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本文引用的文献

1
Fabrication of nanofiber scaffolds with gradations in fiber organization and their potential applications.具有纤维组织梯度的纳米纤维支架的制备及其潜在应用。
Macromol Biosci. 2012 Oct;12(10):1336-41. doi: 10.1002/mabi.201200115. Epub 2012 Jul 30.
2
Tendon tissue engineering: adipose-derived stem cell and GDF-5 mediated regeneration using electrospun matrix systems.肌腱组织工程:脂肪源干细胞和 GDF-5 通过静电纺丝基质系统介导的再生。
Biomed Mater. 2011 Apr;6(2):025011. doi: 10.1088/1748-6041/6/2/025011. Epub 2011 Mar 24.
3
Adipose-derived stem cells in functional bone tissue engineering: lessons from bone mechanobiology.脂肪来源干细胞在功能性骨组织工程中的作用:骨机械生物学的启示。
Tissue Eng Part B Rev. 2011 Jun;17(3):195-211. doi: 10.1089/ten.TEB.2010.0738. Epub 2011 Apr 8.
4
"Aligned-to-random" nanofiber scaffolds for mimicking the structure of the tendon-to-bone insertion site.用于模拟肌腱-骨插入部位结构的“对齐到随机”纳米纤维支架。
Nanoscale. 2010 Jun;2(6):923-6. doi: 10.1039/c0nr00192a. Epub 2010 May 11.
5
The development and morphogenesis of the tendon-to-bone insertion - what development can teach us about healing -.肌腱-骨附着处的发育与形态发生——发育能为我们的愈合研究带来什么启示——
J Musculoskelet Neuronal Interact. 2010 Mar;10(1):35-45.
6
Putting Electrospun Nanofibers to Work for Biomedical Research.将电纺纳米纤维应用于生物医学研究
Macromol Rapid Commun. 2008 Nov 19;29(22):1775-1792. doi: 10.1002/marc.200800381.
7
Functional grading of mineral and collagen in the attachment of tendon to bone.肌腱与骨附着处矿物质和胶原蛋白的功能分级
Biophys J. 2009 Aug 19;97(4):976-85. doi: 10.1016/j.bpj.2009.05.043.
8
Nanofiber scaffolds with gradations in mineral content for mimicking the tendon-to-bone insertion site.具有矿物质含量梯度的纳米纤维支架,用于模拟肌腱与骨的插入部位。
Nano Lett. 2009 Jul;9(7):2763-8. doi: 10.1021/nl901582f.
9
Neurite outgrowth on nanofiber scaffolds with different orders, structures, and surface properties.不同取向、结构和表面性质的纳米纤维支架上的神经突生长。
ACS Nano. 2009 May 26;3(5):1151-9. doi: 10.1021/nn900070z.
10
Adipose-derived stem cells: characterization and current application in orthopaedic tissue repair.脂肪来源干细胞:特性及其在骨科组织修复中的当前应用
Exp Biol Med (Maywood). 2009 Jan;234(1):1-9. doi: 10.3181/0805/MR-170.

具有纤维结构渐变的电纺纳米纤维支架。

Electrospun nanofiber scaffolds with gradations in fiber organization.

作者信息

Khandalavala Karl, Jiang Jiang, Shuler Franklin D, Xie Jingwei

机构信息

Department of Pharmaceutical Sciences, Mary & Dick Holland Regenerative Medicine Program, University of Nebraska Medical Center.

Department of Orthopedic Surgery, Joan C. Edwards School of Medicine, Marshall University.

出版信息

J Vis Exp. 2015 Apr 19(98):52626. doi: 10.3791/52626.

DOI:10.3791/52626
PMID:25938562
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4541585/
Abstract

The goal of this protocol is to report a simple method for generating nanofiber scaffolds with gradations in fiber organization and test their possible applications in controlling cell morphology/orientation. Nanofiber organization is controlled with a new fabrication apparatus that enables the gradual decrease of fiber organization in a scaffold. Changing the alignment of fibers is achieved through decreasing deposition time of random electrospun fibers on a uniaxially aligned fiber mat. By covering the collector with a moving barrier/mask, along the same axis as fiber deposition, the organizational structure is easily controlled. For tissue engineering purposes, adipose-derived stem cells can be seeded to these scaffolds. Stem cells undergo morphological changes as a result of their position on the varied organizational structure, and can potentially differentiate into different cell types depending on their locations. Additionally, the graded organization of fibers enhances the biomimicry of nanofiber scaffolds so they more closely resemble the natural orientations of collagen nanofibers at tendon-to-bone insertion site compared to traditional scaffolds. Through nanoencapsulation, the gradated fibers also afford the possibility to construct chemical gradients in fiber scaffolds, and thereby further strengthen their potential applications in fast screening of cell-materials interaction and interfacial tissue regeneration. This technique enables the production of continuous gradient scaffolds, but it also can potentially produce fibers in discrete steps by controlling the movement of the moving barrier/mask in a discrete fashion.

摘要

本方案的目标是报告一种生成具有纤维组织梯度的纳米纤维支架的简单方法,并测试其在控制细胞形态/取向方面的可能应用。纳米纤维组织通过一种新的制造设备来控制,该设备能够使支架中的纤维组织逐渐减少。通过减少随机电纺纤维在单轴排列纤维垫上的沉积时间来改变纤维的排列。通过在与纤维沉积相同的轴向上用移动屏障/掩膜覆盖收集器,可以轻松控制组织结构。出于组织工程目的,可以将脂肪来源的干细胞接种到这些支架上。干细胞由于其在不同组织结构上的位置而发生形态变化,并可能根据其位置分化为不同的细胞类型。此外,纤维的分级组织增强了纳米纤维支架的仿生性能,因此与传统支架相比,它们更接近肌腱-骨插入部位胶原纳米纤维的自然取向。通过纳米封装,分级纤维还提供了在纤维支架中构建化学梯度的可能性,从而进一步增强其在细胞-材料相互作用快速筛选和界面组织再生中的潜在应用。该技术能够生产连续梯度支架,但也可以通过以离散方式控制移动屏障/掩膜的移动,潜在地以离散步骤生产纤维。