Proof of Concept for a Controlled Raman-Compatible Skin-Mimicking Hydrogel Substrate for Chemical Imaging Technique Development
Abstract
1. Introduction
2. Results and Discussion
2.1. Matrix Design
2.2. Spectral Evaluation of Dried Hydrogels
2.2.1. Skin Mimicry of Hydrogels
2.2.2. Raman Detectability
2.3. Spatial Homogeneity
2.4. Repeatability of Drying Kinetics
2.5. Compatibility of the Matrix with SERS Imaging
3. Materials and Methods
3.1. Chemicals and Reagents
3.2. Polymeric Matrix Preparation and Drying
3.3. Polymeric Matrix Evaluation Strategy
3.4. Analytical Evaluation
3.4.1. Reconstructed Human Epidermis Model
3.4.2. Raman Imaging
3.4.3. Data Treatment
3.4.4. Distributional Homogeneity Index
3.5. Physical Evaluation of Drying Kinetics
Mixed-Effects Modelling of Drying Kinetics
3.6. SER-CI Testing on Dried Hydrogels
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AgNPs | Silver nanoparticles |
| AIC | Akaike’s Information Criterion |
| ANTE-EV | Antedependence equal variance model |
| API | Active pharmaceutical ingredient |
| AUC | Area Under the Curve |
| BIC | Bayesian Information Criterion |
| CLMB | Continuous-Level Moving Block |
| CQA | Critical Quality Attribute |
| DHI | Distributional Homogeneity Index |
| EMA | European Medicines Agency |
| ICH | International Council for Harmonization |
| Iratio | Intensity after ratiometric normalization of |
| IR | Infra-red |
| MALDI-MSI | Matrix-Assisted Laser Desorption Ionization Mass Spectrometry Imaging |
| ND | Neutral density |
| NP | Nanoparticle |
| OECD | Organisation for Economic Co-operation and Development |
| PBS | Phosphate-buffered saline |
| PI | Prediction interval |
| Prob | Probability |
| R-CI | Raman chemical imaging |
| RH | Relative humidity |
| RHE | Reconstructed human epidermis |
| RSD | Relative standard deviation |
| RWC | Relative water content |
| SC | Stratum corneum |
| SER-CI | Surface-Enhanced Raman Chemical Imaging |
| SNR | Signal-to-noise ratio |
References
- Smith, G.P.S.; McGoverin, C.M.; Fraser, S.J.; Gordon, K.C. Raman imaging of drug delivery systems. Adv. Drug Deliv. Rev. 2015, 89, 21–41. [Google Scholar] [CrossRef] [PubMed]
- Kichou, H.; Bonnier, F.; Dancik, Y.; Bakar, J.; Michael-Jubeli, R.; Caritá, A.C.; Perse, X.; Soucé, M.; Rapetti, L.; Tfayli, A.; et al. Strat-M® positioning for skin permeation studies: A comparative study including EpiSkin® RHE, and human skin. Int. J. Pharm. 2023, 647, 123488. [Google Scholar] [CrossRef]
- OECD. Test No. 428: Skin Absorption: In Vitro Method; Organisation for Economic Co-operation and Development: Paris, France, 2004. [Google Scholar]
- OECD. Guidance Document for the Conduct of Skin Absorption Studies; Organisation for Economic Co-operation and Development: Paris, France, 2004. [Google Scholar]
- Quality and Equivalence of Locally Applied, Locally Acting Cutaneous Products—Scientific Guideline|European Medicines Agency (EMA). Available online: https://www.ema.europa.eu/en/quality-equivalence-locally-applied-locally-acting-cutaneous-products-scientific-guideline (accessed on 31 March 2026).
