還是DMSO,質(zhì)量非常重要,否則也會死亡。3、你的凍存的量加的是不是太多,AC推薦是不超過7%,大于5%,太多也不HAO。4、你在凍存的時候是不是把DMSO混均勻,這個有一些影響,但不算太大。5、你的凍存是否按部就班,就是所溫度梯度是不是把握嚴(yán)格,很多人容易忘卻這個事情,因為這個東西流程長。6、如果你細胞污染,你是否能很快看到,我比我的導(dǎo)師能早一天看到污染。從這個角度講建議去除離心這步。7、你的細胞在凍存前是否過密。還有,不贊成孵箱污染這個概念的,所有在一個孵箱里的細胞都污染一個細菌的話,這個細菌是源于孵箱的,但這不代表孵箱污染,因為孵箱無論你如何處理都有大量的細菌,問題在操作。每次污染的原因都要盡可能的找,以后就不犯同樣的問題,這個很重要,不能靠猜,否則你就有可能細胞養(yǎng)絕Zui后換課題,這個見得太多了,別不當(dāng)會事。

EFM-192A Cells;背景說明: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:H524細胞、Anip 973細胞、Mv1Lu細胞

SUM52 Cells;背景說明: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:PC-12細胞、NCIH2081細胞、NCI-H524細胞

SUDHL4 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:3T3-Swiss albino細胞、MPC-11細胞、GM0637細胞

NTERA-2 Cells;背景說明:畸胎瘤;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:TCMK1細胞、FD-LSC-1細胞、NCI-H378細胞

SK-N-F1 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:4傳代,每周換液2次;生長特性:貼壁生長;形態(tài)特性:上皮樣;相關(guān)產(chǎn)品有:Hs 274.T細胞、IM-95細胞、SW 1271細胞

H-220 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:Cor L51細胞、SV-HUC-1細胞、PK 15細胞

RM1 Cells;背景說明:前列腺癌;C57BL/6;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:NCIH208細胞、RAMSCs細胞、CFPAC-1細胞

OVCAR-420 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:LICR-HN-6細胞、MDA435細胞、SNU-216細胞

LLC-PK1 Cells;背景說明:腎;自發(fā)永生;Hampshire;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:TR146細胞、RBE4細胞、A549/ATCC細胞

HCT 8 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:KNS42細胞、P-388D1細胞、WEHI 231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

TK-10 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:Panc 03.27細胞、FLC-7細胞、Hep2細胞

NCIH2172 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:3-1:6傳代;每周換液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:MCA-205細胞、KY-50細胞、HBMEC細胞

C3H10T1/2CL8 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:SKNFI細胞、TE-15細胞、H-2073細胞

MDA-MB436 Cells;背景說明:該細胞源于一名43歲患有乳腺腺癌女性的胸腔積液。;傳代方法:1:2傳代,每周換液2—3次;生長特性:貼壁生長;形態(tài)特性:多角形;相關(guān)產(chǎn)品有:LA-795細胞、X63Ag8.653細胞、Colon 38細胞

VP 229 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:COLO-680N細胞、BTI-Tn-5B1-4細胞、UM-UC3細胞

SK 1 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:維持細胞濃度在1×105-2×105,每周補液2-3次。;生長特性:懸浮生長;形態(tài)特性:球形的;相關(guān)產(chǎn)品有:Colo-206F細胞、SW 756細胞、Hep 3B2細胞

Abcam HEK293T EIF2AK4 KO 1 Cells(提供STR鑒定圖譜)

AG09980 Cells(提供STR鑒定圖譜)

BayGenomics ES cell line NPX373 Cells(提供STR鑒定圖譜)

BayGenomics ES cell line XC597 Cells(提供STR鑒定圖譜)

BT-L Cells(提供STR鑒定圖譜)

COST Cells(提供STR鑒定圖譜)

DA04061 Cells(提供STR鑒定圖譜)

DA05931 Cells(提供STR鑒定圖譜)

GM00298 Cells(提供STR鑒定圖譜)

JVM-2 Cells;背景說明:該細胞是 J.V.Melo從一位63歲患有套細胞淋巴瘤白人女性外周血中分離建立的,經(jīng)EBV介導(dǎo)獲得永生化,該細胞表達p16和細胞周期蛋白D2,低水平表達細胞周期蛋白D1。;傳代方法:1:3傳代,2-3天傳一代;生長特性:懸浮生長;形態(tài)特性:淋巴母細胞樣;相關(guān)產(chǎn)品有:3T3-L1 ad細胞、Caco-2 BBe細胞、SaOS-2細胞

HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜

MRC-5 Cells;背景說明:MRC-5細胞系來自14周齡男性胎兒的正常肺組織,該細胞老化前能傳代42~46個倍增時間。;傳代方法:1:2-1:5傳代;每周1-2次。;生長特性:貼壁生長;形態(tài)特性:成纖維細胞樣;相關(guān)產(chǎn)品有:Huh7.5細胞、SW 780細胞、ST2細胞

FF-WT-BJ 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:成纖維細胞樣;相關(guān)產(chǎn)品有:hTERT-HPNE細胞、R 2 C細胞、H-4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

Walker256-TC Cells;背景說明:乳腺癌;雌性;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:WM239細胞、SW-954細胞、HN4細胞

IMR 32 Cells;背景說明:該細胞是1967年4月由NicholsWW,LeeJ和DwightS建立,來源于一名13月齡白人男嬰腹部腫塊,臨床診斷為神經(jīng)母細胞瘤,伴有極少部位的類器官樣分化。;傳代方法:1:2傳代;生長特性:貼壁生長;形態(tài)特性:存在兩種細胞類型,小的神經(jīng)母細胞樣細胞和大的透明成纖維樣細胞;相關(guān)產(chǎn)品有:RenCa細胞、MDA-MB-134 VI細胞、H1048細胞

28F11 Cells(提供STR鑒定圖譜)

Ca 9-22 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:貼壁生長;形態(tài)特性:上皮細胞;相關(guān)產(chǎn)品有:Caco-2 BBe細胞、CHL細胞、CHP212細胞

