Framework Materials for Full-Arch Implant-Supported Rehabilitations: A Systematic Review of Clinical Studies
Abstract
:1. Introduction
2. Materials and Methods
- Population: patients rehabilitated with fixed implant-supported full-arch prostheses in one or both jaws.
- Intervention: fixed full-arch prothesis realized with any type of framework material (or monolithic prosthesis).
- Comparison: fixed full-arch prothesis realized with a different framework material.
- Outcomes: implant and prosthesis survival (iCSR and pCSR), bone resorption, biological and technical complications.
2.1. Search Strategy
- Minimum of 10 patients included;
- At least 1-year follow-up since prosthesis delivery;
- The framework material should be clearly indicated;
- Studies including the comparison of at least two different framework materials.
2.2. Screening and Selection
2.3. Data Extraction
2.4. Quality Assessment
3. Results
3.1. Bibliographic Search and Study Selection
3.2. Description of the Included Studies
3.3. Excluded Studies
3.4. Quality Assessment
4. Discussion
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A
Study | Reason for Exclusion |
---|---|
Jemt et al. 1998 | (redundant) |
Bergendal and Palmquist 1995 | (redundant) |
Ortorp et al. 2000 | (redundant) |
Ortorp et al. 2002 | (redundant) |
Ortorp et al. 2004 | (redundant) |
Cannizzaro et al. 2014 | (redundant) |
Pozzi et al. 2015 | (non-comparative) |
Merli et al. 2017 | (insufficient follow-up) |
Wolff et al. 2018 | (non-comparative) |
Castorina et al. 2019 | (case report) |
Hulterström et al. 1991 | (only one framework material tested) |
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Authors (Year) | Study Type | Type of Loading | N° of Implants | N° of Patients | Test | Control | Jaw | Follow-Up | Results | Conclusions |
---|---|---|---|---|---|---|---|---|---|---|
Bergendal and Palmquist 1999 [27]. | Multicenter prospective cohort study, with a historical control group | Not reported | 818: 415 (test) 403 (control) | 184 (reported until the 2-years follow-up) | Laser-welded titanium framework; 67 at the 5-years examination | Gold-alloy framework; 66 at the 5-years examination | Maxilla and mandible | 2 and 5 years |
| Titanium framework clinical behavior is encouraging |
Jemt et al. 2002 [28]. | Multicenter randomized clinical trial | Not reported | 349 | 58: 28 (test) vs. 30(control) | Laser- welded titanium | Cast-gold alloy | Maxillary | 5 years |
| No clinical or radiographic differences were observed between the two groups (similar favorable clinical performance). |
Murphy et al. 2002 [29]. | Prospective | Delayed (3 months) | Not directly reported. 66–67 implants (test) vs. 65–66 (control) can be deducted from the text | 26 | Gold alloy | Silver-palladium alloy | Mandibular | 5 years |
| Despite differences in mechanical properties, clinical performance of both materials and radiographic changes in peri-implant bone was similar over 5 years (similar accuracy of fit and resistance to functional stress). Therefore, silver-palladium alloy may be considered a suitable low-cost substitute for gold alloy for implant- supported frameworks. |
Ortorp et al., 2009 [30] | Post-trial follow-up | Delayed | 821 | 155 (test) vs. 53 (control); 53 (test) vs. 13 (control) reached the 15-years follow-up | Laser-welded titanium | Gold alloy castings | Mandibular | 15 years |
| The gold alloy frameworks had a tendency to work better when compared with welded titanium frameworks over 15 years. However, more bone loss was observed for implants supporting gold alloy frameworks. |
Crespi et al. 2012 [31]. | Randomized clinical trial | Immediate | 176 | 36 | Full-acrylic | Metal-acrylic | Maxillary and mandibular | 3 years |
| The same clinical outcomes were found, regardless of whether the acrylic-resin restorations were reinforced with metal |
Ortorp et al. 2012 [32]. | Randomized clinical trial | Delayed | 728 | 126: 65 (test) vs. 61 (control) 36 (test) 38 (control) reached the 10-years follow-up | Computer Numerical Controlled (CNC) titanium | Cast gold-alloy | Maxillary and mandibular | 10 years |
| CNC-milled titanium frameworks are a viable alternative to gold-alloy castings for restoring patients with implant-supported protheses in the edentulous jaw. |
