The Experts below are selected from a list of 165 Experts worldwide ranked by ideXlab platform

Ennio Pannese - One of the best experts on this subject based on the ideXlab platform.

  • The Golgi apparatus of Spinal Ganglion neurons: quantitative changes with aging.
    Journal of submicroscopic cytology and pathology, 2006
    Co-Authors: Maria Ledda, Linda Altieri, De Palo S, Ennio Pannese
    Abstract:

    Abstract The Golgi apparatus of Spinal Ganglion neurons was studied in 1, 3.6, 6.7, and 8.8-year-old rabbits. The structure of this organelle did not differ in the four age groups examined. While the mean volume of the neuronal perikaryon increased progressively with age, the total volume of the Golgi apparatus remained stable throughout life. As a consequence, the mean percentage of perikaryal volume occupied by this organelle decreased significantly with age. Since the percentage of perikaryal volume occupied by lipofuscin remained at low levels throughout life, the ratio of the total volume of the Golgi apparatus to the functionally active volume of cytoplasm decreased with age. It is possible that this decrease is related to the reduction in neuronal metabolism that occurs in senescence. The age-related quantitative changes in the Golgi apparatus were very similar in large light and in small dark neurons. Finally, neither fragmentation, nor peripheral displacement of the Golgi apparatus was observed with advancing age.

  • A study of mitochondria in Spinal Ganglion neurons during life: quantitative changes from youth to extremely advanced age.
    Tissue & cell, 2006
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    In view of the central role that mitochondria are thought to play in the ageing process, we investigated changes in mitochondria of Spinal Ganglion neurons in rabbits aged 1, 3.6, 6.7, and 8.8 years (the latter extremely old). Mitochondrial size increased significantly with age, while mitochondrial structure did not change. The total volume of mitochondria within the perikaryon did not change significantly during life. This indicates that in these neurons mitochondrial degradation was completely compensated by the production of new mitochondria even in the extremely advanced age. We also found that the mean volume of neuronal perikaryon increased markedly with age, so that the mean percentage of perikaryal volume occupied by mitochondria decreased significantly with a difference of about 33% between the youngest and the oldest animals. This decrease is only in very small part due to lipofuscin accumulation, so that the ratio of the total volume of mitochondria to the volume of functionally active cytoplasm decreased with age. The mitochondria of the neurons studied seem therefore unable to adapt their total volume to the volume of functionally active cytoplasm, that increases with age. This result is consistent with the observation that the neurons of old animals have a reduced ability to respond to high energy demands.

  • Age-related quantitative changes in mitochondria of satellite cell sheaths enveloping Spinal Ganglion neurons in the rabbit
    Brain research bulletin, 2003
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    We studied mitochondria in the satellite cell sheaths which envelope the Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. While the mean cytoplasmic volume of satellite cell sheaths did not change significantly with age, the mean percentage of cytoplasmic volume occupied by mitochondria decreased with age. This decrease is mainly due to a reduction in the total mitochondrial mass and only in minor part is a consequence of lipofuscin accumulation. Mitochondrial structure did not change, while mitochondrial size increased with age. Comparison between mitochondria in nerve cell bodies and those in satellite cell sheaths showed that: (1) the mean percentage of cytoplasmic volume occupied by mitochondria was greater in nerve cell bodies than satellite cell sheaths and the ratio between these two percentages remained constant with advancing age; (2) the total mitochondrial mass was much greater in nerve cell bodies than satellite cell sheaths and the ratio between these two values increased with age; (3) the extent of increase of mitochondrial size with age was similar in nerve cell bodies and satellite cell sheaths. The results of the present study suggest that: (1) the ability of satellite cell sheaths to produce energy decreases with age; (2) the decreased ability of sensory neurons in old animals to meet high energy demands may be partly due to the diminished contribution of their associated satellite cell sheaths.

