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C-Branched, Amide Connectivity

Aharoni and coworkers characterized 59 Denkewalter s cascade macromolecules 4 by employing classical polymer techniques viscosity determinations, photo correlation spectroscopy (PCS), and size exclusion chromatography (SEC). It was concluded that at each tier (2 through 10) these globular polymers were, in fact, monodisperse and behaved as nondraining spheres. The purity of these molecules was not ascertained and the dense packing limits were either not realized or simply not noted. [Pg.63]

Roy and coworkers 70 71] described the solid state preparation of the first four generations (e.g., 38) of the dendritic sialoside inhibitors of influenza A virus haemagglutinin [Pg.63]

A Lysine-base core matrix used for the preparation of a Multiple-An tigen-Peptide [Pg.63]

Scrimin et al J72b have reported the preparation of a small, three-directional, polypeptide that is useful for the modulation of membrane permeability. Decapeptide fragments were attached to aTREN (tris(2-aminoethyl)amine) core. [Pg.64]


C-branched dendritic structures, based on either ether and amide linkages or simply amide connectivity (iii) Tomalia-type PAMAM dendritic structure, differing from the POPAM by the presence of amide bonds, but keeping the amine AB2 as the branching center and (iv) Fr6chet-type dendritic strnctures, based on ether and phenyl groups as AB2 branching center. Description of the different types of covalent dendrimers reported will follow a classification based on the element content, such as only C, C-N, N-O, C-N-0, or with heteroatoms such as P, Si, and so on. Examples of porphyrin-, thiophene-, carbohydrate-, and fullerene-based dendrimers are described separately, since they can be bound to different types of frameworks. [Pg.2616]


See other pages where C-Branched, Amide Connectivity is mentioned: [Pg.63]    [Pg.78]    [Pg.192]    [Pg.63]    [Pg.78]    [Pg.192]    [Pg.78]    [Pg.82]    [Pg.83]    [Pg.84]    [Pg.91]    [Pg.183]    [Pg.332]    [Pg.36]    [Pg.4973]   


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