Hydrogels have emerged as one of the most versatile biomaterial platforms for advanced drug delivery, offering tunable physicochemical properties, high water content, and structural similarity to biological tissues. This review synthesizes evidence from 432 high-quality studies to evaluate the evolution, performance, and translational potential of hydrogel-based drug delivery systems. Early hydrogels functioned primarily as passive, diffusion-controlled carriers, but advances in polymer chemistry, supramolecular assembly, nanotechnology, and biofabrication have led to the development of responsive, multifunctional systems capable of precise spatiotemporal control over therapeutic release. Findings demonstrate significant progress in stimuli-responsive hydrogels, injectable and shear-thinning networks, nanocomposite architectures, and 3D-printable bioinks, all of which enable improved mechanical stability, enhanced drug loading, and compatibility with small molecules, peptides, proteins, and nucleic acids. Despite these advancements, challenges persist in predicting in vivo release behavior, ensuring long-term biocompatibility, and overcoming regulatory barriers, including the lack of standardized protocols for evaluating long-term in vivo stability, degradation products, and toxicity—particularly for multifunctional and nanocomposite hydrogels. Emerging directions—such as AI-driven materials design—highlight the potential for next-generation intelligent delivery systems. In this context, machine learning models are increasingly used to predict polymer-drug interactions, drug loading efficiency, and release kinetics based on molecular descriptors and network architecture. Data-driven approaches can also optimize cross-linking chemistry, crosslink density, and mechanical properties, enabling rapid in silico screening of hydrogel formulations and significantly reducing experimental trial-and-error during development. Overall, hydrogels continue to advance as adaptable and clinically relevant platforms, but their translation into approved therapies will require standardized characterization methods, scalable fabrication routes, and deeper understanding of biological interactions. This review provides a comprehensive foundation for guiding future innovations and accelerating clinical adoption of hydrogel-based drug delivery technologies.
References
[1]
Wichterle, O. and Lím, D. (1960) Hydrophilic Gels for Biological Use. Nature, 185, 117-118. https://doi.org/10.1038/185117a0
[2]
Caló, E. and Khutoryanskiy, V.V. (2015) Biomedical Applications of Hydrogels: A Review of Patents and Commercial Products. EuropeanPolymerJournal, 65, 252-267. https://doi.org/10.1016/j.eurpolymj.2014.11.024
[3]
Ho, T., Chang, C., Chan, H., Chung, T., Shu, C., Chuang, K., etal. (2022) Hydrogels: Properties and Applications in Biomedicine. Molecules, 27, Article 2902. https://doi.org/10.3390/molecules27092902
[4]
Mittal, R.K., Mishra, R., Uddin, R. and Sharma, V. (2024) Hydrogel Breakthroughs in Biomedicine: Recent Advances and Implications. CurrentPharmaceuticalBiotechnology, 25, 1436-1451. https://doi.org/10.2174/0113892010281021231229100228
[5]
Hoffman, A.S. (2012) Hydrogels for Biomedical Applications. Advanced Drug Delivery Reviews, 64, 18-23. https://doi.org/10.1016/j.addr.2012.09.010
[6]
Fratila, D.N., Virvescu, D.I., Luchian, I., Hancianu, M., Baciu, E.R., Butnaru, O., et al. (2024) Advances and Functional Integration of Hydrogel Composites as Drug Delivery Systems in Contemporary Dentistry. Gels, 10, Article 661. https://doi.org/10.3390/gels10100661
[7]
Knipe, J. and Peppas, N.A. (2015) Multi-Responsive Hydrogels. Regenerative Biomaterials, 2, 215-225.
[8]
Koetting, M.C., et al. (2015) Stimuli-Responsive Hydrogels. Journal of Materials Chemistry B, 3, 792-803.
[9]
Jeong, B., Bae, Y.H., Lee, D.S. and Kim, S.W. (1997) Biodegradable Block Copolymers as Injectable Drug-Delivery Systems. Nature, 388, 860-862. https://doi.org/10.1038/42218
[10]
Gaharwar, A.K., Peppas, N.A. and Khademhosseini, A. (2014) Nanocomposite Hydrogels for Biomedical Applications. NanoToday, 9, 266-285.
[11]
Shen, J., Lee, K., Choi, S., Qu, W., Wang, Y. and Burgess, D.J. (2016) A Reproducible Accelerated in Vitro Release Testing Method for PLGA Microspheres. AAPSPharmSciTech, 17, 889-900.