  • Age-related quantitative changes in mitochondria of satellite cell sheaths enveloping Spinal Ganglion neurons in the rabbit
    Brain Research Bulletin, 2003
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    We studied mitochondria in the satellite cell sheaths which envelope the Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. While the mean cytoplasmic volume of satellite cell sheaths did not change significantly with age, the mean percentage of cytoplasmic volume occupied by mitochondria decreased with age. This decrease is mainly due to a reduction in the total mitochondrial mass and only in minor part is a consequence of lipofuscin accumulation. Mitochondrial structure did not change, while mitochondrial size increased with age. Comparison between mitochondria in nerve cell bodies and those in satellite cell sheaths showed that: (1) the mean percentage of cytoplasmic volume occupied by mitochondria was greater in nerve cell bodies than satellite cell sheaths and the ratio between these two percentages remained constant with advancing age; (2) the total mitochondrial mass was much greater in nerve cell bodies than satellite cell sheaths and the ratio between these two values increased with age; (3) the extent of increase of mitochondrial size with age was similar in nerve cell bodies and satellite cell sheaths. The results of the present study suggest that: (1) the ability of satellite cell sheaths to produce energy decreases with age; (2) the decreased ability of sensory neurons in old animals to meet high energy demands may be partly due to the diminished contribution of their associated satellite cell sheaths. © 2003 Elsevier Science Inc. All rights reserved.

  • The Golgi apparatus of satellite cells associated with Spinal Ganglion neurons: changes with age in the rabbit.
    Journal of submicroscopic cytology and pathology, 2003
    Co-Authors: Maria Ledda, Linda Altieri, L. Barni, Ennio Pannese
    Abstract:

    We studied the Golgi apparatus in the satellite cell sheaths enveloping Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. We found neither structural changes nor indications of peripheral displacement of this organelle with advancing age. The mean percentage of cytoplasmic volume occupied by the Golgi apparatus decreased significantly passing from young adult to old rabbits. This decrease was only in very minor part a consequence of lipofuscin accumulation, so that the ratio between the total volume of the Golgi apparatus and the functionally active volume of cytoplasm decreased with age. The mean cytoplasmic volume of perineuronal satellite cell sheaths did not change significantly with increasing age, whereas the total volume of the Golgi apparatus within these sheaths decreased significantly with age. This decrease strongly suggests that the activity of satellite cells diminishes in old age, further suggesting that these cells are unable to compensate for the decrease in the neuronal metabolism that a number of authors have described in old age.

Maria Ledda - One of the best experts on this subject based on the ideXlab platform.

  • The Golgi apparatus of Spinal Ganglion neurons: quantitative changes with aging.
    Journal of submicroscopic cytology and pathology, 2006
    Co-Authors: Maria Ledda, Linda Altieri, De Palo S, Ennio Pannese
    Abstract:

    Abstract The Golgi apparatus of Spinal Ganglion neurons was studied in 1, 3.6, 6.7, and 8.8-year-old rabbits. The structure of this organelle did not differ in the four age groups examined. While the mean volume of the neuronal perikaryon increased progressively with age, the total volume of the Golgi apparatus remained stable throughout life. As a consequence, the mean percentage of perikaryal volume occupied by this organelle decreased significantly with age. Since the percentage of perikaryal volume occupied by lipofuscin remained at low levels throughout life, the ratio of the total volume of the Golgi apparatus to the functionally active volume of cytoplasm decreased with age. It is possible that this decrease is related to the reduction in neuronal metabolism that occurs in senescence. The age-related quantitative changes in the Golgi apparatus were very similar in large light and in small dark neurons. Finally, neither fragmentation, nor peripheral displacement of the Golgi apparatus was observed with advancing age.

  • A study of mitochondria in Spinal Ganglion neurons during life: quantitative changes from youth to extremely advanced age.
    Tissue & cell, 2006
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    In view of the central role that mitochondria are thought to play in the ageing process, we investigated changes in mitochondria of Spinal Ganglion neurons in rabbits aged 1, 3.6, 6.7, and 8.8 years (the latter extremely old). Mitochondrial size increased significantly with age, while mitochondrial structure did not change. The total volume of mitochondria within the perikaryon did not change significantly during life. This indicates that in these neurons mitochondrial degradation was completely compensated by the production of new mitochondria even in the extremely advanced age. We also found that the mean volume of neuronal perikaryon increased markedly with age, so that the mean percentage of perikaryal volume occupied by mitochondria decreased significantly with a difference of about 33% between the youngest and the oldest animals. This decrease is only in very small part due to lipofuscin accumulation, so that the ratio of the total volume of mitochondria to the volume of functionally active cytoplasm decreased with age. The mitochondria of the neurons studied seem therefore unable to adapt their total volume to the volume of functionally active cytoplasm, that increases with age. This result is consistent with the observation that the neurons of old animals have a reduced ability to respond to high energy demands.

