Biocompatible Stimuli-Sensitive Natural Hydrogels: Recent Advances in Biomedical Applications
Abstract
1. Introduction
2. Fundamental Concepts of Natural Stimuli-Sensitive Hydrogels
2.1. Structure and Composition of Natural Polymers Used in Stimuli-Sensitive Hydrogels
2.1.1. Chitosan-Based Hydrogels
2.1.2. Alginate-Based Hydrogels
2.1.3. Collagen and Gelatin-Based Hydrogels
2.1.4. HA-Based Hydrogels
2.1.5. Other Natural Polymers (Cellulose, Dextran, Silk Fibroin, etc.)
2.2. Mechanisms of Stimuli Responsiveness
2.2.1. pH-Responsive Systems
2.2.2. Temperature-Responsive Systems
2.2.3. Enzyme-Responsive Systems
2.2.4. Redox-Responsive Systems
2.2.5. Multi-Stimuli-Responsive Systems
2.3. Crosslinking Strategies: Physical vs. Chemical
2.4. Factors Influencing Hydrogel Behavior and Performance
3. Biomedical Applications
3.1. Controlled and Targeted Drug Delivery
3.2. Tissue Engineering and Regenerative Medicine
3.3. Wound Healing
3.4. Biosensing and Diagnostic Applications
3.4.1. Advances in Skin-Interfaced Bioelectronic Hydrogel Sensors
3.4.2. Clinical Translation
3.5. Injectable and In Situ-Forming Hydrogel Systems
3.5.1. Materials and Gelation Mechanisms
3.5.2. Key Translational and Clinical Milestones
4. Emerging Trends
4.1. Hybrid and Nanocomposite Hydrogel Systems
4.2. Self-Healing and Shape-Memory Hydrogels
4.3. 3D Bioprinting and Microfabrication of Smart Hydrogels
4.4. Personalized and Precision Medicine Applications
4.5. Artificial Intelligence and CM in Hydrogel Design
5. Challenges and Limitations
5.1. Mechanical Strength and Structural Stability
5.2. Reproducibility and Scalability Challenges
5.3. Regulatory and Translational Barriers
5.4. Ethical, Environmental, and Sustainability Considerations
6. Future Perspectives
6.1. Integration of Multi-Responsive and Hybrid Systems
6.2. Advances in Biofabrication and Smart Material Design
6.3. AI and CM in Hydrogel Design
6.4. Toward Sustainable and Clinically Translatable Hydrogel Technologies
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AI | Artificial intelligence |
| CM | Computational modeling |
| DGMH | Gallic acid modified hydrogel microspheres |
| ECM | Extracellular matrix |
| EMG | Electromyography |
| GLP | Good laboratory practice |
| GMP | Good manufacturing practices |
| GP | Glycerophosphate |
| GSH | Glutathione |
| HA | Hyaluronic acid |
| IDE | Investigational Device Exemption |
| IND | Investigational new drug |
| LCST | Lower critical solution temperature |
| LSPR | Localized surface plasmon resonance |
| LV | Left ventricle |
| ML | Machine learning |
| MMP | Matrix metalloproteinase |
| MRI | Magnetic resonance imaging |
| NCT | National Clinical Trial |
| PA | Perforating arteries |
| PPG | Photoplethysmography |
| QC | Quality control |
| RGD | Arginylglycylaspartic acid |
| RNA | Ribonucleic acid |
| ROS | Reactive oxygen species |
| TEAi | Transcatheter endocardial alginate hydrogel implantation |
| UCST | Upper critical solution temperature |
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| Natural Polymer | Primary Stimuli- Responsiveness | Crosslinking Type | Key Biomedical Applications | Main Challenges |
|---|---|---|---|---|
| Chitosan | pH, temperature | Physical/Chemical | Drug delivery, wound healing | Weak mechanics, rapid degradation |
| Alginate | pH, ionic strength | Ionic/Physical | Encapsulation, tissue scaffolds | Poor cell adhesion |
| Collagen/ Gelatin | Enzymatic, temperature | Chemical/Physical | Tissue engineering | Fast degradation, low stiffness |
| HA | Enzymatic, redox | Covalent | Regenerative medicine, drug release | Mechanical reinforcement |
| Cellulose/Dextran | pH, enzyme, redox | Chemical | Controlled release, biosensing | Complex modification |
| Silk fibroin | pH, enzyme | Physical/Chemical | Tissue repair, implants | Limited solubility, processing issues |
| Stimulus | Responsive Moiety/Mechanism | Example Polymers | Typical Response | Biomedical Application |
|---|---|---|---|---|
| pH | Protonation/deprotonation of ionizable groups | Chitosan, Alginate | Swelling/deswelling | Oral drug delivery, tumor targeting |
| Temperature | LCST/UCST transitions | Gelatin, Chitosan/β-GP | Sol–gel transition | Injectable scaffolds |
| Enzyme | Enzymatic cleavage of linkers | Collagen, HA, Gelatin | Degradation, drug release | Tissue regeneration |
| Redox | Disulfide bond cleavage | HA, Dextran | Gel degradation, drug release | Cancer therapy |
