[Illustration: Fig. 6.]
[Illustration: Fig. 7.]
I may as well state here that in water at all temperatures, within
the limits where responses to stimuli are given at all, the staircase
action admits of being equally well produced; but in order to
procure the _maximum_ effect for any given temperature, the rate at
which the successive stimuli are thrown in must be quicker in warm
than in cold water.
CHAPTER IV.
EXPERIMENTS IN SECTION OF COVERED-EYED MEDUSÆ.
_Amount of Section which the Neuro-muscular Tissues of the
Medusæ will endure without suffering Loss of their Physiological
Continuity._
The extent to which the neuro-muscular tissues of the Medusæ may
be mutilated without undergoing destruction of their physiological
continuity is in the highest degree astonishing. For instance, to
begin with the covered-eyed Medusæ, I shall briefly state three modes
of section, the results of which serve to show in a striking manner
the fact in question.
[Illustration: Fig. 8.]
[Illustration: Fig. 9.]
The annexed woodcuts represent the umbrella of Aurelia aurita, with
its manubrium cut off at the base, and the under or concave surface
of the umbrella exposed to view, shewing in the centre the ovaries,
and radiating from them the branched system of nutrient tubes. The
umbrella when fully expanded, as here represented, is about the size
of a soup plate, and, as previously stated, all the marginal ganglia
are aggregated in the eight marginal bodies or lithocysts. Therefore
if the reader will imagine the first of the diagrams (Fig. 8) to
be overspread with a disc of muslin, the fibres and mesh of which
are finer than those of the finest and closest cobweb, and if he
will imagine the mesh of these fibres to start from these marginal
ganglia, he will gain a tolerably correct idea of the lowest nervous
system in the animal kingdom. Now, suppose that seven of these eight
ganglia are cut out, the remaining one then continues to supply its
rhythmical discharges to the muscular sheet of the bell, the result
being, at each discharge, two contraction waves, which start at the
same instant, one on each side of the ganglion, and which then course
with equal rapidity in opposite directions, and so meet at the point
of the disc which is opposite to the ganglion. Suppose, now, a number
of radial cuts are made in the disc according to such a plan as this
(Fig. 9), wherein every radial cut deeply overlaps those on either
side of it. The contraction waves which now originate from the
ganglion must either become blocked and cease to pass round the disc,
or they must zigzag round and round the tops of these overlapping
cuts. Now, remembering that the passage of these contraction waves
is presumably dependent on the nervous network progressively
distributing the ganglionic impulse to the muscular fibres, surely
we should expect that two or three overlapping cuts, by completely
severing all the nerve-fibres lying between them, ought to destroy
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