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Metastatic potential of MDA435 and Hep2 cell lines in chorioallantoic membrane (CAM) model.

Chick embryo chorioallantoic membrane model is a very sensitive assay for studying metastasis in vivo. In this organism, tissue barriers provide a real support to demonstrate the infiltration pathway of two human tumoral cell stains: a line of breast adenocarcinoma (MDA435), and a line of larynx epidermoid carcinoma (Hep2). We studied the metastatic potential of these cells to migrate from the upper chorioallantoic membrane (CAM) to the lower CAM, using as marker a human p53 primer, known for flanking exclusively a human region of exon 8. Our results show that both cell lines possess the ability to migrate from the inoculation site (on the upper CAM) to distant sites of the CAM (lower CAM). A difference in the pattern of migration among the two cell lines was also observed. While Hep2 cells showed a uniform migration from the inoculation site, MDA435 cell line showed a different migration pattern consistent with the idea of two different populations within the same cell line.

Allantois↗

Activated primary and memory CD8 T cells migrate to nonlymphoid tissues regardless of site of activation or tissue of origin.

Following activation within secondary lymphoid tissue, CD8 T cells must migrate to targets, such as infected self tissue, allografts, and tumors, to mediate contact-dependent effector functions. To test whether the pattern of migration of activated CD8 T cells was dependent on the site of Ag encounter, we examined the distribution of mouse Ag-specific CD8 T cells following local challenges. Our findings indicated that activated CD8 T cells migrated pervasively to all nonlymphoid organs irrespective of the site of initial Ag engagement. Using an adoptive transfer system, migration of nonlymphoid memory cells was also examined. Although some limited preference for the tissue of origin was noted, transferred CD8 memory T cells from various nonlymphoid tissues migrated promiscuously, except to the intestinal mucosa, supporting the concept that distinct memory pools may exist. However, regardless of the tissue of origin, reactivation of transferred memory cells resulted in widespread dissemination of new effector cells. These data indicated that recently activated primary or memory CD8 T cells were transiently endowed with the ability to traffic to all nonlymphoid organs, while memory cell trafficking was more restricted. These observations will help refine our understanding of effector and memory CD8 T cell migration patterns.

Adoptive Transfer↗

Susceptibility of skin fibroblasts from individuals genetically predisposed to cancer, to transformation by the tumour promoter 12-O-tetradecanoylphorbol-13-acetate.

Skin fibroblasts from patients with hereditary retinoblastoma (RB) and familial polyposis coli (FPC) were chosen for study since their predisposition to the tumour may be due to an inherited "initiation" event which is present in every cell. Thus, it might be predicted that skin fibroblasts from these patients would exhibit increased susceptibility to in vitro transformation by tumour promoters alone. In the case of skin fibroblasts from RB patients, transformation as assessed by the ability of the cells to grow in semi-solid medium and their migration in collagen gels did not occur. However, experiments involving skin fibroblasts from FPC patients showed certain of these cells to grow in semi-solid medium following treatment with the tumour promoter 12-O-tetradecanoylphorbol-13-acetate (TPA) alone, although the pattern of migration of the parent cell population in collagen gels was unchanged and they were non-tumorigenic in nude mice. The clones which grew in semi-solid medium, although stable with regard to anchor-age-independent growth, were also unaltered in terms of their migration pattern in collagen gels and their tumorigenicity in nude mice, and were considered not to be completely transformed. Parallel cytogenetic analysis showed that, during the course of these transformation studies, TPA significantly increased not only tetraploidy but also the chromosome aberration frequency. Several quadriradial figures were noted.

Adult↗

Effects of flow patterns on endothelial cell migration into a zone of mechanical denudation.

Vascular endothelial cells (ECs) in vivo are subject to different flow conditions due to the variation in vessel geometry. The aim of this study is to elucidate the effects of different flow conditions on EC monolayer migration into a mechanically denuded zone and their underlying mechanisms. Both laminar and disturbed flows significantly enhanced EC migration. EC migration speed was the fastest under laminar flow, which preferentially promoted directional EC migration from the upstream side of the wounded monolayer. C3 exoenzyme (a Rho inhibitor) inhibited EC migration under static and flow conditions, and markedly reduced the effects of flow on EC migration. These results indicate that flow promotes EC migration through the Rho signaling pathway. Genistein (a tyrosine kinase inhibitor) selectively retarded EC migration under disturbed flow, suggesting that tyrosine phosphorylation may play a role in EC migration under disturbed flow. This study has demonstrated that different flow patterns differentially affect EC monolayer migration into the denuded zone involving multiple mechanisms.

