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T P Fitzharris

Publications and source records attributed to T P Fitzharris.

12 recordsLinked to original sources

Morphogenesis of the truncus arteriosus of the chick embryo heart: the formation and migration of mesenchymal tissue.

The appearance and migration of mesenchymal cushion tissue within the truncus arteriosus of the normal 2.5 to 6-day chick embryo heart was surveyed systemically with the light microscope. Series of cross-sections taken from replicate hearts at successive developmental stages allowed comparison of the following qualitative and quantitative aspects of early truncal morphogenesis. Mesenchyme within the truncus was derived from two distinct sources. The first mesenchyme appeared to migrate caudally into the cardiac jelly of the distal truncus from the nearby aortic arch region, coincident with slowing of the anterior elongation of the heart tube (Hamburger-Hamilton Stage 17-18). A second, separate mesenchymal population, derived from endocardium, began to fill the conus and proximal truncus in a radial direction, coicident with expansion of the bulbs cordis (Stage 12-19). The measured kinetics of relative cell numbers, distributions, and mitotic indices suggest substantial contributions from both sources. By Stage 26, the conotruncal region was filled with mesenchyme, which then condensed to form the anlagen of three future structures: the semilunar valves, the aorticopulmonary septum, and the tunica media of the great arteries.

Animals

Morphogenesis of the truncus arteriosus of the chick embryo heart: tissue reorganization during septation.

Septation of the truncus arteriosus of the normal chick embryo heart was surveyed systematically with the light microscope. Tissue from replicate samples at successive periods of development was sectioned within an arbitrary coordinate system based on positional reference points along the external surface of the heart. Correlation of several aspects of tissue morphology within this spatial and temporal reference-frame yielded a new description of tissue associations and kinetics during septation. A stable complex of tissue structures appeared in the downstream, distal truncus at Stage 25 and persisted throughout the septation process. This complex consisted of (1) the cephalic margin of the myocardial sheath, and (2) the adjacent bifurcation of the vascular lumen, linked together by (3) the newly condensed Y-shaped strap of cells forming the aorticopulmonary septum. The apparent motion of this septation-complex toward the ventricle(s), the appearance within the thoracic cavity of the adjacent segments of the aortic arches, and measures of tissue length and width suggested that septation was accompanied, and perhaps initiated, by increased tension along the truncus. The truncal ridges remained upstream from the complex, with mesenchymal condensations beneath the endocardium differentiating into the definitive semilunar valves. Downstream from the bifurcation, mesenchyme in the aortic arch region condensed around the separate lumens to form the smooth muscular tunica media of the great arteries. The epicardium developed in a caudocephalic direction along the heart tube. Vagal innervation approached the heart cephalocaudally. Capillaries formed along the dividing truncus in both directions. Autoradiography following 3H-thymidine labelling demonstrated reduced DNA synthetic activity in the cephalic margin of the myocardium and aorticopulmonary septum, compared with the associated loose mesenchyme.

Animals

Collagen synthesis in the developing chick heart.

We have surveyed the amount and types of collagen synthesized in two regions of the chick heart during embryonic development. Cardiac tissues from successive periods of development were labeled with 3H-proline in short-term organ culture. The fraction of incorporated label present as collagen was estimated by comparison of TCA-soluble radioactivity before and after digestion with purified bacterial collagenase. This measure of collagen synthesis varied only slightly with the length of the labeling period and agreed with values obtained by labeling in ovo. In the developing outflow tract, the fraction of label present as collagen increased sharply during the period of truncal septation (5-9 days), rising from initial values of 6% at 3 days of incubation to a plateau of about 25% (10-19 days). In ventricular myocardium, this fraction rose gradually from 3 to 20% between 3 and 19 days of incubation. The types of collagen synthesized in developing heart were analyzed by limited pepsin digestion and acrylamide gel electrophoresis, using collagens synthesized in tendon, cartilage, skin, and lens capsule for comparison. The types of collagen synthesized in both cardiac regions changed in similar manner during development. During the first week of cardiac function, a substantial but progressively smaller fraction of total collagen synthesized was identified as Type IV. Synthesis of Type I collagen increased sharply during this period and predominated during the second half of development. Type III collagen was synthesized in trace amounts by the middle of development and constituted approximately one-sixth of total collagen synthesis just before hatching. Minor amounts of collagen identified as Type B collagen were synthesized throughout the latter two-thirds of development.

