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人臍帶間充質(zhì)干細(xì)胞 HUMSC

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產(chǎn)品名稱(chēng): 人臍帶間充質(zhì)干細(xì)胞 HUMSC
產(chǎn)品型號(hào): HUMSC;
產(chǎn)品展商: ScienCell
產(chǎn)品價(jià)格: 0.00 元
產(chǎn)品文檔: 無(wú)相關(guān)文檔

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人臍帶間充質(zhì)干細(xì)胞 HUMSC 人臍帶間充質(zhì)干細(xì)胞 HUMSC 上海 安徽 合肥 ScienCell細(xì)胞庫(kù)?


人臍帶間充質(zhì)干細(xì)胞 HUMSC  的詳細(xì)介紹
間充質(zhì)干細(xì)胞是特征明確的一類(lèi)**干細(xì)胞。它們有發(fā)育為成熟細(xì)胞的潛在能力而產(chǎn)生脂肪、軟骨、骨骼和肌肉。這些特性與它們發(fā)育中的可塑性共同作用,使人們對(duì)用間充質(zhì)干細(xì)胞來(lái)替換受損組織的潛在能力產(chǎn)生了極大的興趣。分離于臍帶膠樣組織(wharton’s jelly)中的間充質(zhì)干細(xì)胞,在體外含有sonic hedgehog和FGF-8的神經(jīng)元培養(yǎng)基中將轉(zhuǎn)換為神經(jīng)細(xì)胞和神經(jīng)膠質(zhì)。間充質(zhì)干細(xì)胞也可以轉(zhuǎn)化成脂肪細(xì)胞和成骨細(xì)胞。此外,在適于心肌細(xì)胞生長(zhǎng)的培養(yǎng)基中,它們有潛能分化成心肌細(xì)胞。間充質(zhì)干細(xì)胞表達(dá)基質(zhì)受體CD44和CD105,以及間充質(zhì)干細(xì)胞標(biāo)志物SH2和SH3,但不表達(dá)造血系統(tǒng)標(biāo)志物CD34。
Sciencell研究實(shí)驗(yàn)室的人臍帶間充質(zhì)干細(xì)胞是從人臍帶膠樣組織(wharton’s jelly)中分離得到的,原代凍存,冰凍運(yùn)輸。每管細(xì)胞密度超過(guò)5×10^5/ml。人臍帶間充質(zhì)干細(xì)胞經(jīng)免疫熒光鑒定、和CD73,CD90,CD105的抗體鑒定,以及分化后的脂質(zhì)染色鑒定。本細(xì)胞經(jīng)檢測(cè)不含HIV-1、HBV、HCV、支原體、細(xì)菌、酵母菌和真菌。如采用ScienCell 實(shí)驗(yàn)室特制的培養(yǎng)基,可保證此細(xì)胞15倍增增殖。

推薦培養(yǎng)基:間充質(zhì)干細(xì)胞培養(yǎng)基 (MSCM, Cat. #7501)
貨號(hào) 7530
產(chǎn)地 美國(guó)
縮寫(xiě) HUMSC
規(guī)格 5 x 10^5 /1ml
用途 科研
儲(chǔ)存 液氮
運(yùn)輸 干冰
關(guān)鍵字 人臍帶間充質(zhì)干細(xì)胞 HUMSC  人臍帶間充質(zhì)干細(xì)胞 HUMSC  人臍帶間充質(zhì)干細(xì)胞 HUMSC  人臍帶間充質(zhì)干細(xì)胞 HUMSC  人臍帶間充質(zhì)干細(xì)胞 HUMSC  人臍帶間充質(zhì)干細(xì)胞 HUMSC  人臍帶間充質(zhì)干細(xì)胞 HUMSC  人臍帶間充質(zhì)干細(xì)胞 HUMSC  
公司簡(jiǎn)介                       
    合肥星肽生物科技有限公司作為專(zhuān)業(yè)的ScienCell中國(guó)代理商,專(zhuān)業(yè)經(jīng)營(yíng)實(shí)驗(yàn)室科研用原代細(xì)胞原代細(xì)胞專(zhuān)用培養(yǎng)基、原代細(xì)胞無(wú)血清培養(yǎng)基、干細(xì)胞、干細(xì)胞培養(yǎng)基、干細(xì)胞無(wú)血清培養(yǎng)基的研究和開(kāi)發(fā)。合肥星肽生物科技有限公司始終致力于為客戶(hù)提供可靠的研究材料以及方便快捷的服務(wù),對(duì)購(gòu)買(mǎi)項(xiàng)目的前期資料提供,中期合同保證,后期貨物跟蹤到 *終售后的確保項(xiàng)目準(zhǔn)確到位,都有相關(guān)專(zhuān)業(yè)人士進(jìn)行維護(hù),確保您在合肥合肥星肽生物科技有限公司公司獲得*上等服務(wù)!
聯(lián)系方式

