School of Chemistry and Chemical Engineering, Southeast University, Nanjing 211189, China.
Institute of Chemistry, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.
J Am Chem Soc. 2024 Jul 31;146(30):20685-20699. doi: 10.1021/jacs.4c03651. Epub 2024 Jul 16.
The primer-guided entropy-driven high-throughput evolution of the DNA-based constitutional dynamic network, CDN, is introduced. The entropy gain associated with the process provides a catalytic principle for the amplified emergence of the CDN. The concept is applied to develop a programmable, spatially localized DNA circuit for effective and theranostic, gene-regulated treatment of cancer cells. The localized circuit consists of a DNA tetrahedron core modified at its corners with four tethers that include encoded base sequences exhibiting the capacity to emerge and assemble into a [2 × 2] CDN. Two of the tethers are caged by a pair of siRNA subunits, blocking the circuit into a mute, dynamically inactive configuration. In the presence of miRNA-21 as primer, the siRNA subunits are displaced, resulting in amplified release of the siRNAs silencing the HIF-1α mRNA and fast dynamic reconfiguration of the tethers into a CDN. The resulting CDN is, however, engineered to be dynamically reconfigured by miRNA-155 into an equilibrated mixture enriched with a DNAzyme component, catalyzing the cleavage of EGR-1 mRNA. The DNA tetrahedron nanostructure stimulates enhanced permeation into cancer cells. The miRNA-triggered entropy-driven reconfiguration of the spatially localized circuit leads to the programmable, cooperative bis-gene-silencing of HIF-1α and EGR-1 mRNAs, resulting in the effective and selective apoptosis of breast cancer cells and effective inhibition of tumors in tumor bearing mice.
引入了基于引物引导的熵驱动高通量进化的 DNA 构态动态网络(CDN)。该过程中与熵增加相关的内容为 CDN 的放大出现提供了一个催化原理。该概念被应用于开发一种可编程的、空间局部化的 DNA 电路,用于有效治疗癌症的基因调控和治疗。局部电路由一个 DNA 四面体核心组成,其四个角上修饰有四个系链,其中包含具有出现和组装成[2×2]CDN 能力的编码碱基序列。两个系链被一对 siRNA 亚基笼住,将电路锁定为静音、动态失活的构型。在 miRNA-21 作为引物的存在下,siRNA 亚基被置换,导致 siRNA 的释放放大,从而沉默 HIF-1αmRNA,并快速动态地将系链重新配置成 CDN。然而,所设计的 CDN 可以通过 miRNA-155 动态地重新配置为富含 DNA 酶成分的平衡混合物,催化 EGR-1 mRNA 的切割。DNA 四面体纳米结构刺激增强渗透进入癌细胞。miRNA 触发的空间局部电路的熵驱动重新配置导致可编程的、协同的双基因沉默 HIF-1α和 EGR-1 mRNA,从而有效选择性地诱导乳腺癌细胞凋亡,并有效抑制荷瘤小鼠的肿瘤生长。