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1.
Nat Commun ; 15(1): 4403, 2024 May 23.
Article in English | MEDLINE | ID: mdl-38782907

ABSTRACT

Controlled manipulation of cultured cells by delivery of exogenous macromolecules is a cornerstone of experimental biology. Here we describe a platform that uses nanopipettes to deliver defined numbers of macromolecules into cultured cell lines and primary cells at single molecule resolution. In the nanoinjection platform, the nanopipette is used as both a scanning ion conductance microscope (SICM) probe and an injection probe. The SICM is used to position the nanopipette above the cell surface before the nanopipette is inserted into the cell into a defined location and to a predefined depth. We demonstrate that the nanoinjection platform enables the quantitative delivery of DNA, globular proteins, and protein fibrils into cells with single molecule resolution and that delivery results in a phenotypic change in the cell that depends on the identity of the molecules introduced. Using experiments and computational modeling, we also show that macromolecular crowding in the cell increases the signal-to-noise ratio for the detection of translocation events, thus the cell itself enhances the detection of the molecules delivered.


Subject(s)
DNA , Single Molecule Imaging , Humans , Single Molecule Imaging/methods , DNA/metabolism , DNA/chemistry , Animals , Nanotechnology/methods , Proteins/metabolism , Proteins/chemistry , Macromolecular Substances/metabolism , Macromolecular Substances/chemistry , Signal-To-Noise Ratio
2.
Nat Commun ; 12(1): 7138, 2021 12 08.
Article in English | MEDLINE | ID: mdl-34880226

ABSTRACT

Biological molecular motors transform chemical energy into mechanical work by coupling cyclic catalytic reactions to large-scale structural transitions. Mechanical deformation can be surprisingly efficient in realizing such coupling, as demonstrated by the F1FO ATP synthase. Here, we describe a synthetic molecular mechanism that transforms a rotary motion of an asymmetric camshaft into reciprocating large-scale transitions in a surrounding stator orchestrated by mechanical deformation. We design the mechanism using DNA origami, characterize its structure via cryo-electron microscopy, and examine its dynamic behavior using single-particle fluorescence microscopy and molecular dynamics simulations. While the camshaft can rotate inside the stator by diffusion, the stator's mechanics makes the camshaft pause at preferred orientations. By changing the stator's mechanical stiffness, we accelerate or suppress the Brownian rotation, demonstrating an allosteric coupling between the camshaft and the stator. Our mechanism provides a framework for manufacturing artificial nanomachines that function because of coordinated movements of their components.


Subject(s)
Cryoelectron Microscopy , DNA/chemistry , Molecular Conformation , Nanostructures , Molecular Dynamics Simulation , Nanotechnology , Rotation
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