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J Maze

Publications and source records attributed to J Maze.

5 recordsLinked to original sources

Studies into abstract properties of individuals. VI. The degree of emergence in individuals, populations, species and a three species lineage.

Emergent properties derived from the integration among descriptive variables were explored in three related grass species, Achnatherum lemmonii, Achnatherum hendersonii and Achnatherum wallowaensis. Different levels of organization were compared: individuals, populations, species, species-pairs and all three species combined. Emergence was seen at all levels with populations having the lowest degree followed by individuals, species and combinations of species. Because there were no variables unique to any level analyzed, emergence is more than the appearance of new structures. As the degree of emergence increases there is also an increase in variation in integration, the result of new growth rates. Time may explain the different degrees of emergence at the different levels. The trend populations-species-combination of species is easily related to time; the first are younger than the last. An individual develops over a greater period of time than a population. The greater time of existence of a species may account for a greater degree of emergence than an individual. In an individual the local time expressed during ontogeny establishes boundary conditions for an individual. As that local time becomes incorporated into global, or phylogenetic, time, the boundary conditions for taxa and lineages is established.

Phylogeny↗

Studies into abstract properties of individuals. IV. Emergence In different aged needle primordia of Douglas fir.

Young, middle aged and older Douglas fir needle primordia, as determined by distance from the apical meristem, were measured and analyzed to compare levels and patterns of emergence related to development time. Emergence was seen in the differently aged needle primordia, generally most noticeable in the oldest and the least apparent in the youngest. There was also a negative relationship between variation in size and degree of emergence, and a positive one with variation in organization. The increasing level of emergence that appears with age can be related to the continual expression of information and the concomitant increase in complexity that marks ontogeny and is the result of diverging developmental trajectories. The histogenetic events seen in ontogeny can be interpreted as 'clocks' generating local time through the interactions among cells and tissues that make up the needle primordia. Emergent properties are manifested through the local events that mark ontogeny, and also through the expression of phylogenetic information, or the local expression of global (historical) levels of organization.

Trees↗

Studies into Abstract Properties of Individuals. III. A Study of Factors Affecting Emergence.

Eighteen individuals of Pinus ponderosa Lawson were analyzed for emergence, a difference in organization between the lower and higher levels of a within-plant hierarchy. The variables used were six distance measurements taken from needle cross sections, and organization was evaluated using angles between eigenvectors and a vector of isometry. Sixteen of 18 individuals analyzed showed emergence. Variation was shown in the degree of emergence, the between-level difference in organization. Variation in organization was the factor most strongly related to the degree of emergence; it also showed the strongest relationship to degree of emergence in grasses previously studied. These results argue for a possible cause and effect relationship between variation in organization and ontogeny or phylogeny, i.e., time-related irreversible change. The results also argue for the control of irreversible change residing in systems as a whole rather than their parts and for the direction of change being determined by the historical boundaries of those systems. Emergence is also related to the complexity that increases with the concomitant flows of energy and information in plants.

Journal Article↗

Monoclonal antibody A2B5, which detects cell surface antigens, binds to ganglioside GT3 (II3 (NeuAc)3LacCer) and to its 9-O-acetylated derivative.

The monoclonal antibody A2B5 recognizes antigens at the surface of neuronal and glial cells but also at the surface of thymus epithelia and pancreatic islet cells. Although these antigens have been characterized as polysialogangliosides, A2B5 also reacts with other unidentified gangliosides. In order to characterize further the epitope of A2B5, two new ganglioside antigens isolated from chicken brain are identified in this study. One is the ganglioside NeuAc alpha 2-8NeuAc alpha 2-8NeuAc alpha 2-3Gal beta 1-4Glc beta 1-1ceramide (GT3) and the other is a 9-O-acetylated derivative of GT3). This derivative was purified from 10-day embryonic chicken brain. Acetyl groups substituted on sialic acid were removed either by alkali treatment or by incubation with influenza virus C, which contains receptor-destroying enzyme (a neuraminidate 9-O-acetyl esterase). The product of alkali treatment or viral action was detected by the antibody 18B8 which is specific for GT3. The deacetylated product still reacts with A2B5. These data and the results of mild oxidation of the antigen with sodium periodate suggest that the epitope recognized by antibody A2B5 contains the trisialyl structure found in GT3 but does not include the polyalcohol chain of the terminal sialic acid which can be oxidized by periodate or acetylated without modifying the affinity for the antibody. The epitope recognized by A2B5 is different from the epitope recognized by the antibody 18B8 in that 18B8 requires the three sialic acids with an intact and unsubstituted polyalcohol chain. Antibody 18B8 does not bind to 9-O-acetylated GT3 or GT3 oxidized by sodium periodate.

Acetylation↗