| Ionic strength | Ion exchange/crosslinking | Alginate, Carrageenan | Swelling control | Cell encapsulation |
| Multi-stimuli | Synergistic triggers | Chitosan-Gelatin, HA hybrids | Complex adaptive response | Precision medicine |
| Polymer | Main Functional Groups | Natural Source | Crosslinking Modes | Degradation Mechanism | Biological Advantages |
|---|---|---|---|---|---|
| Chitosan | -NH2, -OH | Crustacean shells | Ionic, covalent | Lysozyme degradation | Antimicrobial, mucoadhesive |
| Alginate | -COOH | Brown algae | Ionic (Ca2+), covalent | Hydrolysis | Mild gelation, cell encapsulation |
| Collagen/Gelatin | -NH2, -COOH, peptide chains | Animal connective tissue | Enzymatic, covalent | MMP-mediated | Cell adhesion, ECM mimicry |
| HA | -COOH, -OH | Animal tissues, bacteria | Covalent, enzymatic | Hyaluronidase degradation | ECM mimicry, angiogenic |
| Silk fibroin | -NH2, -COOH | Silkworm cocoon | Physical (β-sheet), covalent | Protease degradation | High tensile strength |
| Dextran | -OH | Microbial polysaccharide | Covalent | Hydrolysis | Biocompatible, modifiable |
| Cellulose | -OH | Plant biomass | Covalent, physical | Hydrolysis | Reinforcement, mechanical strength |
| Stimulus Type | Representative Natural Hydrogel System | Typical Payloads | Release Mechanism | Biomedical/Clinical Application | Refs. |
|---|---|---|---|---|---|
| pH- responsive | Chitosan/alginate composite; carboxymethyl cellulose | Small- molecule drugs (DOX, 5-FU), peptides | Protonation/deprotonation alters swelling and ionic interactions → diffusion-controlled release | Targeted anticancer therapy in acidic tumour microenvironment; oral delivery through intestinal pH gradients | [11,27] |
| Redox- responsive | Hyaluronic acid or gelatin hydrogels with disulfide or thioketal linkages | Antibodies, siRNA, cytokines | Reduction of disulfide bonds by intracellular GSH → cleavage and drug release | Tumour microenvironment-specific release; local antibody delivery | [69,76] |
| Enzyme- responsive | Collagen/gelatin or chitosan hydrogels with MMP-cleavable peptides | Growth factors, ECM proteins, antibiotics | Local enzymatic degradation by MMPs, lysozyme or collagenase | Wound healing, tissue regeneration, anti-fibrotic therapy | [26,78] |
| Thermo- responsive | Chitosan/β-glycerophosphate; gelatin; methylcellulose blends | Proteins, cells, small-molecule drugs | Sol–gel transition at physiological temperature → depot formation | Injectable in situ forming gels for localized chemotherapy, pain relief, and cartilage repair | [28,79] |
| Electrolyte/Ionic- responsive | Alginate-Ca2+ or κ-carrageenan systems | Peptides, antibiotics, vitamins | Ion exchange or chelation alters crosslink density and swelling | Oral and mucosal delivery; sustained nutrient or antimicrobial release | [59,75] |
| Light- responsive (secondary hybrid) | HA-silk fibroin with photolabile linkers or embedded gold nanoparticles | Anticancer agents, photothermal drugs | Light-induced bond cleavage or thermal softening → burst release | On-demand local tumour therapy, photodynamic treatment | [40,80] |
| Multi- stimuli- responsive | Chitosan-HA hybrid with pH/redox sensitivity; alginate-collagen hybrid | Chemotherapeutics, siRNA, and immune adjuvants | Combined responses (e.g., acidic pH + GSH) enable sequential or synergistic release | Precision oncology; combination chemo-immunotherapy | [65,76] |
| NCT ID | Hydrogel Type (Natural Polymer) | Indication (Application) | Phase | Status (ClinicalTrials.gov) |
|---|---|---|---|---|
| NCT 05186935 | Hy2Care injectable hydrogel (alginate/gel-like medical hydrogel) | Small knee cartilage defects—injectable cartilage repair | Pivotal/multicentre (investigation) | Active/prospective (investigation listed as pivotal) |
| NCT 00004487 | Chondrocyte alginate gel suspension (alginate) | Autologous chondrocyte implantation for cartilage repair | Phase III (older trial) | Completed (historic pivotal study) |
| NCT 04840147 | JointRep® (thermogel, chitosan-based thermogel) | Repair of chondral lesions (intra-articular application) | Interventional comparative | Recruiting/active (per record) |
| NCT 01226563 | IK-5001 (alginate hydrogel device) | Prevention of ventricular remodeling after myocardial infarction (cardiac repair) | Device trial (early clinical) | Completed/earlier human feasibility |
