Environment-Dependent UV Response of Cyclosporin A in Buffered Aqueous Media: Implications for Reliable Quantitative Analysis in Ophthalmic Drug-Delivery Research
Iwona Nowak, Ola Michałkiewicz, Iwona Rykowska, Rafał NowakBackground: Cyclosporin A (CyA) is widely investigated for ophthalmic drug-delivery systems, including hydrogel contact lenses, where reliable quantification is essential for evaluating drug loading, release, and formulation performance. However, the analytical UV response of CyA may depend on the physicochemical characteristics of the surrounding buffered environment, potentially affecting quantitative measurements. Objectives: This study aimed to determine whether changes in the buffered aqueous environment influence the UV spectral response of CyA and whether such variability may introduce systematic bias into UV-based quantitative analysis. Methods: UV spectra of CyA were recorded in citrate-phosphate buffered media over the pH range 3.28–9.10, including several near-neutral conditions relevant to ophthalmic formulations and artificial lacrimal media. Spectral changes were evaluated using univariate statistical analysis, principal component analysis (PCA), and Gaussian deconvolution. Results: CyA exhibited a progressive hypsochromic shift of the apparent absorption maximum from approximately 234 nm to 210–214 nm, accompanied by pronounced changes in absorbance intensity and the overall absorption profile. Comprehensive statistical analyses demonstrated systematic spectral differences across the investigated buffered media. PCA performed on 42 spectra (31 wavelength variables) explained 84.20% of the total variance within the first two principal components, while Gaussian deconvolution indicated progressive redistribution of overlapping spectral contributions. The observed spectral behavior is consistent with changes in the molecular environment and redistribution of conformational populations; however, the UV–Vis data alone do not provide direct structural evidence for these processes. The resulting wavelength-dependent spectral variability produced substantial apparent analytical bias, demonstrating that fixed-wavelength UV measurements may lead to systematic quantification errors when calibration standards and analytical samples differ in their buffered environment. Conclusions: These findings demonstrate that the analytical UV response of cyclosporin A is environment-dependent and highlight the importance of matrix-matched calibration and validation under the intended analytical conditions when UV spectroscopy is used for quantitative determination of CyA in aqueous drug-delivery systems.