Evolutions in Cardiovascular Implants—A Review of Past, Present, and Future
Abstract
1. Introduction
2. Pre-Implantation Diagnostics and Procedural Planning
3. Stents
3.1. Structural Stents
3.2. Drug-Eluting Stents
3.2.1. Paclitaxel-Eluting Stents
3.2.2. Limus Family Drug-Eluting Stents
3.2.3. Biodegradable-Polymer Drug-Eluting Stents
3.2.4. Polymer Free Drug-Eluting Implants
3.3. Tissue-Engineered Stents
3.4. Smart Stents
| Device/Material | Innovations | Clinical Limitations | Preclinical/Clinical Trials |
|---|---|---|---|
| Bare-Metal Stents | Stabilized the vessel wall and improved percutaneous intervention (PCI) success. | Neointimal hyperplasia led to high rates of restenosis. | BASKET-PROVE [31,33,34] |
Durable Polymer Drug-Eluting Stents (DES)
| Reduced restenosis rates to less than 10% by releasing immunosuppressant or antiproliferative drugs. | Paclitaxel has a narrow therapeutic window and variable tissue penetration, leading to concerns about toxic effects and long-term complications. Limus family DES uncovered risk of late-stent thrombosis due to residual polymer causing chronic inflammation and impaired healing. | BASKET-PROVE [33] RESOLUTE ALL Comers [36] SORT OUT IV [35] |
| Biodegradable-Polymer DES Polymer-Free DES Drug Coated Balloons (DCB) | Addressed the issue of residual polymer induced thrombosis by using materials that fully resorb leaving a bare-metal scaffold. Polymer-free designs apply drug directly to stent surface. DCBs leave no implant behind. | Minimal clinical benefit compared to Durable Polymer DES. | Bioflow-DAPT [37] BASKET-SMALL 2 [42] |
Tissue-Engineered Stents (TES)
| Designed to address late-stent thrombosis by promoting endothelial regeneration. In vitro involves seeding autologous cells onto stent. In vivo involves stent modifications to capture circulating cells. | Challenges in experimental phases include sufficient cell adhesion and immunogenicity. | [41,43] |
| Smart Stents | Integrates diagnostic and therapeutic functions providing real-time monitoring of the vascular environment. Can also be tailored for drug delivery. | Inability to distinguish between normal and abnormal neointima. Concerns for sensor deformation and malfunction. | [52,54,55] |
4. Heart Valves
4.1. Mechanical Valves
4.1.1. Caged-Ball Valves
4.1.2. Tilting-Disc Valves
4.1.3. Bileaflet Mechanical Valves
4.2. Biologic Valves
4.2.1. Early Homografts and Xenografts
4.2.2. Porcine and Bovine Valves
4.2.3. Novel Xenografts and Bioprostheses
4.3. Polymeric Heart Valves
4.3.1. PTFE, Polysiloxanes, PU and PET
4.3.2. POSS-PCU, Silicone, SiPUU, PVA, SIBS and FGO-PCU
4.4. Tissue-Engineered Valves
| Device/Material | Innovations | Clinical Limitations | Preclinical/Clinical Trials |
|---|---|---|---|
Mechanical Valves
| Were the first successful valve implants and have great durability. | All mechanical valves require lifelong anticoagulation therapy, which carries a high risk of thrombosis and hemorrhage. | PROACT [60,61,63,65,66,85] |
Biologic Valves
| Homografts preserve native valve architecture and thus have great hemodynamic performance. Xenografts mimicked native valve geometry and were less bulky than mechanical valves. Stentless valves eliminate the rigid stent to improve hemodynamics. Sutureless valves allow for rapid deployment in minimally invasive procedures. | All are limited by structural deterioration and calcification often within 10–15 years of implantation. Homografts are limited by donor availability and complex surgical procedures such as the Ross procedure. | [59,71,72,84,86,87,88,89,90,91,92,93,94,95,96,97] |
Tissue-Engineered Valves (TEHVs)
| TEHVs use decellularized matrices that can be repopulated by host cells, offering low immunogenicity and the potential for off-the-shelf options. May also be useful for pediatric patients where the valve can grow with the patient. | In vitro methods are time consuming and not suitable for emergencies. In vivo valves lead to valve failure due to uncontrolled neoproliferation. Decellularized valves still face challenges of longevity due to immunogenicity of extracellular matrix proteins, particularly in patients with strong immune systems. | ARISE [84] |
Tissue-Mimicking/Polymer Valves
| New materials with improved oxidative resistance and durability in addition to innate biocompatibility of synthetic materials. | Early polymer valves tore leaflets, calcified, and degenerated faster than expected. | [4,73,74,75,79,81,98] |
5. Vascular Grafts
5.1. Structural Vascular Grafts
5.2. Autologous Arterial and Novel Vein Grafts
5.3. Tissue-Engineered Vascular Grafts
5.4. Smart Grafts
| Device/Material | Innovations | Clinical Limitations | Preclinical/Clinical Trials |
|---|---|---|---|
Purely Structural
| Dacron® and ePTFE were developed after the failure of glass and metal grafts. ePTFE and Dacron® are porous and allow for neointimal proliferation that mimics the native vessel lumen. | Consistent thrombosis and intimal hyperplasia in small vessel applications. | [99,100,105,106,118] |