- Orkoula, M.G.; Kontoyannis, C.G.; Markopoulou, C.K.; Koundourellis, J.E. Quantitative analysis of liquid formulations using FT-Raman spectroscopy and HPLC The case of diphenhydramine hydrochloride in Benadryl. J. Pharm. Biomed. Anal. 2006, 41, 1406–1411. [Google Scholar] [CrossRef] [PubMed]
- Kichou, H.; Munnier, E.; Dancik, Y.; Kemel, K.; Byrne, H.; Tfayli, A.; Bertrand, D.; Soucé, M.; Chourpa, I.; Bonnier, F. Estimating the Analytical Performance of Raman Spectroscopy for Quantification of Active Ingredients in Human Stratum Corneum. Molecules 2022, 27, 2843. [Google Scholar] [CrossRef]
- Bielfeldt, S.; Bonnier, F.; Byrne, H.J.; Chourpa, I.; Dancik, Y.; Lane, M.E.; Lunter, D.J.; Munnier, E.; Puppels, G.; Tfayli, A.; et al. Monitoring dermal penetration and permeation kinetics of topical products; the role of Raman microspectroscopy. TrAC Trends Anal. Chem. 2022, 156, 116709. [Google Scholar] [CrossRef]
- Lohumi, S.; Kim, M.S.; Qin, J.; Cho, B.-K. Raman imaging from microscopy to macroscopy: Quality and safety control of biological materials. TrAC Trends Anal. Chem. 2017, 93, 183–198. [Google Scholar] [CrossRef]
- Zsikó, S.; Csányi, E.; Kovács, A.; Budai-Szűcs, M.; Gácsi, A.; Berkó, S. Methods to Evaluate Skin Penetration In Vitro. Sci. Pharm. 2019, 87, 19. [Google Scholar] [CrossRef]
- Binder, L.; Kulovits, E.M.; Petz, R.; Ruthofer, J.; Baurecht, D.; Klang, V.; Valenta, C. Penetration monitoring of drugs and additives by ATR-FTIR spectroscopy/tape stripping and confocal Raman spectroscopy—A comparative study. Eur. J. Pharm. Biopharm. 2018, 130, 214–223. [Google Scholar] [CrossRef]
- Eyer, K.; Paech, F.; Schuler, F.; Kuhn, P.; Kissner, R.; Belli, S.; Dittrich, P.S.; Krämer, S.D. A liposomal fluorescence assay to study permeation kinetics of drug-like weak bases across the lipid bilayer. J. Control. Release 2014, 173, 102–109. [Google Scholar] [CrossRef]
- Schmälzlin, E.; Moralejo, B.; Gersonde, I.; Schleusener, J.; Darvin, M.E.; Thiede, G.; Roth, M.M. Nonscanning large-area Raman imaging for ex vivo/in vivo skin cancer discrimination. JBO 2018, 23, 105001. [Google Scholar] [CrossRef]
- Egawa, M. Raman microscopy for skin evaluation. Analyst 2021, 146, 1142–1150. [Google Scholar] [CrossRef] [PubMed]
- Essendoubi, M.; Alsamad, F.; Noël, P.; Meunier, M.; Scandolera, A.; Sandré, J.; Manfait, M.; Gobinet, C.; Reynaud, R.; Piot, O. Combining Raman imaging and MCR-ALS analysis for monitoring retinol permeation in human skin. Skin Res. Technol. 2021, 27, 1100–1109. [Google Scholar] [CrossRef]
- Zeng, Q.; Wang, L.; Wu, S.; Fang, G.; Zhao, M.; Li, Z.; Li, W. Research progress on the application of spectral imaging technology in pharmaceutical tablet analysis. Int. J. Pharm. 2022, 625, 122100. [Google Scholar] [CrossRef]
- Kichou, H.; Bonnier, F.; Caritá, A.; Byrne, H.; Chourpa, I.; Munnier, E. Confocal Raman spectroscopy coupled with in vitro permeation testing to study the effects of formalin fixation on the skin barrier function of reconstructed human epidermis. Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 2024, 320, 124617. [Google Scholar] [CrossRef]
- Bonnel, D.; Legouffe, R.; Willand, N.; Baulard, A.; Hamm, G.; Deprez, B.; Stauber, J. MALDI imaging techniques dedicated to drug-distribution studies. Bioanalysis 2011, 3, 1399–1406. [Google Scholar] [CrossRef]
