Age-related decline of human optic nerve axon populations

AGE ◽  
1987 ◽  
Vol 10 (1) ◽  
pp. 5-9 ◽  
Author(s):  
Betty M. Johnson ◽  
Michael Miao ◽  
Alfredo A. Sadun
2002 ◽  
Vol 37 (7) ◽  
pp. 389-394 ◽  
Author(s):  
Carlo Cavallotti ◽  
Elena Pacella ◽  
Nicola Pescosolido ◽  
Francesca Maria Tranquilli-Leali ◽  
Janos Feher

1989 ◽  
Vol 107 (5) ◽  
pp. 476-484 ◽  
Author(s):  
M. Rosario Hernandez ◽  
Xing Xing Luo ◽  
Wieslawa Andrzejewska ◽  
Arthur H. Neufeld

2015 ◽  
Vol 12 (106) ◽  
pp. 20150066 ◽  
Author(s):  
H. J. Jones ◽  
M. J. Girard ◽  
N. White ◽  
M. P. Fautsch ◽  
J. E. Morgan ◽  
...  

The aim of this study was to quantify connective tissue fibre orientation and alignment in young, old and glaucomatous human optic nerve heads (ONH) to understand ONH microstructure and predisposition to glaucomatous optic neuropathy. Transverse (seven healthy, three glaucomatous) and longitudinal (14 healthy) human ONH cryosections were imaged by both second harmonic generation microscopy and small angle light scattering (SALS) in order to quantify preferred fibre orientation (PFO) and degree of fibre alignment (DOFA). DOFA was highest within the peripapillary sclera (ppsclera), with relatively low values in the lamina cribrosa (LC). Elderly ppsclera DOFA was higher than that in young ppsclera ( p < 0.00007), and generally higher than in glaucoma ppsclera. In all LCs, a majority of fibres had preferential orientation horizontally across the nasal–temporal axis. In all glaucomatous LCs, PFO was significantly different from controls in a minimum of seven out of 12 LC regions ( p < 0.05). Additionally, higher fibre alignment was observed in the glaucomatous inferior–temporal LC ( p < 0.017). The differences between young and elderly ONH fibre alignment within regions suggest that age-related microstructural changes occur within the structure. The additional differences in fibre alignment observed within the glaucomatous LC may reflect an inherent susceptibility to glaucomatous optic neuropathy, or may be a consequence of ONH remodelling and/or collapse.


2001 ◽  
Vol 78 (6) ◽  
pp. 431-435 ◽  
Author(s):  
HÉLÈNE KERGOAT ◽  
MARIE-JEANNE KERGOAT ◽  
LISETTE JUSTINO ◽  
and JOHN V. LOVASIK

2003 ◽  
Vol 12 (4) ◽  
pp. 301-306 ◽  
Author(s):  
Grant Cull ◽  
George A. Cioffi ◽  
Jin Dong ◽  
Louis Homer ◽  
Lin Wang
Keyword(s):  

2011 ◽  
Vol 8 (3) ◽  
pp. 329-334 ◽  
Author(s):  
Caroline Driessen ◽  
Natalja Bannink ◽  
Maarten Lequin ◽  
Marie-Lise C. van Veelen ◽  
Nicole C. Naus ◽  
...  

Object Children with syndromic or complex craniosynostosis are evaluated for increased intracranial pressure (ICP) using funduscopy to detect papilledema. However, papilledema is a late sign of increased ICP. Because papilledema might be preceded by an increase in optic nerve sheath (ONS) diameter, the authors conducted a prospective study to establish the validity and applicability of measuring the ONS using ultrasonography. Methods From January 2007 to December 2009, 175 bilateral ultrasonography ONS measurements were performed in 128 patients with syndromic or complex craniosynostosis during the daytime. The measurements were correlated with ONS diameter assessed on CT and simultaneous funduscopy, when available. Furthermore, results were compared by using thresholds for ONS diameters on ultrasonography that are available in the literature. Results The mean ONS diameter on ultrasonography was 3.1 ± 0.5 mm. The CT measurement was significantly correlated with the ultrasonography measurement (r = 0.41, p < 0.001). The mean ONS diameter in 38 eyes with papilledema was 3.3 ± 0.5 mm, compared with 3.1 ± 0.5 mm in the eyes of patients without papilledema (p = 0.039). Relative to the age-related thresholds, the ONS diameter was too large in 11 eyes (3%), particularly in patients with Crouzon syndrome. Compared with funduscopy, ultrasonography sensitivity was 11%, specificity was 97%, and positive and negative predictive values were 40% and 86%, respectively. Conclusions Ultrasonography is a valid and easy way of quantifying the ONS. Although the ONS diameter is larger in children with papilledema, it cannot be used as a daytime screening tool instead of funduscopy. The ONS diameter is possibly a more real-time indicator of ICP.


