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Addressing the Instability of DNA Nanostructures in Tissue Culture

机译:解决组织培养中DNA纳米结构的不稳定性

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摘要

DNA nanotechnology is an advanced technique that could contribute diagnostic, therapeutic, and biomedical research devices to nanomedicine. Although such devices are often developed and demonstrated using in vitro tissue culture models, these conditions may not be compatible with DNA nanostructure integrity and function. The purpose of this study was to characterize the sensitivity of 3D DNA nanostructures produced via the origami method to the in vitro tissue culture environment and identify solutions to prevent loss of nanostructure integrity. We examined whether the physiological cation concentrations of cell culture medium and the nucleases present in fetal bovine serum (FBS) used as a medium supplement result in denaturation and digestion, respectively. DNA nanostructure denaturation due to cation depletion was design- and time-dependent, with one of four tested designs remaining intact after 24 h at 37 °C. Adjustment of medium by addition of MgSO4 prevented denaturation. Digestion of nanostructures by FBS nucleases in Mg2+-adjusted medium did not appear design-dependent and became significant within 24 h and when medium was supplemented with greater than 5% FBS. We estimated that medium supplemented with 10% FBS contains greater than 256 U/L equivalent of DNase I activity in digestion of DNA nanostructures. Heat inactivation at 75 °C and inclusion of actin protein in medium inactivated and inhibited nuclease activity, respectively. We examined the impact of medium adjustments on cell growth, viability, and phenotype. Adjustment of Mg2+ to 6 mM did not appear to have a detrimental impact on cells. Heat inactivation was found to be incompatible with in vitro tissue culture, whereas inclusion of actin had no observable effect on growth and viability. In two in vitro assays, immune cell activation and nanoparticle endocytosis, we show that using conditions compatible with cell phenotype and nanostructure integrity is critical for obtaining reliable experimental data. Our study thus describes considerations that are vital for researchers undertaking in vitro tissue culture studies with DNA nanostructures and some potential solutions for ensuring that nanostructure integrity and functions are maintained during experiments.
机译:DNA纳米技术是一项先进的技术,可以为纳米医学贡献诊断,治疗和生物医学研究设备。尽管经常使用体外组织培养模型开发和演示此类设备,但这些条件可能与DNA纳米结构的完整性和功能不兼容。这项研究的目的是表征通过折纸方法生产的3D DNA纳米结构对体外组织培养环境的敏感性,并确定防止纳米结构完整性丧失的解决方案。我们检查了细胞培养基的生理阳离子浓度和用作培养基补充剂的胎牛血清(FBS)中存在的核酸酶是否分别导致变性和消化。由于阳离子耗尽而导致的DNA纳米结构变性与设计和时间有关,在37°C下放置24 h后,四个测试设计之一保持完整。通过添加MgSO 4调节培养基可防止变性。在Mg 2 + 调节的培养基中,FBS核酸酶对纳米结构的消化作用似乎与设计无关,并且在24 h内以及添加5%以上FBS的情况下变得明显。我们估计补充有10%FBS的培养基在消化DNA纳米结构时包含的DNase I活性大于256 U / L。在75°C下热灭活,培养基中包含肌动蛋白蛋白分别灭活和抑制了核酸酶的活性。我们检查了培养基调整对细胞生长,活力和表型的影响。 Mg 2 + 调节至6 mM似乎对细胞没有有害影响。发现热灭活与体外组织培养不相容,而包含肌动蛋白对生长和生存力没有明显影响。在两个体外测定中,免疫细胞激活和纳米颗粒内吞作用,我们表明使用与细胞表型和纳米结构完整性兼容的条件对于获得可靠的实验数据至关重要。因此,我们的研究描述了对于进行DNA纳米结构体外组织培养研究的研究人员至关重要的考虑因素,以及一些确保在实验过程中保持纳米结构完整性和功能的潜在解决方案。

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