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Terauchi, Y.

Publications and source records attributed to Terauchi, Y..

3 recordsLinked to original sources

N-terminal intrinsically disordered region mediates self-catalytic interfacial nucleation of Aspergillus oryzae hydrophobin RolA

Hydrophobins are biosurfactant proteins that coat the cell surfaces of filamentous fungi. On the conidial surface, hydrophobins self-assemble into rodlets, forming a dense hydrophobic film that promotes air-dispersibility. Although rodlet formation is closely associated with the physiology of filamentous fungi, its underlying molecular mechanisms remain largely unknown. Previously, we revealed that RolA, a hydrophobin derived from Aspergillus oryzae, forms rodlets at the air-water interface. In this study, we focused on the flexible N-terminal region of RolA, which lacks a well-defined tertiary structure, and hypothesized that this intrinsically disordered region regulates rodlet formation. To investigate its role, we used RolA mutants with reduced charges in the N-terminal region and analyzed the rodlet formation process on the surface of a water-in-air sessile droplet using atomic force microscopy. In addition, we quantitatively characterized rodlet formation at the air-water interface by applying a kinetic perspective to the interfacial tension change profiles obtained from dynamic surface tension measurements. The results suggested that RolA first forms a monolayer at the air-water interface, then rodlet formation proceeds through the continuous supply of free RolA monomers from the bulk phase to the interfacial RolA film. Our molecular dynamics simulations of RolA at the interface supported a model in which RolA molecules within the interfacial film interact with free monomers in the bulk phase through their N-terminal regions. These results reveal a previously unidentified role of the N-terminal region in rodlet formation and provide a more comprehensive framework for understanding the molecular mechanism underlying RolA rodlet formation.

biophysics↗

Amorphous-to-Rodlet Structural Transition Governs the Interfacial Functions of Aspergillus oryzae Hydrophobin RolA

Hydrophobins are low-molecular-weight biosurfactant proteins that coat the cell surface of filamentous fungi, making it hydrophobic and supporting morphogenesis. On conidia, hydrophobins self-assemble to form rod-shaped multimeric structures known as rodlets. Previously, we reported that hydrophobin RolA from the industrial fungus Aspergillus oryzae first forms an amorphous film at the air-water interface and then undergoes structural rearrangement to form a densely packed rodlet film. This raised the question of whether the amorphous or the rodlet film is more important for the biological functions of RolA. In this study, to compare the properties of amorphous films with those of rodlet films, we used RolA mutants that had lost the ability to form rodlets and therefore remained in the amorphous state. We found that the rodlet film was more rigid than the amorphous film and had stronger surface activity and a greater capacity to change surface wettability. RolA altered the properties of A. oryzae conidia only when it was in the rodlet state. These findings highlight the functional versatility of RolA and show that their dynamic structural transitions directly modulate their function.

microbiology↗

High-speed atomic force microscopy reveals surface-catalyzed elongation mechanism of fungal functional amyloid, hydrophobin RolA

Hydrophobins, a type of functional amyloid, are conserved in filamentous fungi and act as a protective coat in the fibrous form called rodlet. Rodlets form hierarchical structures where they are bundled and densely aligned, contributing to the hydrophobicity of the mycelium surface. However, the formation mechanism of the hierarchical structures is completely unknown. In this study we used high-speed atomic force microscopy to directly observe the structural dynamics of hierarchical structure formation by hydrophobin RolA from the industrial fungus Aspergillus oryzae at a single-fibril level and revealed its mechanism. The elongation of rodlets occurred at both ends and was discontinuous, alternating between periods when they could elongate (growth state) and could not elongate (pause state). This suggests an equilibrium of two distinct structural states at the rodlet ends. We also discovered an aggregation pathway, termed "surface-catalyzed elongation", in which elongation is promoted by lateral interactions between bundled rodlets. Surface-catalyzed elongation decreased the energy barrier of both structural switching between growth and pause states and elongation at rodlet ends, doubling the elongation rate in bundled rodlets. The rodlet surface could be considered as a catalyst for the elongation of neighboring rodlets. Surface-catalyzed elongation could contribute to rodlet bundling, whereby rodlets tend to form oriented domain structures, and our Monte Carlo simulations confirmed this. Surface-catalyzed elongation may be a universal concept to explain the hierarchical assembly mechanism of amyloid fibrils, so it could contribute to the advancement of amyloid research in general.

biophysics↗