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Tubulin is an electrostatically negative protein that forms cylindrical polymers termed microtubules, which are crucial for a variety of intracellular roles. Exploiting the electrostatic behavior of tubulin and microtubules within functional microfluidic and optoelectronic devices is limited due to the lack of understanding of tubulin behavior as a function of solvent composition. This work displays the tunability of tubulin surface charge using dimethyl sulfoxide (DMSO) for the first time. Increasing the DMSO volume fractions leads to the lowering of tubulin's negative surface charge, eventually causing it to become positive in solutions >80% DMSO. As determined by electrophoretic mobility measurements, this change in surface charge is directionally reversible, i.e., permitting control between -1.5 and + 0.2 cm (V s) . When usually negative microtubules are exposed to these conditions, the positively charged tubulin forms tubulin sheets and aggregates, as revealed by an electrophoretic transport assay. Fluorescence-based experiments also indicate that tubulin sheets and aggregates colocalize with negatively charged g-C N sheets while microtubules do not, further verifying the presence of a positive surface charge. This study illustrates that tubulin and its polymers, in addition to being mechanically robust, are also electrically tunable.
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http://dx.doi.org/10.1002/smll.202003560 | DOI Listing |
Nano Lett
September 2025
Department of Physics, Columbia University, New York, New York 10027, United States.
Graphene-based photonic structures have emerged as fertile ground for the controlled manipulation of surface plasmon polaritons (SPPs), providing a two-dimensional platform with low optoelectronic losses. In principle, nanostructuring graphene can enable further confinement of nanolight─enhancing light-matter interactions in the form of SPP cavity modes. In this study, we engineer nanoscale plasmonic cavities composed of self-assembled C arrays on graphene.
View Article and Find Full Text PDFSmall Methods
September 2025
Department of Materials Science and Engineering, National Cheng Kung University, No. 1 University Road, Tainan, 70101, Taiwan.
Electron Fenton (EF) degradation often suffers from low in situ HO electrosynthesis and Fe regeneration. Herein, a novel multi-element oxide-sulfide heterostructure is reported, (FeVCoCuMn)O/(CuFeVCoMn)S, for efficient and stable EF degradation. The oxide-sulfide phase ratio is optimized through temperature control during the synthesis.
View Article and Find Full Text PDFEnviron Sci Pollut Res Int
September 2025
Department of Chemistry Education, Farhangian University, P.O. Box 14665-889, Tehran, Iran.
This study introduces a back filter installed at the end of the exhaust pipe of city buses. The impact of the metal type used in its construction on the absorption of suspended particles and the reduction of sulfides in diesel engine exhaust gases is investigated. The back filter is constructed from three metals: copper, zinc, and nickel.
View Article and Find Full Text PDFJ Phys Chem Lett
September 2025
Shandong Provincial Engineering and Technical Center of Light Manipulation, School of Physics and Electronics, Shandong Normal University, Jinan 250014, P.R. China.
Heterostructures have emerged as promising contenders for surface-enhanced Raman scattering (SERS) applications. Nevertheless, the construction of a composite SERS substrate with well-matched energy levels persists as a challenge, primarily due to the restricted selection of SERS-active materials. In this study, we successfully synthesized a Ag nanoparticles (NPs)/ZnO nanorods (NRs)/GaN heterojunction featuring type II staggered energy bands, which provides an outstanding platform for efficient SERS detection.
View Article and Find Full Text PDFBiochim Biophys Acta Biomembr
September 2025
Department of Chemistry, University of Toronto, Canada; Department of Chemical and Physical Sciences, University of Toronto Mississauga, 3359 Mississauga Road North, Mississauga, Ontario, L5L 1C6, Canada. Electronic address:
In 1987 Seelig and colleagues proposed that the phosphocholine headgroup of phosphatidylcholine behaved as a universal sensor of surface electrostatic charge, both cationic and anionic, in lipid bilayers (J. Seelig, P.M.
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