Tartaglia et al. 2015 [33]. | Retrospective cohort study | Immediate | 1058 | 113 | CAD-CAM zirconia prostheses veneered with feldspathic porcelain* | CAD-CAM PMMA prostheses veneered using composite resin teeth* | Maxilla and mandible | 2–60 months |
| Prosthesis material did not influence complication risk. |
Cannizzaro et al. 2016 [34]. | Prospective cohort study | Immediate | 160 | 80 | Laser- welded titanium | Cast silver- palladium | Mandibular | 5 years |
| Laser-welded framework constructionshould be considered as a long-term temporary prosthesis and not definitive. Immediately loaded mandibular cross-arch prostheses can be supported by only two implants up to 5 years, if made with a robust cast framework. |
Pera et al. 2017 [35]. | Prospective cohort study, with a historical control group | Immediate | 333: 170 test) vs. 163 (control) | 76: 42 (test) vs. 34 (control) | Carbon fiber frameworks | Cast metal framework (34 patients163 implants) | Maxilla | 22 months (range: 18–24) |
| Carbon fiberframeworks may be considered as a viablealternative to the metal ones and showed lessmarginal peri-implant bone loss and a greaterimplant survival rate. |
Caramês et al. 2019 [36]. | Prospective cohort study | Delayed: after 12 weeks or after 6–9 months (in case of bone regeneration); during healing and osseointegration immediate provisional restoration consisted in metal-reinforced fixed complete dentures | 1009: 581 (test) vs. 428 (control) | 132: 62 (test) vs. 70 (control) | MZ (milled Yttrium-stabilized monolithic zirconia) with veneering porcelain limited to non-functional surfaces | PVZ (feldspathic porcelain-veneered zirconia) | Maxilla and mandible | From 1 to 2 years |
| Zirconia (in particular MZ group) has demonstrated to be a suitable material for frameworks in full-archImplant-supported rehabilitations. |
Barootchi et al. 2020 [37]. | Retrospective cohort study | Immediate or delayed | 452: 200 (test) vs. 252 (control) | 56: 35 (test) vs. 21 (control) | Monolithic zirconia framework with luted single ceramic crowns and light cured resin to mimic gingival tissue | Cast metal-acrylic | Maxilla and mandible | ≥ 5 years (7 test; 9,5 control) |
| Zirconia fixed implant prostheses presented higher initial costs than metal-acrylic hybrids, but with satisfactory outcomes, reduction of overall complications, and superior survival rates |
Study | Selection Bias Sequence Generation | Selection Bias Allocation Concealment | Performance Bias | Detection Bias | Attrition Bias | Selective Reporting Bias | Other Potential Risk of Bias |
---|---|---|---|---|---|---|---|
Jemt et al. 2002 | Low | Low | Unclear | Unclear | Low | Low | Low |
Ortorp and Jemt. 2009 | High | High | Unclear | Unclear | Low | Low | Low |
Crespi et al. 2012 | Unclear | Unclear | Unclear | Unclear | High | Unclear | Low |
Ortorp and Jemt. 2012 | Unclear | Unclear | Unclear | Unclear | Low | Low | Low |
Study | Selection | Comparability | Outcome/Exposure | NOS Score |
---|---|---|---|---|
Bergendal and Palmquist 1999 | --✶✶ | ✶- | ✶✶- | 5 |
Murphy et al. 2002 | --✶✶ | ✶- | ✶✶- | 5 |
Tartaglia et al. 2015 | ✶✶✶✶ | ✶- | ✶✶- | 7 |
Cannizzaro et al. 2016 | ✶✶✶✶ | ✶- | ✶✶- | 7 |
Pera et al. 2017 | ✶✶✶✶ | -- | ✶✶- | 6 |
Caramês et al. 2019 | ✶✶✶✶ | ✶✶ | ✶✶✶ | 9 |
Barootchi et al. 2020 | ✶✶✶✶ | -- | ✶✶✶ | 7 |
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Delucchi, F.; De Giovanni, E.; Pesce, P.; Bagnasco, F.; Pera, F.; Baldi, D.; Menini, M. Framework Materials for Full-Arch Implant-Supported Rehabilitations: A Systematic Review of Clinical Studies. Materials 2021, 14, 3251. https://doi.org/10.3390/ma14123251
Delucchi F, De Giovanni E, Pesce P, Bagnasco F, Pera F, Baldi D, Menini M. Framework Materials for Full-Arch Implant-Supported Rehabilitations: A Systematic Review of Clinical Studies. Materials. 2021; 14(12):3251. https://doi.org/10.3390/ma14123251
Chicago/Turabian StyleDelucchi, Francesca, Emanuele De Giovanni, Paolo Pesce, Francesco Bagnasco, Francesco Pera, Domenico Baldi, and Maria Menini. 2021. "Framework Materials for Full-Arch Implant-Supported Rehabilitations: A Systematic Review of Clinical Studies" Materials 14, no. 12: 3251. https://doi.org/10.3390/ma14123251
APA StyleDelucchi, F., De Giovanni, E., Pesce, P., Bagnasco, F., Pera, F., Baldi, D., & Menini, M. (2021). Framework Materials for Full-Arch Implant-Supported Rehabilitations: A Systematic Review of Clinical Studies. Materials, 14(12), 3251. https://doi.org/10.3390/ma14123251