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Biomedical subjects

P Guttmann

Publications and source records attributed to P Guttmann.

5 recordsLinked to original sources

X-ray microscopy of human spermatozoa shows change of mitochondrial morphology after capacitation.

Using X-ray microscopy two morphologically distinct states were observed of the human spermatozoan mitochondria: (i) compact and tightly wrapped around the axoneme, and (ii) morphologically transformed, i.e. with circular areas of high X-ray transmission, either loosely wrapped around the axoneme or distended. The spermatozoa were examined at two stages of their post-ejaculation maturation process, i.e. as present in fresh ejaculated semen and after in-vitro capacitation. X-ray microscopy allowed sample preparation that was as simple as for conventional light microscopy whilst giving high resolution (30 nm) imaging of samples in liquid media compatible with the requirements of live biological specimens. The specimens were not fixed, stained or metal coated. These features make X-ray microscopy useful in the study of cells, particularly cells in suspension. The relative frequencies of the two morphological states of the mitochondria in seminal plasma and after in-vitro capacitation were compared. In seminal plasma, almost all spermatozoa had compact and tightly wrapped mitochondria. After harvesting by swim-up technique, an increase in the morphologically transformed state had occurred. However, the greatest increase in the morphologically transformed state occurred when the sample had been incubated under capacitating conditions. In this case almost all spermatozoa had morphologically transformed mitochondria.

Humans

Visualization of cytoskeletal elements in the transmission X-ray microscope.

Transmission X-ray microscopy has been used to study the arrangement of cytoskeletal filaments in interphase PtK2 cells. Extraction of the soluble proteins and of some organelles with the nonionic detergent Triton X-100 was important in obtaining sufficient image contrast between the insoluble cytoskeletal filaments and the surrounding cytoplasm. If this step is not performed cytoskeletal filaments are not visualized and transmission X-ray micrographs of the cytoplasm instead show predominantly membrane-bound organelles such as vesicles and the endoplasmic reticulum. Transmission X-ray micrographs of the cytoskeletal filaments and endoplasmic reticulum in air-dried specimens, as well as in specimens examined in the wet state, can be directly compared with transmission electron micrographs of cytoskeletons prepared in the same way. The profiles seen with the two techniques are similar, although, currently, transmission X-ray micrographs have a limit of resolution of approximately 50 nm. Transmission X-ray micrographs appear to show some substructure in interphase nuclei in cells fixed either with glutaraldehyde or by cryofixation and examined in a hydrated condition.

Actins

Transmission X-ray microscopy of intact hydrated PtK2 cells during the cell cycle.

Transmission X-ray microscopy makes it possible to investigate biological specimens, i.e. cells and organelles, in their natural wet environment. The main processes determining the contrast in X-ray microscopy are photoelectric absorption and phase shift. X-ray microscopic experiments can therefore be carried out in both amplitude and phase contrast. The Göttingen X-ray microscope at the BESSY storage ring in Berlin is described. PtK2 cells were examined during different stages of the cell cycle. All major constituents of the mitotic apparatus, e.g. chromosomes, centromeres, microtubules and centrosomes, could be visualized, as well as the main structural compartments and organelles of the interphase cell, e.g. nuclear membrane, interphase chromatin, nucleolus and cytoplasmic mitochondria, as well as parts of the cytoskeletal apparatus. In this way new information can be obtained with regard to the ultrastructure of the constituents of intact and unstained cells at a resolution which bridges the gap between light microscopy and electron microscopy. The prospects for the future application of transmission X-ray microscopy in biomedical research are discussed.

Animals

[X-ray microscopy].

Owing to the short wavelengths of X-radiation X-ray microscopes allow higher resolution than optical microscopes. In contrast to electron microscopes, X-radiation can be used to study relatively thick aqueous specimens in their natural environment. X-ray microscopes require intense X-radiation, which is best provided by electron storage rings, as well as efficient X-ray optics. X-ray microscopes with zone plate optics are installed at the storage ring BESSY in Berlin for studies in the fields of biology, medicine, biophysics, colloid chemistry, and soil sciences.

Animals