- Mirnezami, R.; Spagou, K.; Vorkas, P.A.; Lewis, M.R.; Kinross, J.; Want, E.; Shion, H.; Goldin, R.D.; Darzi, A.; Takats, Z.; et al. Chemical mapping of the colorectal cancer microenvironment via MALDI imaging mass spectrometry (MALDI-MSI) reveals novel cancer-associated field effects. Mol. Oncol. 2014, 8, 39–49. [Google Scholar] [CrossRef] [PubMed]
- Horgan, C.C.; Jensen, M.; Nagelkerke, A.; St-Pierre, J.-P.; Vercauteren, T.; Stevens, M.M.; Bergholt, M.S. High-Throughput Molecular Imaging via Deep-Learning-Enabled Raman Spectroscopy. Anal. Chem. 2021, 93, 15850–15860. [Google Scholar] [CrossRef]
- Dunnington, E.L.; Wong, B.S.; Fu, D. Innovative Approaches for Drug Discovery: Quantifying Drug Distribution and Response with Raman Imaging. Anal. Chem. 2024, 96, 7926–7944. [Google Scholar] [CrossRef]
- Tfayli, A.; Piot, O.; Pitre, F.; Manfait, M. Follow-up of drug permeation through excised human skin with confocal Raman microspectroscopy. Eur. Biophys. J. 2007, 36, 1049–1058. [Google Scholar] [CrossRef]
- Brozek-Pluska, B. Statistics assisted analysis of Raman spectra and imaging of human colon cell lines—Label free, spectroscopic diagnostics of colorectal cancer. J. Mol. Struct. 2020, 1218, 128524. [Google Scholar] [CrossRef]
- Bakonyi, M.; Gácsi, A.; Kovács, A.; Szűcs, M.-B.; Berkó, S.; Csányi, E. Following-up skin penetration of lidocaine from different vehicles by Raman spectroscopic mapping. J. Pharm. Biomed. Anal. 2018, 154, 1–6. [Google Scholar] [CrossRef] [PubMed]
- Bookmeyer, C.H.M.; Correig, F.X.; Masana, L.; Magni, P.; Yanes, Ó.; Vinaixa, M. Advancing atherosclerosis research: The Power of lipid imaging with MALDI-MSI. Atherosclerosis 2025, 403, 119130. [Google Scholar] [CrossRef]
- Hu, J.-B.; Chen, Y.-C.; Urban, P.L. Coffee-ring effects in laser desorption/ionization mass spectrometry. Anal. Chim. Acta 2013, 766, 77–82. [Google Scholar] [CrossRef] [PubMed]
- Gautier, J.; Allard-Vannier, E.; Hervé-Aubert, K.; Soucé, M.; Chourpa, I. Design strategies of hybrid metallic nanoparticles for theragnostic applications. Nanotechnology 2013, 24, 432002. [Google Scholar] [CrossRef]
- Bock, S.; Choi, Y.-S.; Kim, M.; Yun, Y.; Pham, X.-H.; Kim, J.; Seong, B.; Kim, W.; Jo, A.; Ham, K.-M.; et al. Highly sensitive near-infrared SERS nanoprobes for in vivo imaging using gold-assembled silica nanoparticles with controllable nanogaps. J. Nanobiotechnol. 2022, 20, 130. [Google Scholar] [CrossRef]
- Du, Z.; Qi, Y.; He, J.; Zhong, D.; Zhou, M. Recent advances in applications of nanoparticles in SERS in vivo imaging. WIREs Nanomed. Nanobiotechnol. 2021, 13, e1672. [Google Scholar] [CrossRef] [PubMed]
- Wang, Y.W.; Doerksen, J.D.; Kang, S.; Walsh, D.; Yang, Q.; Hong, D.; Liu, J.T.C. Multiplexed molecular imaging of fresh tissue surfaces enabled by convection-enhanced topical staining with SERS-coded nanoparticles. Small 2016, 12, 5612–5621. [Google Scholar] [CrossRef]
- Huo, C.; Han, W.; Tang, W.; Duan, X. Stable SERS substrate based on highly reflective metal liquid-like films wrapped hydrogels for direct determination of small molecules in a high protein matrix. Talanta 2021, 234, 122678. [Google Scholar] [CrossRef]
