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Biomedical subjects

Vinothan N Manoharan

Publications and source records attributed to Vinothan N Manoharan.

6 recordsLinked to original sources

Extracellular uncoating of bacteriophage MS2.

In the early stages of infection of its host, Escherichia coli, bacteriophage MS2 sheds its icosahedral protein capsid, after which the single-stranded genomic RNA (gRNA) and maturation protein enter the cell as a complex. Although the steps preceding uncoating, which include the binding of the Mat protein to the extracellular filament F-pilus, have been studied in detail, the uncoating step is not well understood. To study when and where uncoating happens, we image the infection process using fluorescence microscopy, separately labelling the MS2 capsid, its gRNA, and the cells. We do two types of experiments. In the first, we incubate the phage in a nonspecific intercalating dye, and we count the number of uncoated and intact phages before and after adding the labeled phages to cells. In the second, we examine the time course of infection by fixing unlabeled samples at different times after adding the phage, and then we label the MS2 gRNA using amplified fluorescence in situ hybridization. In both cases, we find that uncoating can occur anywhere on the F-pili, and that MS2 usually uncoats at a distance from the cell rather than at the cell surface. While these results do not rule out a current hypothesis that virus particles uncoat when the F-pilus retracts and brings them into contact with the cell body, they demonstrate an alternative, extracellular uncoating pathway. We discuss the possiblity that MS2 may have multiple uncoating pathways, and that the rate of each pathway could reflect a trade-off between different risk factors.

Levivirus↗

Self-organization of bidisperse colloids in water droplets.

Most of the colloidal clusters have been produced from oil-in-water emulsions with identical microspheres dispersed in oil droplets. Here, we present new types of binary colloidal clusters from phase-inverted water-in-oil emulsions using various combinations of two different colloids with several size ratios: monodisperse silica or polystyrene microspheres for larger particles and silica or titania nanoparticles for smaller particles. Obviously, a better understanding of how finite groups of different colloids self-organize in a confined geometry may help us control the structure of matter at multiple length scales. In addition, since aqueous dispersions have much better phase stability, we could produce much more diverse colloidal materials from water-in-oil emulsions rather than from oil-in-water emulsions. Interestingly, the configurations of the large microspheres were not changed by the presence of the small particles. However, the arrangement of the smaller particles was strongly dependent on the nature of the interparticle interactions. The experimentally observed structural evolutions were consistent with the numerical simulations calculated using Surface Evolver. These clusters with nonisotropic structures can be used as building blocks for novel colloidal structures with unusual properties or by themselves as light scatterers, diffusers, and complex adaptive matter exhibiting emergent behavior.

Journal Article↗

Synthesis of spherical polymer and titania photonic crystallites.

The fabrication of small structured spherical particles that are essentially small photonic crystals is described. The particles are 1-50 microm in diameter and are porous with nearly close-packed monodisperse pores whose size is comparable to the wavelength of light. The solid matrix of the particles is titania, which provides a large refractive index contrast between the particle matrix and pores. The particles are made by encapsulating polymer colloidal particles in emulsion droplets of hexanes in which a titanium alkoxide precursor is dissolved. Subsequent osmotic removal of the hexanes from the droplets and condensation of the alkoxide precursor leads to spherical aggregates of polymer spheres with titania filling the spaces between the polymer spheres. The polymer particles are then burned out leaving behind the desired porous titania particles. The size and structure of the pores and high refractive index of the titania matrix are expected to produce particles that are very efficient scatterers of light, making them useful as pigments.

Journal Article↗

Swelling-based method for preparing stable, functionalized polymer colloids.

We describe a swelling-based method to prepare sterically stabilized polymer colloids with different functional groups or biomolecules attached to their surface. It should be applicable to a variety of polymeric colloids, including magnetic particles, fluorescent particles, polystyrene particles, PMMA particles, and so forth. The resulting particles are more stable in the presence of monovalent and divalent salt than existing functionalized colloids, even in the absence of any surfactant or protein blocker. While we use a PEG polymer brush here, the method should enable the use of a variety of polymer chemistries and molecular weights.

Colloids↗

Dense packing and symmetry in small clusters of microspheres.

When small numbers of colloidal microspheres are attached to the surfaces of liquid emulsion droplets, removing fluid from the droplets leads to packings of spheres that minimize the second moment of the mass distribution. The structures of the packings range from sphere doublets, triangles, and tetrahedra to exotic polyhedra not found in infinite lattice packings, molecules, or minimum-potential energy clusters. The emulsion system presents a route to produce new colloidal structures and a means to study how different physical constraints affect symmetry in small parcels of matter.

Journal Article↗

Packings of uniform microspheres with ordered macropores fabricated by double templating.

Highly uniform 3-D ordered macroporous spheres in regular arrays were produced by a double templating process. The first template of larger silica balls produced the polymer skeleton for guiding the shape and size of the self-assembled superstructure of smaller polymeric balls, which are introduced subsequently into the internal space of the skeleton. The second templating with inorganic precursors has created novel superstructured materials, which could open up significant opportunities in a variety of areas ranging from absorbents/catalysts to novel photonic crystals.

Journal Article↗