{"id":22,"date":"2012-02-27T13:53:53","date_gmt":"2012-02-27T18:53:53","guid":{"rendered":"https:\/\/www.bu.edu\/agingbrain\/?page_id=22"},"modified":"2012-05-30T12:05:45","modified_gmt":"2012-05-30T16:05:45","slug":"chapter-2-dendrites","status":"publish","type":"page","link":"https:\/\/www.bu.edu\/agingbrain\/chapter-2-dendrites\/","title":{"rendered":"Chapter 2 &#8211; dendrites"},"content":{"rendered":"<p><a name=\"top\"><\/a>Dendrites are processes that extend from the cell bodies of cortical neurons. They travel singly through the neuropil and have a cytoplasm that contains regularly spaced microtubules, ribosomes and rough endoplasmic reticulum, mitochondria, and long cisternae of smooth endoplasmic reticulum (<a href=\"#2.1\">Figs. 2.1<\/a> and <a href=\"#2.1A\">2.1A<\/a>).<\/p>\n<p>The dendrites of the excitatory pyramidal cells are also profusely decorated with dendritic spines so that profiles of their dendrites tend to have somewhat irregular outlines. The dendritic spines receive the majority of axon terminals synapsing with dendrites of pyramidal and spiny stellate neurons, but electron microscopic images that show the entire lengths of dendritic spines are not commonly encountered and have to be sought. In contrast to the dendrites of pyramidal neurons, the dendrites of nonpyramidal, inhibitory neurons have smoother outlines, with few or no dendritic spines. Consequently profiles of their dendrites have more regular shapes and these dendrites receive most of their synapses on their shafts.<\/p>\n<p>It is known that with age dendrites, especially those in the apical tufts of pyramidal cells, retract and degenerate. Although no systematic studies have been made of the effects of age on the fine structure of dendrites, most profiles of dendrites in electron micrographs show no or few obvious age changes. Nevertheless, unusual images of dendrites that probably reflect the effects of age are sometimes encountered and some of these images are as follows:<\/p>\n<p>1.\u00a0\u00a0\u00a0\u00a0 The profiles of some dendrites in the cortices of old monkeys show a cytoplasm devoid of organelles beyond a few microtubules beneath the plasma membrane (<a href=\"#2.2\">Fig. 2.2<\/a>). Profiles such as these are common in layer 1 of the aging cortex, a layer which becomes thinner with age as the apical tufts of pyramidal neurons retract and degenerate.<\/p>\n<p>2.\u00a0\u00a0\u00a0\u00a0 The profiles of dendrites such as shown in <a href=\"#2.2\">Fig. 2.2 <\/a>may be an early stage in degeneration, leading to the formation of profiles of dendrites that are almost completely devoid of organelles (<a href=\"#2.3\">Fig. 2.3<\/a>). That these profiles belong to dendrites is shown by the fact that their bounding plasma membrane can be involved in the formation of synapses with axon terminals.<\/p>\n<p>3.\u00a0\u00a0\u00a0\u00a0 Profiles of some dendrites in the aging cerebral cortex have membrane bound vacuoles in their cytoplasm (Figs. <a href=\"#2.4\">2.4<\/a> and <a href=\"#2.5\">2.5<\/a>).<\/p>\n<p>4.\u00a0\u00a0\u00a0\u00a0 Some profiles of dendrites are electron dense and shrunken (<a href=\"#2.6\">Fig. 2.6<\/a>).\u00a0 Such profiles are identified as belonging to dendrites because they are synapsing with axon terminals. Since the cytoplasm is electron dense it is assumed that these are profiles of dendrites that are degenerating.<\/p>\n<p>Some profiles of dendrites that show dendrites being invaginated by protrusions from myelin sheaths have also been encountered (<a href=\"#2.7\">Fig. 2.7<\/a>). Such protrusions may also be the source of profiles of dendrites that contain membranous components in their cytoplasm, the assumption being that such profiles arise when the protrusion from the myelin sheath is not in the plane of section. Such protrusions of myelin lamellae into dendrites appear to have been first described by Antal and Szekely (1987) in frog spinal cord. The significance of this phenomenon is not yet evident, but Antal and Szekely (1987) suggested that the dendrites may be phagocytozing the myelin lamellae as part of the process of turnover of myelin sheaths.