H-322 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:LOU-NH91細胞、NCI-H125細胞、KLM1細胞

NCIH2030 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:上皮細胞樣;相關(guān)產(chǎn)品有:DoHH-2細胞、RH-30細胞、GP2-293細胞

MT-4 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:懸浮生長;形態(tài)特性:淋巴母細胞樣;圓形;相關(guān)產(chǎn)品有:HPAC細胞、PANC0813細胞、BBE細胞

JOSK-M Cells;背景說明:急性單核細胞白血病;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:SKNO-1細胞、Colo699細胞、HcaF細胞

CRFK Cells;背景說明:腎;自發(fā)永生;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:TCC-PAN2細胞、JVM3細胞、NCI.H522細胞

HPAF-II 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:Reh細胞、DMS114細胞、A375-SM細胞

Asian Medical Center-Head and Neck cancer-8 Cells;背景說明:喉癌;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:L 540細胞、RMC細胞、P3-X63-Ag8-653細胞

GM28012 Cells(提供STR鑒定圖譜)

HAP1 PARP6 (-) 3 Cells(提供STR鑒定圖譜)

Mo7e 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:H-2196細胞、CAKI 2細胞、NCI-H510細胞

NCIH2009 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法: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:FD-LSC-1細胞、CCD1095Sk細胞、CT26.WT細胞

RAMOS2G64C10 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法: 維持細胞濃度在2×105/ml-1×106/ml;根據(jù)細胞濃度每2-3天補液1次。;生長特性:懸浮生長 ;形態(tài)特性:淋巴母細胞樣;相關(guān)產(chǎn)品有:McCoy細胞、MADB106細胞、U-87MG細胞

Rat-1 Cells;背景說明:成纖維細胞;自發(fā)永生;Fischer 344;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:GM00215A細胞、MDA231細胞、KU-812-F細胞

Ketr3 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:HRA19細胞、VE細胞、RPMI7666細胞

H647ell Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:3-1:6傳代;每周換液2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:SMMC-7721細胞、C3H10T1/2細胞、OCIAML4細胞

624 Cells;背景說明:黑色素瘤;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:MCMEC細胞、D10.G4.1細胞、CMT 64細胞

HCC-1588 Cells;背景說明:肺鱗癌;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:H-2087細胞、ARH77細胞、KU 19-19細胞

HS-24 Cells(提供STR鑒定圖譜)

KOLF2.1J GBA1 D448V SNV/SNV Cells(提供STR鑒定圖譜)

MMPR-11 Cells(提供STR鑒定圖譜)

NUIGi033-A Cells(提供STR鑒定圖譜)

RG-201 Cells(提供STR鑒定圖譜)

Ubigene HCT 116 YAP1 KO Cells(提供STR鑒定圖譜)

WBD001816 Cells(提供STR鑒定圖譜)

HG02056 Cells(提供STR鑒定圖譜)

MCF 7B Cells;背景說明:浸潤性導(dǎo)管癌;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:J-111細胞、CCD 1112SK細胞、Hep 2細胞

Leukemia L1210 Cells;背景說明:該細胞源于用0.2%甲基膽蒽(溶解)涂抹雌性小鼠的皮膚誘發(fā)的腫瘤,鼠痘病毒陰性。;傳代方法:1:2傳代;生長特性:懸浮生長;形態(tài)特性:淋巴母細胞樣;相關(guān)產(chǎn)品有:Normal Rat, August 3, 1983細胞、NCI.H226細胞、HCGC細胞

A2780/Taxol 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:RT112細胞、OVMANA細胞、HSC/mHSC細胞

Pa017C 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:PLA802細胞、CWR22Rv1細胞、Li-7細胞

b.End3 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:Calu 6細胞、C1498細胞、8305-C細胞

NWA Cells;背景說明:這株細胞有EB病毒基因組。;傳代方法:1:2傳代。3天內(nèi)可長滿。;生長特性:懸浮生長 ;形態(tài)特性:淋巴母細胞樣;相關(guān)產(chǎn)品有:NCI H2106細胞、OCI AML3細胞、Natural Killer-92細胞

Swiss 3T3 Cells;背景說明:3T3細胞株是1962年Todaro G和Green H從分離的瑞士小鼠胚胎中建立的;該細胞的生長受接觸性抑制,匯合狀態(tài)的單層細胞密度為40000個細胞/平方厘米;檢測結(jié)果顯示該細胞鼠痘病毒陰性;在中生長較好,在某些玻璃表面上可能狀態(tài)不佳;細胞生長飽和時其密度可以達到約50000 cells/cm2。;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:成纖維細胞樣;相關(guān)產(chǎn)品有:JROECL 19細胞、624細胞、HNE2細胞

SU-DHL6 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:3—1:6傳代,3—4天換液1次;生長特性:懸浮生長 ;形態(tài)特性:淋巴母細胞樣;相關(guān)產(chǎn)品有:HuT78細胞、NCI-H661細胞、IOSE-29細胞

SK-N-BE-2 Cells;背景說明:1972年11月從一們多次化療及放療的擴散性神經(jīng)母細胞瘤患兒骨髓穿刺物中建立了SK-N-BE(2)神經(jīng)母細胞瘤細胞株。 該細胞顯示中等水平的多巴胺-β-羥基酶活性。 有報道稱SK-N-BE(2)細胞的飽和濃度超過1x106細胞/平方厘米。細胞形態(tài)多樣,有的有長突觸,有的呈上皮細胞樣。 細胞會聚集,形成團塊并浮起;傳代方法:1:2傳代;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:ID8/MOSEC細胞、BpRc1細胞、SK-CO-1細胞

CCRF/CEM Cells;背景說明:G.E. Foley 等人建立了類淋巴母細胞細胞株CCRF-CEM。 細胞是1964年11月從一位四歲白人女性急性淋巴細胞白血病患者的外周血白血球衣中得到。此細胞系從香港收集而來。;傳代方法:1:2傳代。3天內(nèi)可長滿。;生長特性:懸浮生長;形態(tài)特性:淋巴母細胞樣;相關(guān)產(chǎn)品有:M-1細胞、PL 5細胞、DHBE細胞

