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DNA Nanostructures that Self-Heal in Serum

机译:DNA纳米结构在血清中自愈

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Self-assembled DNA nanostructures have potential applications in therapeutics, diagnostics, and synthetic biology. A challenge in using DNA nanostructures in biological environments or cell culture, however, is that they may be degraded by enzymes found in these environments, such as nucleases. Such degradation can be slowed by introducing alternative substrates for nucleases, or by coating nanostructures with membranes or peptides. Here we demonstrate a means by which degradation can be reversed in situ through the repair of nanostructure defects. To demonstrate this effect, we show that degradation rates of DNA nanotubes, micron-scale self-assembled structures, are at least 4-fold lower in the presence of tiles that can repair nanotube defects during the degradation process. Micrographs of nanotubes show that tiles from solution incorporate into nanotubes and that this incorporation increases nanotube lifetime to several days in serum. We use experimental data to formulate a simple model of nanostructure self-healing. This model suggests how introducing even a relatively low rate of repair could allow a nanostructure to survive almost indefinitely because of a dynamic equilibrium between microscale repair and degradation processes. The ability to repair nanostructures could thus allow particular structures or devices to operate for long periods of time and might offer a single means to resist different types of chemical degradation.
机译:自组装DNA纳米结构具有治疗剂,诊断和合成生物学中的潜在应用。然而,在生物环境中使用DNA纳米结构或细胞培养物的挑战是它们可以通过这些环境中发现的酶降解,例如核酸酶。通过引入核酸酶的替代衬底或通过用膜或肽涂覆纳米结构来减慢这种降解。在这里,我们证明了一种方法,通过修复纳米结构缺陷可以原位地逆转降级的方法。为了证明这种效果,我们表明DNA纳米管的降解速率,微米级自组装结构在瓷砖存在下至少4倍,在降解过程中可以修复纳米管缺陷。纳米管的显微照片显示来自溶液中的瓷砖掺入纳米管中,并且该掺入在血清中增加了几天的纳米管寿命。我们使用实验数据来制定简单的纳米结构自我愈合模型。该模型表明,由于微尺度修复和劣化过程之间的动态平衡,如何允许纳米结构允许纳米结构几乎无限期地存活。因此,修复纳米结构的能力可以使特定的结构或装置长时间操作,并且可以提供单一的装置来抵抗不同类型的化学降级。

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