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Zhenyu Han

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Open access Aug 2026

Mechanical Caging of Nucleic Acids Enabled by Light-Activated Synthetic Molecular Motors.

Control over nucleic acid activity is central to biotechnology and therapeutic development. Most existing strategies rely on installing protecting groups that mask nucleobases or backbone functionalities (i.e., chemical caging), where modulation of activity arises from alteration of the biomolecule's chemical identity. Here, inspired by biological mechanisms such as DNA supercoiling that regulate nucleic acid function through mechanically imposed conformational constraints, we introduce mechanical caging as an alternative strategy. A light-driven synthetic molecular motor was integrated with single-stranded DNA through four tethering points, creating a topology that couples motor rotation to DNA conformation. Control experiments confirmed that motor incorporation preserves intrinsic properties of ssDNA, including its ability to hybridize with complementary strands. Upon photoactivation, unidirectional motor rotation drives DNA into constrained conformations that suppress hybridization and reduce susceptibility to exonuclease digestion. Molecular dynamics simulations further provide molecular-level insight into how motor-driven mechanical constraints may impact the conformational ensemble and functional accessibility of nucleic acids. Incorporation of acid-labile tethers enables on-demand motor detachment to restore the native conformational ensemble and DNA function. Together, these results establish an externally controlled mechanical caging-decaging cycle and introduce a strategy for controlling biomolecular function through mechanical input rather than chemical masking.

Yuchen Ma, Erika McCarthy, N. Murthy et al. · 0 citations
Open access Jul 2026

Diffraction-quality, ultraflexible protein single crystals engineered with DNA

DNA-functionalized colloidal nanoparticles assemble through flexible, nanoscale DNA hybridization interactions that limit atomic-level structural order. Here, we report a valence-centric strategy that enables DNA-bonded, protein single crystals with unconventional mechanical properties. An octameric enzyme, glutarate L-2-hydroxylase, was site- and number-selectively conjugated with eight self-complementary single-stranded DNA, yielding octavalent molecular bonds. The resulting conjugate assembled into the designed body-centered tetragonal crystals that diffracted to 1.42- to 2.61-angstrom resolution, with contacts mediated by B-form DNA helices spanning 17 to 25 angstroms. Increasing oligonucleotide length induces anisotropic lattice expansion while preserving atomic periodicity, even with partial DNA occupancy. Mechanistic studies suggest that the dynamic motion of unhybridized DNA facilitates crystallization, analogous to fluctuating electron clouds in atomic bonding. Compared with native protein crystals, DNA-hybridized crystals are 23-fold softer. These results challenge the assumption that flexibility is incompatible with structural order and establish a programmable framework for biomolecular crystallization and nanomaterials engineering with atomic precision.

Zhenyu Han, C. Mirkin · 0 citations

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