Analysis of Dynamic Efficacy Profile of Corneal Cross-Linking: Role of Oxygen and Rate Constants in Type-I and II Processes

Jui-Teng Lin, Yi Lee
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Abstract

Purpose: To explore (theoretically) the key parameters and their influence on the time profiles of photosensitizer (riboflavin), free radicals, singlet oxygen, oxygen and the efficacy of corneal collagen crosslinking (CXL) in both type-I and oxygen-mediated type-II mechanisms, specially the role of oxygen and the initiator regeneration. Study Design: Numerical solutions of the rate equation of CXL. Place and Duration of Study: New Taipei City, Taiwan, between October, 2021 and November, 2021. Methodology: Coupled kinetic equations are derived and numerically solved under the quasi-steady state condition for the 2-pathway mechanisms of CXL. The key parameters explored include (bI, V, Q', K, K',Q,P) and their influence on the time profiles of photosensitizer (riboflavin, C), radicals (R), singlet oxygen(S), oxygen (X) and efficacy (E), parameters of (K,K',Q) define the relative strength of type-I and type-II process. The oxygen depletion profile, X(t), and the associated singlet oxygen, S(t), depend on the parameters of V, Q' and the initial value of oxygen. The coupling strength given by (bI) governs almost all profiles, where b is an effective absorption parameter and I is the UV light intensity. Results: Our numerical method for CXL dynamic profiles demonstrated the following important features: (i) Type-I and type-II co exit in CXL, in the presence of oxygen. However, there is no type-II when oxygen is depleted or in a condition without oxygen. (ii) Type-I with bimolecular termination, the radical R(t) is a function of [K'(bIgC)]0.5, leading to the steady-state efficacy given by a scaling law of 1/(bI)0.5, in contract to that of type-II which is almost independent to the light intensity. (iii) The depletion rate (2 to 5 minutes) of X(t) is much faster than that of C(t) (10 to 20 minutes), (iv) The pure type-II profile, has a transition point from straight line to saturating curve and matches the depletion point of singlet oxygen S(t). (v) Improved CXL efficacy of type-I and type-II may be achieved by external supply of photoinitiator (riboflavin) and oxygen, respectively.
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角膜交联的动态疗效分析:氧和速率常数在i型和II型过程中的作用
目的:(理论上)探讨光敏剂(核黄素)、自由基、单线态氧、氧的关键参数及其对i型和ii型氧介导的角膜胶原交联(CXL)功效的影响,特别是氧和引发剂再生的作用。研究设计:对CXL的速率方程进行数值求解。学习地点和时间:台湾新北市,2021年10月至2021年11月。方法:在准稳态条件下,推导耦合动力学方程并进行数值求解。探索的关键参数包括(bI, V, Q′,K,K′,Q,P)及其对光敏剂(核黄素,C),自由基(R),单重态氧(S),氧(X)和药效(E)的影响,参数(K,K′,Q)定义了i型和ii型过程的相对强度。氧耗谱X(t)和相关的单重态氧S(t)取决于V、Q′和氧的初始值的参数。(bI)给出的耦合强度几乎适用于所有剖面,其中b是有效吸收参数,I是紫外光强度。结果:我们的CXL动态剖面的数值方法显示了以下重要特征:(i)在氧气存在的情况下,CXL中i型和ii型共同存在。然而,当氧气耗尽或处于无氧状态时,就没有ii型糖尿病了。(ii)具有双分子终止的i型,自由基R(t)是[K'(bIgC)]0.5的函数,导致其稳态效能的标度律为1/(bI)0.5,而ii型的稳态效能几乎与光强无关。(iii) X(t)的耗竭速率(2 ~ 5分钟)远快于C(t)的耗竭速率(10 ~ 20分钟);(iv)纯ii型剖面,有一个从直线到饱和曲线的过渡点,与单线态氧S(t)的耗竭点相匹配。(v)外用光引发剂(核黄素)和氧气分别可提高ⅰ型和ⅱ型CXL的效能。
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