Cellular morphology in haploid amphibian embryos

Development ◽  
1980 ◽  
Vol 59 (1) ◽  
pp. 249-261
Author(s):  
Mark S. Ellinger ◽  
Judith A. Murphy

External surfaces of haploid and diploid embryos of Bombina orientalis were examined with the scanning electron microscope to determine the possible contribution of cellular morphology to the amphibian haploid syndrome. Cellular anomalies were prevalent in all surface areas of haploid embryos. The epithelium appeared uneven due to the displacement of ciliated cells and the rounded apical surfaces of the non-ciliated cells. The ratio of ciliated to non-ciliated cells was altered in comparison to diploid embryos. Cells of the gill filaments and adhesive organs were abnormal in morphology, and the adhesive organs themselves were fused into a single large rudiment in haploid embryos. Uniformity of cell size was markedly reduced in head regions of haploid embryos with severe microcephaly. Haploid and diploid embryos elaborated mucoid matrices over the surface cells when removed from the fertilization envelope. It is apparent that aberrant cellular morphologies are widespread in haploid embryos, and it is likely that these defects are major contributors to the gross morphological anomalies of the haploid syndrome.


1986 ◽  
Vol 94 (4) ◽  
pp. 430-434 ◽  
Author(s):  
Roberto Gamoletti ◽  
Paolo Lanzarini ◽  
Mario Sanna ◽  
Carlo Zini

The ultrastructural appearance of the regenerated middle ear epithelium, found at the second operation of staged ICWT with mastoidectomy, has been investigated herein with the scanning electron microscope. The regenerated epithelium consists of flat nonciliated cells, “elevated” nonciliated cells with microvilli, and ciliated cells. Secretory material is present on the surface of the “elevated” nonciliated cells surrounding the ciliated ones. Regeneration of the mucosa occurs following precise topographic differences that mimic the distribution of epithelial cells in the normal middle ear. It is confirmed that a morphologically normal middle ear epithelium regenerates to cover all denuded bone surfaces within 12 months—after first stage ICWT with mastoidectomy—when silicone rubber sheeting has been used to maintain an aerated middle ear and mastoid space.



1998 ◽  
Vol 78 (5) ◽  
pp. 491-500 ◽  
Author(s):  
Athanasios Kokkinosa ◽  
Constantinos Fasseas ◽  
Elias Eliopoulos ◽  
George Kalantzopoulos


Author(s):  
R. E. Ferrell ◽  
G. G. Paulson

The pore spaces in sandstones are the result of the original depositional fabric and the degree of post-depositional alteration that the rock has experienced. The largest pore volumes are present in coarse-grained, well-sorted materials with high sphericity. The chief mechanisms which alter the shape and size of the pores are precipitation of cementing agents and the dissolution of soluble components. Each process may operate alone or in combination with the other, or there may be several generations of cementation and solution.The scanning electron microscope has ‘been used in this study to reveal the morphology of the pore spaces in a variety of moderate porosity, orthoquartzites.



Author(s):  
C. T. Nightingale ◽  
S. E. Summers ◽  
T. P. Turnbull

The ease of operation of the scanning electron microscope has insured its wide application in medicine and industry. The micrographs are pictorial representations of surface topography obtained directly from the specimen. The need to replicate is eliminated. The great depth of field and the high resolving power provide far more information than light microscopy.



Author(s):  
K. Shibatomi ◽  
T. Yamanoto ◽  
H. Koike

In the observation of a thick specimen by means of a transmission electron microscope, the intensity of electrons passing through the objective lens aperture is greatly reduced. So that the image is almost invisible. In addition to this fact, it have been reported that a chromatic aberration causes the deterioration of the image contrast rather than that of the resolution. The scanning electron microscope is, however, capable of electrically amplifying the signal of the decreasing intensity, and also free from a chromatic aberration so that the deterioration of the image contrast due to the aberration can be prevented. The electrical improvement of the image quality can be carried out by using the fascionating features of the SEM, that is, the amplification of a weak in-put signal forming the image and the descriminating action of the heigh level signal of the background. This paper reports some of the experimental results about the thickness dependence of the observability and quality of the image in the case of the transmission SEM.



Author(s):  
S. Takashima ◽  
H. Hashimoto ◽  
S. Kimoto

The resolution of a conventional transmission electron microscope (TEM) deteriorates as the specimen thickness increases, because chromatic aberration of the objective lens is caused by the energy loss of electrons). In the case of a scanning electron microscope (SEM), chromatic aberration does not exist as the restrictive factor for the resolution of the transmitted electron image, for the SEM has no imageforming lens. It is not sure, however, that the equal resolution to the probe diameter can be obtained in the case of a thick specimen. To study the relation between the specimen thickness and the resolution of the trans-mitted electron image obtained by the SEM, the following experiment was carried out.



Author(s):  
R. F. Schneidmiller ◽  
W. F. Thrower ◽  
C. Ang

Solid state materials in the form of thin films have found increasing structural and electronic applications. Among the multitude of thin film deposition techniques, the radio frequency induced plasma sputtering has gained considerable utilization in recent years through advances in equipment design and process improvement, as well as the discovery of the versatility of the process to control film properties. In our laboratory we have used the scanning electron microscope extensively in the direct and indirect characterization of sputtered films for correlation with their physical and electrical properties.Scanning electron microscopy is a powerful tool for the examination of surfaces of solids and for the failure analysis of structural components and microelectronic devices.



Author(s):  
S. Saito ◽  
H. Todokoro ◽  
S. Nomura ◽  
T. Komoda

Field emission scanning electron microscope (FESEM) features extremely high resolution images, and offers many valuable information. But, for a specimen which gives low contrast images, lateral stripes appear in images. These stripes are resulted from signal fluctuations caused by probe current noises. In order to obtain good images without stripes, the fluctuations should be less than 1%, especially for low contrast images. For this purpose, the authors realized a noise compensator, and applied this to the FESEM.Fig. 1 shows an outline of FESEM equipped with a noise compensator. Two apertures are provided gust under the field emission gun.



Author(s):  
Emil Bernstein

An interesting method for examining structures in g. pig skin has been developed. By modifying an existing technique for splitting skin into its two main components—epidermis and dermis—we can in effect create new surfaces which can be examined with the scanning electron microscope (SEM). Although this method is not offered as a complete substitute for sectioning, it provides the investigator with a means for examining certain structures such as hair follicles and glands intact. The great depth of field of the SEM complements the technique so that a very “realistic” picture of the organ is obtained.



Author(s):  
C.V.L. Powell

The overall fine structure of the eye in Placopecten is similar to that of other scallops. The optic tentacle consists of an outer columnar epithelium which is modified into a pigmented iris and a cornea (Fig. 1). This capsule encloses the cellular lens, retina, reflecting argentea and the pigmented tapetum. The retina is divided into two parts (Fig. 2). The distal retina functions in the detection of movement and the proximal retina monitors environmental light intensity. The purpose of the present study is to describe the ultrastructure of the retina as a preliminary observation on eye development. This is also the first known presentation of scanning electron microscope studies of the eye of the scallop.



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