The Cambridge natural history, Vol. 01 (of 10)Hickson, Sydney J. (Sydney John)
Science
The Cambridge natural history, Vol. 01 (of 10)
Hickson, Sydney J. (Sydney John)
Animals
In the genus _Placospongia_ certain spicules are present which outwardly
closely resemble the sterrasters so characteristic of certain
Tetractinellidae. Their development, however, as will be seen from Fig.
120, shows that they are not polyaxon but spiny monaxon spicules.
_Placospongia_ is consequently transferred to the Monaxonida
Spintharaphora.
Sterrasters originate within an oval cell as a number of hairlike
fibres[270] (trichites), which are united at their inner ends. The outer
ends become thickened and further modified. The position occupied by the
nucleus of the scleroblast is marked in the adult spicule by a hilum.
[Illustration: FIG. 121.—Three stages in the development of an anisochela.
_al_, Ala; _al'_, lower ala; _f_, falx; _f'_, lower falx; _r_, rostrum;
_r'_, lower rostrum. (After Vosmaer and Pekelharing.)]
The anisochela has been shown repeatedly to originate from a C-shaped
spicule.[271]
What little is known of the development of Hexactinellid spicules we owe to
Ijima.[272] Numerous cells are concerned in certain later developmental
stages of the hexaster; a hexaster passes through a hexactin stage, and—a
fact "possibly of importance for the phylogeny of spicules in
Hexactinellida"—in two species the first formed spicules are a kind of
hexactin, known as a "stauractin," and possessing only four rays all in one
plane (cf. _Protospongia_, p. 207).
PHYSIOLOGY
PRODUCTION OF THE CURRENT.—It is not at first sight obvious that the
lashing of flagella in chambers arranged as above {235}described, between
an inhalant and an exhalant system of canals, will necessarily produce a
current passing inwards at the ostia and outwards at the osculum. And the
difficulty seems to be increased when it is found[273] that the flagella in
any one chamber do not vibrate in concert, but that each keeps its own
time. This, however, is of less consequence than might seem to be the case.
Two conditions are essential to produce the observed results: (1) in order
that the water should escape at the mouth of the chamber there must be a
pressure within the chamber higher than that in the exhalant passages; (2)
in order that water may enter the chamber there must be within it a
pressure less than that in the inhalant passages. But the pressure in the
inhalant and exhalant passages is presumably the same, at any rate before
the current is started, therefore there must be a difference of pressure
within the chamber itself, and the less pressure must be round the
periphery. Such a distribution of pressures would be set up if each
flagellum caused a flow of water directed away from its own cell and
towards the centre of the chamber; and this would be true whether the
flagellum beats synchronously with its fellows or not.
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