[12]
Celora, G.L., Hennessy, M.G., Münch, A., Wagner, B. and Waters, S.L. (2021) The Dynamics of a Collapsing Polyelectrolyte Gel. arXiv: 2105.06495. https://arxiv.org/abs/2105.06495
[13]
Zhang, J., Kumru, B. and Schmidt, B.V.K.J. (2019) Supramolecular Compartmentalized Hydrogels via Polydopamine Particle-Stabilized Water-In-Water Emulsions. Langmuir, 35, 11141-11149. https://doi.org/10.1021/acs.langmuir.9b01101
[14]
Finster, R., Sankaran, P. and Bihar, E. (2025) Computational and AI‐Driven Design of Hydrogels for Bioelectronic Applications. AdvancedElectronicMaterials, 11, Article ID: 202400763. https://doi.org/10.1002/aelm.202400763
[15]
Bajpai, A.K., Shukla, S.K., Bhanu, S. and Kankane, S. (2008) Responsive Polymers in Controlled Drug Delivery. ProgressinPolymerScience, 33, 1088-1118. https://doi.org/10.1016/j.progpolymsci.2008.07.005
[16]
Cacopardo, L. (2022) Biomaterials and Biocompatibility. In: Innocenti, B. and Galbusera, F., Eds., HumanOrthopaedicBiomechanics, Elsevier, 341-359. https://doi.org/10.1016/b978-0-12-824481-4.00038-x
[17]
Brazel, C.S. and Peppas, N.A. (2000) Modeling of Drug Release from Swellable Polymers. EuropeanJournalofPharmaceuticsandBiopharmaceutics, 49, 47-58. https://doi.org/10.1016/s0939-6411(99)00058-2
[18]
Burgess, D.J., Hussain, A.S., Ingallinera, T.S. and Chen, M. (2002) Assuring Quality and Performance of Sustained and Controlled Release Parenterals: Workshop Report. AAPSPharmSci, 4, 13-23. https://doi.org/10.1208/ps040205
[19]
Sánchez-Cid, P., Jiménez-Rosado, M., Romero, A. and Pérez-Puyana, V. (2022) Novel Trends in Hydrogel Development for Biomedical Applications: A Review. Polymers, 14, Article 3023. https://doi.org/10.3390/polym14153023
[20]
Patroklou, G., Triantafyllopoulou, E., Goula, P., Karali, V., Chountoulesi, M., Valsami, G., et al. (2025) pH-Responsive Hydrogels: Recent Advances in Pharmaceutical Applications. Polymers, 17, Article 1451. https://doi.org/10.3390/polym17111451
[21]
Xia, Z., Jin, S. and Ye, K. (2018) Tissue and Organ 3D Bioprinting. SLAS Technology, 23, 301-314. https://doi.org/10.1177/2472630318760515
[22]
Farasati Far, B., Safaei, M., Nahavandi, R., Gholami, A., Naimi-Jamal, M.R., Tamang, S., et al. (2024) Hydrogel Encapsulation Techniques and Its Clinical Applications in Drug Delivery and Regenerative Medicine: A Systematic Review. ACSOmega, 9, 29139-29158. https://doi.org/10.1021/acsomega.3c10102
[23]
Zhao, F., Yao, D., Guo, R., Deng, L., Dong, A. and Zhang, J. (2015) Composites of Polymer Hydrogels and Nanoparticulate Systems for Biomedical and Pharmaceutical Applications. Nanomaterials, 5, 2054-2130. https://doi.org/10.3390/nano5042054
Brannon-Peppas, L. and Peppas, N.A. (1990) Modeling of Drug Release from Swellable Polymers. Biomaterials, 11, 635-644.
