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Double-degradable responsive self-assembled multivalent arrays-temporary nanoscale recognition between dendrons and DNA

机译:双降解响应式自组装多价阵列 - 树突和DNa之间的临时纳米级识别

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摘要

This article reports self-assembling dendrons which bind DNA in a multivalent manner. The molecular design directly impacts on self-assembly which subsequently controls the way these multivalent nanostructures bind DNA-this can be simulated by multiscale modelling. Incorporation of an S-S linkage between the multivalent hydrophilic dendron and the hydrophobic units responsible for self-assembly allows these structures to undergo triggered reductive cleavage, with dithiothreitol (DTT) inducing controlled breakdown, enabling the release of bound DNA. As such, the high-affinity self-assembled multivalent binding is temporary. Furthermore, because the multivalent dendrons are constructed from esters, a second slow degradation step causes further breakdown of these structures. This two-step double-degradation mechanism converts a large self-assembling unit with high affinity for DNA into small units with no measurable binding affinity-demonstrating the advantage of self-assembled multivalency (SAMul) in achieving highly responsive nanoscale binding of biological targets.
机译:本文报道了以多价方式结合DNA的自组装树突。分子设计直接影响自组装,其随后控制这些多价纳米结构结合DNA的方式-这可以通过多尺度建模来模拟。在多价亲水树突与负责自组装的疏水单元之间掺入S-S键可使这些结构发生触发的还原裂解,二硫苏糖醇(DTT)诱导受控分解,从而释放结合的DNA。这样,高亲和力的自组装多价结合是暂时的。此外,由于多价树突是由酯构成的,因此第二个缓慢的降解步骤会导致这些结构的进一步分解。这种两步双降解机制将对DNA具有高亲和力的大自组装单元转换为没有可测量结合亲和力的小单元,这证明了自组装多价(SAMul)在实现生物靶标的高响应纳米级结合方面的优势。

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