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A predictive framework for assessing naproxen-mediated changes in Nitzschia dubia fucoxanthin levels via machine
Yong Zhou1, Xu Dong2, Mohammad Russel2
1Hubei Key Laboratory of Resource Utilization and Quality Control of Characteristic Crops, College of Life Sciences and Technology, Hubei Engineering University, Xiaogan, 432000, People's Republic of China.
Abstract:
Naproxen (Nap), a widely used non-steroidal anti-inflammatory drug, can disturb algal physiology under sufficiently high exposure conditions. In this study, a laboratory-scale machine learning (ML)-driven dielectric sensor framework was developed to estimate culture-level fucoxanthin (Fx) responses in the marine diatom Nitzschia dubia under acute Nap stress, using 48 averaged observations obtained from eight Nap concentrations over a 0-18 d cultivation period. A customized open-ended coplanar waveguide (CPW) probe measured dielectric responses (S11, ε'), over 30 kHz-3 GHz, with 735 MHz selected as the representative frequency for subsequent analysis. These descriptors were integrated with optical indices (OD686, chlorophyll-a, and Fx) and analyzed using multivariate statistics and regression models. The ML-driven dielectric approach indicated a concentration-dependent Nap response, with a low-dose stimulatory trend at ≤5 mg/L and inhibition at higher concentrations. At higher Nap levels, Nap correlated positively with S11 and negatively with ε', Fx, and OD686 (Pearson's r = 0.27, -0.36, -0.46, and -0.47, respectively). Correlation and principal component analysis (PCA) indicated strong coupling among algal biomass-related variables, Fx, and dielectric descriptors. Multiple linear regression (MLR) provided a baseline linking S11 and ε' to Fx. Support vector regression with a radial basis function kernel (SVR-RBF) captured nonlinear Nap-dielectric relationships; six-fold cross-validation achieved R2 = 0.913 with RMSE = 19.48 mg/L and MAE = 9.92 mg/L. 2D PDPs further supported the interpretability of the SVR model, suggesting that dielectric spectroscopy coupled with nonlinear regression has potential to non-destructive estimation of algal Fx responses under controlled pharmaceutical stress.