OAW-42 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:SKNDZ細胞、Granta519細胞、NCIH2085細胞

OCI/AML-2 Cells;背景說明:急性髓系白血病;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:HCC94細胞、SKNFI細胞、HC11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

B16-F10 Cells;背景說明:B16-F10是B16-F0的亞系。;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:詳見產(chǎn)品說明書;相關(guān)產(chǎn)品有:Sp2/mIL-6細胞、HEK293-A細胞、EU-4細胞

U-343-MG 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:OUMS-27細胞、CMT 93細胞、H1568細胞

STBCi283-A Cells(提供STR鑒定圖譜)

ECC12 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:HEK-EBNA細胞、U-118 MG細胞、Tadarida brasiliensis 1 lung細胞

S91 Cells;背景說明:黑色素瘤;雄性;DBA;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:EFM192細胞、Walker-256細胞、MDAMB134細胞

Hs 863.T Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:2-1:4傳代;每周換液2-3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:CHO-Lec1細胞、A431細胞、WEHI-231細胞

PL11 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:BHK細胞、Madin Darby Canine Kidney細胞、PF-382細胞

MIN6 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:NCIH1568細胞、10RGB細胞、LS 123細胞

AX-Mel Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:4-1:6傳代,2-3天換液1次。;生長特性:貼壁生長;形態(tài)特性:上皮細胞;相關(guān)產(chǎn)品有:TCMK-1細胞、OCUM-1細胞、AE 1201細胞

HT-29人結(jié)腸癌細胞代次低|培養(yǎng)基|送STR圖譜

SNU-423 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:CNE-2細胞、SRA01/04 (HLE)細胞、CTLA4 Ig-24細胞

U-118-MG Cells;背景說明:注意: 據(jù)報道來自不同個體的膠質(zhì)母細胞瘤細胞株U-118 MG (HTB-15) 和 U-138 MG (HTB-16)有著一致的VNTR和相近的STR模式。 U-118 MG 和 U-138 MG細胞遺傳學(xué)上很相似并有至少六個衍生標(biāo)記染色體。 這是1966年至1969年間J. Ponten和同事從惡性神經(jīng)膠質(zhì)瘤中構(gòu)建的細胞株中的一株(其它包括ATCC HTB-14和 ATCC HTB-16 and ATCC HTB-17)。 1987年用BM-Cycline培養(yǎng)6周去除了支原體污染。 ;傳代方法: 消化3-5分鐘。1:2傳代。3天內(nèi)可長滿。;生長特性:貼壁生長;形態(tài)特性:混合型;相關(guān)產(chǎn)品有:KP4細胞、Hs611T細胞、NB-9細胞

STTG1 Cells;背景說明:詳見相關(guān)文獻介紹;傳代方法:1:3—1:6傳代;每周換液2-3次;生長特性:貼壁生長;形態(tài)特性:星形膠質(zhì)細胞;相關(guān)產(chǎn)品有:QGY 7701細胞、LNCaP-Clone-FGC細胞、SKRC20細胞

Capan-2 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:多邊形;相關(guān)產(chǎn)品有:H-1341細胞、Hopkins-92細胞、WEHI-3B細胞

HBSMC 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:Hs 832(C).T細胞、HC11 Mammary Epithelium細胞、EL4細胞

SLMT-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:L5178Y TK+/- (clone 3.7.2C)細胞、SW954細胞、Walker-256-TC細胞

HBL-100 Cells;背景說明:該細胞由E.V.Gaffney及其同事從一位沒有乳癌家族史的供者乳汁中建立,培養(yǎng)出來的細胞染色體組型在第7代時就不正常;電鏡照片顯示有微絲、張力原纖維和橋粒;Southern轉(zhuǎn)移表明有整合型SV40病毒基因,當(dāng)作正常細胞。;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:Instituto Biologico-Rim Suino-2細胞、BT-20細胞、H-2170細胞

Hs819.T 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:貼壁生長;形態(tài)特性:成纖維;相關(guān)產(chǎn)品有:CBRH7919細胞、SF 126細胞、786.O細胞

BayGenomics ES cell line RRO624 Cells(提供STR鑒定圖譜)

BayGenomics ES cell line YHC102 Cells(提供STR鑒定圖譜)

HCD-57 SHP2-E76K Cells(提供STR鑒定圖譜)

PCRP-CCDC101-1D10 Cells(提供STR鑒定圖譜)

BP8 Cells(提供STR鑒定圖譜)

HPS0320 Cells(提供STR鑒定圖譜)

" "PubMed=327080; DOI=10.1093/jnci/59.1.221

Fogh J., Fogh J.M., Orfeo T.

One hundred and twenty-seven cultured human tumor cell lines producing tumors in nude mice.

J. Natl. Cancer Inst. 59:221-226(1977)


PubMed=833871; DOI=10.1093/jnci/58.2.209

Fogh J., Wright W.C., Loveless J.D.

Absence of HeLa cell contamination in 169 cell lines derived from human tumors.

J. Natl. Cancer Inst. 58:209-214(1977)


PubMed=864752; DOI=10.1093/jnci/58.6.1743

Marshall C.J., Franks L.M., Carbonell A.W.

Markers of neoplastic transformation in epithelial cell lines derived from human carcinomas.

J. Natl. Cancer Inst. 58:1743-1751(1977)


PubMed=77569; DOI=10.1111/j.1399-0039.1978.tb01259.x

Espmark J.A., Ahlqvist-Roth L., Sarne L., Persson A.

Tissue typing of cells in culture. III. HLA antigens of established human cell lines. Attempts at typing by the mixed hemadsorption technique.

Tissue Antigens 11:279-286(1978)


PubMed=626984

Erickson L.C., Osieka R., Kohn K.W.

Differential repair of 1-(2-chloroethyl)-3-(4-methylcyclohexyl)-1- nitrosourea-induced DNA damage in two human colon tumor cell lines.

Cancer Res. 38:802-808(1978)


PubMed=468301; PMCID=PMC1457289

Trejdosiewicz L.K., Trejdosiewicz A.J., Ling N.R., Dykes P.W.