  • Age-related quantitative changes in mitochondria of satellite cell sheaths enveloping Spinal Ganglion neurons in the rabbit
    Brain research bulletin, 2003
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    We studied mitochondria in the satellite cell sheaths which envelope the Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. While the mean cytoplasmic volume of satellite cell sheaths did not change significantly with age, the mean percentage of cytoplasmic volume occupied by mitochondria decreased with age. This decrease is mainly due to a reduction in the total mitochondrial mass and only in minor part is a consequence of lipofuscin accumulation. Mitochondrial structure did not change, while mitochondrial size increased with age. Comparison between mitochondria in nerve cell bodies and those in satellite cell sheaths showed that: (1) the mean percentage of cytoplasmic volume occupied by mitochondria was greater in nerve cell bodies than satellite cell sheaths and the ratio between these two percentages remained constant with advancing age; (2) the total mitochondrial mass was much greater in nerve cell bodies than satellite cell sheaths and the ratio between these two values increased with age; (3) the extent of increase of mitochondrial size with age was similar in nerve cell bodies and satellite cell sheaths. The results of the present study suggest that: (1) the ability of satellite cell sheaths to produce energy decreases with age; (2) the decreased ability of sensory neurons in old animals to meet high energy demands may be partly due to the diminished contribution of their associated satellite cell sheaths.

  • Age-related quantitative changes in mitochondria of satellite cell sheaths enveloping Spinal Ganglion neurons in the rabbit
    Brain Research Bulletin, 2003
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    We studied mitochondria in the satellite cell sheaths which envelope the Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. While the mean cytoplasmic volume of satellite cell sheaths did not change significantly with age, the mean percentage of cytoplasmic volume occupied by mitochondria decreased with age. This decrease is mainly due to a reduction in the total mitochondrial mass and only in minor part is a consequence of lipofuscin accumulation. Mitochondrial structure did not change, while mitochondrial size increased with age. Comparison between mitochondria in nerve cell bodies and those in satellite cell sheaths showed that: (1) the mean percentage of cytoplasmic volume occupied by mitochondria was greater in nerve cell bodies than satellite cell sheaths and the ratio between these two percentages remained constant with advancing age; (2) the total mitochondrial mass was much greater in nerve cell bodies than satellite cell sheaths and the ratio between these two values increased with age; (3) the extent of increase of mitochondrial size with age was similar in nerve cell bodies and satellite cell sheaths. The results of the present study suggest that: (1) the ability of satellite cell sheaths to produce energy decreases with age; (2) the decreased ability of sensory neurons in old animals to meet high energy demands may be partly due to the diminished contribution of their associated satellite cell sheaths. © 2003 Elsevier Science Inc. All rights reserved.

  • The Golgi apparatus of satellite cells associated with Spinal Ganglion neurons: changes with age in the rabbit.
    Journal of submicroscopic cytology and pathology, 2003
    Co-Authors: Maria Ledda, Linda Altieri, L. Barni, Ennio Pannese
    Abstract:

    We studied the Golgi apparatus in the satellite cell sheaths enveloping Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. We found neither structural changes nor indications of peripheral displacement of this organelle with advancing age. The mean percentage of cytoplasmic volume occupied by the Golgi apparatus decreased significantly passing from young adult to old rabbits. This decrease was only in very minor part a consequence of lipofuscin accumulation, so that the ratio between the total volume of the Golgi apparatus and the functionally active volume of cytoplasm decreased with age. The mean cytoplasmic volume of perineuronal satellite cell sheaths did not change significantly with increasing age, whereas the total volume of the Golgi apparatus within these sheaths decreased significantly with age. This decrease strongly suggests that the activity of satellite cells diminishes in old age, further suggesting that these cells are unable to compensate for the decrease in the neuronal metabolism that a number of authors have described in old age.

