Excessively dorsalized embryos of Xenopus laevis develop from eggs treated with 30-70% D2O for a few minutes within the first third of the cell cycle following fertilization. As the concentration of D2O and the duration of exposure are increased, the anatomy of these embryos shifts in the direction of enlarged dorsal and anterior structures and reduced ventral and posterior ones. Twinning of dorsoanterior structures is frequent. Intermediate forms include embryos with large heads but no trunks or tails. The limit form of the series has cylindrical symmetry, with circumferential bands of eye pigment and cement gland, a core of notochord-like tissue, and a centrally located beating heart. D2O treatment seems to increase the egg's sensitivity to the dorsalizing effects of cortical rotation and to stimulate the egg to initiate two or more directions of rotation. Such eggs probably establish thereafter a widened and/or duplicated Nieuwkoop center in the vegetal hemisphere, with the subsequent induction of a widened and/or duplicated Spemann organizer region in the marginal zone, which leads to excessive dorsal development. The existence of these anatomical forms indicates the potential of the egg to undertake dorsal development at all positions of its circumference and suggests that normal patterning depends on the limited and localized activation or disinhibition of this widespread potential.
We first review cortical-cytoplasmic rotation, a microtubule-mediated process by which the Xenopus egg, like other amphibian eggs, transforms its polarized cylindrical symmetry into bilateral symmetry within the first cell cycle after fertilization. This transformation, the earliest of many steps leading to dorsal development, involves the displacement of the egg's cortex relative to its cytoplasmic core by 30 degrees in an animal-vegetal direction. As rotation is progressively reduced by microtubule-depolymerizing agents, embryos develop with body axes progressively deleted for dorsal structures at the anterior end. With no rotation, ventralized embryos are formed. In an effort to comprehend this progressive effect on embryonic organization, we go on to review subsequent developmental process depending on rotation, and we propose, with evidence, that reduced rotation leads to a reduced number of vegetal dorsalizing cells, which induce during the blastula stage a Spemann organizer region of smaller than normal size. The reduced organizer then promotes a reduced amount of cell rearrangement (morphogenesis) at gastrulation. Reduced morphogenesis seems the proximate cause of the incompleteness of axial pattern, as shown further by the fact that embryos that are normal until the gastrula stage, if exposed to inhibitors of morphogenesis, develop body axes that are progressively less complete in their anterior dorsal organization the earlier their gastrulation had been blocked. We discuss why axial pattern might depend systematically on morphogenesis.
phibians, each part of the embryo arises predictably from an identifiable part of the egg, leading embryologists to conclude that the egg's cytoplasm contains spatially organized materials that direct embryonic development. Some have proposed that the variety and organization of these materials must equal the anatomical complexity of the adult itself (the mosaic viewpoint), and that development is the mere point-to-point transformation of egg materials into embryonic materials. Other embryologists have proposed that the egg's organization suffices only for its development to the next immediate developmental stage, which must then make and distribute additional in-