Growth enhancing property of human monocytes from normal donors and cancer patients.

Immunology 37:247-252(1979)


PubMed=6256643; DOI=10.1038/288724a0

Day R.S. 3rd, Ziolkowski C.H.J., Scudiero D.A., Meyer S.A., Lubiniecki A.S., Girardi A.J., Galloway S.M., Bynum G.D.

Defective repair of alkylated DNA by human tumour and SV40-transformed human cell strains.

Nature 288:724-727(1980)


PubMed=6445228

Kimball P.M., Brattain M.G.

Isolation of a cellular subpopulation from a human colonic carcinoma cell line.

Cancer Res. 40:1574-1579(1980)


PubMed=22282976; DOI=10.1093/carcin/1.1.21

Day R.S. 3rd, Ziolkowski C.H.J., Scudiero D.A., Meyer S.A., Mattern M.R.

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

Carcinogenesis 1:21-32(1980)


PubMed=7017212; DOI=10.1093/jnci/66.6.1003

Pollack M.S., Heagney S.D., Livingston P.O., Fogh J.

HLA-A, B, C and DR alloantigen expression on forty-six cultured human tumor cell lines.

J. Natl. Cancer Inst. 66:1003-1012(1981)


PubMed=7459858

Rousset M., Zweibaum A., Fogh J.

Presence of glycogen and growth-related variations in 58 cultured human tumor cell lines of various tissue origins.

Cancer Res. 41:1165-1170(1981)


PubMed=6220172

Dracopoli N.C., Fogh J.

Polymorphic enzyme analysis of cultured human tumor cell lines.

J. Natl. Cancer Inst. 70:469-476(1983)


PubMed=6825208; DOI=10.1093/carcin/4.2.199

Yarosh D.B., Foote R.S., Mitra S., Day R.S. 3rd

Repair of O6-methylguanine in DNA by demethylation is lacking in Mer- human tumor cell strains.

Carcinogenesis 4:199-205(1983)


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=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=3518877; DOI=10.3109/07357908609038260

Fogh J.

Human tumor lines for cancer research.

Cancer Invest. 4:157-184(1986)


PubMed=3472642; DOI=10.1016/0165-4608(87)90267-6

Chen T.-R., Drabkowski D.J., Hay R.J., Macy M.L., Peterson W.D. Jr.

WiDr is a derivative of another colon adenocarcinoma cell line, HT-29.

Cancer Genet. Cytogenet. 27:125-134(1987)


PubMed=3335022

Alley M.C., Scudiero D.A., Monks A., Hursey M.L., Czerwinski M.J., Fine D.L., Abbott B.J., Mayo J.G., Shoemaker R.H., Boyd M.R.

Feasibility of drug screening with panels of human tumor cell lines using a microculture tetrazolium assay.

Cancer Res. 48:589-601(1988)


PubMed=3349466

Chantret I., Barbat A., Dussaulx E., Brattain M.G., Zweibaum A.

Epithelial polarity, villin expression, and enterocytic differentiation of cultured human colon carcinoma cells: a survey of twenty cell lines.

Cancer Res. 48:1936-1942(1988)


PubMed=2288877

Hafez M.M., Infante D., Winawer S.J., Friedman E.

Transforming growth factor beta 1 acts as an autocrine-negative growth regulator in colon enterocytic differentiation but not in goblet cell maturation.

Cell Growth Differ. 1:617-626(1990)


PubMed=1778766; DOI=10.1111/j.1349-7006.1991.tb01816.x; PMCID=PMC5918361

Takeshima E., Hamaguchi M., Watanabe T., Akiyama S., Kataoka M., Ohnishi Y., Xiao H.-Y., Nagai Y., Takagi H.

Aberrant elevation of tyrosine-specific phosphorylation in human gastric cancer cells.

Jpn. J. Cancer Res. 82:1428-1435(1991)


PubMed=1937958; DOI=10.1002/ijc.2910490516

Lesuffleur T., Kornowski A., Luccioni C., Muleris M., Barbat A., Beaumatin J., Dussaulx E., Dutrillaux B., Zweibaum A.

Adaptation to 5-fluorouracil of the heterogeneous human colon tumor cell line HT-29 results in the selection of cells committed to differentiation.

Int. J. Cancer 49:721-730(1991)


PubMed=2041050; DOI=10.1093/jnci/83.11.757

Monks A., Scudiero D.A., Skehan P., Shoemaker R.H., Paull K.D., Vistica D.T., Hose C.D., Langley J., Cronise P., Vaigro-Wolff A., Gray-Goodrich M., Campbell H., Mayo J.G., Boyd M.R.

Feasibility of a high-flux anticancer drug screen using a diverse panel of cultured human tumor cell lines.

J. Natl. Cancer Inst. 83:757-766(1991)


PubMed=1389533; DOI=10.1016/0959-8049(92)90031-V

Lahm H., Petral-Malec D., Yilmaz-Ceyhan A., Fischer J.R., Lorenzoni M., Givel J.-C., Odartchenko N.

Growth stimulation of a human colorectal carcinoma cell line by interleukin-1 and -6 and antagonistic effects of transforming growth factor beta 1.

Eur. J. Cancer 28A:1894-1899(1992)


PubMed=1730571; DOI=10.1007/BF02631079

Goodwin T.J., Jessup J.M., Wolf D.A.

Morphologic differentiation of colon carcinoma cell lines HT-29 and HT-29KM in rotating-wall vessels.

In Vitro Cell. Dev. Biol. Anim. 28:47-60(1992)


PubMed=8464898; DOI=10.1073/pnas.90.7.2842; PMCID=PMC46192

Browning M.J., Krausa P., Rowan A.J., Bicknell D.C., Bodmer J.G., Bodmer W.F.

Tissue typing the HLA-A locus from genomic DNA by sequence-specific PCR: comparison of HLA genotype and surface expression on colorectal tumor cell lines.

Proc. Natl. Acad. Sci. U.S.A. 90:2842-2845(1993)


PubMed=7972006; DOI=10.1073/pnas.91.23.11045; PMCID=PMC45163

Okamoto A., Demetrick D.J., Spillare E.A., Hagiwara K., Hussain S.P., Bennett W.P., Forrester K., Gerwin B.I., Serrano M., Beach D.H., Harris C.C.