Carla Martinelli - One of the best experts on this subject based on the ideXlab platform.

  • A study of mitochondria in Spinal Ganglion neurons during life: quantitative changes from youth to extremely advanced age.
    Tissue & cell, 2006
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    In view of the central role that mitochondria are thought to play in the ageing process, we investigated changes in mitochondria of Spinal Ganglion neurons in rabbits aged 1, 3.6, 6.7, and 8.8 years (the latter extremely old). Mitochondrial size increased significantly with age, while mitochondrial structure did not change. The total volume of mitochondria within the perikaryon did not change significantly during life. This indicates that in these neurons mitochondrial degradation was completely compensated by the production of new mitochondria even in the extremely advanced age. We also found that the mean volume of neuronal perikaryon increased markedly with age, so that the mean percentage of perikaryal volume occupied by mitochondria decreased significantly with a difference of about 33% between the youngest and the oldest animals. This decrease is only in very small part due to lipofuscin accumulation, so that the ratio of the total volume of mitochondria to the volume of functionally active cytoplasm decreased with age. The mitochondria of the neurons studied seem therefore unable to adapt their total volume to the volume of functionally active cytoplasm, that increases with age. This result is consistent with the observation that the neurons of old animals have a reduced ability to respond to high energy demands.

  • Age-related quantitative changes in mitochondria of satellite cell sheaths enveloping Spinal Ganglion neurons in the rabbit
    Brain research bulletin, 2003
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    We studied mitochondria in the satellite cell sheaths which envelope the Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. While the mean cytoplasmic volume of satellite cell sheaths did not change significantly with age, the mean percentage of cytoplasmic volume occupied by mitochondria decreased with age. This decrease is mainly due to a reduction in the total mitochondrial mass and only in minor part is a consequence of lipofuscin accumulation. Mitochondrial structure did not change, while mitochondrial size increased with age. Comparison between mitochondria in nerve cell bodies and those in satellite cell sheaths showed that: (1) the mean percentage of cytoplasmic volume occupied by mitochondria was greater in nerve cell bodies than satellite cell sheaths and the ratio between these two percentages remained constant with advancing age; (2) the total mitochondrial mass was much greater in nerve cell bodies than satellite cell sheaths and the ratio between these two values increased with age; (3) the extent of increase of mitochondrial size with age was similar in nerve cell bodies and satellite cell sheaths. The results of the present study suggest that: (1) the ability of satellite cell sheaths to produce energy decreases with age; (2) the decreased ability of sensory neurons in old animals to meet high energy demands may be partly due to the diminished contribution of their associated satellite cell sheaths.

  • Age-related quantitative changes in mitochondria of satellite cell sheaths enveloping Spinal Ganglion neurons in the rabbit
    Brain Research Bulletin, 2003
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    We studied mitochondria in the satellite cell sheaths which envelope the Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. While the mean cytoplasmic volume of satellite cell sheaths did not change significantly with age, the mean percentage of cytoplasmic volume occupied by mitochondria decreased with age. This decrease is mainly due to a reduction in the total mitochondrial mass and only in minor part is a consequence of lipofuscin accumulation. Mitochondrial structure did not change, while mitochondrial size increased with age. Comparison between mitochondria in nerve cell bodies and those in satellite cell sheaths showed that: (1) the mean percentage of cytoplasmic volume occupied by mitochondria was greater in nerve cell bodies than satellite cell sheaths and the ratio between these two percentages remained constant with advancing age; (2) the total mitochondrial mass was much greater in nerve cell bodies than satellite cell sheaths and the ratio between these two values increased with age; (3) the extent of increase of mitochondrial size with age was similar in nerve cell bodies and satellite cell sheaths. The results of the present study suggest that: (1) the ability of satellite cell sheaths to produce energy decreases with age; (2) the decreased ability of sensory neurons in old animals to meet high energy demands may be partly due to the diminished contribution of their associated satellite cell sheaths. © 2003 Elsevier Science Inc. All rights reserved.

Patrizia Sartori - One of the best experts on this subject based on the ideXlab platform.

