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Biomedical subjects

A J Steffek

Publications and source records attributed to A J Steffek.

At least 19 recordsLinked to original sources

Reduced epithelial surface activity is related to a higher incidence of facial clefting in A/WySn mice.

The epithelial surfaces of the facial primordia were evaluated by scanning electron microscopy (SEM) during primary palatogenesis in two genetically related mouse strains, the A/J and the A/WySn strains. These two strains were selected because the reported frequency of spontaneous cleft lip with or without cleft palate [CL(P)] in the A/J strain approximates 0%, whereas the spontaneous frequency of CL(P) in the A/WySn strain is 20-30%. The embryos were examined prior to (two to six tail somites), during (seven to ten tail somites), and after (ten to 14 tail somites) primary palate fusion. During fusion, epithelial surface activity (characterized as cellular debris, dissociated cells, cellular projections, and epithelial bridging) was more pronounced in A/J embryos. A/WySn embryos with spontaneous cleft lip exhibited a marked deficiency in epithelial activity when compared to their normal littermates. No discernible differences were detected in the facial morphology, with the exception of the distal end of the medial nasal prominence, which appeared longer in the A/J strain. This study suggests that the degree of epithelial surface activity at the putative site of fusion and the relative length of the medial nasal prominence may account for the observed differences in facial clefting of the two strains. Face shape, related to prominence divergence, was similar in the two strains and could not explain the higher incidence of clefting observed in the A/WySn strain.

Animals↗

Epithelial bridging of the primary palate: I. Characterization of sub-cultured epithelial cells.

Primary palatogenesis involves an intricate array of events. Cell migration, proliferation, differentiation, programmed death, and fusion occur. Prior to fusion, the morphology of the epithelium undergoes marked changes. Epithelial projections form and extend across the fusion site attaching by filopodia to the opposite prominence. By appearance, the epithelium plays a critical role in facial development. In order to monitor epithelial activities, a study was done to isolate and characterize epithelial cells derived from the primary palate. The primary palate was microdissected from day 13 Sprague-Dawley rat embryos, and the epithelium and mesenchyme were separated by enzymatic digestion with a 3% trypsin-pancreatin solution (3:1). All explants were cultured in Dulbecco's modified Eagle's medium (DMEM) and Ham's F-12 medium (1:1) supplemented with 10% fetal calf serum (FCS), 20 ng/ml epidermal growth factor (EGF), and antibiotics. Explant cells were gathered by trypsin harvesting and sub-cultured. These sub-cultured cells were further characterized. Transmission and scanning electron microscopy showed that the cells retained many morphological features observed in vivo. In passaged cells, type IV collagen, laminin, and cytokeratins were visualized by immunocytochemistry. Gel electrophoresis analysis of the water-insoluble extracts demonstrated major bands of proteins of 50 kD and 44 kD that were synthesized by the epithelial cells but not by the mesenchymal cells. These cytokeratin types are suggestive of a simple undifferentiated embryonic epithelium. The effect of all-trans retinoic acid (RA) on cell number and [3H]-proline incorporation was assessed. At [10(-4)M] and [10(-6)M] retinoic acid resulted in significant inhibition in cell proliferation and amount of proline incorporated, with the greater inhibition occurring in the mesenchymal cells. In the concentrations studied, retinoic acid has an inhibitory effect on the two differently derived cell types. This study established that sub-cultured epithelial cells maintain their phenotype and can be used to study fusion processes. Part 2 will demonstrate how the morphology of the epithelial cells can be modified to produce the changes that are observed during fusion of the primary palate.

Animals↗

Epithelial bridging of the primary palate: II. In vitro model mimics in vivo behavior.

Previously, Forbes et al. [J Craniofac Genet Dev. Biol, 9:271-284, 1989] and Millicovsky et al. [Am J Anat 164:29-44, 1982], demonstrated that some of the epithelial cells of the primary palate formed extensive projections, bridging the medial and lateral nasal prominences. These connections are thought to aide in the fusion process by facilitating union of the prominences, a process known as secondary fusion [Millicovsky et al., 1982]. In order to study the epithelial cell and its behavior more closely an in vitro model was established [Gibson et al.: J Craniofac Genet Dev Biol, 1989], where epithelial cells in culture were shown to produce many of the morphologic characteristics observed in vivo. In the present study, an in vitro model is discussed which reproduces the epithelial projections observed in vivo. Epithelial cells, previously characterized, were obtained from the primary palate of 13-day-old rat embryos and sub-cultured as explants. Comparisons were made with the epithelial bridging observed in vivo of two species of animals. The results indicated sub-cultured epithelium as isolated cells, at either low or high density, rarely formed bridges. Primary cultures of epithelial explants also infrequently formed projections. However, sub-cultures of epithelial explants, plated as small clusters of cells with intervening spaces between cell groups, demonstrated extensive epithelial bridging. Epithelial projections did not form from cells that were directly attached to the plastic culture dish; only superficial, elevated cells formed projections. Significantly, the connections that occurred between explants did not attach to the plastic substratum. Instead, they appeared as line connections suspended by the medium. With time, the number of projections increased and epithelial cells could be seen along the projections forming an epithelial bridge. This study established a model of epithelial bridging in vitro for analysis of a process which has been shown to be an integral part of primary palate fusion.