Mutations and altered expression of p16INK4 in human cancer.

Proc. Natl. Acad. Sci. U.S.A. 91:11045-11049(1994)


PubMed=7651727

Kastrinakis W.V., Ramchurren N., Rieger K.M., Hess D.T., Loda M., Steele G., Summerhayes I.C.

Increased incidence of p53 mutations is associated with hepatic metastasis in colorectal neoplastic progression.

Oncogene 11:647-652(1995)


PubMed=8895552; DOI=10.1002/(SICI)1097-0215(19960927)68:1<126::AID-IJC22>3.0.CO;2-8

Suardet L., Li C., Little J.B.

Radio-induced modulation of transforming growth factor beta1 sensitivity in a p53 wild-type human colorectal-cancer cell line.

Int. J. Cancer 68:126-131(1996)


PubMed=9000147

Cottu P.-H., Muzeau F., Estreicher A., Flejou J.-F., Iggo R.D., Thomas G., Hamelin R.

Inverse correlation between RER+ status and p53 mutation in colorectal cancer cell lines.

Oncogene 13:2727-2730(1996)


PubMed=9000572

Hoang J.-M., Cottu P.-H., Thuille B., Salmon R.J., Thomas G., Hamelin R.

BAT-26, an indicator of the replication error phenotype in colorectal cancers and cell lines.

Cancer Res. 57:300-303(1997)


PubMed=9294210; DOI=10.1073/pnas.94.19.10330; PMCID=PMC23362

Ilyas M., Tomlinson I.P.M., Rowan A.J., Pignatelli M., Bodmer W.F.

Beta-catenin mutations in cell lines established from human colorectal cancers.

Proc. Natl. Acad. Sci. U.S.A. 94:10330-10334(1997)


PubMed=10612807; DOI=10.1002/(SICI)1098-2264(200002)27:2<183::AID-GCC10>3.0.CO;2-P; PMCID=PMC4721570

Ghadimi B.M., Sackett D.L., Difilippantonio M.J., Schrock E., Neumann T., Jauho A., Auer G., Ried T.

Centrosome amplification and instability occurs exclusively in aneuploid, but not in diploid colorectal cancer cell lines, and correlates with numerical chromosomal aberrations.

Genes Chromosomes Cancer 27:183-190(2000)


PubMed=10700174; DOI=10.1038/73432

Ross D.T., Scherf U., Eisen M.B., Perou C.M., Rees C., Spellman P.T., Iyer V.R., Jeffrey S.S., van de Rijn M., Waltham M.C., Pergamenschikov A., Lee J.C.F., Lashkari D., Shalon D., Myers T.G., Weinstein J.N., Botstein D., Brown P.O.

Systematic variation in gene expression patterns in human cancer cell lines.

Nat. Genet. 24:227-235(2000)


PubMed=10737795; DOI=10.1073/pnas.97.7.3352; PMCID=PMC16243

Rowan A.J., Lamlum H., Ilyas M., Wheeler J.M.D., Straub J., Papadopoulou A., Bicknell D.C., Bodmer W.F., Tomlinson I.P.M.

APC mutations in sporadic colorectal tumors: a mutational 'hotspot' and interdependence of the 'two hits'.

Proc. Natl. Acad. Sci. U.S.A. 97:3352-3357(2000)


PubMed=11226274; DOI=10.1073/pnas.041603298; PMCID=PMC30173

Abdel-Rahman W.M., Katsura K., Rens W., Gorman P.A., Sheer D., Bicknell D.C., Bodmer W.F., Arends M.J., Wyllie A.H., Edwards P.A.W.

Spectral karyotyping suggests additional subsets of colorectal cancers characterized by pattern of chromosome rearrangement.

Proc. Natl. Acad. Sci. U.S.A. 98:2538-2543(2001)


PubMed=11414198; DOI=10.1007/s004320000207

Lahm H., Andre S., Hoeflich A., Fischer J.R., Sordat B., Kaltner H., Wolf E., Gabius H.-J.

Comprehensive galectin fingerprinting in a panel of 61 human tumor cell lines by RT-PCR and its implications for diagnostic and therapeutic procedures.

J. Cancer Res. Clin. Oncol. 127:375-386(2001)


PubMed=11416159; DOI=10.1073/pnas.121616198; PMCID=PMC35459

Masters J.R.W., Thomson J.A., Daly-Burns B., Reid Y.A., Dirks W.G., Packer P., Toji L.H., Ohno T., Tanabe H., Arlett C.F., Kelland L.R., Harrison M., Virmani A.K., Ward T.H., Ayres K.L., Debenham P.G.

Short tandem repeat profiling provides an international reference standard for human cell lines.

Proc. Natl. Acad. Sci. U.S.A. 98:8012-8017(2001)


PubMed=11526487; DOI=10.1038/sj.onc.1204611

Gayet J., Zhou X.-P., Duval A., Rolland S., Hoang J.-M., Cottu P.-H., Hamelin R.

Extensive characterization of genetic alterations in a series of human colorectal cancer cell lines.

Oncogene 20:5025-5032(2001)


PubMed=11668190; DOI=10.1177/002215540104901105

Quentmeier H., Osborn M., Reinhardt J., Zaborski M., Drexler H.G.

Immunocytochemical analysis of cell lines derived from solid tumors.

J. Histochem. Cytochem. 49:1369-1378(2001)


PubMed=11687795; DOI=10.1038/ng754

Snijders A.M., Nowak N.J., Segraves R., Blackwood S., Brown N., Conroy J., Hamilton G., Hindle A.K., Huey B., Kimura K., Law S., Myambo K., Palmer J., Ylstra B., Yue J.P., Gray J.W., Jain A.N., Pinkel D., Albertson D.G.

Assembly of microarrays for genome-wide measurement of DNA copy number.

Nat. Genet. 29:263-264(2001)


PubMed=11921276; DOI=10.1002/gcc.10003

Kawai K., Viars C., Arden K.C., Tarin D., Urquidi V., Goodison S.