\u00a0             <!-- @font-face {   font-family: \"Times New Roman\"; }@font-face {   font-family: \"Arial\"; }p.MsoNormal, li.MsoNormal, div.MsoNormal { margin: 0in 0in 0.0001pt; font-size: 12pt; font-family: Arial; }div.Section1 { page: Section1; } --> Antal, M. and Szekely, G. 1987.\u00a0 Phagocytosis of myelin fragments by dendrites. Exptl. Brain Res.66: 517 \u2013 521.<a name=\"2.1\"><\/a><\/p>\n<p>&nbsp;<\/p>\n<h2>Figure 2.1<\/h2>\n<p>A transversely sectioned cluster of apical dendrites in layer 4a of the primary visual cortex of a 27 year old monkey. The cytoplasm of dendrites contains evenly spaced microtubules and a few mitochondria, as well as occasional cisternae of endoplasmic reticulum.<\/p>\n<p style=\"text-align: right;\"><a title=\"Figure 2.1\" href=\"https:\/\/www.bu.edu\/agingbrain\/chapter-2-dendrites\/figure-2-1\/\"><img loading=\"lazy\" class=\"aligncenter size-medium wp-image-210\" title=\"2_1_AM15a17L4c#31text\" src=\"\/agingbrain\/files\/2012\/04\/2_1_AM15a17L4c31text-494x636.jpg\" alt=\"2_1_AM15a17L4c#31text\" width=\"494\" height=\"636\" srcset=\"https:\/\/www.bu.edu\/agingbrain\/files\/2012\/04\/2_1_AM15a17L4c31text-494x636.jpg 494w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/04\/2_1_AM15a17L4c31text-796x1024.jpg 796w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/04\/2_1_AM15a17L4c31text.jpg 1680w\" sizes=\"(max-width: 494px) 100vw, 494px\" \/><\/a><\/p>\n<p style=\"text-align: right;\"><a name=\"2.1A\"><\/a><a href=\"#top\">back to top<\/a><\/p>\n<h2>Figure 2.1A<\/h2>\n<p>A copy of the electron micrograph shown in Fig. 2.1 in which various cellular components have been colored: Dendrites- blue; astrocytes- yellow; axon terminals- green;\u00a0 oligdendrocyte process- red; unmyelinated axons- uncolored.<\/p>\n<p style=\"text-align: right;\"><a title=\"Figure 2.1A\" href=\"https:\/\/www.bu.edu\/agingbrain\/chapter-2-dendrites\/figure-2-1a\/\"><img loading=\"lazy\" class=\"aligncenter size-medium wp-image-188\" title=\"2_1A_AM15a17L4c#31\" src=\"\/agingbrain\/files\/2012\/03\/2_1A_AM15a17L4c31-494x636.jpg\" alt=\"2_1A_AM15a17L4c#31\" width=\"494\" height=\"636\" srcset=\"https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_1A_AM15a17L4c31-494x636.jpg 494w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_1A_AM15a17L4c31-796x1024.jpg 796w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_1A_AM15a17L4c31.jpg 1680w\" sizes=\"(max-width: 494px) 100vw, 494px\" \/><\/a><\/p>\n<p style=\"text-align: right;\"><a name=\"2.2\"><\/a><a href=\"#top\">back to top<\/a><\/p>\n<h2>Figure 2.2<\/h2>\n<p><!-- @font-face {   font-family: \"Times New Roman\"; }@font-face {   font-family: \"Arial\"; }p.MsoNormal, li.MsoNormal, div.MsoNormal { margin: 0in 0in 0.0001pt; font-size: 12pt; font-family: Arial; }div.Section1 { page: Section1; } --> Neuropil in layer 4 of the primary visual cortex in a 35 year old monkey. On the whole dendrites show little change in their morphology with age. But in a few cases, like the one shown here, the cytoplasm appears to have lost its organelles. Note that the dendrite is forming an asymmetric synapse (arrow).