               何經(jīng)理,合肥星肽生物科技有限公司,Tel:0551-63802898      400-8702-898,                                  

               E-mail:info@qingbio.com      http://www.huangyuansheng.cn      QQ:514713116

1.) Liu J, Xu HH, Zhou H, Weir MD, Chen Q, Trotman CA. (2013) "Human umbilical cord stem cell encapsulation in novel macroporous and injectable fibrin for muscle tissue engineering." Acta Biomater. 9: 4688-97.

2.) Lee HK, Finniss S, Cazacu S, Bucris E, Ziv-Av A, Xiang C, Bobbitt K, Rempel SA, Hasselbach L, Mikkelsen T, Slavin S, Brodie C. (2013) "Mesenchymal stem cells deliver synthetic microRNA mimics to glioma cells and glioma stem cells and inhibit their cell migration and self-renewal." Oncotarget. 4: 346-61.

3.) Chen W, Zhou H, Tang M, Weir MD, Bao C, Xu HH. (2012) "Gas-foaming calcium phosphate cement scaffold encapsulating human umbilical cord stem cells." Tissue Eng Part A. 18: 816-27.

4.) Liu J, Zhou H, Weir MD, Xu HH, Chen Q, Trotman CA. (2012) "Fast-degradable microbeads encapsulating human umbilical cord stem cells in alginate for muscle tissue engineering." Tissue Eng Part A. 18: 2303-14.

5.) Tang M, Weir MD, Xu HH. (2012) "Mannitol-containing macroporous calcium phosphate cement encapsulating human umbilical cord stem cells." J Tissue Eng Regen Med. 6: 214-24.

6.) Theinhan W, Weir MD, Simon CG, Xu HH. (2012) "Non-rigid calcium phosphate cement containing hydrogel microbeads and absorbable fibres seeded with umbilical cord stem cells for bone engineering." J Tissue Eng Regen Med. doi: 10.1002/term.1466.

7.) Zhou H, Chen W, Weir MD, Xu HH. (2012) "Biofunctionalized calcium phosphate cement to enhance the attachment and osteodifferentiation of stem cells released from fast-degradable alginate-fibrin microbeads." Tissue Eng Part A. 18: 1583-95.

8.) Thein-Han W, Xu HH. (2011) "Collagen-calcium phosphate cement scaffolds seeded with umbilical cord stem cells for bone tissue engineering." Tissue Eng Part A. 17: 2943-54.

9.) Zhao Y, Yu L, Xu S, Qiu F, Fan Y, Fu G. (2011) "Down-regulation of connexin43 gap junction by serum deprivation in human endothelial cells was improved by (-)-Epigallocatechin gallate via ERK MAP kinase pathway." Biochem Biophys Res Commun. 404: 217-22.

10.) Zhao Z, Chen Z, Zhao X, Pan F, Cai M, Wang T, Zhang H, Lu JR, Lei M. (2011) "Sphingosine-1-phosphate promotes the differentiation of human umbilical cord mesenchymal stem cells into cardiomyocytes under the designated culturing conditions." J Biomed Sci. 18: 37.

11.) Zhou H, Weir MD, Xu HH. (2011) "Effect of cell seeding density on proliferation and osteodifferentiation of umbilical cord stem cells on calcium phosphate cement-fiber scaffold." Tissue Eng Part A. 17: 2603-13.

12.) Zhou H, Xu HH. (2011) "The fast release of stem cells from alginate-fibrin microbeads in injectable scaffolds for bone tissue engineering." Biomaterials. 32: 7503-13.

13.) Peng J, Wang Y, Zhang L, Zhao B, Zhao Z, Chen J, Guo Q, Liu S, Sui X, Xu W, Lu S. (2011) "Human umbilical cord Wharton's jelly-derived mesenchymal stem cells differentiate into a Schwann-cell phenotype and promote neurite outgrowth in vitro." Brain Res Bull. 84: 235-43.

14.) Zhao L, Burguera EF, Xu HH, Amin N, Ryou H, Arola DD. (2010) "Fatigue and human umbilical cord stem cell seeding characteristics of calcium phosphate-chitosan-biodegradable fiber scaffolds." Biomaterials. 31: 840-7.
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