  • A study of mitochondria in Spinal Ganglion neurons during life: quantitative changes from youth to extremely advanced age.
    Tissue & cell, 2006
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    In view of the central role that mitochondria are thought to play in the ageing process, we investigated changes in mitochondria of Spinal Ganglion neurons in rabbits aged 1, 3.6, 6.7, and 8.8 years (the latter extremely old). Mitochondrial size increased significantly with age, while mitochondrial structure did not change. The total volume of mitochondria within the perikaryon did not change significantly during life. This indicates that in these neurons mitochondrial degradation was completely compensated by the production of new mitochondria even in the extremely advanced age. We also found that the mean volume of neuronal perikaryon increased markedly with age, so that the mean percentage of perikaryal volume occupied by mitochondria decreased significantly with a difference of about 33% between the youngest and the oldest animals. This decrease is only in very small part due to lipofuscin accumulation, so that the ratio of the total volume of mitochondria to the volume of functionally active cytoplasm decreased with age. The mitochondria of the neurons studied seem therefore unable to adapt their total volume to the volume of functionally active cytoplasm, that increases with age. This result is consistent with the observation that the neurons of old animals have a reduced ability to respond to high energy demands.

  • Age-related quantitative changes in mitochondria of satellite cell sheaths enveloping Spinal Ganglion neurons in the rabbit
    Brain research bulletin, 2003
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    We studied mitochondria in the satellite cell sheaths which envelope the Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. While the mean cytoplasmic volume of satellite cell sheaths did not change significantly with age, the mean percentage of cytoplasmic volume occupied by mitochondria decreased with age. This decrease is mainly due to a reduction in the total mitochondrial mass and only in minor part is a consequence of lipofuscin accumulation. Mitochondrial structure did not change, while mitochondrial size increased with age. Comparison between mitochondria in nerve cell bodies and those in satellite cell sheaths showed that: (1) the mean percentage of cytoplasmic volume occupied by mitochondria was greater in nerve cell bodies than satellite cell sheaths and the ratio between these two percentages remained constant with advancing age; (2) the total mitochondrial mass was much greater in nerve cell bodies than satellite cell sheaths and the ratio between these two values increased with age; (3) the extent of increase of mitochondrial size with age was similar in nerve cell bodies and satellite cell sheaths. The results of the present study suggest that: (1) the ability of satellite cell sheaths to produce energy decreases with age; (2) the decreased ability of sensory neurons in old animals to meet high energy demands may be partly due to the diminished contribution of their associated satellite cell sheaths.

  • Age-related quantitative changes in mitochondria of satellite cell sheaths enveloping Spinal Ganglion neurons in the rabbit
    Brain Research Bulletin, 2003
    Co-Authors: Carla Martinelli, Maria Ledda, Patrizia Sartori, Ennio Pannese
    Abstract:

    We studied mitochondria in the satellite cell sheaths which envelope the Spinal Ganglion neurons of rabbits aged 12, 42, and 79 months. While the mean cytoplasmic volume of satellite cell sheaths did not change significantly with age, the mean percentage of cytoplasmic volume occupied by mitochondria decreased with age. This decrease is mainly due to a reduction in the total mitochondrial mass and only in minor part is a consequence of lipofuscin accumulation. Mitochondrial structure did not change, while mitochondrial size increased with age. Comparison between mitochondria in nerve cell bodies and those in satellite cell sheaths showed that: (1) the mean percentage of cytoplasmic volume occupied by mitochondria was greater in nerve cell bodies than satellite cell sheaths and the ratio between these two percentages remained constant with advancing age; (2) the total mitochondrial mass was much greater in nerve cell bodies than satellite cell sheaths and the ratio between these two values increased with age; (3) the extent of increase of mitochondrial size with age was similar in nerve cell bodies and satellite cell sheaths. The results of the present study suggest that: (1) the ability of satellite cell sheaths to produce energy decreases with age; (2) the decreased ability of sensory neurons in old animals to meet high energy demands may be partly due to the diminished contribution of their associated satellite cell sheaths. © 2003 Elsevier Science Inc. All rights reserved.