Animals

Matrical ordering in the morphogenesis of tunica media.

The cells which will form the smooth muscle tunica media are derived embryologically from the cardiac mesenchyme referred to as endocardial cushion tissue. These progenitor smooth muscle cells, however, are derived primarily from aortic arch mesenchyme as opposed to the endocardium in the prevalvular areas. The matrical microenvironments of these cells begin to change at approximately 5 days of development when the progenitor smooth muscle cells acquire a more fibrillar matrix. The prospective adventitia and valvular areas still maintain an environment rich in hyaluronate and proteoglycans. By Day 6, the 110Ao microfibril, characteristic of smooth muscle cells, appears in the matrix well in advance of the amorphous elastin component seen at Days 8 and 9. The orientation of the collagenous microfibrils and elastic microfibrils is non-random with respect to the layers of cells, and this precludes a simple substrate alignment model in establishing the characteristic laminarity of this tissue.

Animals

Initiation of bends in the microtubular axostyle of Pyrsonympha.

The motile axostyle of Pyrsonympha, a symbiotic protozoan occupying the hindgut of termites, is a cytoplasmic bundle of microtubules capable of initiating and propagating bends. In vivo, bends are always initiated at the anterior end of the cell. The early events to bend initiation are described using quantitative data from cinemicrographic recordings. In addition, the conplicated array of structures at the site of bend initiation is described using electron microscopy of serial thin sections through the anterior end of the cell. Bend initiation is postulated to represent a mechanical event associated with one or more of the specialized structures associated specifically with the anterior end of the axostyle.

Animals

Structural development of endocardial cushions.

Development of chick and rat endocardial cushions (cardiac mesenchyme) was studied histologically (using Nomarski differential interference optics on living and unfixed tissue), ultrastructurally (scanning and transmission electron microscopy), cytochemically (using acidified dialyzed iron as a visual probe for polyanionic material) and autoradiographically (using 35S) to elucidate the origin of the mesenchyme, the morphologic sequences leading to cushion formation and secretion of sulfated glycosaminoglycans, if any, by migrating mesenchymal cells. Cushion formation was similar for both species. Mesenchymal cells appeared initially, in 16- to 18-somite embryos, beneath the endothelium (which lacked a basal lamina) of the future atrioventricular canal and outflow tract. The cytoplasm of cushion mesenchymal cells was structurally similar to the ensothelium; probably these cells arose by proliferation of the endothelium. Mitotic figures among the "seeded" cells were also numerous. Cushion cells were initially attached to the endothelium by desmosomes but acquired motile apparatus (pseudopodia and filopodia containing microtubules and microfilamentous bundles). Serial sectioning of successively-aged embryos (20-44 somites) indicated a centrifugal migratory direction. Interaction of the cell processes with extracellular matrix suggested that the latter was used as a migratory substrate. Contact of the advancing wedge of cushion cells with the myocardium produced no alteration in cell structure or mitotic activity. Localization of hyaluronidase-sensitive, dialyzed iron (DI) precipitates in 250-nm Golgi vacuoles and hyaluronidase-sensitive 35S-endangendered silver grains over cushion cells indicated that this tissue contributed sulfated macromolecules to the matrix. Localization of hyaluronidase-labile, DI material in coated, endocytic-like vesicles and caveolae also suggested potential modification or conditioning of the matrix by migrating mesenchymal cells. Altogether, the study established loci in developing cushions where disruption where disruption of the developmental sequence could engender valvular or septal defects.

Animals