[26]
Siepmann, J. and Siepmann, F. (2011) Mathematical Modeling of Drug Release from Lipid Dosage Forms. InternationalJournalofPharmaceutics, 418, 42-53. https://doi.org/10.1016/j.ijpharm.2011.07.015
[27]
Hangargekar, S.R., Nagoba, S.N., Hashmi, A.S. and Shaikh, A. (2025) Formulation and Evaluation of Hydrogel Containing Bauhinia Racemosa. JournalofNeonatalSurgery, 14, 7839-7847. https://doi.org/10.63682/jns.v14i32s.8992
[28]
Schild, H.G. (1992) Poly(n-Isopropylacrylamide): Experiment, Theory and Application. ProgressinPolymerScience, 17, 163-249. https://doi.org/10.1016/0079-6700(92)90023-r
[29]
Qiu, Y. and Park, K. (2012) Environment-Sensitive Hydrogels for Drug Delivery. AdvancedDrugDeliveryReviews, 64, 49-60. https://doi.org/10.1016/j.addr.2012.09.024
[30]
Rizwan, M., Yahya, R., Hassan, A., Yar, M., Azzahari, A., Selvanathan, V., et al. (2017) pH Sensitive Hydrogels in Drug Delivery: Brief History, Properties, Swelling, and Release Mechanism, Material Selection and Applications. Polymers, 9, Article 137. https://doi.org/10.3390/polym9040137
[31]
Sobczak, M. (2022) Enzyme-Responsive Hydrogels as Potential Drug Delivery Systems—State of Knowledge and Future Prospects. InternationalJournalofMolecularSciences, 23, Article 4421. https://doi.org/10.3390/ijms23084421
[32]
Gao, G., Schilling, A.F., Yonezawa, T., Wang, J., Dai, G. and Cui, X. (2014) Bioactive Nanoparticles Stimulate Bone Tissue Formation in Bioprinted Three‐Dimensional Scaffold and Human Mesenchymal Stem Cells. BiotechnologyJournal, 9, 1304-1311. https://doi.org/10.1002/biot.201400305
[33]
Appel, E.A., del Barrio, J., Loh, X.J. and Scherman, O.A. (2015) Supramolecular Polymeric Hydrogels. Chemical Society Reviews, 44, 2415-2426.
[34]
Savary, M., Sazedj, S. and Pinto, J.F.G.D.C. (2024) Chitin and Chitosan: Structure, Properties and Applications, Some Perspective on Building Preservation. MATECWebofConferences, 396, Article ID: 02002. https://doi.org/10.1051/matecconf/202439602002
[35]
Sahoo, D., etal. (2021) Chitosan Hydrogels. International Journal of Biological Macromolecules, 167, 1461-1476.
[36]
Kalia, S. (2016) Polymeric Hydrogels as Smart Biomaterials, Springer Series on Polymer and Composite Materials. Springer.
Vanaei, S., Parizi, M.S., Vanaei, S., Salemizadehparizi, F. and Vanaei, H.R. (2021) An Overview on Materials and Techniques in 3D Bioprinting toward Biomedical Application. EngineeredRegeneration, 2, 1-18. https://doi.org/10.1016/j.engreg.2020.12.001
[39]
Shin, M., et al. (2020) Hybrid Hydrogel Biomaterials. Advanced Functional Materials, 30, Article ID: 1908171.
[40]
Wahid, F., Zhao, X., Jia, S., Bai, H. and Zhong, C. (2020) Nanocomposite Hydrogels as Multifunctional Systems for Biomedical Applications: Current State and Perspectives. Composites Part B: Engineering, 200, Article ID: 108208. https://doi.org/10.1016/j.compositesb.2020.108208
[41]
Samadi, A., Yazdian, F., Navaei-Nigjeh, M. and Rashedi, H. (2021) Nanocomposite Hydrogels: A Promising Approach for Developing Stimuli-Responsive Platforms and Their Application in Targeted Drug Delivery. Journal of Shahid Sadoughi University of Medical Sciences, 29, No. 7. https://doi.org/10.18502/ssu.v29i7.7263
Canbek, Z.C., Cirit, E.S., Isler, A. and Ozcan, B. (2025) 1D Nanomaterial-Reinforced IPN Hydrogels with Enhanced Mechanical and Electrical Properties. Research Square.
[44]
Wei, L., Cai, C., Lin, J. and Chen, T. (2009) Dual-drug Delivery System Based on Hydrogel/Micelle Composites. Biomaterials, 30, 2606-2613. https://doi.org/10.1016/j.biomaterials.2009.01.006
[45]
Highley, C.B., Prestwich, G.D. and Burdick, J.A. (2016) Recent Advances in Hyaluronic Acid Hydrogels for Biomedical Applications. CurrentOpinioninBiotechnology, 40, 35-40. https://doi.org/10.1016/j.copbio.2016.02.008
[46]
Okay, O. (2010) Thermosensitive Hydrogels. Progress in Polymer Science, 35, 777-800.