| NCT 03321396 | Alginate-based injectable (submucosal lift hydrogel) | Assist endoscopic submucosal dissection/mucosal lift (GI endoscopy) | Interventional | Completed/active (trial record) |
| NCT 06028763 | Heparin-conjugated gel (hydrogel scaffold) | Ankle joint cartilage lesions (cartilage repair) | Interventional (developmental) | Recruiting/active (per record) |
| NCT 03686904 | Novel wound gel (hydrogel dressing; composition proprietary) | Chronic wound therapy—infected/chronic wounds | Interventional (device/therapy) | Completed/results reported on safety/tolerability |
| NCT 03190655 | Aluminaid vs. hydrogel wound dressing (hydrogel dressing comparator) | Wound dressing efficacy (various wound types) | Interventional, randomized | Completed/active (results posted) |
| NCT 06309446 | Wound care hydrogel (topical hydrogel) | Assessment of wound healing and local tolerability (abrasive wound model) | Phase I/clinical evaluation | Completed/results reported (tolerability) |
| NCT 01278784 | Chitosan-based eye drops/formulations (chitosan derivative) | Dry eye syndrome/ophthalmic application | Phase 1 (eye drops) | Completed (early human safety) |
| NCT 06394076 | Injectable cosmetic hydrogel (various natural polymer components, e.g., HA blends) | Correction of infraorbital hollowing (aesthetic injectable gel) | Interventional (cosmetic) | Recruiting/active (per record) |
| NCT 03193216 | Adjuvant liquid alginate (alginate liquid) | Oral/GI application (acid reflux—alginate raft formulations) | Interventional (device/therapy) | Completed/registered |
| NCT 06426199 | Chitosan-hyaluronate gel mixture vs. HA | Intra-articular injection/joint applications (comparative) | Interventional (comparative) | Registered/status on record |
| NCT 02877069 | VYC-12 (HA injectable gel) | Cosmetic dermatology (skin filling/fine lines)—injectable HA gel | Interventional/device | Completed (safety/effectiveness) |
| Device/Prototype | Polymer Matrix (Primary) | Target Analyte/Sensing Function | Study Type | Clinical Stage/Status | Source (Trial/Paper) |
|---|---|---|---|---|---|
| Smart contact lens (glucose sensor prototypes) | HA/silicone- hydrogel composites | Tear glucose; intraocular pressure (separate prototypes) | Human correlation/wearable validation studies | Early human studies/pilot validation (human wearability and correlation studies) | [122,123,136] |
| Wearable sweat hydrogel sensor (research prototypes) | Agarose/polysaccharide | Electrolytes, metabolites (e.g., Na+, K+, lactate) | Human on-body testing/feasibility | Pilot human tests and device validation studies (wearable trials) | [121,137] |
| Implantable hydrogel-coated microelectrode sensor (perfusion/EEG coupling) | Gelatin/collagen or synthetic-natural hybrids | Electrophysiological coupling, tissue mapping | Small clinical feasibility studies/intraoperative use | Early clinical feasibility/pilot use | [120,138,139]. |
| Transdermal/patch hydrogel biosensor (biomarker arrays) | HA/cellulose derivatives/alginate hybrid hydrogels | Multiplexed biomarker sensing (e.g., glucose + lactate)/Bacterial presence/protease activity | Human pilot feasibility/wearable validation | Pilot human testing/device validation ongoing | [140,141] |
| Hydrogel-based wound sensor strips/dressings | Alginate/chitosan hybrid dressings | Wound pH, protease activity, bacterial metabolites | Pilot clinical studies/device trials | Early clinical/pilot trials reported (safety, feasibility) | [142,143,144] |
| Commercial/clinical hydrogels used for sensing adjuncts (device evaluations) | Alginate and HA products | Matrices to concentrate analytes for downstream sensors | Clinical device evaluation | Registry/device trials where hydrogel is part of sensing workflow | [59,145,146] |
| Emerging smart wound dressing with integrated sensor/readout | Cellulose and Chitosan/HA hybrid | ROS/pH/protease (combined) | GLP large-animal → planned Phase I | Advanced preclinical; pre-IND/planning first-in-human | [147,148,149,150] |
| Application Area | Representative Natural Polymers | Dominant Stimulus Type | Representative Mechanism/Behavior | Biomedical Advantages | Refs. |
|---|---|---|---|---|---|
| Controlled and Targeted Drug Delivery | Chitosan, Alginate, HA | pH, Redox, Multi-stimuli | Swelling/deswelling or cleavage of crosslinks in response to tumour or endosomal pH | Site-specific drug release, reduced systemic toxicity | [65,66,67,68,69,70,71,72,73,74,75,76] |