Comprehensive karyotyping of the HT-29 colon adenocarcinoma cell line.

Genes Chromosomes Cancer 34:1-8(2002)


PubMed=12068308; DOI=10.1038/nature00766

Davies H.R., Bignell G.R., Cox C., Stephens P.J., Edkins S., Clegg S., Teague J.W., Woffendin H., Garnett M.J., Bottomley W., Davis N., Dicks E., Ewing R., Floyd Y., Gray K., Hall S., Hawes R., Hughes J., Kosmidou V., Menzies A., Mould C., Parker A., Stevens C., Watt S., Hooper S., Wilson R., Jayatilake H., Gusterson B.A., Cooper C.S., Shipley J.M., Hargrave D., Pritchard-Jones K., Maitland N.J., Chenevix-Trench G., Riggins G.J., Bigner D.D., Palmieri G., Cossu A., Flanagan A.M., Nicholson A., Ho J.W.C., Leung S.Y., Yuen S.T., Weber B.L., Seigler H.F., Darrow T.L., Paterson H.F., Marais R., Marshall C.J., Wooster R., Stratton M.R., Futreal P.A.

Mutations of the BRAF gene in human cancer.

Nature 417:949-954(2002)


PubMed=15748285; DOI=10.1186/1479-5876-3-11; PMCID=PMC555742

Adams S., Robbins F.-M., Chen D., Wagage D., Holbeck S.L., Morse H.C. 3rd, Stroncek D., Marincola F.M.

HLA class I and II genotype of the NCI-60 cell lines.

J. Transl. Med. 3:11.1-11.8(2005)


PubMed=15900046; DOI=10.1093/jnci/dji133

Mashima T., Oh-hara T., Sato S., Mochizuki M., Sugimoto Y., Yamazaki K., Hamada J.-i., Tada M., Moriuchi T., Ishikawa Y., Kato Y., Tomoda H., Yamori T., Tsuruo T.

p53-defective tumors with a functional apoptosome-mediated pathway: a new therapeutic target.

J. Natl. Cancer Inst. 97:765-777(2005)


PubMed=16083285; DOI=10.1021/pr050048h

Kim J.-E., Tannenbaum S.R., White F.M.

Global phosphoproteome of HT-29 human colon adenocarcinoma cells.

J. Proteome Res. 4:1339-1346(2005)


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.

Mutation analysis of 24 known cancer genes in the NCI-60 cell line set.

Mol. Cancer Ther. 5:2606-2612(2006)


PubMed=18258742; DOI=10.1073/pnas.0712176105; PMCID=PMC2268141

Emaduddin M., Bicknell D.C., Bodmer W.F., Feller S.M.

Cell growth, global phosphotyrosine elevation, and c-Met phosphorylation through Src family kinases in colorectal cancer cells.

Proc. Natl. Acad. Sci. U.S.A. 105:2358-2362(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=19927377; DOI=10.1002/gcc.20730; PMCID=PMC2818350

Knutsen T., Padilla-Nash H.M., Wangsa D., Barenboim-Stapleton L., Camps J., McNeil N.E., Difilippantonio M.J., Ried T.

Definitive molecular cytogenetic characterization of 15 colorectal cancer cell lines.

Genes Chromosomes Cancer 49:204-223(2010)


PubMed=19941903; DOI=10.1016/j.jviromet.2009.11.022

Karger A., Bettin B., Lenk M., Mettenleiter T.C.

Rapid characterisation of cell cultures by matrix-assisted laser desorption/ionisation mass spectrometric typing.

J. Virol. Methods 164:116-121(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)


PubMed=20570890; DOI=10.1158/0008-5472.CAN-10-0192; PMCID=PMC2943514

Janakiraman M., Vakiani E., Zeng Z.-S., Pratilas C.A., Taylor B.S., Chitale D., Halilovic E., Wilson M., Huberman K., Ricarte Filho J.C.M., Persaud Y., Levine D.A., Fagin J.A., Jhanwar S.C., Mariadason J.M., Lash A., Ladanyi M., Saltz L.B., Heguy A., Paty P.B., Solit D.B.

Genomic and biological characterization of exon 4 KRAS mutations in human cancer.

Cancer Res. 70:5901-5911(2010)


PubMed=20606684; DOI=10.1038/sj.bjc.6605780; PMCID=PMC2920028

Bracht K., Nicholls A.M., Liu Y., Bodmer W.F.

5-fluorouracil response in a large panel of colorectal cancer cell lines is associated with mismatch repair deficiency.

Br. J. Cancer 103:340-346(2010)


PubMed=20831567; DOI=10.1111/j.1582-4934.2010.01170.x; PMCID=PMC3918049

Ma Y.-L., Zhang P., Wang F., Moyer M.P., Yang J.-J., Liu Z.-H., Peng J.-Y., Chen H.-Q., Zhou Y.-K., Liu W.-J., Qin H.-L.

Human embryonic stem cells and metastatic colorectal cancer cells shared the common endogenous human microRNA-26b.

J. Cell. Mol. Med. 15:1941-1954(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.

Redefining the relevance of established cancer cell lines to the study of mechanisms of clinical anti-cancer drug resistance.

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


PubMed=21912889; DOI=10.1007/s10637-011-9744-z

Sutherland H.S., Hwang I.Y., Marshall E.S., Lindsay B.S., Denny W.A., Gilchrist C., Joseph W.R., Greenhalgh D., Richardson E., Kestell P., Ding A., Baguley B.C.

Therapeutic reactivation of mutant p53 protein by quinazoline derivatives.

Invest. New Drugs 30:2035-2045(2012)


PubMed=22336246; DOI=10.1016/j.bmc.2012.01.017

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.

Bioorg. Med. Chem. 20:1947-1951(2012)


PubMed=22347499; DOI=10.1371/journal.pone.0031628; PMCID=PMC3276511

Ruan X.-Y., Kocher J.-P.A., Pommier Y., Liu H.-F., Reinhold W.C.

Mass homozygotes accumulation in the NCI-60 cancer cell lines as compared to HapMap trios, and relation to fragile site location.