- Ilișanu, M.-A.; Moldoveanu, F.; Moldoveanu, A. Multispectral Imaging for Skin Diseases Assessment—State of the Art and Perspectives. Sensors 2023, 23, 3888. [Google Scholar] [CrossRef]
- Qiu, C.; Zhang, W.; Zhou, Y.; Cui, H.; Xing, Y.; Yu, F.; Wang, R. Highly sensitive surface-enhanced Raman scattering (SERS) imaging for phenotypic diagnosis and therapeutic evaluation of breast cancer. Chem. Eng. J. 2023, 459, 141502. [Google Scholar] [CrossRef]
- Qiu, C.; Cheng, Z.; Lv, C.; Wang, R.; Yu, F. Development of bioorthogonal SERS imaging probe in biological and biomedical applications. Chin. Chem. Lett. 2021, 32, 2369–2379. [Google Scholar] [CrossRef]
- Nicolae-Maranciuc, A.; Chicea, D. Polymeric Systems as Hydrogels and Membranes Containing Silver Nanoparticles for Biomedical and Food Applications: Recent Approaches and Perspectives. Gels 2025, 11, 699. [Google Scholar] [CrossRef]
- Goudie, K.J.; McCreath, S.J.; Parkinson, J.A.; Davidson, C.M.; Liggat, J.J. Investigation of the influence of pH on the properties and morphology of gelatin hydrogels. J. Polym. Sci. 2023, 61, 2316–2332. [Google Scholar] [CrossRef]
- Kozuka, H. Stress Evolution and Cracking in Sol-Gel-Derived Thin Films. In Handbook of Sol-Gel Science and Technology; Springer: Cham, Switzerland, 2018; pp. 275–311. ISBN 978-3-319-32101-1. [Google Scholar] [CrossRef]
- Waje, S.S.; Meshram, M.W.; Chaudhary, V.; Pandey, R.; Mahanawar, P.A.; Thorat, B.N. Drying and shrinkage of polymer gels. Braz. J. Chem. Eng. 2005, 22, 209–216. [Google Scholar] [CrossRef]
- Šimáková, P.; Kočišová, E.; Procházka, M. “Coffee Ring” Effect of Ag Colloidal Nanoparticles Dried on Glass: Impact to Surface-Enhanced Raman Scattering (SERS). J. Nanomater. 2021, 2021, 4009352. [Google Scholar] [CrossRef]
- Mampallil, D.; Eral, H.B. A review on suppression and utilization of the coffee-ring effect. Adv. Colloid Interface Sci. 2018, 252, 38–54. [Google Scholar] [CrossRef]
- Cailletaud, J.; De Bleye, C.; Dumont, E.; Sacré, P.-Y.; Gut, Y.; Bultel, L.; Ginot, Y.-M.; Hubert, P.; Ziemons, E. Towards a spray-coating method for the detection of low-dose compounds in pharmaceutical tablets using surface-enhanced Raman chemical imaging (SER-CI). Talanta 2018, 188, 584–592. [Google Scholar] [CrossRef] [PubMed]
- De Bleye, C.; Fontaine, M.; Dumont, E.; Sacré, P.-Y.; Hubert, P.; Theys, N.; Ziemons, E. Raman imaging as a new analytical tool for the quality control of the monitoring of osteogenic differentiation in forming 3D bone tissue. J. Pharm. Biomed. Anal. 2020, 186, 113319. [Google Scholar] [CrossRef]
- Horne, J.; De Bleye, C.; Lebrun, P.; Kemik, K.; Van Laethem, T.; Sacré, P.-Y.; Hubert, P.; Hubert, C.; Ziemons, E. Optimization of silver nanoparticles synthesis by chemical reduction to enhance SERS quantitative performances: Early characterization using the quality by design approach. J. Pharm. Biomed. Anal. 2023, 233, 115475. [Google Scholar] [CrossRef]
- Horne, J.; Beckers, P.; Sacré, P.-Y.; De Bleye, C.; Francotte, P.; Thelen, N.; Hubert, P.; Ziemons, E.; Hubert, C. Optimisation of a Microwave Synthesis of Silver Nanoparticles by a Quality by Design Approach to Improve SERS Analytical Performances. Molecules 2024, 29, 3442. [Google Scholar] [CrossRef]
