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基于聚偏氟乙烯/钛酸钡/多壁碳纳米管的电活性生物材料上电场刺激对成骨前体细胞命运的调控

Electrical field stimulated modulation of cell fate of pre-osteoblasts on PVDF/BT/MWCNT based electroactive biomaterials.

作者信息

Bhaskar Nitu, Kachappilly Midhun C, Bhushan Venkatesh, Pandya Hardik J, Basu Bikramjit

机构信息

Laboratory for Biomaterials, Materials Research Centre, Indian Institute of Science, Bangalore, India.

Department of Electronic Systems Engineering, Indian Institute of Science, Bangalore, India.

出版信息

J Biomed Mater Res A. 2023 Mar;111(3):340-353. doi: 10.1002/jbm.a.37472. Epub 2022 Nov 20.

DOI:10.1002/jbm.a.37472
PMID:36403282
Abstract

The present study reports the impact of the interplay between electroactive properties of the biomaterials and electrical stimulation (ES) toward the cell proliferation, migration and maturation of osteoprogenitors (preosteoblasts; MC3T3-E1) on the electroactive poly (vinylidene difluoride) (PVDF)-based composites. The barium titanate (BaTiO BT; 30 wt%) and multiwalled carbon nanotubes (MWCNT; 3 wt%) were introduced into the PVDF via melt mixing, which led to an enhancement of the dielectric permittivity, electrical conductivity, and surface roughness. We also present the design and development of an in-house customized 12-well plate-based device for providing different types (DC, square, biphasic) of ES to cells in culture in a programmable manner. In the presence of ES of 1 V cm , biophysical stimulation experiments performed using 12-well plate-based device revealed that PVDF composite (PVDF/30BT/3MWCNT) can facilitate the enhanced adhesion and proliferation of the MC3T3-E1 in non-osteogenic media, with respect to non-stimulated conditions. Importantly, MC3T3-E1 cells demonstrated significantly better migration and differentiation on the PVDF/30BT/3MWCNT under ES when compared to ES-free culture conditions. Similar enhancement with respect to alkaline phosphatase activity, intracellular Ca concentration, and calcium deposition in MC3T3-E1 cells was recorded, when pre-osteoblasts were grown for 21 days on electroactive substrates. All these observations supported the activation of osteo-differentiation fates, which were further promoted in the osteogenic medium. The present study demonstrates that the synergistic interactions of ES with piezoelectric PVDF-based polymer composite can potentially enhance the proliferation, migration, and osteogenesis of the pre-osteoblast cells, rendering it a promising bioengineering strategy for bone tissue engineering.

摘要

本研究报告了生物材料的电活性特性与电刺激(ES)之间的相互作用对基于电活性聚偏二氟乙烯(PVDF)的复合材料上骨祖细胞(前成骨细胞;MC3T3-E1)的细胞增殖、迁移和成熟的影响。通过熔融混合将钛酸钡(BaTiO₃;30 wt%)和多壁碳纳米管(MWCNT;3 wt%)引入PVDF中,这导致介电常数提高、电导率增加以及表面粗糙度增大。我们还展示了一种内部定制的基于12孔板的装置的设计与开发,该装置能够以可编程的方式为培养中的细胞提供不同类型(直流、方波、双相)的电刺激。在1 V/cm的电刺激存在下,使用基于12孔板的装置进行的生物物理刺激实验表明,相对于非刺激条件,PVDF复合材料(PVDF/30BT/3MWCNT)能够促进MC3T3-E1在非成骨培养基中的黏附增强和增殖。重要的是,与无电刺激培养条件相比,MC3T3-E1细胞在电刺激下在PVDF/30BT/3MWCNT上表现出明显更好的迁移和分化。当预成骨细胞在电活性基质上生长21天时,记录到MC3T3-E1细胞在碱性磷酸酶活性、细胞内钙浓度和钙沉积方面有类似的增强。所有这些观察结果都支持了骨分化命运的激活,在成骨培养基中这种激活进一步得到促进。本研究表明,电刺激与基于压电PVDF的聚合物复合材料的协同相互作用有可能增强前成骨细胞的增殖、迁移和成骨能力,使其成为骨组织工程中一种有前景的生物工程策略。

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