Microstructural Deformations Within the Depth of the Lamina Cribrosa in Response to Acute In Vivo Intraocular Pressure Modulation

被引:6
作者
Glidai, Yoav [1 ]
Lucy, Katie A. [1 ]
Schuman, Joel S. [1 ,2 ,3 ]
Alexopoulos, Palaiologos [1 ]
Wang, Bo [4 ]
Wu, Mengfei [1 ,5 ,6 ]
Liu, Mengling [1 ,5 ,6 ]
Geest, Jonathan P. Vande [4 ,7 ,8 ]
Kollech, Hirut G. [9 ]
Lee, TingFang [1 ,5 ,6 ]
Ishikawa, Hiroshi [1 ]
Wollstein, Gadi [10 ]
机构
[1] NYU Langone Hlth, Dept Ophthalmol, New York, NY USA
[2] NYU Tandon, Dept Biomed Engn, Sch Engn, New York, NY USA
[3] NYU, Ctr Neural Sci, New York, NY USA
[4] Univ Pittsburgh, Eye & Ear Inst, UPMC Eye Ctr, Dept Ophthalmol,Med Ctr, Pittsburgh, PA USA
[5] Dept Populat Hlth, Div Biostat, NYU Langone Hlth, New York, NY USA
[6] Dept Environm Med, Div Biostat, NYU Langone Hlth, New York, NY USA
[7] Univ Pittsburgh, Dept Bioengn, Pittsburgh, PA USA
[8] Univ Pittsburgh, McGowan Inst Regenerat Med, Pittsburgh, PA USA
[9] Univ Pittsburgh, Computat Modeling & Simulat Program, Pittsburgh, PA USA
[10] NYU Langone Hlth, Dept Ophthalmol, 222 East 41st St, New York, NY 10017 USA
关键词
lamina cribrosa (LC); optical coherence tomography (OCT); intraocular pres-sure (IOP); OPTIC-NERVE HEAD; AGE-RELATED-CHANGES; COHERENCE TOMOGRAPHY; EXTRACELLULAR-MATRIX; CONNECTIVE-TISSUE; PERIPAPILLARY SCLERA; GLAUCOMA; HEALTHY; STRAIN; EYE;
D O I
10.1167/iovs.63.5.25
中图分类号
R77 [眼科学];
学科分类号
100212 ;
摘要
PURPOSE. The lamina cribrosa (LC) is a leading target for initial glaucomatous damage. We investigated the in vivo microstructural deformation within the LC volume in response to acute IOP modulation while maintaining fixed intracranial pressure (ICP).METHODS. In vivo optic nerve head (ONH) spectral-domain optical coherence tomography (OCT) scans (Leica, Chicago, IL, USA) were obtained from eight eyes of healthy adult rhesus macaques (7 animals; ages = 7.9-14.4 years) in different IOP settings and fixed ICP (8-12 mm Hg). IOP and ICP were controlled by cannulation of the anterior chamber and the lateral ventricle of the brain, respectively, connected to a gravity-controlled reservoir. ONH images were acquired at baseline IOP, 30 mm Hg (H1-IOP), and 40 to 50 mm Hg (H2-IOP). Scans were registered in 3D, and LC microstructure measurements were obtained from shared regions and depths.RESULTS. Only half of the eyes exhibited LC beam-to-pore ratio (BPR) and microstructure deformations. The maximal BPR change location within the LC volume varied between eyes. BPR deformer eyes had a significantly higher baseline connective tissue volume frac-tion (CTVF) and lower pore aspect ratio (P = 0.03 and P = 0.04, respectively) compared to BPR non-deformer. In all eyes, the magnitude of BPR changes in the anterior surface was significantly different (either larger or smaller) from the maximal change within the LC (H1-IOP: P = 0.02 and H2-IOP: P = 0.004).CONCLUSIONS. The LC deforms unevenly throughout its depth in response to IOP modu-lation at fixed ICP. Therefore, analysis of merely the anterior LC surface microstructure will not fully capture the microstructure deformations within the LC. BPR deformer eyes have higher CTVF than BPR non-deformer eyes.