- Barani, H.; Mahltig, B. Microwave-Assisted Synthesis of Silver Nanoparticles: Effect of Reaction Temperature and Precursor Concentration on Fluorescent Property. J. Clust. Sci. 2022, 33, 101–111. [Google Scholar] [CrossRef]
- Cao, J.; Hu, S.; Tang, W.; Wang, Y.; Yang, Y.; Wang, F.; Guo, X.; Ying, Y.; Liu, X.; Wen, Y.; et al. Reactive Hydrogel Patch for SERS Detection of Environmental Formaldehyde. ACS Sens. 2023, 8, 1929–1938. [Google Scholar] [CrossRef]
- Dumont, E.; De Bleye, C.; Rademaker, G.; Coïc, L.; Horne, J.; Sacré, P.-Y.; Peulen, O.; Hubert, P.; Ziemons, E. Development of a prototype device for near real-time surface-enhanced Raman scattering monitoring of biological samples. Talanta 2021, 224, 121866. [Google Scholar] [CrossRef]
- Matsumoto, C.; Gen, M.; Matsuki, A.; Seto, T. Development of spray-drying-based surface-enhanced Raman spectroscopy. Sci. Rep. 2022, 12, 4511. [Google Scholar] [CrossRef] [PubMed]
- Bickerstaff-Westbrook, E.; Tukova, A.; Lyu, N.; Shen, C.; Rodger, A.; Wang, Y. Advancing SERS label-free detection of bacteria: Sensing in liquid vs drop-cast. Mater. Today Sustain. 2024, 27, 100912. [Google Scholar] [CrossRef]
- Avci, E.; Culha, M. Influence of droplet drying configuration on surface-enhanced Raman scattering performance. RSC Adv. 2013, 3, 17829. [Google Scholar] [CrossRef]
- De Bleye, C.; Sacré, P.-Y.; Dumont, E.; Netchacovitch, L.; Chavez, P.-F.; Piel, G.; Lebrun, P.; Hubert, P.; Ziemons, E. Development of a quantitative approach using surface-enhanced Raman chemical imaging: First step for the determination of an impurity in a pharmaceutical model. J. Pharm. Biomed. Anal. 2014, 90, 111–118. [Google Scholar] [CrossRef]
- Shaikh, I.; Sartale, S. Spin coated Ag NPs SERS substrate: Trace detection study of methylene blue and melamine. Appl. Phys. A 2023, 129, 356. [Google Scholar] [CrossRef]
- Mikalkevičius, M.; Khinevich, N.; Tamulevičius, S.; Tamulevičius, T.; Tamulevičienė, A. Templated silver nanoparticle deposition on laser-induced periodic surface structures for SERS sensing. Surf. Interfaces 2024, 51, 104603. [Google Scholar] [CrossRef]
- Wang, S.; Wang, Z.; Cao, X.; Wang, G.; Guo, R.; Zewdie, Y.; Li, S.; Zhang, L.; Dong, Q.; Chen, Z. Uniform Spray-Coated Flexible SERS Substrates for Enhanced Molecular Detection. Chem. Asian J. 2025, 20, e00405. [Google Scholar] [CrossRef]
- Boel, E.; Koekoekx, R.; Dedroog, S.; Babkin, I.; Vetrano, M.R.; Clasen, C.; Van den Mooter, G. Unraveling Particle Formation: From Single Droplet Drying to Spray Drying and Electrospraying. Pharmaceutics 2020, 12, 625. [Google Scholar] [CrossRef]
- Zheng, X.-S.; Jahn, I.J.; Weber, K.; Cialla-May, D.; Popp, J. Label-free SERS in biological and biomedical applications: Recent progress, current challenges and opportunities. Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 2018, 197, 56–77. [Google Scholar] [CrossRef]
- Moody, A.S.; Payne, T.D.; Barth, B.A.; Sharma, B. Surface-enhanced spatially-offset Raman spectroscopy (SESORS) for detection of neurochemicals through the skull at physiologically relevant concentrations. Analyst 2020, 145, 1885–1893. [Google Scholar] [CrossRef] [PubMed]
- Jepps, O.G.; Dancik, Y.; Anissimov, Y.G.; Roberts, M.S. Modeling the human skin barrier—Towards a better understanding of dermal absorption. Adv. Drug Deliv. Rev. 2013, 65, 152–168. [Google Scholar] [CrossRef]