Autologous
| Patient-derived conduits are benchmark (>90% 10-year patency). CAVGs extend feasibility for patients lacking autologous options. | Limited anatomical availability, SVGs prone to intimal hyperplasia and 50–60% 10-year patency; CAVGs show short-term patency (32 months) and require complex preparation. | [107,108,109] |
| Tissue-Engineered Vascular Grafts (TEVGs) | Designed to adapt, repair, and grow, TEVGs offer an off-the-shelf vascular graft using human acellular vessels (HAVs). | Few human implantations. Long-term patency and standardization of HAVs are unproven and remain experimental. | [110,111,112,113,119] |
| Smart Grafts | Integrates biosensors for real-time monitoring, such as pressure, pulse, and thrombogenesis. Holds promise for detection of complications through continuous post-implant surveillance. | Still in experimental stage and lacks evidence supporting viability. | [16] |
6. Patches
6.1. Structural and Clinical Benchmarks
6.2. Biologic Matrices
6.3. Tissue-Engineered Patches
6.4. Biologically Active Patches
6.5. Smart Patches
| Device/Material | Innovations | Clinical Limitations | Preclinical/Clinical Trials |
|---|---|---|---|
Structural Patches
| Provide mechanical reinforcement for repairs. ePTFE and Dacron® offer off-the-shelf convenience. | Bovine pericardium can calcify and lacks ability to remodel or adapt to cardiovascular environment. ePTFE and Dacron® are susceptible to thrombosis, infection, and neointimal hyperplasia resulting in stenosis. | [122] |
Biologic Matrices
| Ability to support endothelialization and resist thrombosis. | Durability and consistency are lacking. | [120,121,126] |
| Tissue-Engineered Patches | Combine the benefits of biologic remodeling with improved consistency by decellularizing human or porcine vascular tissue to be repopulated with stem cells. Some designs added additional controlled drug delivery. | Still experimental. | [124,125,131] |
Biologically Active Patches
| Modification of earlier ePTFE and Dacron® scaffolds with polyurethane or RGD peptides to improve cell adhesion, prevent platelet adhesion, and resist calcification. | Inability to monitor the vascular environment. | [127,128] |
Smart Patches
| Integrate modern biosensor technology into patches to provide continuous real-time physiological monitoring, providing a proactive approach to cardiovascular care. | Still in preclinical development and experimental stages. | [129,130] |
7. Other Cardiovascular Implants
7.1. Implantable Cardioverter-Defibrillators/Pacemakers
7.2. Left Atrial Appendage Occlusion
7.3. Left-Ventricular Assist Devices
7.4. Smart Cardiac Telemetry Implants
8. Clinical Translation Challenges of Smart Cardiovascular Implants
8.1. Long-Term Reliability
8.2. Patient Safety and Biocompatibility
8.3. Regulatory Approval Considerations and Cybersecurity
9. Conclusions and Future Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Disease Category | Pathophysiological Challenge | Clinical Demand | Representative Implant Technologies |
|---|---|---|---|
| Ischemic Heart Disease | Coronary artery occlusion and ischemia | Restore perfusion, prevent restenosis, maintain vessel patency | Bare-metal stents, drug-eluting stents, bioresorbable scaffolds, smart stents [5] |
| Valvular Heart Disease | Stenosis and regurgitation | Restore unidirectional blood flow, durability, hemocompatibility | Mechanical valves, bioprosthetic valves, polymeric valves, TAVR, TEHVs [7] |
| Cardiac Arrythmias | Abnormal electrical conduction | Rhythm monitoring and correction | Pacemakers, implantable cardioverter-defibrillators, electrophysiologic mapping systems [8] |
| Myocardial Injury | Loss of viable myocardium and impaired contractility | Tissue repair, regeneration, functional support | Cardiac patches, tissue-engineered constructs, bioelectronic patches [9] |
| Vascular Disease/Aneurysms | Vessel occlusion, degeneration, or structural failure | Restore blood flow, mechanical support, compliance matching | Synthetic grafts, autologous grafts, tissue-engineered vascular grafts, smart vascular grafts [10] |
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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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Moon, C.; Tong, J.M.; Hao, D. Evolutions in Cardiovascular Implants—A Review of Past, Present, and Future. Micromachines 2026, 17, 703. https://doi.org/10.3390/mi17060703
Moon C, Tong JM, Hao D. Evolutions in Cardiovascular Implants—A Review of Past, Present, and Future. Micromachines. 2026; 17(6):703. https://doi.org/10.3390/mi17060703
Chicago/Turabian StyleMoon, Callen, Jay Ming Tong, and Dake Hao. 2026. "Evolutions in Cardiovascular Implants—A Review of Past, Present, and Future" Micromachines 17, no. 6: 703. https://doi.org/10.3390/mi17060703
APA StyleMoon, C., Tong, J. M., & Hao, D. (2026). Evolutions in Cardiovascular Implants—A Review of Past, Present, and Future. Micromachines, 17(6), 703. https://doi.org/10.3390/mi17060703