G. Arcidiacono - One of the best experts on this subject based on the ideXlab platform.

  • Structural changes in Spinal Ganglion neurons of lizards after cold-exposure.
    Tissue & cell, 1999
    Co-Authors: Maria Ledda, G. Arcidiacono, L. Rigamonti, Ennio Pannese
    Abstract:

    Abstract We studied structural changes in Spinal Ganglion neurons that occur in lizards exposed to the cold, both at the light and electron microscope levels. Two types of perikaryal changes were found in the cold-exposed animals: (a) In 25% of all Ganglion neurons, the central region of the perikaryon was devoid of Nissl bodies and a narrow peripheral zone stained deeply basophilic. Electron microscopic examination of these cells showed that mitochondria, Golgi complexes and other organelles were assembled in the central region of the perikaryon, while most cisternae of granular endoplasmic reticulum and free polysomes were confined to the periphery of the perikaryon. These changes seem to take place mainly in dark neurons. (b) In 8.6% of all Ganglion neurons, Nissl bodies were present throughout the perikaryon, but separated by large, clear spaces. Under the electron microscope, these clear spaces were filled with large numbers of densely packed filaments. It seems that mainly light neurons undergo this type of structural change. The degree of nuclear eccentricity was significantly greater in the neurons of cold-exposed animals than in controls. The nucleolar volume was significantly increased and both the percentages of nuclei with two nucleoli and of nuclei with ‘vacuolated’ nucleoli were significantly greater in neurons displaying structural changes than in the other neurons. The structural modifications observed in Spinal Ganglion neurons of cold-exposed lizards closely resemble those seen in the same lizard neurons following axonal section. They could be due to a) metabolic changes induced by low temperature and fasting, b) alterations in the flow of nerve impulses from the periphery, or c) impaired retrograde transport of trophic substances from the periphery to the cell body.

  • Cell body volume of Spinal Ganglion neurons: estimation by three different methods.
    Journal of submicroscopic cytology and pathology, 1997
    Co-Authors: Ennio Pannese, L. Barni, G. Arcidiacono, Maria Ledda
    Abstract:

    We estimated the mean volumes of two series of nerve cell bodies, one from rabbit and one from rat Spinal ganglia by three different methods: a procedure we devised 25 years ago (the circle-fitting method), one of the new stereological methods (the nucleator method) and the method of serial sectioning--the most direct and accurate procedure presently available for estimating cell size. In the case of the rabbit, in which most Spinal Ganglion neurons have a single nucleolus, the mean volumes estimated by the first two methods are closely similar and deviate by less than 2% from the mean obtained by serial sectioning. In the case of the rat, in which approximately half of the Spinal Ganglion neurons have more than one nucleolus, the mean volumes estimated by the first two methods are again closely similar, but deviate by about 12% from the mean obtained by serial sectioning. These findings show that: a) both the nucleator method and the circle-fitting procedure are more accurate when applied to neurons with a single nucleolus; b) if certain conditions are respected, not all the methods previously used to estimate cell size give biased results. However, the new stereological procedures are easier and quicker to use than the earlier methods. These findings also show that our previous results obtained by the circle-fitting method are to be considered valid.

  • Perikaryal projections of Spinal Ganglion neurons: quantitative differences between membrane domains in contact with different microenvironments.
    Journal of Anatomy, 1994
    Co-Authors: Ennio Pannese, M. Ledda, L. Rigamonti, G. Arcidiacono
    Abstract:

    The perikarya of Spinal Ganglion neurons display numerous slender projections. In the present investigation we have studied whether the extent of these projections is uniform over the entire perikaryal surface or whether there is a difference between the regions of the perikaryon in contact with different microenvironments. In Spinal ganglia of the rat and the lizard we have analysed about 200 neuronal cell bodies arranged in pairs and have compared the extent of the projections quantitatively in the areas of interneuronal contact with that in the areas of neuron-to-satellite cell contact. In both species we have found that the projections are present over the entire perikaryal surface and that the overall development of the perikaryal projections is significantly greater in those portions of the surface in contact with satellite cells than in the portions in contact with another neuron. On the basis of these observations we conclude that the outgrowth of perikaryal projections is an intrinsic property of the nerve cell body which is manifested over the entire perikaryal surface; there is, however, an extrinsic influence from the microenvironment of the neuron, which may account for the quantitative differences in different domains of the perikaryal surface.