詳細(xì)介紹
SOX-2(兔單克隆抗體)
廣州健侖生物科技有限公司
SOX-2 是一種新型的致癌基因,不但參與腫瘤發(fā)生的早期階段,還與腫瘤細(xì)胞的遷徙、侵襲和轉(zhuǎn)移相關(guān)。SOX-2 的表達(dá)與卵巢癌、乳腺癌、頭頸部腫瘤、肺鱗癌以及生殖細(xì)胞瘤等腫瘤的預(yù)后相關(guān)。據(jù)報(bào)道,SOX-2 與P63 聯(lián)合應(yīng)用,可特異性檢測90%以上的肺鱗癌;在宮頸組織中,SOX-2 的表達(dá)和HPV 感染密切相關(guān),與宮頸增生的進(jìn)程相關(guān)。
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SOX-2(兔單克隆抗體)
【產(chǎn)品介紹】
細(xì)胞定位:細(xì)胞核
克隆號:SP76
同型:IgG
適用組織:石蠟/冰凍
陽性對照:食道鱗癌/神經(jīng)膠質(zhì)瘤
抗原修復(fù):熱修復(fù)(EDTA)
抗體孵育時(shí)間:30-60min
產(chǎn)品編號 | 抗體名稱 | 克隆型別 |
OB217 | PTEN (10號染色體缺失磷酸酶及張力蛋白同源基因) | polyclonal |
OB218 | PTH試劑(甲狀旁腺素) | MRQ-31 |
OB219 | PU.1(Ets蛋白轉(zhuǎn)錄因子) | EPR3158Y |
OB220 | RCC(Renal Cell Carcinoma Marker)(腎細(xì)胞癌標(biāo)記) | 66.4.C2 |
OB221 | S100P(S100P蛋白) | 16/f5 |
OB222 | S-100(S-100蛋白) | 4C4.9 |
OB223 | SALL4(SALL4蛋白) | 6E3 |
OB224 | Smoothelin(平滑肌細(xì)胞特異性抗原) | R4A |
OB225 | SOX-10試劑(Sry相關(guān)HMG-Box基因10) | EP268 |
OB226 | SOX-11(Sry相關(guān)HMG-Box基因11) | MRQ-58 |
OB227 | SOX-2試劑(Sry相關(guān)HMG-Box基因2) | SP76 |
OB228 | Stathmin試劑(微管解聚蛋白) | SP49 |
OB229 | Surfactant(表面活性蛋白)或SP-B(Surfactant Protein B) | 1B9 |
OB230 | Survivin(存活蛋白) | EP119 |
OB231 | Synaptophysin(突觸素) | MRQ-40 |
OB232 | TAG-72(腫瘤相關(guān)糖蛋白) | B72.3 |
OB233 | Tau試劑(Tau蛋白) | polyclonal |
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【公司名稱】 廣州健侖生物科技有限公司
【市場部】 歐
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【騰訊 】
【公司地址】 廣州清華科技園創(chuàng)新基地番禺石樓鎮(zhèn)創(chuàng)啟路63號二期2幢101-103室
以前利用肌肉活動人工關(guān)節(jié)時(shí),肌肉會在約兩小時(shí)后收縮僵硬。而此次開發(fā)的人工關(guān)節(jié)由兩個(gè)肌肉組織牽拉,所以不容易變僵硬,兩天后仍能運(yùn)動。這使得這種人工手指有望長期使用,從而能作為醫(yī)療用品進(jìn)入實(shí)用階段。
如果進(jìn)一步向肌肉組織加入血管和神經(jīng),就能制作出*可以替代人類手指的裝置。研究人員認(rèn)為,這一成果有望用于肌肉抗原抗體癥等的治療。他們還準(zhǔn)備利用這一成果開發(fā)形態(tài)樣貌更接近人體的機(jī)器人。
日本學(xué)者山中伸彌將oct4、Sox2、 Klf4、c-myc四個(gè)基因插入到成體細(xì)胞DNA中重編程細(xì)胞恢復(fù)到胚胎干細(xì)胞狀態(tài),由此建立了iPS細(xì)胞。這些細(xì)胞可以向胚胎干細(xì)胞一樣,轉(zhuǎn)變?yōu)閹缀跛械慕M織類型。為此, 山中伸彌在2011年獲得諾貝爾獎(jiǎng)。雖然iPS細(xì)胞有潛力發(fā)育為任何組織器官,但如何誘導(dǎo)它們往正確的方向分化問題尚未解決。
Muscles used to contract muscle stiffness in about two hours after using artificial joints that previously used muscle activity. The artificial joint developed by the two muscle tissue stretch, it is not easy to become stiff, still can exercise two days later. This makes the artificial finger is expected long-term use, which can be used as a medical supplies into the practical stage.
If you further add blood vessels and nerves to muscle tissue, you can create a device that can compley replace human fingers. Researchers believe that this result is expected to be used for the treatment of muscle antigen antibody disease. They are also ready to use this achievement to develop robots that are closer to the human body in shape.
Japanese scholars Shinya Yamanaka will oct4, Sox2, Klf4, c-myc four genes inserted into the adult cell DNA reprogrammed cells back to the embryonic stem cell state, thus establishing iPS cells. These cells, like embryonic stem cells, can be transformed into almost all tissue types. To this end, Yamanaka won the Nobel Prize in 2011. Although iPS cells have the potential to develop into any tissue and organ, the question of how to induce them in the right direction has not yet been resolved.