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Nambiar, M. H.

Publications and source records attributed to Nambiar, M. H..

2 recordsLinked to original sources

Oxygen kinetics during CXL using symmetrically and asymmetrically pulsed UV-irradiation

PurposeTo investigate oxygen kinetics during symmetrically pulsed and asymmetrically pulsed crosslinking (p-CXL) with and without supplementary oxygen at different irradiances and corneal depths. DesignExperimental, laboratory study MethodsIn de-epithelialized porcine eyes, a femtosecond-laser generated tunnel was used to place a fibre-probe in corneal depths of 200 and 300 {micro}m to measure the local oxygen concentration. After riboflavin imbibition, the corneas were irradiated at 9, 18 and 30 mW/cm2 for 10 seconds On and 10 seconds Off; while the oxygen concentration was continuously measured until oxygen levels depleted below the oxygen sensors threshold (1%) or until stabilized. All experiments were performed under normoxic (21%) and hyperoxic (>95%) conditions and the obtained data were used to identify parameters of a numerical algorithm for oxygen consumption and diffusion. Following the algorithms development, the suggested asymmetrical pulsing values were experimentally tested. For 9, 18 and 30 mW/cm2 the suggested tested pulsing schemes were 3 seconds On : 9 seconds Off, 2 seconds On : 9 seconds Off and 1 second On : 9 seconds Off respectively. ResultsThe minimum, available stromal oxygen for p-CXL in normoxic environment was decreasing <1% for 9, 18 and 30 mW/cm2 in 200 and 300 m. Using optimized p-CXL, the minimum available oxygen increased to 3.8, 1.8 and 2.8 % at 200 m, for irradiances of 9, 18 and 30 mW/cm2, respectively, where the periods exhibited an equilibrium state. At 300 m, 1.1 % of oxygen was available for 30 mW/cm2. Using a hyperoxic environment, the oxygen concentration was 19.2% using 9 mW/cm2 in 200 m, dropping to 17.0% in 300 m. At 18 mW/cm2, the concentrations were 3.9% and 1% in 200 and 300 m, respectively. Using 30 mW/cm2, all oxygen was depleted below the threshold limit (1% O2) for both depths. Using optimized pulsing in combination with hyperoxic environment, the oxygen concentration was 42.0% using 9 mW/cm2 in 200 m and 43.3% in 300 m. At 18 mW/cm2, the concentrations were 24.7% and 16.1% in 200 and 300 m, respectively. Using 30 mW/cm2, the minimum oxygen availability was 25.7% and 13.7% in 200 and 300 m, respectively. ConclusionSupplementary oxygen during symmetrical and asymmetrical p-CXL increased the oxygen availability during corneal cross-linking. The pulsed irradiance and the hyperoxic environment potentially increased the efficacy of corneal cross-linking in deeper corneal layers and higher irradiances. The numerical algorithm for asymmetrical pulsing led to the quantification of "On" and "Off" times related to different scenarios such as irradiances.

bioengineering↗

Longitudinal in vivo micro-CT-based approach allows spatio-temporal characterization of fracture healing patterns and assessment of biomaterials in mouse femur defect models

Thorough preclinical evaluation of functionalized biomaterials for treatment of large bone defects is essential prior to clinical application. Using in vivo micro-computed tomography (micro-CT) and mouse femoral defect models with different defect sizes, we were able to detect spatio-temporal healing patterns indicative of physiological and impaired healing in three defect sub-volumes and the adjacent cortex. The time-lapsed in vivo micro-CT-based approach was then applied to evaluate the bone regeneration potential of functionalized biomaterials using collagen and BMP-2. Both collagen and BMP-2 treatment led to distinct changes in bone turnover in the different healing phases. Despite increased periosteal bone formation, 87.5% of the defects treated with collagen scaffolds resulted in non-unions. Additional BMP-2 application significantly accelerated the healing process and increased the union rate to 100%. This study further shows potential of time-lapsed in vivo micro-CT for capturing spatio-temporal deviations preceding non-union formation and how this can be prevented by application of functionalized biomaterials. This study therefore supports the application of longitudinal in vivo micro-CT for discrimination of normal and disturbed healing patterns and for the spatio-temporal characterization of the bone regeneration capacity of functionalized biomaterials.

bioengineering↗