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通过β1 整合素/MAPK 信号通路,平行和随机取向的胶原纳米纤维促进神经祖细胞增殖。

The promotion of neural progenitor cells proliferation by aligned and randomly oriented collagen nanofibers through β1 integrin/MAPK signaling pathway.

机构信息

Department of Spine Surgery, Second Affiliated Hospital of Harbin Medical University, Hei Long Jiang Province 150086, PR China.

出版信息

Biomaterials. 2011 Oct;32(28):6737-44. doi: 10.1016/j.biomaterials.2011.05.075. Epub 2011 Jun 22.

Abstract

In regenerative medicine, accumulating evidence demonstrates that the property of substrates monitors neural stem cells behavior. However, how stem cells sense and interpret biochemical and topographical cues remains elusive. This study aimed to explore the mechanism how nanofibrous scaffold modulated stem cells behavior. Spinal cord derived neural progenitor cells (NPCs) were cultured on electrospun aligned and randomly oriented collagen nanofibrous scaffolds. A 30% increase in proliferation and an elevation of BrdU incorporation were observed in NPCs on collagen nanofibers, compared to that on collagen-coated surface. In particular, NPCs expanded faster on aligned nanofibers in comparison with that on randomly oriented nanofibers. Moreover, an alteration in cell cycle progression with a reduced percentage of cells in G0/G1 phase and increased cell proliferation index (S phase plus G2/M phase) was also detected in NPCs cultured on collagen nanofibers. Incubating NPCs with anti-β1 integrin antibody or U1026 (an inhibitor of mitogen-activated protein kinase kinase, MEK) eliminated the altered cell cycle dynamics and BrdU incorporation induced by collagen nanofibers. In addition, cyclin D1 and cyclin dependent kinase 2 (CDK2), downstream genes of β1 integrin/mitogen-activated protein kinase (MAPK) pathway that control G1/S phase transition, were correspondingly regulated by nanofibers. Collectively, these data suggested that the property of substrate modulated NPCs proliferation by promoting cell cycle through β1 integrin/MAPK pathway. Our findings provide a better understanding of the interaction between NPCs and the substrate and therefore will pave way for regenerative medicine.

摘要

在再生医学中,越来越多的证据表明,基底的特性可以监测神经干细胞的行为。然而,干细胞如何感知和解释生化和拓扑线索仍然难以捉摸。本研究旨在探索纳米纤维支架调节干细胞行为的机制。脊髓源性神经前体细胞(NPCs)在静电纺丝的取向和随机取向的胶原纳米纤维支架上培养。与在胶原涂覆表面相比,在胶原纳米纤维上培养的 NPCs 的增殖增加了 30%,BrdU 掺入也增加了。特别是,与随机取向的纳米纤维相比,NPCs 在取向的纳米纤维上生长得更快。此外,还检测到 NPCs 在胶原纳米纤维上培养时细胞周期进程发生改变,G0/G1 期细胞比例降低,细胞增殖指数(S 期加 G2/M 期)增加。用抗β1 整合素抗体或 U1026(丝裂原激活蛋白激酶激酶,MEK 的抑制剂)孵育 NPCs,消除了胶原纳米纤维诱导的细胞周期动力学和 BrdU 掺入的改变。此外,β1 整合素/丝裂原激活蛋白激酶(MAPK)途径下游基因细胞周期蛋白 D1 和周期蛋白依赖性激酶 2(CDK2),控制 G1/S 期转变的基因,也相应地受到纳米纤维的调节。总之,这些数据表明,基底的特性通过促进细胞周期通过β1 整合素/MAPK 途径调节 NPCs 的增殖。我们的研究结果提供了对 NPCs 与底物相互作用的更好理解,因此将为再生医学铺平道路。

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