<\/p>\n<p style=\"text-align: right;\"><a title=\"Figure 2.2\" href=\"https:\/\/www.bu.edu\/agingbrain\/chapter-2-dendrites\/figure-2-2\/\"><img loading=\"lazy\" class=\"aligncenter size-medium wp-image-215\" title=\"2_2_AM13a17L4a#17text\" src=\"\/agingbrain\/files\/2012\/04\/2_2_AM13a17L4a17text-494x636.jpg\" alt=\"2_2_AM13a17L4a#17text\" width=\"494\" height=\"636\" srcset=\"https:\/\/www.bu.edu\/agingbrain\/files\/2012\/04\/2_2_AM13a17L4a17text-494x636.jpg 494w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/04\/2_2_AM13a17L4a17text-796x1024.jpg 796w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/04\/2_2_AM13a17L4a17text.jpg 1680w\" sizes=\"(max-width: 494px) 100vw, 494px\" \/><\/a><\/p>\n<p style=\"text-align: right;\"><a name=\"2.3\"><\/a><a href=\"#top\">back to top<\/a><\/p>\n<h2>Figure 2.3<\/h2>\n<p>Micrograph from layer 4A of the primary visual cortex of a 35 year old monkey. This is another example of a dendrite that has lost most of its organelles, although an hypertrophied mitochondrion still remains. Note that the dendrite is forming an asymmetric synapse (arrow).\u00a0 The large dark cell nearby is an oligodendrocyte.<\/p>\n<p style=\"text-align: right;\"><a title=\"Figure 2.3\" href=\"https:\/\/www.bu.edu\/agingbrain\/chapter-2-dendrites\/figure-2-3\/\"><img loading=\"lazy\" class=\"aligncenter size-medium wp-image-189\" title=\"2_3_AM13a17L4a#7text\" src=\"\/agingbrain\/files\/2012\/03\/2_3_AM13a17L4a7text-494x636.jpg\" alt=\"2_3_AM13a17L4a#7text\" width=\"494\" height=\"636\" srcset=\"https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_3_AM13a17L4a7text-494x636.jpg 494w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_3_AM13a17L4a7text-796x1024.jpg 796w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_3_AM13a17L4a7text.jpg 1680w\" sizes=\"(max-width: 494px) 100vw, 494px\" \/><\/a><\/p>\n<p style=\"text-align: right;\"><a name=\"2.4\"><\/a><a href=\"#top\">back to top<\/a><\/p>\n<h2>Figure 2.4<\/h2>\n<p>Neuropil in layer 4 of the primary visual cortex of a 35 year old monkey. The neuropil contains a dendrite with a large vacuole in its cytoplasm. At the bottom of the micrograph is the profile of a degenerating myelinated axon. Although the myelin sheath appears to be intact, all that remains of the axon is a large vacuole.<\/p>\n<p style=\"text-align: right;\"><a title=\"Figure 2.4\" href=\"https:\/\/www.bu.edu\/agingbrain\/chapter-2-dendrites\/figure-2-4\/\"><img loading=\"lazy\" class=\"aligncenter size-medium wp-image-190\" title=\"2_4_AM13a46#59text\" src=\"\/agingbrain\/files\/2012\/03\/2_4_AM13a4659text-494x636.jpg\" alt=\"2_4_AM13a46#59text\" width=\"494\" height=\"636\" srcset=\"https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_4_AM13a4659text-494x636.jpg 494w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_4_AM13a4659text-796x1024.jpg 796w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_4_AM13a4659text.jpg 1680w\" sizes=\"(max-width: 494px) 100vw, 494px\" \/><\/a><\/p>\n<p style=\"text-align: right;\"><a name=\"2.5\"><\/a><a href=\"#top\">back to top<\/a><\/p>\n<h2>Figure 2.5<\/h2>\n<p>Another micrograph from the neuropil of the visual cortex in layer 4 of a 35 year old monkey. The micrograph shows profiles of three dendrites (dendrite 1 \u2013 dendrite 3) which contain a variety of vacuoles in their cytoplasm. Whether this vacuolation is an indication that the dendrites are degenerating is not known.<\/p>\n<p style=\"text-align: right;\"><a title=\"FIgure 2.5\" href=\"https:\/\/www.bu.edu\/agingbrain\/chapter-2-dendrites\/figure-2-5\/\"><img loading=\"lazy\" class=\"aligncenter size-medium wp-image-191\" title=\"2_5_AM13a46#64text\" src=\"\/agingbrain\/files\/2012\/03\/2_5_AM13a4664text-494x636.jpg\" alt=\"2_5_AM13a46#64text\" width=\"494\" height=\"636\" srcset=\"https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_5_AM13a4664text-494x636.jpg 494w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_5_AM13a4664text-796x1024.jpg 796w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_5_AM13a4664text.jpg 1680w\" sizes=\"(max-width: 494px) 100vw, 494px\" \/><\/a><\/p>\n<p style=\"text-align: right;\"><a name=\"2.6\"><\/a><a href=\"#top\">back to top<\/a><\/p>\n<h2>Figure 2.6<\/h2>\n<p>A shrunken and dark dendrite in layer 4 of primary visual cortex in a 25 year old monkey. Even though it is dark and shrunken, the profile can be discerned to be of a dendrite because it is still forming synapses with four axon terminals (arrow). Such dark and shrunken processes are generally considered to arise from neurons that are degenerating, although dark neurons can be produced by poor fixation. In the latter situation there is generally evidence of poor preservation in the surrounding neuropil, which is not the case in this example.