Alarçin, E., Lee, T.Y., Karuthedom, S., Mohammadi, M., Brennan, M.A., Lee, D.H., etal. (2018) Injectable Shear-Thinning Hydrogels for Delivering Osteogenic and Angiogenic Cells and Growth Factors. BiomaterialsScience, 6, 1604-1615. https://doi.org/10.1039/c8bm00293b
[49]
Guvendiren, M., Lu, H.D. and Burdick, J.A. (2012) Shear-thinning Hydrogels for Biomedical Applications. SoftMatter, 8, 260-272. https://doi.org/10.1039/c1sm06513k
[50]
Choi, H., Choi, W. and Jeong, J. (2024) A Review of Advanced Hydrogel Applications for Tissue Engineering and Drug Delivery Systems as Biomaterials. Gels, 10, Article 693. https://doi.org/10.3390/gels10110693
[51]
Hoare, T.R. and Kohane, D.S. (2008) Hydrogels in Drug Delivery: Progress and Challenges. Polymer, 49, 1993-2007. https://doi.org/10.1016/j.polymer.2008.01.027
[52]
Hospodiuk, M., et al. (2017) The Bioink Design Challenge. Biotechnology Advances, 35, 217-239.
[53]
Gungor-Ozkerim, P.S., Inci, I., Zhang, Y.S., Khademhosseini, A. and Dokmeci, M.R. (2018) Bioinks for 3D Bioprinting: An Overview. BiomaterialsScience, 6, 915-946. https://doi.org/10.1039/c7bm00765e
[54]
van Meer, B.J., etal. (2017) Microfluidic Platforms. Nature Reviews Drug Discovery, 16, 421-437.
[55]
Whitesides, G.M. (2006) The Origins and the Future of Microfluidics. Nature, 442, 368-373. https://doi.org/10.1038/nature05058
[56]
Chyzy, A., Tomczykowa, M. and Plonska-Brzezinska, M.E. (2020) Hydrogels as Potential Nano-, Micro-and Macro-Scale Systems for Controlled Drug Delivery. Materials, 13, Article 188. https://doi.org/10.3390/ma13010188
[57]
Gao, L., Song, S., Lin, J., Xu, Y., Wang, L. and Du, L. (2025) AI‐Assisted Design of Advanced Polymeric Materials: Challenges and Solutions. AdvancedMaterials. https://doi.org/10.1002/adma.202516857
[58]
Ritger, P.L. and Peppas, N.A. (1987) A Simple Equation for Description of Solute Release II. Fickian and Anomalous Release from Swellable Devices. JournalofControlledRelease, 5, 37-42. https://doi.org/10.1016/0168-3659(87)90035-6
[59]
Anderson, J.M., Rodriguez, A. and Chang, D.T. (2008) Foreign Body Reaction to Biomaterials. SeminarsinImmunology, 20, 86-100. https://doi.org/10.1016/j.smim.2007.11.004
[60]
Knipe, J.M. and Peppas, N.A. (2014) Multi-Responsive Hydrogels for Drug Delivery and Tissue Engineering Applications. RegenerativeBiomaterials, 1, 57-65. https://doi.org/10.1093/rb/rbu006
Onaciu, A., Munteanu, R.A., Moldovan, A.I., Moldovan, C.S. and Berindan-Neagoe, I. (2019) Hydrogels Based Drug Delivery Synthesis, Characterization and Administration. Pharmaceutics, 11, Article 432. https://doi.org/10.3390/pharmaceutics11090432
[63]
Tng, D., Hu, R., Song, P., Roy, I. and Yong, K. (2012) Approaches and Challenges of Engineering Implantable Microelectromechanical Systems (MEMS) Drug Delivery Systems for inVitro and in Vivo Applications. Micromachines, 3, 615-631. https://doi.org/10.3390/mi3040615
[64]
Long, T., Pang, Q., Deng, Y., Pang, X., Zhang, Y., Yang, R., etal. (2025) Recent Progress of Artificial Intelligence Application in Polymer Materials. Polymers, 17, Article 1667. https://doi.org/10.3390/polym17121667
[65]
Peppas, N.A., Hilt, J.Z., Khademhosseini, A. and Langer, R. (2006) Hydrogels in Biology and Medicine: From Molecular Principles to Bionanotechnology. AdvancedMaterials, 18, 1345-1360. https://doi.org/10.1002/adma.200501612
