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Biomedical subjects

T D Stephens

Publications and source records attributed to T D Stephens.

11 recordsLinked to original sources

Visual demonstration of the limb-forming zone in the chick embryo lateral plate.

The present study was undertaken to determine whether a visible Wolffian ridge, distinct from the lateral fold, can be identified in chick embryos. Ectoderm thickness was measured in stage 11-17 chick embryos. There was a general trend, from thin ectoderm in the midline, to an ectodermal thickening over the somites, intermediate mesoderm, and lateral plate. Other embryos were cut from the yolk, pinned out, and photographed. The lateral fold was then eliminated, and the embryo was rephotographed. The photographs reveal a definite opaic zone, distinct from the lateral fold, in stage 11-18 chick embryos. Furthermore, there is a direct correlation between the opacity of this cellular band and the limb-forming potential of grafted wing, flank, and leg regions (see Stephens et al., '89). At stages 11-14, the wing, flank, and leg exhibit a uniform opacity, and a uniform capacity for limb formation when grafted to a host celom. From stage 15 to stage 18, the opacity in the flank diminishes, and its limb-forming capability disappears. This study demonstrates the presence of an opaic zone, which we have called the limb-forming zone (LFZ) along the lateral side of early chick embryos, which is independent of the lateral fold, is not as extensive as the lateral plate, and is not simply associated with ectodermal thickening, but which is directly correlated with limb-forming potential in the lateral plate.

Animals

Review of drug-induced limb defects in mammals.

The objective of this paper was to illustrate the spectrum of possible limb malformations in mammals resulting from drug exposure. A bibliography of 171 papers from 20 journals was generated from which pertinent data (drug used, limb defects reported, predominant defect location) were tabulated. These data should provide a basis for predictions about types of defects that might be expected in further studies and for judging postulated drug-induced human limb defects. However, direct extrapolation to humans is inappropriate. The following trends were observed: 1) Distal limb defects (autopod) are almost twice as common as proximal limb defects (stylopod and zygopod). 2) Ectrodactyly is the single most common type of limb defect, accounting for over half of the autopod defects. 3) Ectrodactyly is almost twice as common in the hindlimb as in the forelimb. 4) Postaxial ectrodactyly is over twice as common as preaxial ectrodactyly in the forelimb, but preaxial ectrodactyly is four times more common in the hindlimbs. 5) Polydactyly occurs with approximately equal frequency in forelimbs and hindlimbs, and preaxial polydactyly is most common in both fore and hindlimbs. 6) Polymelia (supernumerary limbs) occurred in one case, and may have been a spurious result. 7) Either transverse hemimelia is greatly underreported in teratology studies or it essentially does not occur. We have concluded that, at least in some cases, acetazolamide, adenine, 1,7-dimethylxanthine, and xanthine derivative aminophylline, retinoic acid, acetoxy-methyl-methylnitrosamine, aspirin, and cadmium can all cause unilateral defects.

Abnormalities, Drug-Induced

Fetus amorphus or placental teratoma?

A differential diagnosis between fetus amorphus and placental teratoma based on the presence of an umbilical cord and/or skeletal organization in the fetus amorphus has been proposed (Fox and Butler-Manual: Journal of Pathology 88:137-140, 1964). We report a description of one new case of fetus amorphus, along with the results of a critical reexamination of 96 cases from the literature. Our findings fail to support the proposed criteria for distinguishing fetus amorphus from placental teratomas. We find that the presence or absence of an umbilical cord does not relate at all to the developmental state of the specimen. The extent of skeletal development may be a more valid criterion; however, the internal organization in the fetus amorphus forms an anatomical continuum with that of the placental teratoma, making a differential diagnosis meaningless. Additional research is necessary to solve this dilemma.

Abnormalities, Severe Teratoid

Limbness in the early chick embryo lateral plate.

In order for the limb to be useful in the evaluation of early determinants of morphogenesis, it is necessary to understand some of the characteristics associated with "limbness" and, more importantly at the beginning at least, it is necessary to know what regions of the early embryo exhibit limbness qualities. Previous investigators have assumed, without direct experimental evidence, that the flank does not have limbness qualities, even at early stages of development. However, there are a few studies suggesting that the early flank does possess limbness qualities. The purpose of the present study was to determine how extensively the qualities of limbness exist in the early chick embryo. Tissues from the future neck, wing, flank, and leg regions were grafted to host celoms and evaluated for their abilities to form limbs. Limbs developed from all four regions of stage 11-14 embryos, but after stage 14 only grafts from the wing and leg regions formed limbs.

Animals

A method for predicting the cranio-caudal position of secondary embryonic structures.

The morphogenetic events that give rise to a specific body pattern have to date avoided extensive elucidation. Extant models of pattern formation have dealt almost exclusively with the "primary patterning" of structures in the embryo. These "universal" models fail to explain many morphological conditions, such as the simultaneous change in position of the limbs, celom, mesonephros, and umbilical artery relative to the somites as a result of a single mutation. In the present paper, we propose that the relation between two non-periodic waves may function to determine the position of "secondary structures", such as the limbs, in the embryo, relative to primary structures such as the somites. We propose that if two morphogenetic events are initiated at different times from the same region of the embryo, and are progressing in a cranio-caudal sequence at different rates, then the location of a given structure along the body axis can be described as a function of the two events. Applications and predictions based on the proposal are presented. Evidence from observations of morphogenetic events in the chick embryo, which tend to support the model, are also presented.

Animals