PLoS ONE 7:E31628-E31628(2012)


PubMed=22384151; DOI=10.1371/journal.pone.0032096; PMCID=PMC3285665

Lee J.-S., Kim Y.K., Kim H.J., Hajar S., Tan Y.L., Kang N.-Y., Ng S.H., Yoon C.N., Chang Y.-T.

Identification of cancer cell-line origins using fluorescence image-based phenomic screening.

PLoS ONE 7:E32096-E32096(2012)


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=22628656; DOI=10.1126/science.1218595; PMCID=PMC3526189

Jain M., Nilsson R., Sharma S., Madhusudhan N., Kitami T., Souza A.L., Kafri R., Kirschner M.W., Clish C.B., Mootha V.K.

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

Science 336:1040-1044(2012)


PubMed=23272949; DOI=10.1186/1755-8794-5-66; PMCID=PMC3543849

Schlicker A., Beran G., Chresta C.M., McWalter G., Pritchard A., Weston S., Runswick S., Davenport S., Heathcote K., Castro D.A., Orphanides G., French T., Wessels L.F.A.

Subtypes of primary colorectal tumors correlate with response to targeted treatment in colorectal cell lines.

BMC Med. Genomics 5:66.1-66.15(2012)


PubMed=22940288; DOI=10.1016/j.jsbmb.2012.08.003; PMCID=PMC3695570

Hobaus J., Fetahu I.S., Khorchide M., Manhardt T., Kallay E.

Epigenetic regulation of the 1,25-dihydroxyvitamin D3 24-hydroxylase (CYP24A1) in colon cancer cells.

J. Steroid Biochem. Mol. Biol. 136:296-299(2013)


PubMed=23546019; DOI=10.3892/ijo.2013.1868

Petitprez A., Poindessous V., Ouaret D., Regairaz M., Bastian G., Guerin E., Escargueil A.E., Larsen A.K.

Acquired irinotecan resistance is accompanied by stable modifications of cell cycle dynamics independent of MSI status.

Int. J. Oncol. 42:1644-1653(2013)


PubMed=23631600; DOI=10.1021/pr400260h

Loftus N.J., Lai L., Wilkinson R.W., Odedra R., Wilson I.D., Barnes A.J.

Global metabolite profiling of human colorectal cancer xenografts in mice using HPLC-MS/MS.

J. Proteome Res. 12:2980-2986(2013)


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=23932154; DOI=10.1016/j.radonc.2013.06.032

Salendo J., Spitzner M., Kramer F., Zhang X., Jo P., Wolff H.A., Kitz J., Kaulfuss S., Beissbarth T., belstein M., Ghadimi M., Grade M., Gaedcke J.

Identification of a microRNA expression signature for chemoradiosensitivity of colorectal cancer cells, involving miRNAs-320a, -224, -132 and let7g.

Radiother. Oncol. 108:451-457(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=24042735; DOI=10.1038/oncsis.2013.35; PMCID=PMC3816225

Ahmed D., Eide P.W., Eilertsen I.A., Danielsen S.A., Eknaes M., Hektoen M., Lind G.E., Lothe R.A.

Epigenetic and genetic features of 24 colon cancer cell lines.

Oncogenesis 2:e71.1-e71.8(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=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=24755471; DOI=10.1158/0008-5472.CAN-14-0013

Mouradov D., Sloggett C., Jorissen R.N., Love C.G., Li S., Burgess A.W., Arango D., Strausberg R.L., Buchanan D., Wormald S., O'Connor L., Wilding J.L., Bicknell D.C., Tomlinson I.P.M., Bodmer W.F., Mariadason J.M., Sieber O.M.

Colorectal cancer cell lines are representative models of the main molecular subtypes of primary cancer.

Cancer Res. 74:3238-3247(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=25841592; DOI=10.1016/j.jprot.2015.03.019

Piersma S.R., Knol J.C., de Reus I., Labots M., Sampadi B.K., Pham T.V., Ishihama Y., Verheul H.M.W., Jimenez C.R.

Feasibility of label-free phosphoproteomics and application to base-line signaling of colorectal cancer cell lines.

J. Proteomics 127:247-258(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=25926053; DOI=10.1038/ncomms8002

Medico E., Russo M., Picco G., Cancelliere C., Valtorta E., Corti G., Buscarino M., Isella C., Lamba S., Martinoglio B., Veronese S., Siena S., Sartore-Bianchi A., Beccuti M., Mottolese M., Linnebacher M., Cordero F., Di Nicolantonio F., Bardelli A.

The molecular landscape of colorectal cancer cell lines unveils clinically actionable kinase targets.

Nat. Commun. 6:7002.1-7002.10(2015)


PubMed=25944804; DOI=10.1158/1078-0432.CCR-14-2457

Bazzocco S., Dopeso H., Carton-Garcia F., Macaya I., Andretta E., Chionh F., Rodrigues P., Garrido M., Alazzouzi H., Nieto R., Sanchez A., Schwartz S. Jr., Bilic J., Mariadason J.M., Arango D.

Highly expressed genes in rapidly proliferating tumor cells as new targets for colorectal cancer treatment.

Clin. Cancer Res. 21:3695-3704(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=29787047; DOI=10.1007/978-3-319-16104-4_11

Martinez-Maqueda D., Miralles B., Recio I.

HT29 cell line.

(In book chapter) The impact of food bioactives on health. In vitro and ex vivo models; Verhoeckx K., Cotter P., Lopez-Exposito I., Kleiveland C., Lea T., Mackie A., Requena T., Swiatecka D., Wichers H. (eds.); pp.113-124; Springer; Cham; Switzerland (2015)


PubMed=26537799; DOI=10.1074/mcp.M115.051235; PMCID=PMC4762531

Holst S., Deuss A.J.M., van Pelt G.W., van Vliet S.J., Garcia-Vallejo J.J., Koeleman C.A.M., Deelder A.M., Mesker W.E., Tollenaar R.A.E.M., Rombouts Y., Wuhrer M.

N-glycosylation profiling of colorectal cancer cell lines reveals association of fucosylation with differentiation and caudal type homebox 1 (CDX1)/villin mRNA expression.