- Dąbrowska, A.K.; Rotaru, G.-M.; Derler, S.; Spano, F.; Camenzind, M.; Annaheim, S.; Stämpfli, R.; Schmid, M.; Rossi, R.M. Materials used to simulate physical properties of human skin. Skin Res. Technol. 2016, 22, 3–14. [Google Scholar] [CrossRef]
- Raj, P.; Wu, L.; Arora, S.; Bhatt, R.; Zuo, Y.; Fang, Z.; Verdoold, R.; Koch, T.; Gu, L.; Barman, I. Engineering vascularized skin-mimetic phantom for non-invasive Raman spectroscopy. Sens. Actuators B Chem. 2024, 404, 135240. [Google Scholar] [CrossRef] [PubMed]
- Ntombela, L.; Adeleye, B.; Chetty, N. Low-cost fabrication of optical tissue phantoms for use in biomedical imaging. Heliyon 2020, 6, e03602. [Google Scholar] [CrossRef]
- Nunekpeku, X.; Li, H.; Zahid, A.; Li, C.; Zhang, W. Advances in Hydrogel-Integrated SERS Platforms: Innovations, Applications, Challenges, and Future Prospects in Food Safety Detection. Biosensors 2025, 15, 363. [Google Scholar] [CrossRef] [PubMed]
- Imani, R.; Emami, S.H.; Moshtagh, P.R.; Baheiraei, N.; Sharifi, A.M. Preparation and Characterization of Agarose-Gelatin Blend Hydrogels as a Cell Encapsulation Matrix: An In-Vitro Study. J. Macromol. Sci. Part B 2012, 51, 1606–1616. [Google Scholar] [CrossRef]
- Vardaki, M.Z.; Kourkoumelis, N. Tissue Phantoms for Biomedical Applications in Raman Spectroscopy: A Review. Biomed. Eng. Comput. Biol. 2020, 11, 1179597220948100. [Google Scholar] [CrossRef]
- Li, J.; Mooney, D.J. Designing hydrogels for controlled drug delivery. Nat. Rev. Mater. 2016, 1, 16071. [Google Scholar] [CrossRef]
- Jiang, F.; Xu, X.-W.; Chen, F.-Q.; Weng, H.-F.; Chen, J.; Ru, Y.; Xiao, Q.; Xiao, A.-F. Extraction, Modification and Biomedical Application of Agarose Hydrogels: A Review. Mar. Drugs 2023, 21, 299. [Google Scholar] [CrossRef]
- Diphenhydramine Hydrochloride—European Pharmacopoeia 11.7. Available online: https://pheur.edqm.eu/app/11-7/content/11-7/0023E.htm?highlight=on&terms%5B%5D=diphenhydramine (accessed on 20 January 2026).
- GMIA. Gelatin Manual 2012 | PDF | Cooking, Food & Wine. Available online: https://www.scribd.com/doc/148257496/GMIA-Gelatin-Manual-2012 (accessed on 20 January 2026).
- Xiong, J.-Y.; Narayanan, J.; Liu, X.-Y.; Chong, T.K.; Chen, S.B.; Chung, T.-S. Topology evolution and gelation mechanism of agarose gel. J. Phys. Chem. B 2005, 109, 5638–5643. [Google Scholar] [CrossRef]
- Frushour, B.G.; Koenig, J.L. Raman scattering of collagen, gelatin, and elastin. Biopolymers 1975, 14, 379–391. [Google Scholar] [CrossRef]
- Payne, K.J.; Veis, A. Fourier transform IR spectroscopy of collagen and gelatin solutions: Deconvolution of the amide I band for conformational studies. Biopolymers 1988, 27, 1749–1760. [Google Scholar] [CrossRef]
- Vanin, F.M.; Sobral, P.J.A.; Menegalli, F.C.; Carvalho, R.A.; Habitante, A.M.Q.B. Effects of plasticizers and their concentrations on thermal and functional properties of gelatin-based films. Food Hydrocoll. 2005, 19, 899–907. [Google Scholar] [CrossRef]
- Movasaghi, Z.; Rehman, S.; Rehman, I.U. Raman Spectroscopy of Biological Tissues. Appl. Spectrosc. Rev. 2007, 42, 493–541. [Google Scholar] [CrossRef]
