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M E Dailey

Publications and source records attributed to M E Dailey.

5 recordsLinked to original sources

Diverse migratory pathways in the developing cerebral cortex.

During early development of the mammalian cerebral cortex, young neurons migrate outward from the site of their final mitosis in the ventricular zone into the cortical plate, where they form the adult cortex. Time-lapse confocal microscopy was used to observe directly the dynamic behaviors of migrating cells in living slices of developing cortex. The majority of cells migrated along a radial pathway, consistent with the view that cortical neurons migrate along radial glial fibers. A fraction of cells, however, turned within the intermediate zone and migrated orthogonal to the radial fibers. This orthogonal migration may contribute to the tangential dispersion of clonally related cortical neurons.

Animals

Structure and organization of membrane organelles along distal microtubule segments in growth cones.

Advance and stabilization of organelle-rich cytoplasm within the neuronal growth cone is coupled to axon elongation (Goldberg and Burmeister, 1986; Aletta and Greene, 1988), and this involves forward movement of organelles from the growth cone base along distinct tracks toward the leading edge. Membrane-bound organelles that advance first within the growth cone often make transient excursions toward the leading edge, and at the light microscope level these leading organelles appear to colocalize with distal microtubule (MT) segments (Dailey and Bridgman, 1989). We have used electron microscopy (EM) to identify the membranous organelles adjacent to distal MT segments, and to examine their structural interactions with MTs. In both glutaraldehyde-fixed and rapid frozen whole-mount growth cones, attenuated endoplasmic reticulum (ER)-like membrane elements were the most common organelle type located adjacent to distal MT segments. These ER-like membrane elements coursed roughly parallel to MTs and frequently terminated within an electron-dense bulb at the MT tip. Blind-ended membrane tubes, dense-core vesicles, clear vesicles, and vacuoles were also found adjacent to distal MT segments. Quantitative analyses of organelle-MT associations suggest that elements of the ER-like membrane system may frequently advance ahead of other membrane-bound organelles. Freeze-etch EM revealed crossbridging structures between MTs and membranous organelles, which is consistent with the idea that advance of leading membrane organelles into the growth cone periphery is mediated by microtubule-based motor transport mechanisms. The results suggest that distal microtubule segments serve as transport elements for advance of membrane organelles into more peripheral growth cone regions, and together MTs and ER-like membrane organelles may initiate the conversion of dynamic F-actin-rich cytoplasm to more stable organelle-rich cytoplasm (i.e., axoplasm).

Animals

Airway compression secondary to left atrial enlargement and increased pulmonary artery pressure.

Although congenital cardiac defects are infrequently considered a cause of major airway compression in neonates and infants, patients with left-sided cardiac enlargement can develop compression of the left mainstem bronchus. This is a consequence of the intimate relationship of the trachea and left mainstem bronchus to the left atrium, left pulmonary veins and left pulmonary artery. If the mean pulmonary arterial pressure, mean left atrial pressure and carinal angle are increased, the likelihood of major airway compression is high.

Airway Obstruction

The organization of myosin and actin in rapid frozen nerve growth cones.

Rapid freezing and freeze substitution were used in conjunction with immunofluorescence, whole mount EM, and immunoelectron microscopy to study the organization of myosin and actin in growth cones of cultured rat superior cervical ganglion neurons. The general cytoplasmic organization was determined by whole mount EM; tight microfilament bundles formed the core of filopodia while a dense meshwork formed the underlying structure of lamellipodia. Although the central microtubule and organelle-rich region of the growth cone had fewer microfilaments, dense foci and bundles of microfilaments were usually observed. Anti-actin immunofluorescence and rhodamine phalloidin staining of f-actin both showed intense staining of filopodia and lamellipodia. In addition, staining of bundles and foci were observed in central regions suggesting that the majority of the microfilaments seen by whole mount EM are actin filaments. Anti-myosin immunofluorescence was brightest in the central region and usually had a punctate pattern. Although less intense, anti-myosin staining was also seen in peripheral regions; it was most prominent at the border with the central region, in portions of lamellipodia undergoing ruffling, and in spots along the shaft and at the base of filopodia. Immunoelectron microscopy of myosin using postembedment labeling with colloidal gold showed a similar distribution to that seen by immunofluorescence. Label was scattered throughout the growth cone, but present as distinct aggregates in the peripheral region mainly along the border with the central region. Less frequently, aggregates were also seen centrally and along the shaft and at the base of filopodia. This distribution is consistent with myosins involvement in the production of tension and movements of growth cone filopodia and lamellipodia that occur during active neurite elongation.

Actin Cytoskeleton

Dynamics of the endoplasmic reticulum and other membranous organelles in growth cones of cultured neurons.

The fluorescent lipophilic dye 3,3'-dihexyloxacarbocyanine iodide [DiOC6(3)] was used to examine the distribution of membrane-bound organelles in growth cones of cultured rat sympathetic neurons. Within chemically fixed growth cones, intense DiOC6(3) fluorescence was localized predominately to the base or central region of growth cones. However, in most growth cones several thin DiOC6(3)-fluorescent processes radiated from the base into the periphery, and double fluorescence imaging of single growth cones indicated that these processes were highly colocalized (approximately 79%) with microtubules. The distribution of DiOC6(3) fluorescence in living growth cones was examined using low light-level fluorescence video microscopy. We observed thin fluorescent processes within the periphery of growth cones to undergo length excursions (extension/retraction) and to change orientation (move laterally). During growth cone advance, processes became progressively thicker and were gradually engulfed by the advancing fluorescent mass. When growth cones were viewed with video-enhanced differential interference contrast microscopy, the position of the fluorescent processes correlated with thickened extensions of central-type cytoplasm through which vesiclelike organelle transport often occurred. These observations indicate several features concerning the organization and movement of membranous organelles (MOs) in growth cones: (1) MOs are highly compartmentalized, the majority being localized to the growth cone base; (2) MOs advance into the periphery along distinct pathways probably associated with microtubules; (3) one or more thin continuous MOs, which most likely represent a thin tubular component of the endoplasmic reticulum, generally precedes advance of vesiclelike MOs along individual transport pathways; and (4) transport pathways with their associated MOs are spatially and temporally dynamic.

Animals