| Tissue Engineering and Regeneration | Collagen, Gelatin, Chitosan, Alginate | Enzyme, Temperature, Ionic strength | Enzyme-triggered degradation; thermoresponsive sol–gel transition | ECM mimicry, dynamic stiffness matching | [77,78,79,80,81,82,83,84,85,86,87,88,89,90,91,92,93,94,95,96,97,98] |
| Wound Healing and Skin Repair | Chitosan, Alginate, HA, Cellulose | pH, Redox, Enzymatic | pH-triggered antimicrobial release; ROS-responsive antioxidant delivery | Moist healing, infection control, bioadhesion | [99,100,101,102,103,104,105,106,107,108,109,110,111,112,113,114,115] |
| Biosensing and Diagnostics | HA, Dextran, Cellulose | Biomolecular, pH | Binding-induced swelling/collapse, optical/electrochemical response | Non-invasive sensing, real-time readouts | [113,114,115,116,117,118,119,120,121,122,123,124,125,126,127,128,129,130,131,132,133,134,135,136,137,138,139,140] |
| Injectable/In Situ Forming Systems | Chitosan, Gelatin, HA | Temperature, Enzyme | Thermally triggered sol–gel transition, enzymatic gelation | Minimally invasive delivery, on-site adaptability | [150,151,152,153,154,155,156,157,158,159,160,161,162] |
| Challenge | Problem | Clinical Impact | Emerging Trend (Solution) |
|---|---|---|---|
| Mechanical and Functional Limitations | Low resistance, or long-term stability under physiological loading. | Limits load-bearing applications (cartilage, tendon), reduces implant durability, increases failure rates. | Hybrid and Nanocomposite Hydrogels (Section 4.1) |
| Limited Biostability or Uncontrolled Degradation | Degradation profiles hard to predict; premature degradation | Reduced therapeutic effect; inconsistent drug release profiles; safety concerns. | Self-Healing and Dynamic Covalent Networks (Section 4.2) |
| Suboptimal Stimulus Sensitivity or Specificity | Response slow, nonspecifically, or irreversibly to stimuli. | Impaired drug release precision; low sensing accuracy; off-target activation. | Multi-Stimuli and Logic-Gated Hydrogels (Section 4.1, Section 4.2 and Section 4.3) |
| Complex Biological Interactions and Immunogenicity | Inflammatory responses depending on source and processing. | Implant rejection; fibrosis; impaired tissue integration. | Bioinspired, Decellularized, or ECM-Mimetic Hydrogels (Section 4.2) |
| Regulatory Uncertainty and Lack of Standards | Unclear classification for regulatory approval. | Delayed translation; higher cost of development; inconsistent quality controls. | Standardized Biomanufacturing and Digital Twins (Section 4.2 and Section 4.4) |
| Ethical, Ecological and Supply Chain Constraints | Environmental impact, sustainability. | Ethical scrutiny; limited scalability; regulatory barriers. | Sustainable Biofabrication and Microbial/Biosynthetic Polymers (Section 4.2) |
| Personalization for Patient-Specific Therapy | Hydrogels cannot be readily individualized. | Limits precision medicine; lower clinical performance. | Personalized and Precision Hydrogel Platforms (Section 4.4) |
| Batch-to-Batch Variability and Reproducibility | Variation depending on source, extraction, and purification. | Unpredictable gelation behavior; regulatory rejection; lack of scalability. | AI-Driven Design and Informatics-Guided Optimization (Section 4.5) |
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© 2025 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 (https://creativecommons.org/licenses/by/4.0/).
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Calderon Moreno, J.M.; Chelu, M.; Popa, M. Biocompatible Stimuli-Sensitive Natural Hydrogels: Recent Advances in Biomedical Applications. Gels 2025, 11, 993. https://doi.org/10.3390/gels11120993
Calderon Moreno JM, Chelu M, Popa M. Biocompatible Stimuli-Sensitive Natural Hydrogels: Recent Advances in Biomedical Applications. Gels. 2025; 11(12):993. https://doi.org/10.3390/gels11120993
Chicago/Turabian StyleCalderon Moreno, Jose M., Mariana Chelu, and Monica Popa. 2025. "Biocompatible Stimuli-Sensitive Natural Hydrogels: Recent Advances in Biomedical Applications" Gels 11, no. 12: 993. https://doi.org/10.3390/gels11120993
APA StyleCalderon Moreno, J. M., Chelu, M., & Popa, M. (2025). Biocompatible Stimuli-Sensitive Natural Hydrogels: Recent Advances in Biomedical Applications. Gels, 11(12), 993. https://doi.org/10.3390/gels11120993