- Iramain, M.; Brandán, S. Structural and vibrational properties of three species of anti-histaminic diphenhydramine by using DFT calculations and the SQM approach. Chem. J. 2018, 1, 105–130. [Google Scholar]
- Sacré, P.-Y.; Lebrun, P.; Chavez, P.-F.; Bleye, C.D.; Netchacovitch, L.; Rozet, E.; Klinkenberg, R.; Streel, B.; Hubert, P.; Ziemons, E. A new criterion to assess distributional homogeneity in hyperspectral images of solid pharmaceutical dosage forms. Anal. Chim. Acta 2014, 818, 7–14. [Google Scholar] [CrossRef] [PubMed]
- Smith, E.; Dent, G. Modern Raman Spectroscopy: A Practical Approach; John Wiley & Sons: Hoboken, NJ, USA, 2005; ISBN 978-0-471-49794-3. [Google Scholar] [CrossRef]
- Fikry, M.; Benjakul, S.; Al-Ghamdi, S.; Mittal, A.; Nilsuwan, K.; Fulleros, R.; Dabbour, M. Sorption Isotherms and Thermodynamic Characteristics of Gelatin Powder Extracted from Whitefish Skin: Mathematical Modeling Approach. Foods 2023, 13, 92. [Google Scholar] [CrossRef]
- Etzold, M.A.; Linden, P.F.; Worster, M.G. Transpiration through hydrogels. J. Fluid Mech. 2021, 925, A8. [Google Scholar] [CrossRef]
- Hummel, R.; Claassen, E.A.; Wolfinger, R.D. JMP for Mixed Models; SAS Institute: Cary, NC, USA, 2021; ISBN 978-1-951684-02-0. [Google Scholar]
- Adnađević, B.; Janković, B.; Kolar-Anić, Lj.; Minić, D. Normalized Weibull distribution function for modelling the kinetics of non-isothermal dehydration of equilibrium swollen poly(acrylic acid) hydrogel. Chem. Eng. J. 2007, 130, 11–17. [Google Scholar] [CrossRef]
- Janković, B.; Adnađević, B.; Jovanović, J. The comparative kinetic study of non-isothermal and isothermal dehydration of swollen poly(acrylic acid) hydrogel using the Weibull probability function. Chem. Eng. Res. Des. 2011, 89, 373–383. [Google Scholar] [CrossRef]
- Corzo, O.; Bracho, N.; Pereira, A.; Vásquez, A. Weibull distribution for modeling air drying of coroba slices. LWT—Food Sci. Technol. 2008, 41, 2023–2028. [Google Scholar] [CrossRef]
- Zhang, X.; Fan, Z.; Wu, H.; Cong, J.; Yang, J.; Wen, B. Drying characteristics of green pellets based on the Weibull and Dincer models. J. Saf. Sustain. 2025, 2, 104–112. [Google Scholar] [CrossRef]
- Torki-Harchegani, M.; Ghanbarian, D.; Sadeghi, M. Estimation of whole lemon mass transfer parameters during hot air drying using different modelling methods. Heat Mass Transf. 2015, 51, 1121–1129. [Google Scholar] [CrossRef]
- Hasan, M.M.M.; Ara, R.; Shaha, L.C.; Sarkar, A.; Alam, M. Modeling the drying behavior and mass transfer phenomena in osmotically dehydrated tomatoes. Food Chem. Adv. 2025, 8, 101093. [Google Scholar] [CrossRef]
- Sánchez-Ferrer, A.; Engelhardt, M.; Richter, K. Anisotropic wood–water interactions determined by gravimetric vapor sorption experiments. Cellulose 2023, 30, 3869–3885. [Google Scholar] [CrossRef]
- Hacker, L.; Wabnitz, H.; Pifferi, A.; Pfefer, T.J.; Pogue, B.W.; Bohndiek, S.E. Criteria for the design of tissue-mimicking phantoms for the standardization of biophotonic instrumentation. Nat. Biomed. Eng. 2022, 6, 541–558. [Google Scholar] [CrossRef]
- ICH Q8 (R2) Pharmaceutical Development—Scientific Guideline|European Medicines Agency (EMA). Available online: https://www.ema.europa.eu/en/ich-q8-r2-pharmaceutical-development-scientific-guideline (accessed on 10 February 2026).
