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Biological dispersal refers to those processes by which a species maintains or expands the distribution of a population. Dispersal implies movement—movement away from an existing population (population expansion) or away from the parent organisms (population maintenance). In the latter case, dispersal may simply involve replacement of the parent generation by the new generation, with only minor changes in geographic area occupied. In either case, dispersal is important because new life must replace old, and the two generations cannot easily occupy the same physical space during the transition. More significantly, dispersal enables the species population to occupy much of the available habitat, thereby maximizing resources in its favor and providing a hedge against local adverse events.

In most cases, organisms (plants and especially sedentary animals) have evolved adaptations for dispersal that take advantage of various forms of kinetic energy occurring naturally in the environment: water flow, wind, falling caused by gravity.

1 Dispersal in plants

Unlike animals, plants are limited in their ability to seek out favorable conditions for life and growth. Consequently, plants have evolved many ways to disperse and spread a population through their seeds or spores (see also vegetative reproduction). Those properties or attributes that promote the movement of the next generation away from the parent plant may involve the fruit more so than the seeds themselves.

Dispersal is a universal biological need, and it is to be expected that most higher plants have solved the problem in one way or another through adaptations involving their fruit or seed. Examine the fruit of any species and it is likely, with perhaps a bit more knowledge about the ecosystem, to at least intelligently speculate on what these adptations are in that plant. However, realize that particularly where plant-animal interactions are central to the dispersal mechanism, seeing a plant outside of its native ecosystem may not reveal so much about the adaptations present in the fruit and seed. Indeed, in many instances of plants introduced into areas where they are not native, it is the failure of the dispersal mechanism that accounts for the species not becoming established beyond the garden.

1.1 Gravity

The effect of gravity on the dispersal of seeds and spores is straight forward. Heavier seeds will tend to drop downward from the parent plant, and not by themselves travel very far. Spores, being much lighter, are more easily impacted by motions in the environment, especially those caused by wind and water, and therefore less strictly subject to the law of gravity (see examples below). Gravity may be sufficient agent for plants growing on steep slopes, but upslope movement of a population can be a problem. The naked seeds of gymnosperms are largely dependent upon gravity for dispersal. Most extant conifers are long-lived large shrubs or tall trees, thus taking full advantage of gravitational dispersal and allowing for gradual upslope movement of a population. Dispersal of seeds "strictly" by gravity should not overlook storm effects: seeds from a deteriorating coneA cone (in formal botanical usage: strobilus plural strobili) is an organ on plants in the division Pinophyta ( conifers) that contains the reproductive structures. The familiar woody cone is the seed-producing female cone. The male cones, which produces placed high on a tall, narrow tree will get spread widely during a wind storm (see "Wind" below).

Encasing seeds in a rounded fruit promotes gravity driven movement away from the parent.

1.2 Mechanical dispersal

Numerous species have evolved mechanical means to overcome the tendency of a seed to drop close to its parent. Seedpods are often shaped so that the seeds are flung away from the parent plant with considerable force as the seedpod matures.

Examples of fruit with mechanical dispersal mechanisms:




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