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The cranial and caudal vocal folds (CraF, CauF) of the glottis of adult minipigs (11–27 months; n = 12) were examined after immunohistochemical application of polyclonal anti-von-Willebrand-Factor and anti-Smooth-Muscle-Actin in serial paraffin sections. This examination aimed at a stratigraphical analysis of microvessels; data were compared with findings in humans which had been reported in the literature. (1) The distribution of the microvessels was very heterogeneous in the CraF and in the CauF, but a common pattern existed in both. (2) Characteristic vascular zones and rows were detected; each of them displayed a specific distribution and density of blood capillaries, arterioles, venules, lymphatic capillaries, and lymphatic precollectors. (3) A striking feature was the presence of a subepithelial Avascular Band and of a focal Avascular Area within the lamina propria of the fold’s crests. (4) The vascular zones, the rows, the Avascular Band, and the Avascular Area could be allocated to specific layers of the lamina propria: subepithelial, superficial, intermediate, deep layer. (5) The loose Avascular Area at the level of the superficial layer of the lamina propria (in both CraF and CauF) corresponded to Reinke’s space in humans in terms of structure and location. (6) The direction/ /course of blood and lymphatic microvessels shared common features with that of the human vocal fold. (Folia Morphol 2014; 73, 4: 439–448)
Background: The topographical correlations between certain extracranial and intracranial osseous points of interest (POIs), and their age-related changes, are indispensable to know for a diagnostical or surgical access to intracranial structures; however, they are difficult to assess with conventional devices. Materials and methods: In this pilot study, the 3-dimensional coordinates of extra-/intracranial POIs were determined, thus avoiding perspective distortions that used to be intrinsic problems in 2-dimensional morphometry. The data sets were then analysed by creating virtual triangles. The sizes, shapes, and positions of these triangles described the extent and the directions of the age-related shifts of the POIs. A selection of extracranial and intracranial POIs were marked on half skulls of four warmblood horses in two age groups (young: 6 weeks, n = 2; old: 14 and 17 years, n = 2). The x-, y-, and z-coordinates of these POIs were determined with a measurement arm (FaroArm Fusion, FARO Europe®). Direct distances between the POIs as well as their indirect distances on the x-, y-, and z-axis, and angles were calculated. Results: The analysed virtual triangles revealed that some parts of the skull grew in size, but did not change in shape/relative proportions (proportional type of growth, as displayed by POI A and POI B at the Arcus zygomaticus). The same POIs (A and B) remained in a very stable relationship to their closest intracranial POI at the Basis cranii on the longitudinal axis, however, shifted markedly in the dorso-lateral direction. In contrast, a disproportional growth of other parts of the cranium was, for example, related to POI C at the Crista nuchae, which shifted strongly in the caudal direction with age. A topographically stable reference point (so-called anchor point) at the Basis cranii was difficult to determine. Conclusions: Two candidates (one at the Synchondrosis intersphenoidalis, another one at the Synchondrosis sphenooccipitalis) were relatively stable in their positions. However, the epicentre of (neuro-)cranial growth could only be pinpointed to an area between them. (Folia Morphol 2017; 76, 3: 458–472)
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