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页数:10
相关论文
共 67 条
[1]   Direct three-dimensional myocardial strain tensor quantification and tracking using zHARP [J].
Abd-Elmoniem, Khaled Z. ;
Stuber, Matthias ;
Prince, Jerry L. .
MEDICAL IMAGE ANALYSIS, 2008, 12 (06) :778-786
[2]   Laminar and Prelaminar Tissue Displacement During Intraocular Pressure Elevation in Glaucoma Patients and Healthy Controls [J].
Agoumi, Younes ;
Sharpe, Glen P. ;
Hutchison, Donna M. ;
Nicolela, Marcelo T. ;
Artes, Paul H. ;
Chauhan, Balwantray C. .
OPHTHALMOLOGY, 2011, 118 (01) :52-59
[3]   In Vivo Imaging of Lamina Cribrosa Pores by Adaptive Optics Scanning Laser Ophthalmoscopy [J].
Akagi, Tadamichi ;
Hangai, Masanori ;
Takayama, Kohei ;
Nonaka, Atsushi ;
Ooto, Sotaro ;
Yoshimura, Nagahisa .
INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2012, 53 (07) :4111-4119
[4]   Age related changes in the non-collagenous components of the extracellular matrix of the human lamina cribrosa [J].
Albon, J ;
Karwatowski, WSS ;
Easty, DL ;
Sims, TJ ;
Duance, VC .
BRITISH JOURNAL OF OPHTHALMOLOGY, 2000, 84 (03) :311-317
[5]  
ANDERSON DR, 1969, ARCH OPHTHALMOL-CHIC, V82, P800
[6]   Racioethnic differences in the biomechanical response of the lamina cribrosa [J].
Behkam, Reza ;
Kollech, Hirut G. ;
Jana, Anirban ;
Hill, Amy ;
Danford, Forest ;
Howerton, Stephen ;
Ram, Sundaresh ;
Rodriguez, Jeffrey J. ;
Utzinger, Urs ;
Girkin, Christopher A. ;
Vande Geest, Jonathan P. .
ACTA BIOMATERIALIA, 2019, 88 :131-140
[7]   In Vivo Three-Dimensional Lamina Cribrosa Strains in Healthy, Ocular Hypertensive, and Glaucoma Eyes Following Acute Intraocular Pressure Elevation [J].
Beotra, Meghna R. ;
Wang, Xiaofei ;
Tun, Tin A. ;
Zhang, Liang ;
Baskaran, Mani ;
Aung, Tin ;
Strouthidis, Nicholas G. ;
Girard, Michael J. A. .
INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2018, 59 (01) :260-272
[8]   The optic nerve head as a biomechanical structure: a new paradigm for understanding the role of IOP-related stress and strain in the pathophysiology of glaucomatous optic nerve head damage [J].
Burgoyne, CF ;
Downs, JC ;
Bellezza, AJ ;
Suh, JKF ;
Hart, RT .
PROGRESS IN RETINAL AND EYE RESEARCH, 2005, 24 (01) :39-73
[9]   A biomechanical paradigm for axonal insult within the optic nerve head in aging and glaucoma [J].
Burgoyne, Claude F. .
EXPERIMENTAL EYE RESEARCH, 2011, 93 (02) :120-132
[10]   A Novel Method for Assessing Lamina Cribrosa Structure Ex Vivo Using Anterior Segment Enhanced Depth Imaging Optical Coherence Tomography [J].
Chien, Jason L. ;
Ghassibi, Mark P. ;
Mahadeshwar, Pooja ;
Li, Pengcheng ;
Liebmann, Jeffrey M. ;
Ritch, Robert ;
Milman, Tatyana ;
Park, Sung Chul .
JOURNAL OF GLAUCOMA, 2017, 26 (07) :626-632