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From Blueprint to Breakthrough: How Far Can We Fold DNA Origami for Nano-Enabled Technologies?
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DOI:10.1021/jacsau.5c01315.png)
Abstract
En 中文
DNA origami has emerged as a groundbreaking approach in nanotechnology, offering unparalleled precision, programmability, and structural versatility at the molecular scale. Originally conceived as a method to fold DNA into arbitrary 2D and 3D shapes, DNA origami has rapidly evolved into a multifunctional platform, enabling the construction of dynamic, responsive, and addressable nanostructures. As we stand at the intersection of biology, physics, and engineering, this perspective explores how far we can truly “fold” DNA origami, not just structurally but functionally, toward the realization of advanced nanoenabled technologies. We examine the foundational design principles that have propelled DNA origami from static nanoshapes to reconfigurable architectures capable of precise molecular actuation. By integrating functional elements such as quantum dots, metallic nanoparticles, and biomolecules, DNA origami has unlocked novel possibilities in optoelectronics, ranging from plasmonic nanodevices to photonic nanostructures, and in biomedicine, where it serves as a vehicle for targeted drug delivery, biosensing, and immunomodulation. Despite these achievements, several grand challenges remain, including issues of scalability, structural stability under operational conditions, and integration with other nanomaterials and systems. This perspective reflects on the current state of the field and identifies opportunities for future innovation, particularly through convergence with artificial intelligence, machine-learning-guided design, and hybrid materials science. Ultimately, we posit that DNA origami is no longer just a tool for nanoscale construction but a foundational technology poised to redefine the frontiers of optoelectronics, diagnostics, and therapeutics. As we continue to push the boundaries of what can be folded, this article invites the scientific community to rethink the potential of DNA origami from blueprint to breakthrough in shaping the future of nanoenabled applications.
Keywords:
DNA origami
nanotechnology
optoelectronics
diagnostics
therapeutics
Journal
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