Mol. Cell. Proteomics 15:124-140(2016)


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=28179481; DOI=10.1158/1535-7163.MCT-16-0578

Tanaka N., Mashima T., Mizutani A., Sato A., Aoyama A., Gong B., Yoshida H., Muramatsu Y., Nakata K., Matsuura M., Katayama R., Nagayama S., Fujita N., Sugimoto Y., Seimiya H.

APC mutations as a potential biomarker for sensitivity to tankyrase inhibitors in colorectal cancer.

Mol. Cancer Ther. 16:752-762(2017)


PubMed=28192450; DOI=10.1371/journal.pone.0171435; PMCID=PMC5305277

Fasterius E., Raso C., Kennedy S.A., Rauch N., Lundin P., Kolch W., Uhlen M., Al-Khalili Szigyarto C.

A novel RNA sequencing data analysis method for cell line authentication.

PLoS ONE 12:E0171435-E0171435(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=28683746; DOI=10.1186/s12943-017-0691-y; PMCID=PMC5498998

Berg K.C.G., Eide P.W., Eilertsen I.A., Johannessen B., Bruun J., Danielsen S.A., Bjornslett M., Meza-Zepeda L.A., Eknaes M., Lind G.E., Myklebost O., Skotheim R.I., Sveen A., Lothe R.A.

Multi-omics of 34 colorectal cancer cell lines -- a resource for biomedical studies.

Mol. Cancer 16:116.1-116.16(2017)


PubMed=28854368; DOI=10.1016/j.celrep.2017.08.010; PMCID=PMC5583477

Roumeliotis T.I., Williams S.P., Goncalves E., Alsinet C., Del Castillo Velasco-Herrera M., Aben N., Ghavidel F.Z., Michaut M., Schubert M., Price S., Wright J.C., Yu L., Yang M., Dienstmann R., Guinney J.H., Beltrao P., Brazma A., Pardo M., Stegle O., Adams D.J., Wessels L.F.A., Saez-Rodriguez J., McDermott U., Choudhary J.S.

Genomic determinants of protein abundance variation in colorectal cancer cells.

Cell Rep. 20:2201-2214(2017)


PubMed=29101300; DOI=10.15252/msb.20177701; PMCID=PMC5731344

Frejno M., Zenezini Chiozzi R., Wilhelm M., Koch H., Zheng R.-S., Klaeger S., Ruprecht B., Meng C., Kramer K., Jarzab A., Heinzlmeir S., Johnstone E., Domingo E., Kerr D.J., Jesinghaus M., Slotta-Huspenina J., Weichert W., Knapp S., Feller S.M., Kuster B.

Pharmacoproteomic characterisation of human colon and rectal cancer.

Mol. Syst. Biol. 13:951-951(2017)


PubMed=29207035; DOI=10.3892/ijo.2017.4206

Olejniczak A., Szarynska M., Kmiec Z.

In vitro characterization of spheres derived from colorectal cancer cell lines.

Int. J. Oncol. 52:599-612(2018)


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)


PubMed=30971826; DOI=10.1038/s41586-019-1103-9

Behan F.M., Iorio F., Picco G., Goncalves E., Beaver C.M., Migliardi G., Santos R., Rao Y., Sassi F., Pinnelli M., Ansari R., Harper S., Jackson D.A., McRae R., Pooley R., Wilkinson P., van der Meer D.J., Dow D., Buser-Doepner C.A., Bertotti A., Trusolino L., Stronach E.A., Saez-Rodriguez J., Yusa K., Garnett M.J.

Prioritization of cancer therapeutic targets using CRISPR-Cas9 screens.

Nature 568:511-516(2019)


PubMed=31068700; DOI=10.1038/s41586-019-1186-3; PMCID=PMC6697103

Ghandi M., Huang F.W., Jane-Valbuena J., Kryukov G.V., Lo C.C., McDonald E.R. 3rd, Barretina J.G., Gelfand E.T., Bielski C.M., Li H.-X., Hu K., Andreev-Drakhlin A.Y., Kim J., Hess J.M., Haas B.J., Aguet F., Weir B.A., Rothberg M.V., Paolella B.R., Lawrence M.S., Akbani R., Lu Y.-L., Tiv H.L., Gokhale P.C., de Weck A., Mansour A.A., Oh C., Shih J., Hadi K., Rosen Y., Bistline J., Venkatesan K., Reddy A., Sonkin D., Liu M., Lehar J., Korn J.M., Porter D.A., Jones M.D., Golji J., Caponigro G., Taylor J.E., Dunning C.M., Creech A.L., Warren A.C., McFarland J.M., Zamanighomi M., Kauffmann A., Stransky N., Imielinski M., Maruvka Y.E., Cherniack A.D., Tsherniak A., Vazquez F., Jaffe J.D., Lane A.A., Weinstock D.M., Johannessen C.M., Morrissey M.P., Stegmeier F., Schlegel R., Hahn W.C., Getz G., Mills G.B., Boehm J.S., Golub T.R., Garraway L.A., Sellers W.R.

Next-generation characterization of the Cancer Cell Line Encyclopedia.

Nature 569:503-508(2019)


PubMed=31978347; DOI=10.1016/j.cell.2019.12.023; PMCID=PMC7339254

Nusinow D.P., Szpyt J., Ghandi M., Rose C.M., McDonald E.R. 3rd, Kalocsay M., Jane-Valbuena J., Gelfand E.T., Schweppe D.K., Jedrychowski M.P., Golji J., Porter D.A., Rejtar T., Wang Y.K., Kryukov G.V., Stegmeier F., Erickson B.K., Garraway L.A., Sellers W.R., Gygi S.P.

Quantitative proteomics of the Cancer Cell Line Encyclopedia.

Cell 180:387-402.e16(2020)


PubMed=32172478; DOI=10.1007/s12253-020-00805-3

Xu Y.-T., Zhang L., Wang Q.-L., Zheng M.-J.

Comparison of different colorectal cancer with liver metastases models using six colorectal cancer cell lines.

Pathol. Oncol. R"


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2025-02-21
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