ADP Ribose Transferases↗

Possible models describing enterocyte replacement in mouse Peyer's patch follicle-associated epithelial tissue.

Epithelial cells emerging from intestinal crypts surrounding Peyer's patch lymphoid follicles can be shown in chimaeric mice to adopt a wedge-like formation during migration to a central zone of cell extrusion (Schmidt et al. 1985). Similar tissue taken from normal mice has been used as a model in the present work to investigate how such a pattern of convergent migration might take place. Tissue treated cytochemically to reveal differences in surface alkaline phosphatase activity enabled a number of cell surface area measurements to be carried out by image analysis. The position where these measurements had been taken was then related to the geometrical centre of the tissue. Epithelial cell surface area halved during migration from edge to centre of these disc-like structures. An equation used to describe the positional dependence of this change had the form rho(r) = 6.86r(-0.24), where rho is cell density and r is cell distance from the centre measured in micrometers. Further calculation showed this decrease to be insufficient to explain all features associated with convergent migration. Differential changes occurring in the rate of cell migration and premature cell loss were also considered as possible factors affecting migration patterns. Mathematical modelling of these variables produced a migration pattern consistent with previous experimental findings. This model assumes that half the cell population is lost during migration and that cell migration rate near the centre is four times greater than at the edge. It should be possible to test this latter prediction in future experiments.

Alkaline Phosphatase↗

Rhombomere rotation reveals that multiple mechanisms contribute to the segmental pattern of hindbrain neural crest migration.

Hindbrain neural crest cells adjacent to rhombomeres 2 (r2), r4 and r6 migrate in a segmental pattern, toward the first, second and third branchial arches, respectively. Although all rhombomeres generate neural crest cells, those arising from r3 and r5 deviate rostrally and caudally (J. Sechrist, G. Serbedzija, T. Scherson, S. Fraser and M. Bronner-Fraser (1993) Development 118, 691-703). We have altered the rostrocaudal positions of the cranial neural tube, adjacent ectoderm/mesoderm or presumptive otic vesicle to examine tissue influences on this segmental migratory pattern. After neural tube rotation, labeled neural crest cells follow pathways generally appropriate for their new position after grafting. For example, when r3 and r4 were transposed, labeled r3 cells migrated laterally to the second branchial arch whereas labeled r4 cells primarily deviated caudally toward the second arch, with some cells moving rostrally toward the first. In contrast to r4 neural crest cells, transposed r3 cells leave the neural tube surface in a polarized manner, near the r3/4 border. Surprisingly, some labeled neural crest cells moved directionally toward small ectopic otic vesicles that often formed in the ectoderm adjacent to grafted r4. Similarly, they moved toward grafted or displaced otic vesicles. In contrast, surgical manipulation of the mesoderm adjacent to r3 and r4 had no apparent effects. Our results offer evidence that neural crest cells migrate directionally toward the otic vesicle, either by selective attraction or pathway-derived cues.

Animals↗

BMP signaling regulates murine enteric nervous system precursor migration, neurite fasciculation, and patterning via altered Ncam1 polysialic acid addition.

The enteric nervous system (ENS) forms from migrating neural crest-derived precursors that differentiate into neurons and glia, aggregate into ganglion cell clusters, and extend neuronal processes to form a complex interacting network that controls many aspects of intestinal function. Bone morphogenetic proteins (BMPs) have diverse roles in development and influence the differentiation, proliferation, and survival of ENS precursors. We hypothesized that BMP signaling might also be important for the ENS precursor migration, ganglion cell aggregation, and neurite fasciculation necessary to form the enteric nervous system. We now demonstrate that BMP signaling restricts murine ENS precursors to the outer bowel wall during migration. In addition, blocking BMP signaling causes faster colonization of the murine colon, reduces ganglion cell aggregation, and reduces neurite fasciculation. BMP signaling also influences patterns of neurite extension within the developing bowel wall. These effects on ENS precursor migration and neurite fasciculation appear to be mediated at least in part by increased polysialic acid addition to neural cell adhesion molecule (Ncam1) in response to BMP. Removing PSA enzymatically reverses the BMP effects on ENS precursor migration and neurite fasciculation. These studies demonstrate several novel roles for BMP signaling and highlight new functions for sialyltransferases in the developing ENS.

