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Biology subjects

Nishiguchi, S.

Publications and source records attributed to Nishiguchi, S..

2 recordsLinked to original sources

Nanoscale visualization of Drosophila E-cadherin ectodomain fragments and their interactions using DNA origami nanoblocks

The adhesive function of cell surface proteins can be visually assessed through direct observation; however, the underlying structures that mediate adhesion typically remain invisible at the nanoscale level. This hinders knowledge on the diversity of molecular architectures responsible for cell-cell adhesion. Drosophila E-cadherin (DE-cadherin), a classical cadherin with a unique domain structure, demonstrates adhesive function; however, it lacks a structural model that explains its adhesion mechanism. In this study, we present a novel application of DNA origami technology to create a cell-free, flat environment in which full DE-cadherin ectodomains are anchored using SNAP-tags and biotin-streptavidin interactions. DNA origami was assembled into a 120 nm long block, bearing 5 or 14 biotin:streptavidin sites that were evenly spaced on one lateral face. DE-cadherin ectodomain fragments were attached via biotinylated SNAP-tags. These decorated DNA origami nanoblocks were subjected to transmission electron and high-speed atomic force microscopy, which revealed a hinge-like site that separated the membrane-distal and -proximal portions of the DE-cadherin ectodomain, suggesting a role in mechanical flexibility. We also observed interactions between DE-cadherin ectodomains via their membrane-distal portions on single DNA origami nanoblocks. We reconstituted an adhesion-like process via pairing DNA origami nanoblocks using DE-cadherin ectodomain interactions. Homophilic associations of functional DE-cadherin ectodomains between the paired DNA origami nanoblocks were visualized at the nanoscale, displaying strand-like molecular configurations, likely representing the extracellular cadherin repeats without regular arrays of structural elements. This study introduces a DNA origami-based platform for reconstituting and visualizing cadherin ectodomain interactions, with potential applications for a broader range of adhesion molecules. HighlightsO_LIDNA origami technology was applied to perform a structure-function study of cadherin. C_LIO_LIDNA origami nanoblocks decorated with DE-cadherin ectodomains were observed by TEM/HS-AFM. C_LIO_LIA hinge-like site that separated the membrane-distal and -proximal portions of the DE-cadherin ectodomain was revealed. C_LIO_LIAn adhesion-like process was mimicked via pairing two nanoblocks using DE-cadherin ectodomain interactions. C_LIO_LIHomophilic associations of DE-cadherin ectodomains between the nanoblocks were visualized at the nanoscale level. C_LI

molecular biology↗

A look beyond topography: transient phenomena of Escherichia coli cell division captured with high-speed in-line force mapping

Life on the nanoscale has been made accessible in recent decades by the development of techniques that are fast and non-invasive. High-speed atomic force microscopy (HS-AFM) is one such technique that has proven to shed light on elusive mechanisms involving single proteins. Extending HS-AFM to effortlessly incorporate mechanical property mapping while maintaining fast imaging speed allows us to look deeper than topography and reveal more details of the nanoscale mechanisms that govern life. Here, we present high-speed in-line force mapping (HS-iFM), which enables the recording of mechanical properties and topography maps with high spatiotemporal resolution. Employing this method, a detailed study of the dynamic nanoscale mechanical properties of living Escherichia coli bacteria reveals localized stiffening during division, intricate details of the division process, formation and diffusion of pores in the membrane, and the impact of depressurization of a cell. All of these phenomena were recorded with a frame time as low as 15 s and a spatial resolution of 5.5 nm/pixel in topography and 22 nm/pixel in force maps, allowing the capture of transient phenomena on bacterial surfaces in striking detail.

biophysics↗