2017 ◽  
Vol 60 ◽  
pp. 1-10 ◽  
Author(s):  
Jessie Van houcke ◽  
Ilse Bollaerts ◽  
Emiel Geeraerts ◽  
Benjamin Davis ◽  
An Beckers ◽  
...  

NeuroImage ◽  
2006 ◽  
Vol 30 (3) ◽  
pp. 835-846 ◽  
Author(s):  
Li Sze Chow ◽  
Greg G. Cook ◽  
Elspeth Whitby ◽  
Martyn N.J. Paley

2021 ◽  
pp. 112067212110606
Author(s):  
Ana Banc ◽  
Stefania Bianchi Marzoli

Parapapillary atrophy is one of the parameters of the optic nerve head area which are assessed during the ophthalmoscopic examination particularly useful to characterize glaucomatous optic neuropathy. Optical coherence tomography evaluation provides high-resolution images of the optic nerve head and surrounding area, and can be used to study parapapillary atrophy. Different parapapillary atrophy zones were described depending on their histological features and research has been conducted to investigate the possible association between the presence and/ or size of parapapillary atrophy zones and several optic nerve disorders. In this review we discuss the histology and the clinical findings related to parapapillary atrophy in patients with glaucomatous optic neuropathy, non-glaucomatous optic neuropathies (e.g. arteritic and non-arteritic anterior ischemic optic neuropathies; suprasellar and parasellar tumors), and other ocular conditions (e.g. high myopia; age-related macular degeneration). Two different histologic classifications were identified. Parapapillary atrophy was demonstrated in glaucoma and glaucoma-like neuropathies, but not in other types of optic nerve disorders.


Development ◽  
1987 ◽  
Vol 99 (3) ◽  
pp. 393-410
Author(s):  
J.S. Taylor

This study concerns the retinotopic organization of the ganglion cell fibres in the visual system of the frog Xenopus laevis. HRP was used to trace the pathways taken by fibres from discrete retinal positions as they pass from the retina, along the optic nerve and into the chiasma. The ganglion cell fibres in the retina are arranged in fascicles which correspond with their circumferential positions of origin. Within the fascicles the fibres show little age-related layering and do not have a strict radial organization. As the fascicles of fibres pass into the optic nerve head there is some exchange of position resulting in some loss of the retinal circumferential organization. The poor radial organization of the fibres in the retinal fascicles persists as the fibres pass through the intraocular part of the nerve. At a position just behind the eye there is a major fibre reorganization in which fibres arising from cells of increasingly peripheral retinal locations are found to have passed into increasingly peripheral positions in the nerve. Thus, fibres from peripheral-most retina are located at the nerve perimeter, whilst fibres from central retina are located in the nerve core. It is at this point that the radial, chronotopic, ordering of the ganglion cell axons, found throughout the rest of the optic pathway, is established. This annular organization persists along the length of the nerve until a position just before the nerve enters the brain. Here, fibres from each annulus move to form layers as they pass into the optic chiasma. This change in the radial organization appears to be related to the pathway followed by all newly growing fibres, in the most superficial part of the optic tract, adjacent to the pia. Just behind the eye, where fibres become radially ordered, the circumferential organization of the projection is largely lost. Fibres from every circumferential retinal position, which are of similar radial position, are distributed within the same annulus of the nerve. At the nerve-chiasma junction where each annulus forms a single layer as it enters the optic tract, there is a further mixing of fibres from all circumferential positions. However, as the fibres pass through the chiasma some active pathway selection occurs, generating the circumferential organization of the fibres in the optic tract. Additional observations of the organization of fibres in the optic nerve of Rana pipiens confirm previous reports of a dual representation of fibres within the nerve. The difference in the organization of fibres in the optic nerve of Xenopus and Rana pipiens is discussed.


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