<\/p>\n<p style=\"text-align: right;\"><a title=\"Figure 2.6\" href=\"https:\/\/www.bu.edu\/agingbrain\/chapter-2-dendrites\/figure-2-6\/\"><img loading=\"lazy\" class=\"aligncenter size-medium wp-image-192\" title=\"2_6_AM15a17L4#65text\" src=\"\/agingbrain\/files\/2012\/03\/2_6_AM15a17L465text-636x494.jpg\" alt=\"2_6_AM15a17L4#65text\" width=\"509\" height=\"395\" srcset=\"https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_6_AM15a17L465text-636x494.jpg 636w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_6_AM15a17L465text-1024x796.jpg 1024w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_6_AM15a17L465text.jpg 1680w\" sizes=\"(max-width: 509px) 100vw, 509px\" \/><\/a><\/p>\n<p style=\"text-align: right;\"><a name=\"2.7\"><\/a><a href=\"#top\">back to top<\/a><\/p>\n<h2>Figure 2.7<\/h2>\n<p>Neuropil in layer 4 of area 46 from a 25 year old monkey. An example of a situation in which the outer laminae of the sheath of a myelinated axon (axon) are bulging into a dendrite.\u00a0 Other dendrites (dendrites 1-4) also have fragments of myelin sheaths in their cytoplasm, although in these cases the myelinated axons are not apparent.<\/p>\n<p style=\"text-align: right;\"><a title=\"Figure 2.7\" href=\"https:\/\/www.bu.edu\/agingbrain\/chapter-2-dendrites\/figure-2-7\/\"><img loading=\"lazy\" class=\"aligncenter size-medium wp-image-193\" title=\"2_7_AM15a46L4#19text\" src=\"\/agingbrain\/files\/2012\/03\/2_7_AM15a46L419text-494x636.jpg\" alt=\"2_7_AM15a46L4#19text\" width=\"494\" height=\"636\" srcset=\"https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_7_AM15a46L419text-494x636.jpg 494w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_7_AM15a46L419text-796x1024.jpg 796w, https:\/\/www.bu.edu\/agingbrain\/files\/2012\/03\/2_7_AM15a46L419text.jpg 1680w\" sizes=\"(max-width: 494px) 100vw, 494px\" \/><\/a><\/p>\n<p style=\"text-align: right;\"><a href=\"#top\">back to top<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Dendrites are processes that extend from the cell bodies of cortical neurons. They travel singly through the neuropil and have a cytoplasm that contains regularly spaced microtubules, ribosomes and rough endoplasmic reticulum, mitochondria, and long cisternae of smooth endoplasmic reticulum (Figs. 2.1 and 2.1A). The dendrites of the excitatory pyramidal cells are also profusely decorated [&hellip;]<\/p>\n","protected":false},"author":5666,"featured_media":0,"parent":0,"menu_order":11,"comment_status":"closed","ping_status":"closed","template":"","meta":[],"_links":{"self":[{"href":"https:\/\/www.bu.edu\/agingbrain\/wp-json\/wp\/v2\/pages\/22"}],"collection":[{"href":"https:\/\/www.bu.edu\/agingbrain\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/www.bu.edu\/agingbrain\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/www.bu.edu\/agingbrain\/wp-json\/wp\/v2\/users\/5666"}],"replies":[{"embeddable":true,"href":"https:\/\/www.bu.edu\/agingbrain\/wp-json\/wp\/v2\/comments?post=22"}],"version-history":[{"count":29,"href":"https:\/\/www.bu.edu\/agingbrain\/wp-json\/wp\/v2\/pages\/22\/revisions"}],"predecessor-version":[{"id":185,"href":"https:\/\/www.bu.edu\/agingbrain\/wp-json\/wp\/v2\/pages\/22\/revisions\/185"}],"wp:attachment":[{"href":"https:\/\/www.bu.edu\/agingbrain\/wp-json\/wp\/v2\/media?parent=22"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}