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The intracellular delivery of biomolecules is of significant importance yet challenging. In addition to the conventional delivery of nanomaterials that rely on biochemical pathways, vertical nanowires have been recently proposed to physically penetrate the cell membrane, thus enabling the direct release of biomolecules into the cytoplasm circumventing endosomal routes. However, due to the inherent attachment of the nanowires to a planar 2D substrate, nanowire cell penetrations are restricted to in vitro applications, and they are incapable of providing solution-based delivery. To overcome this structural limitation, we created polyethylenimine-functionalized microparticles covered with nanospikes, namely, "spiky particles", to deliver biomolecules by utilizing the nanospikes to penetrate the cell membrane. The nanospikes might penetrate the cell membrane during particle engulfment, and this enables the bound biomolecules to be released directly into the cytosol. TiO spiky particles were fabricated through hydrothermal routes, and they were demonstrated to be biocompatible with HeLa cells, macrophage-like RAW cells, and fibroblast-like 3T3-L1 cells. The polyethylenimine-functionalized spiky particles provided direct delivery of fluorescent siRNA into cell cytosol and functional siRNA for gene knockdown as well as successful DNA plasmid transfection which were difficult to achieve by using microparticles without nanospikes. The spiky particles presented a unique direct cell membrane penetrant vehicle to introduce biomolecules into cell cytosol, where the biomolecules might bypass conventional endocytic degradation routes.
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http://dx.doi.org/10.1021/acscentsci.8b00749 | DOI Listing |
Nat Commun
August 2025
Department of Experimental Biology, Faculty of Science, Masaryk University, Brno, Czech Republic.
Flavivirus assembly is driven by the envelope glycoproteins pre-membrane (prM) and envelope (E) in the neutral pH environment of the endoplasmic reticulum. Newly budded, spiky particles are exported through the Golgi apparatus, where mildly acidic pH induces a major surface rearrangement. The glycoproteins reorganize into (prM/E)\₂ complexes at the surface of smooth particles, with prM trapped at the E dimer interface, thereby exposing a furin cleavage site (FCS) for proteolytic maturation into infectious virions.
View Article and Find Full Text PDFColloids Surf B Biointerfaces
October 2025
Department of Organ transplantation and Hepatobiliary surgery, First Affiliated Hospital, China Medical University, Nanjingbei Street 155, Shenyang, Liaoning Province 110001, China. Electronic address:
Inspired by the strong permeability, sensitive response, accurate biological recognition and efficient biotransformation of viruses, we designed virus-mimic nanoparticles for cancer therapy. We first prepared virus-like mesoporous silica nanoparticles (VSN) with a spiky tubular rough surface via a single-micelle epitaxial growth procedure, grafted glutathione (GSH) sensitive disulfide bonds and chiral dipeptide cysteine-arginine (Cys-Arg) onto VSN (VSCA) to enable easier engulfment and stimuli response release in the reductive tumor microenvironment, and modified hyaluronic acid (HA) acting both as a tumor-targeting ligand to CD44 receptors and a natural biodegradable polysaccharide to construct VSCA-HA. Studies demonstrated the virus-like morphology, mesoscopic structure, highly stability and redox responsiveness of VSCA-HA.
View Article and Find Full Text PDFLangmuir
May 2025
Department of Chemical and Materials Engineering, The University of Alabama in Huntsville, Huntsville, Alabama 35899, United States.
We report a model to quantify the effects of position and orientation on the Derjaguin-Landau-Verwey-Overbeek (DLVO) interactions between a spiky particle and a planar wall. We model DLVO interaction energy, force, and torque as a function of spike distribution, aspect ratio, particle-wall separation distance, and particle orientation. The results show a topological correlation between the energy tiling and the tessellated orientational space.
View Article and Find Full Text PDFACS Nano
May 2025
Department of Mechanical Engineering, University of Michigan, Ann Arbor, Michigan 48109, United States.
Self-assembled complex nanoparticles with spiky surfaces can accommodate significant amounts of excess charge, which can enable various energy storage and conversion technologies. Their combination of high charge storage capacity, high dispersibility, and synthetic simplicity renders them attractive for use in redox-flow batteries. Here we show that hedgehog-like FeSe particles (HPs) are effective charge carriers in aqueous redox-flow batteries for long-duration energy storage.
View Article and Find Full Text PDFJ Colloid Interface Sci
August 2025
School of Biomedical and Phamaceutical Sciences, Guangdong University of Technology, Guangzhou 510006, China; Institute for Safflower Industry Research, Key Laboratory of Xinjiang Phytomedicine Resource and Utilization (Ministry of Education), School of Pharmacy, Shihezi University, Shihezi 832003,
Designing a multi-functional strategy that integrates rapid and sensitive detection of pathogenic bacteria and efficient antibacterial activity is of great significance. Here, we reported a smart triple-functional spindle shape copper-based nanocomposites, obtaining the remarkable surface-enhanced Raman scattering (SERS) enhancement, and its spikes at both ends with physical piercing ability cooperate with Ag and Cu releasing capability endowed it with robust antibacterial effectiveness. Originally, gold-core silver-shell nanoparticles (Au@Ag NPs) with excellent SERS performance were loaded onto the spindle shape copper-methylimidazole nanoparticles (Cu-MIM) under electrostatic action, obtaining Au@Ag/Cu-MIM nanocomposites.
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