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本文引用的文献

1
Scleral fibroblast response to experimental glaucoma in mice.小鼠巩膜成纤维细胞对实验性青光眼的反应。
Mol Vis. 2016 Jan 29;22:82-99. eCollection 2016.
2
Deaths: preliminary data for 2009.死亡情况:2009年初步数据。
Natl Vital Stat Rep. 2011 Mar;59(4):1-51.
3
Recent advances in OCT imaging of the lamina cribrosa.最近在层筛板 OCT 成像方面的进展。
Br J Ophthalmol. 2014 Jul;98 Suppl 2(Suppl 2):ii34-9. doi: 10.1136/bjophthalmol-2013-304751.
4
Patient-Specific Finite Element Simulations of Standard Incisional Astigmatism Surgery and a Novel Patterned Collagen Crosslinking Approach to Astigmatism Treatment.标准切口散光手术及一种新型散光治疗的图案化胶原交联方法的患者特异性有限元模拟
J Med Device. 2013 Dec;7(4):0409131-409132. doi: 10.1115/1.4025980. Epub 2013 Dec 5.
5
Patterned corneal collagen crosslinking for astigmatism: computational modeling study.用于散光的角膜胶原交联模式:计算建模研究
J Cataract Refract Surg. 2014 Jun;40(6):943-53. doi: 10.1016/j.jcrs.2014.03.019. Epub 2014 Apr 24.
6
A method to estimate biomechanics and mechanical properties of optic nerve head tissues from parameters measurable using optical coherence tomography.一种从使用光学相干断层扫描可测量的参数来估计视神经乳头组织生物力学和力学特性的方法。
IEEE Trans Med Imaging. 2014 Jun;33(6):1381-9. doi: 10.1109/TMI.2014.2312133. Epub 2014 Mar 14.
7
Scleral permeability varies by mouse strain and is decreased by chronic experimental glaucoma.巩膜通透性因小鼠品系而异,并可被慢性实验性青光眼所降低。
Invest Ophthalmol Vis Sci. 2014 Apr 21;55(4):2564-73. doi: 10.1167/iovs.13-13327.
8
IOP elevation reduces Schlemm's canal cross-sectional area.眼压升高会减少施莱姆氏管的横截面积。
Invest Ophthalmol Vis Sci. 2014 Mar 25;55(3):1805-9. doi: 10.1167/iovs.13-13264.
9
Susceptibility to glaucoma damage related to age and connective tissue mutations in mice.小鼠青光眼损伤易感性与年龄和结缔组织突变有关。
Exp Eye Res. 2014 Feb;119:54-60. doi: 10.1016/j.exer.2013.12.008. Epub 2013 Dec 22.
10
Eye-specific IOP-induced displacements and deformations of human lamina cribrosa.人板层 cribrosa 的特定于眼的 IOP 诱导位移和变形。
Invest Ophthalmol Vis Sci. 2014 Jan 2;55(1):1-15. doi: 10.1167/iovs.13-12724.

将眼生物力学转化为临床实践:现状与未来前景。

Translating ocular biomechanics into clinical practice: current state and future prospects.

作者信息

Girard Michaël J A, Dupps William J, Baskaran Mani, Scarcelli Giuliano, Yun Seok H, Quigley Harry A, Sigal Ian A, Strouthidis Nicholas G

机构信息

In Vivo Biomechanics Laboratory, Department of Biomedical Engineering, National University of Singapore , Singapore .

出版信息

Curr Eye Res. 2015 Jan;40(1):1-18. doi: 10.3109/02713683.2014.914543. Epub 2014 May 15.

DOI:10.3109/02713683.2014.914543
PMID:24832392
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4233020/
Abstract

Biomechanics is the study of the relationship between forces and function in living organisms and is thought to play a critical role in a significant number of ophthalmic disorders. This is not surprising, as the eye is a pressure vessel that requires a delicate balance of forces to maintain its homeostasis. Over the past few decades, basic science research in ophthalmology mostly confirmed that ocular biomechanics could explain in part the mechanisms involved in almost all major ophthalmic disorders such as optic nerve head neuropathies, angle closure, ametropia, presbyopia, cataract, corneal pathologies, retinal detachment and macular degeneration. Translational biomechanics in ophthalmology, however, is still in its infancy. It is believed that its use could make significant advances in diagnosis and treatment. Several translational biomechanics strategies are already emerging, such as corneal stiffening for the treatment of keratoconus, and more are likely to follow. This review aims to cultivate the idea that biomechanics plays a major role in ophthalmology and that the clinical translation, lead by collaborative teams of clinicians and biomedical engineers, will benefit our patients. Specifically, recent advances and future prospects in corneal, iris, trabecular meshwork, crystalline lens, scleral and lamina cribrosa biomechanics are discussed.

摘要

生物力学是研究生物体中力与功能之间关系的学科,被认为在众多眼科疾病中起着关键作用。这并不奇怪,因为眼睛是一个压力容器,需要各种力之间保持微妙平衡以维持其体内稳态。在过去几十年里,眼科基础科学研究大多证实,眼部生物力学能够部分解释几乎所有主要眼科疾病所涉及的机制,如视神经乳头神经病变、闭角型青光眼、屈光不正、老花眼、白内障、角膜病变、视网膜脱离和黄斑变性。然而,眼科转化生物力学仍处于起步阶段。人们认为其应用能够在诊断和治疗方面取得重大进展。一些转化生物力学策略已经出现,比如通过角膜强化治疗圆锥角膜,而且可能会有更多策略相继出现。这篇综述旨在树立这样一种观念,即生物力学在眼科中起着重要作用,并且由临床医生和生物医学工程师组成的协作团队引领的临床转化将造福我们的患者。具体而言,本文将讨论角膜、虹膜、小梁网、晶状体、巩膜和筛板生物力学的最新进展和未来前景。