Das Kinsuk, Mili Bhabesh, A P Madhusoodan, Saxena Abhishek Chandra, Kumar Ajay, Singh Praveen, Verma Med Ram, Sarkar Mihir, Bag Sadhan
Division of Physiology and Climatology, ICAR - Indian Veterinary Research Institute, Izatnagar, UP-243122, India.
Division of Surgery, ICAR - Indian Veterinary Research Institute, Izatnagar, UP-243122, India.
Tissue Cell. 2017 Apr;49(2 Pt B):270-274. doi: 10.1016/j.tice.2017.02.002. Epub 2017 Feb 6.
Stem cell niche research uses nanotechnologies to mimic the extra-cellular microenvironment to promote proliferation and differentiation. The aim of designing different scaffolds is to simulate the best structural and environmental pattern for extracellular matrix. This experiment was designed to study the proliferative behaviour of canine bone marrow deriver mesenchymal stem cells (MSCs) on different nanomaterial based thin film scaffolds of carbon nanotubes (CNT), chitosan and poly ε-caprolactone. Similar number of cells was seeded on the scaffolds and standard cell culture flask, taken as control. Cells were maintained on DMEM media and relative number of metabolically active cells was determined by MTT assay up to day six of culture. Cells proliferated on control and all the scaffolds as the days progressed. Although proliferation rate was slow but no decline of cell number was noticed on the scaffolds during the study period. Initially, the cell proliferation was lower on CNT but as time progressed no significant difference was observed compared to control. The result indicated that nanomaterial based scaffolds reduce the proliferation rate of canine MSCs. However, canine MSCs adapted and proliferated better on CNT substrate in vitro and may be used as a scaffold component in canine tissue engineering in future.
干细胞生态位研究利用纳米技术来模拟细胞外微环境,以促进细胞增殖和分化。设计不同支架的目的是模拟细胞外基质的最佳结构和环境模式。本实验旨在研究犬骨髓间充质干细胞(MSCs)在基于碳纳米管(CNT)、壳聚糖和聚ε-己内酯的不同纳米材料薄膜支架上的增殖行为。将相似数量的细胞接种在支架和作为对照的标准细胞培养瓶上。细胞在DMEM培养基中培养,并通过MTT法测定直至培养第六天的代谢活性细胞相对数量。随着时间的推移,细胞在对照和所有支架上均有增殖。虽然增殖速率较慢,但在研究期间未观察到支架上细胞数量的减少。最初,CNT上的细胞增殖较低,但随着时间的推移,与对照相比未观察到显著差异。结果表明,基于纳米材料的支架降低了犬MSCs的增殖速率。然而,犬MSCs在体外能更好地适应并在CNT基质上增殖,未来可能用作犬组织工程中的支架成分。