4.8 Article

Oligolysine-based coating protects DNA nanostructures from low-salt denaturation and nuclease degradation

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NATURE COMMUNICATIONS
卷 8, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/ncomms15654

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资金

  1. Schlumberger Faculty
  2. Human Frontiers of Science Foundation Fellowship
  3. NSF Expeditions [1317694]
  4. NSF DMREF [1435964]
  5. Army Research Office [W911NF-12-1-0420]
  6. Dana Farber Cancer Institute Claudia Adams Barr Award
  7. Wyss Institute at Harvard Faculty Award
  8. Direct For Computer & Info Scie & Enginr
  9. Division of Computing and Communication Foundations [1317291, 1317694] Funding Source: National Science Foundation
  10. Division Of Materials Research
  11. Direct For Mathematical & Physical Scien [1435964] Funding Source: National Science Foundation

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DNA nanostructures have evoked great interest as potential therapeutics and diagnostics due to ease and robustness of programming their shapes, site-specific functionalizations and responsive behaviours. However, their utility in biological fluids can be compromised through denaturation induced by physiological salt concentrations and degradation mediated by nucleases. Here we demonstrate that DNA nanostructures coated by oligolysines to 0.5: 1 N:P (ratio of nitrogen in lysine to phosphorus in DNA), are stable in low salt and up to tenfold more resistant to DNase I digestion than when uncoated. Higher N: P ratios can lead to aggregation, but this can be circumvented by coating instead with an oligolysine-PEG copolymer, enabling up to a 1,000-fold protection against digestion by serum nucleases. Oligolysine-PEG-stabilized DNA nanostructures survive uptake into endosomal compartments and, in a mouse model, exhibit a modest increase in pharmacokinetic bioavailability. Thus, oligolysine-PEG is a one-step, structure-independent approach that provides low-cost and effective protection of DNA nanostructures for in vivo applications.

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