Psychology: an elementary text-bookEbbinghaus, Hermann
Science
Psychology: an elementary text-book
Ebbinghaus, Hermann
Psychology
The ganglion cells have a varying internal structure, which may be made
visible to the eye when the cells have been stained by the use of
different chemicals. They are found to contain small corpuscles with a
network of minute fibrils between them, as shown in figures 1 and 4. The
nerve fibers, too, in spite of being only 1/40 to 1/500 mm. thick,
permit us to distinguish smaller parts (fig. 5). The core consists of a
bundle of delicate, semi-fluid, parallel fibrils, the axis-cylinder.
This is surrounded generally by a fatty, marrow-like sheath, and in the
peripheral parts of the system this sheath is again inclosed in a
membrane. Certain fibers attain a considerable length, for example,
those which end in the fingers and toes, having their origin in the
spinal region of the body.
The treelike branches of the main fiber and of the collaterals, if far
away from the cell body, are sometimes called the terminal arborization,
from the Latin word for tree, _arbor_ (fig. 6). The treelike branching
has most probably a functional significance of great importance. It
enables the endings of different neurons to come into close enough
contact to make it possible for the nervous processes to pass over from
one neuron into another neuron, without destroying the individuality,
the relative independence of each neuron.
[Illustration: FIG. 6.--TERMINAL ARBORIZATION OF OPTICAL NERVE FIBERS.]
Wherever large masses of neurons are accumulated, the location of the
ganglion cells can be found directly by the naked eye. The fibers are
colorless and somewhat transparent. Where they are massed together, the
whole looks whitish, as is the case with snow crystals, or foam. The
ganglion cells, however, contain a dark pigment, and where many of them
are present among the fibers, the whole mass looks reddish gray.
Accordingly one speaks of white matter and gray matter in the nervous
system.
The nature of the excitatory process for the carriage of which the
neurons exist is still unknown. It is certain, however, that this
process is not an electrical phenomenon. Electrical changes accompany
the nervous process and enable us to recognize its presence and even to
measure it; but they are not identical with the nervous process.
Probably it is a kind of chemical process, perhaps analogous to the
migration of ions in the electrolyte of a galvanic element, the lost
energy being restored by the organism. Two facts are especially
noteworthy. The velocity of propagation has been found to be about 60
meters per second in the human nervous system. In the lowest animals
propagation is often considerably slower. It is clear, therefore, that
it is an altogether different magnitude from the velocities found in
light, electricity, or even sound.
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