Amniotic Fluid↗

Craniofacial, caudal, and visceral anomalies associated with mutant sirenomelic mice.

Craniofacial anomalies were correlated with mutant murine sirenomelia. Ninety-eight newborn sirens from heterozygous matings were examined and analyzed. In the 96 sirens that had intact craniofacial structures, micrognathia was seen in 39% of the sirens, microstomia in 34%, macroglossia in 26%, and cleft palate in 21%. Even when not cleft, the siren palates were narrower and more highly arched than those of nonsiren littermates. The frequency of abnormal craniofacial development was greater in those sirens that were more severely affected caudally. Even though some earlier studies had indicated a preponderance of males, 46 of the 95 sirens with intact pelvic viscera were females. Fifty-three percent of the sirens were monopodal, 35% were apodal, and 11% were dipodal. A penile-like projection on the genital tubercle occurred on 15 apodal sirens and four monopodal sirens; all but three of these sirens were males. Bladder agenesis was seen in 100% of the sirens, anal atresia in 80%, and bilateral renal agenesis in 43%. No siren was found with bilaterally normal kidneys. The srn gene responsible for sirenomelia might either directly affect the embryo at both the caudal and cranial regions or indirectly affect the embryo by producing lateral mechanical compression at both these sites. The srn gene was earlier characterized as autosomal-recessive; our data confirm this. Sirenomelia was found in only 11% of the newborns from crosses of carrier mice in the colony. Analyses of uterine contents at days 12-14 suggest that the srn gene is fully penetrant, but often lethal, during the fetal period.

Abnormalities, Multiple↗

Teratological and radiocephalometric analysis of craniofacial malformations induced with retinoic acid in rhesus monkeys (Macaca mulatta).

Fifteen pregnant Macaca mulatta were treated with doses of 20 or 40 mg of retinoic acid between 19--45 or 17--45 days of gestation, respectively, for 4--8 consecutive days. Based on gross examination, ten malformed infants, including one stillbirth and one abortus, four normal infants, and one resorption were produced. The most critical sensitive period was between days 24--35 of gestation, and the malformations primarily involved the craniofacial skeleton. Ten treated infants and eight age-matched controls were cephalometrically analyzed using craniometric points as closely correlated as possible with those in humans in order to define the craniofacial malformations induced prenatally by retinoic acid. Although all ten animals had detectable linear and angular deviations from the controls, four had cephalometric patterns which appeared to be of similar developmental origin.

Abnormalities, Drug-Induced↗

Craniofacial and central nervous system malformations induced by triamcinolone acetonide in nonhuman primates: I. General teratogenicity.

Eighteen pregnant Macaca mulatta, 15 Macaca radiata, and six Papio cynocephalus were treated with 5--20 mg/kg triamcinolone acetonide (TAC) between 21 and 43 days of gestation on single- or multiple-day treatment schedules. Prenatal deaths and stillbirths were tripled in the bonnet monkey and doubled in the rhesus monkey, but did not significantly increase in the baboon. The central nervous system and cranium were the most commonly malformed areas in all three species. The incidence of severe defects, e.g., cranium bifidum, encephalocele, meningocele, and hydrocephalus, was increased in multiple-day treated cases. Minor abnormalities such as aplasia cutis congenita, cranium bifidum occultum, and occipital lobe hypoplasia were more prevalent in single-day treated cases. The sensitive period (days 23--31) for TAC for this group of defects encompasses neural tube closure, rostral demarcation of the midbrain, and development of the primordial collicular plate and two midbrain neuromeres. The results of this study indicate that TAC is a valuable chemical tool for the study of malformations and pathogenesis of the brain and accompanying cranio-facial defects.

Abnormalities, Drug-Induced↗

Scanning electron microscopy (SEM) of cranial neural crest migration in chick embryos.

This study describes migrating cranial neural crest cells and the microenvironment through which they migrate in chick embryos. Just prior to and during cell migration, an extensive fibrillar meshwork is observed, particularly on the outer surface of the neural tube and the inner surface of the ectoderm. This meshwork in general had a random orientation. This suggested to us that the meshwork does not provide a directive vector for cell migration but rather a substratum to promote or enhance crest cell filopodial attachment as the cells migrate. Much remains to be done in characterizing the composition of this meshwork. Based on other studies in which a smiliar meshwork has been observed, it is not unreasonable to consider it to be partly collagenous. Another major component in the relatively cell-free space through which avian crest cells migrate is hyaluronic acid. The migrating crest cells are characteristically bipolar and are generally oriented in the direction of migration, although little is known about the actual mechanism of motility. Alterations in the migrating cell or in the environment through which it migrates may interfere with normal craniofacial morphogenesis, as discussed elsewhere in this volume by Johnston and Sulik.

Animals↗