Animals↗

Morphology and organization of posterior fiber ends during migration.

PURPOSE: To characterize structural parameters of the basal membrane complex (BMC) and to determine the arrangement and organization of posterior fiber ends during elongation/migration in lenses with branched sutures. METHODS: Lenses from normal, juvenile (4-6 week old) Sprague-Dawley rats (n=16) were utilized. Posterior fiber ends were assessed on both whole mounts of lens capsules and on decapsulated lenses. The size, shape and organization of migrating fiber ends was assessed by scanning electron microscopy (SEM) and laser scanning confocal microscopy (LSCM) along the entire posterior surface. The area of the BMC was measured using image analysis software and subjected to statistical analysis. RESULTS: Posterior fiber ends had a characteristic regional arrangement during elongation and migration along the capsule. These regions were termed the equatorial, the lateral-posterior (posterior from the equator to within 150 microm of the sutures), the peri-sutural (150 microm surrounding the sutures), and the sutural. The area of fiber ends (seen by SEM) was compared to the area of fluorescent F-actin profiles (seen by LSCM). There was no significant difference (p=0.324) between the average basal end area (40.21 microm2) and the average area of F-actin profiles (40.65 microm2). The average fiber end area in the lateral-posterior, peri-sutural, and sutural regions was 63.19 microm2, 71.95 microm2, and 25.75 microm2, respectively. In the equatorial region, footprints were aligned in rows oriented toward the posterior pole, consistent with the arrangement of straight, meridional rows. Initially, fiber ends within the lateral-posterior region were arranged in short irregular rows having variable orientation with respect to the posterior pole. The remainder of these ends were randomly arranged. In the peri-sutural region, fiber ends approaching suture branches were aligned in short rows oriented at angles to the posterior pole. At the sutures, fiber ends appeared to become rounded, presumably during detachment from the capsule. CONCLUSIONS: The results confirm that F-actin profiles delineate the BMC of posterior fiber ends. Furthermore, the average area, shape and arrangement of fiber ends varies in a predictable pattern during migration. The data suggests that elongating fiber ends follow defined migration patterns along the posterior capsule to their sutural destinations. This controlled process is crucial to the formation of ordered suture patterns, thereby minimizing their adverse effects on lens optical quality.

Actins↗

Inhibitory interactions in the patterning of trunk neural crest migration.

In avian embryos, trunk neural crest migrate segmentally through the somites, entering the rostral but not caudal somitic sclerotome. Inhibitory molecules in the caudal somite could prohibit entry of neural crest caudally, and thus restrict cell migration to rostral somite territories. Two sets of cues, peanut agglutinin (PNA) binding glycoproteins and members of the Eph family of receptor tyrosine kinases (RTKs) and their ligands appear to play this role in segmenting cell migration. Addition of exogenous PNA to neural crest migrating in trunk explants disrupts the normal segmental pattern of migration; neural crest travel in rostral and caudal regions of the somites. Members of the Eph family display the correct spatiotemporal localization to influence neural crest migration; the RTK EphB3 is expressed by neural crest, whereas the transmembrane ligand ephrin-B1 is expressed by caudal sclerotomal cells. Exogenous ephrin-B1 added to neural crest migrating in trunk explants also specifically disrupts the segmental organization of neural crest migration. Isolated neural crest avoid lanes containing ephrin-B1 in vitro; this avoidance is abolished by addition of soluble ligand. Time-lapse imaging reveals that neural crest exhibit a typical collapse response followed by process retraction upon encountering ligand. The results of these studies implicate PNA-binding glycoproteins and Eph family members in sculpting the migratory patterns of neural precursors in the peripheral nervous system.

Animals↗