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本文引用的文献

1
Cell imaging by graphene oxide based on surface enhanced Raman scattering.基于表面增强拉曼散射的氧化石墨烯细胞成像。
Nanoscale. 2012 Nov 21;4(22):7084-9. doi: 10.1039/c2nr32525j.
2
Label-free polypeptide-based enzyme detection using a graphene-nanoparticle hybrid sensor.基于无标记多肽的酶检测使用石墨烯-纳米粒子杂化传感器。
Adv Mater. 2012 Nov 27;24(45):6081-7. doi: 10.1002/adma.201202961. Epub 2012 Sep 7.
3
ITO/gold nanoparticle/RGD peptide composites to enhance electrochemical signals and proliferation of human neural stem cells.ITO/金纳米粒子/RGD 肽复合材料增强人神经干细胞的电化学信号和增殖。
Nanomedicine. 2013 Apr;9(3):336-44. doi: 10.1016/j.nano.2012.08.006. Epub 2012 Sep 6.
4
Dopaminergic neurons from midbrain-specified human embryonic stem cell-derived neural stem cells engrafted in a monkey model of Parkinson's disease.从中脑特异性人胚胎干细胞来源的神经干细胞中移植的多巴胺能神经元在帕金森病猴模型中。
PLoS One. 2012;7(7):e41120. doi: 10.1371/journal.pone.0041120. Epub 2012 Jul 17.
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Stem cell therapy for the spinal cord.脊髓的干细胞治疗
Stem Cell Res Ther. 2012 Jul 9;3(4):24. doi: 10.1186/scrt115.
6
Identification of embryonic stem cell-derived midbrain dopaminergic neurons for engraftment.鉴定胚胎干细胞衍生的中脑多巴胺能神经元用于移植。
J Clin Invest. 2012 Aug;122(8):2928-39. doi: 10.1172/JCI58767. Epub 2012 Jul 2.
7
Therapeutic effect of adipose-derived stem cells and BDNF-immobilized PLGA membrane in a rat model of cavernous nerve injury.脂肪来源干细胞和 BDNF 固定化 PLGA 膜在大鼠海绵体神经损伤模型中的治疗效果。
J Sex Med. 2012 Aug;9(8):1968-79. doi: 10.1111/j.1743-6109.2012.02760.x. Epub 2012 May 29.
8
Very small embryonic-like stem cells purified from umbilical cord blood lack stem cell characteristics.从脐带血中纯化得到的非常小的胚胎样干细胞缺乏干细胞特征。
PLoS One. 2012;7(4):e34899. doi: 10.1371/journal.pone.0034899. Epub 2012 Apr 3.
9
Detection of adenosine triphosphate with an aptamer biosensor based on surface-enhanced Raman scattering.基于表面增强拉曼散射的适体生物传感器检测三磷酸腺苷。
Anal Chem. 2012 Mar 20;84(6):2837-42. doi: 10.1021/ac203325z. Epub 2012 Feb 29.
10
Fabrication of large-area ordered and reproducible nanostructures for SERS biosensor application.用于 SERS 生物传感器应用的大面积有序且可重复的纳米结构的制造。
Analyst. 2012 Apr 21;137(8):1785-92. doi: 10.1039/c2an16022f. Epub 2012 Feb 22.

3D 石墨烯氧化物包裹的金纳米粒子用于检测神经干细胞分化。

3D graphene oxide-encapsulated gold nanoparticles to detect neural stem cell differentiation.

机构信息

Department of Chemical & Biomolecular Engineering, Sogang University, 35 Baekbeom-ro, Mapo-gu, Seoul 121-742, Republic of Korea.

出版信息

Biomaterials. 2013 Nov;34(34):8660-70. doi: 10.1016/j.biomaterials.2013.07.101. Epub 2013 Aug 12.

DOI:10.1016/j.biomaterials.2013.07.101
PMID:23937915
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3810476/
Abstract

Monitoring of stem cell differentiation and pluripotency is an important step for the practical use of stem cells in the field of regenerative medicine. Hence, a new non-destructive detection tool capable of in situ monitoring of stem cell differentiation is highly needed. In this study, we report a 3D graphene oxide-encapsulated gold nanoparticle that is very effective for the detection of the differentiation potential of neural stem cells (NSCs) based on surface-enhanced Raman spectroscopy (SERS). A new material, 3D GO-encapsulated gold nanoparticle, is developed to induce the double enhancement effect of graphene oxide and gold nanoparticle on SERS signals which is only effective for undifferentiated NSCs. The Raman peaks achieved from undifferentiated NSCs on the graphene oxide (GO)-encapsulated gold nanoparticles were 3.5 times higher than peaks obtained from normal metal structures and were clearly distinguishable from those of differentiated cells. The number of CC bonds and the Raman intensity at 1656 cm(-1) was found to show a positive correlation, which matches the differentiation state of the NSCs. Moreover, the substrate composed of 3D GO-encapsulated gold nanoparticles was also effective at distinguishing the differentiation state of single NSC by using electrochemical and electrical techniques. Hence, the proposed technique can be used as a powerful non-destructive in situ monitoring tool for the identification of the differentiation potential of various kinds of stem cells (mesenchymal, hematopoietic, and neural stem cells).

摘要

监测干细胞的分化和多能性是再生医学领域中实际应用干细胞的重要步骤。因此,非常需要一种新的非破坏性检测工具,能够原位监测干细胞的分化。在本研究中,我们报告了一种 3D 氧化石墨烯包裹的金纳米粒子,它基于表面增强拉曼光谱(SERS)非常有效地检测神经干细胞(NSCs)的分化潜能。开发了一种新材料 3D GO-encapsulated 金纳米粒子,以诱导氧化石墨烯和金纳米粒子对 SERS 信号的双重增强效应,这仅对未分化的 NSCs 有效。从未分化的 NSCs 上的氧化石墨烯(GO)-包裹的金纳米粒子获得的拉曼峰比从正常金属结构获得的峰高 3.5 倍,并且与分化细胞的峰明显不同。发现 CC 键的数量和 1656 cm(-1)处的拉曼强度呈正相关,这与 NSCs 的分化状态相匹配。此外,由 3D GO-encapsulated 金纳米粒子组成的基底也可以通过电化学和电学技术有效地区分单个 NSC 的分化状态。因此,所提出的技术可以用作各种类型的干细胞(间充质、造血和神经干细胞)分化潜能的强大非破坏性原位监测工具。