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Braeu, F.

Publications and source records attributed to Braeu, F..

2 recordsLinked to original sources

Bruch's Membrane Contributes to the Structural Integrity of the Human Eye

PurposeTo investigate the contribution of the Bruchs membrane and sclera tissues to the overall structural integrity of the ocular wall. MethodsTwenty-three human globes were subjected to biomechanical testing. A piece of sclera measuring 5 x 5 mm was carefully removed at the nasal region, 2 mm away from the optic nerve head. The intraocular pressure was increased at approximately 1 mmHg/s until Bruchs membrane-uvea-retina-tissue layer (BMUR) ruptured. Next, strips of sclera and Bruchs membrane-choriocapillaris (BMC) complex were isolated from the superior fundus region. Uniaxial tension tests were performed at a strain rate of 0.01/s and sampling rate of 15 Hz. The tangent moduli of the BMC and sclera at 0.01, 0.02 and 0.03 strains were compared. ResultsThe rupture pressure of the BMUR was 98.1 {+/-} 21.4 mmHg. The tangent moduli of the BMC at 0.01, 0.02 and 0.03 strains were 2.96 {+/-} 1.44 MPa, 7.68 {+/-} 1.78 MPa and 9.43 {+/-} 2.11 MPa, respectively, and the tangent moduli of the sclera at 0.01, 0.02 and 0.03 strains were 1.09 {+/-} 0.80 MPa, 2.72 {+/-} 1.67 MPa and 5.69 {+/-} 3.27 MPa, respectively. ConclusionThe BMUR was able to sustain relatively high IOP before rupturing. The uniaxial tensile tests showed that the BMC tangent moduli were about 3 times of those of the sclera at strains of 0.01 and 0.02. Although the sclera is approximately 47 times thicker, the BMC is still likely to make a significant contribution (3.51% to 7.42% at strain <0.03) to the overall structural strength of the ocular wall.

bioengineering↗

How Myopia and Glaucoma Influence the Biomechanical Susceptibility of the Optic Nerve Head

PurposeWe aimed to assess optic nerve head (ONH) deformations following acute intraocular pressure (IOP) elevations and horizontal eye movements (adduction and abduction) in control eyes, highly myopic (HM) eyes, HM eyes with glaucoma (HMG), and eyes with pathologic myopia alone (PM) or PM with staphyloma (PM+S). MethodsWe studied 282 eyes, comprising of 99 controls, 51 HM, 35 HMG, 21 PM and 75 PM+S eyes. For each eye, we imaged the ONH using spectral-domain optical coherence tomography (OCT) under the following conditions: (1) primary gaze, (2) 20{degrees} adduction, (3) 20{degrees} abduction and (4) primary gaze with acute IOP elevation (to ~35 mmHg) achieved through ophthalmodynamometry. For each OCT volume, we automatically segmented the ONH tissues using deep learning. We performed digital volume correlation (DVC) analysis to compute IOP- and gaze-induced ONH displacements and effective strains (i.e. local deformations). All biomechanical quantities were compared across groups. ResultsUnder IOP elevation, we found that HM eyes exhibited significantly lower strains (3.9 {+/-} 2.4 %) than PM eyes (6.9 {+/-} 5.0%, p < 0.001), HMG eyes (4.7 {+/-} 1.8%, p = 0.04) and PM+S eyes (7.0 {+/-} 5.2%, p < 0.001). Under adduction, we found that HM eyes exhibited significantly lower strains (4.8% {+/-} 2.7%) than PM+S eyes (6.0 {+/-} 3.1%, p = 0.02). We also found significant associations between axial length (or refractive error) and strains - eyes with higher axial length and greater myopia were associated with higher strains. IOP-induced strains were also positively correlated with adduction-induced strains. ConclusionWe found that HMG eyes experienced significantly higher strains under IOP elevations as compared to HM eyes. Additionally, PM+S eyes experienced highest ONH strains as compared to other groups under all biomechanical loads. Our preliminary findings suggest the possibility of using a simple biomechanical test to tease out the susceptibility of HM eyes to further develop glaucoma and/or staphyloma.

bioengineering↗