- Adutwum, J.O.; Sakagami, H.; Koga, S.; Matsumura, J. An application of mixed-effects model to evaluate the role of age and size on radial variation in wood specific gravity in teak (Tectona grandis). J. Wood Sci. 2023, 69, 9. [Google Scholar] [CrossRef]
- Burnham, K.P.; Anderson, D.R. Multimodel Inference: Understanding AIC and BIC in Model Selection. Sociol. Methods Res. 2004, 33, 261–304. [Google Scholar] [CrossRef]







| Day 1 | Day 2 | Day 3 | |
|---|---|---|---|
| Intensity Metrics | |||
| Mean (per batch) | 2.67 ± 0.10 | 2.62 ± 0.20 | 2.62 ± 0.21 |
| Intra-day RSD (%) | 3.55 | 7.64 | 8.15 |
| Inter-day RSD (%) | 6.47 | ||
| Spatial Distribution | |||
| Mean pixel-wise RSD, intra-day (%) | 8.30 ± 2.79 | 10.97 ± 3.51 | 12.33 ± 1.35 |
| Pixel-wise RSD, inter-day (%) | 10.53 | ||
| Mean DHI (per day) | 1.24 | 1.14 | 1.14 |
| Normalization | |
|---|---|
| Confirmatory batch (n = 3) | |
| Intensity Metrics | |
| Mean (per batch) | 2.60 ± 0.15 |
| Intra-day RSD (%) | 1.41 |
| Spatial Distribution | |
| Pixel-wise RSD, intra-day (%) | 9.74 |
| Mean DHI (per batch) | 1.16 |
| Term | Estimate | Standard Error | Prob > |t| |
|---|---|---|---|
| Intercept | −1.51 | 1.36 × 10−2 | <0.001 * |
| Batch [Day 1–Day 3] | 7.93 × 10−3 | 1.63 × 10−2 | 0.64 |
| Batch [Day 1–Day 2] | 9.00 × 10−3 | 1.62 × 10−2 | 0.60 |
| Batch [Day 2–Day 3] | 8.62 × 10−3 | 1.62 × 10−2 | 0.95 |
| Time [0 h–22 h] | 1.50 | 1.20 × 10−2 | <0.001 * |
| Time [2 h–22 h] | 1.39 | 1.20 × 10−2 | <0.001 * |
| Time [4 h–22 h] | 1.28 | 1.20 × 10−2 | <0.001 * |
| Time [20 h–22 h] | −1.64 × 10−3 | 1.98 × 10−3 | 0.42 |
| Time [21 h–22 h] | −9.99 × 10−4 | 1.31 × 10−3 | 0.47 |
| Hydrogels | EpiSkin® RHE | |
|---|---|---|
| Laser source | 532 nm | 785 nm |
| Gratings | 300 g/mm | 300 g/mm |
| Spectral resolution | 19.84 cm−1 | 8.79 cm−1 |
| ND Filter | 100% | 100% |
| Spectral range | 200–3200 cm−1 | 500–1800 cm−1 |
| Objective | MPLAN 10×/0.25 NA | MPLAN 10×/0.25 NA |
| Confocal hole | 200 µm | 100 µm |
| Mapping area | 9 mm2 composed of 30 × 30 pixels | 0.2 mm2 composed of 20 × 20 pixels |
| Step size | 300 µm | 10 µm |
| Acquisition | 1 s per point, 2 accumulations | 15 s per point, 2 accumulations |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Kemik, K.; De Bleye, C.; Sacré, P.-Y.; Hubert, P.; Ziemons, E. Proof of Concept for a Controlled Raman-Compatible Skin-Mimicking Hydrogel Substrate for Chemical Imaging Technique Development. Molecules 2026, 31, 1530. https://doi.org/10.3390/molecules31091530
Kemik K, De Bleye C, Sacré P-Y, Hubert P, Ziemons E. Proof of Concept for a Controlled Raman-Compatible Skin-Mimicking Hydrogel Substrate for Chemical Imaging Technique Development. Molecules. 2026; 31(9):1530. https://doi.org/10.3390/molecules31091530
Chicago/Turabian StyleKemik, Kevser, Charlotte De Bleye, Pierre-Yves Sacré, Philippe Hubert, and Eric Ziemons. 2026. "Proof of Concept for a Controlled Raman-Compatible Skin-Mimicking Hydrogel Substrate for Chemical Imaging Technique Development" Molecules 31, no. 9: 1530. https://doi.org/10.3390/molecules31091530
APA StyleKemik, K., De Bleye, C., Sacré, P.-Y., Hubert, P., & Ziemons, E. (2026). Proof of Concept for a Controlled Raman-Compatible Skin-Mimicking Hydrogel Substrate for Chemical Imaging Technique Development. Molecules, 31(9), 1530. https://doi.org/10.3390/molecules31091530