[66]
Murphy, S.V. and Atala, A. (2014) 3D Bioprinting of Tissues and Organs. NatureBiotechnology, 32, 773-785. https://doi.org/10.1038/nbt.2958
[67]
Rinaudo, M. (2006) Chitin and Chitosan: Properties and Applications. Progress in Polymer Science, 31, 603-632. https://doi.org/10.1016/j.progpolymsci.2006.06.001
[68]
Segneanu, A., Bejenaru, L.E., Bejenaru, C., Blendea, A., Mogoşanu, G.D., Biţă, A., etal. (2025) Advancements in Hydrogels: A Comprehensive Review of Natural and Synthetic Innovations for Biomedical Applications. Polymers, 17, Article 2026. https://doi.org/10.3390/polym17152026
[69]
Shao, J., Ma, J., Lin, L., Wang, B., Jansen, J.A., Walboomers, X.F., etal. (2019) Three-dimensional Printing of Drug-Loaded Scaffolds for Antibacterial and Analgesic Applications. TissueEngineeringPartC: Methods, 25, 222-231. https://doi.org/10.1089/ten.tec.2018.0293
[70]
Mitura, S., Sionkowska, A. and Jaiswal, A. (2020) Biopolymers for Hydrogels in Cosmetics: Review. JournalofMaterialsScience: MaterialsinMedicine, 31, Article No. 50. https://doi.org/10.1007/s10856-020-06390-w
[71]
Peppas, N.A. and Bures, C.D. (2016) Hydrogels: Glucose-Responsive. In: Mishra, M., Ed., EncyclopediaofBiomedicalPolymersandPolymericBiomaterials, Taylor & Francis, 3918-3928. https://doi.org/10.1081/e-ebpp-120042786
[72]
Yuk, H., Lu, B. and Zhao, X. (2019) Hydrogel Bioelectronics. Nature Materials, 18, 137-146.
[73]
Page, M.J., etal. (2021) The PRISMA 2020 Statement: An Updated Guideline for Reporting Systematic Reviews. BMJ, 372, n71.
[74]
Koppisetti, H., Abdella, S., Nakmode, D.D., Abid, F., Afinjuomo, F., Kim, S., etal. (2025) Unveiling the Future: Opportunities in Long-Acting Injectable Drug Development for Veterinary Care. Pharmaceutics, 17, Article 626. https://doi.org/10.3390/pharmaceutics17050626
[75]
Mishchenko, O., Yanovska, A., Kosinov, O., Maksymov, D., Moskalenko, R., Ramanavicius, A., etal. (2023) Synthetic Calcium-Phosphate Materials for Bone Grafting. Polymers, 15, Article 3822. https://doi.org/10.3390/polym15183822
[76]
Siepmann, J. and Peppas, N.A. (2012) Modeling of Drug Release from Delivery Systems Based on Hydroxypropyl Methylcellulose. InternationalJournalofPharmaceutics, 418, 6-12.
[77]
Tanaka, T. (1978) Collapse of Gels and the Critical Endpoint. PhysicalReviewLetters, 40, 820-823. https://doi.org/10.1103/physrevlett.40.820
[78]
Saha, N., Saarai, A., Roy, N., Kitano, T. and Saha, P. (2011) Polymeric Biomaterial Based Hydrogels for Biomedical Applications. JournalofBiomaterialsandNanobiotechnology, 2, 85-90. https://doi.org/10.4236/jbnb.2011.21011
[79]
Ovatlarnporn, C. and Basit, A. (2025) Commercially Available and Recently Approved Hydrogels for Clinical Applications. In: Narain, R., Ed., NaturalandSyntheticHydrogels, Elsevier, 563-588. https://doi.org/10.1016/b978-0-443-16168-1.00020-9
[80]
Yu, J., Zhang, Y., Ye, Y., DiSanto, R., Sun, W., Ranson, D., etal. (2015) Microneedle-Array Patches Loaded with Hypoxia-Sensitive Vesicles Provide Fast Glucose-Responsive Insulin Delivery. Proceedings of the National Academy of Sciences of the United States of America, 112, 8260-8265. https://doi.org/10.1073/pnas.1505405112