Diagnostic Assessment of Periodontal and Dentoalveolar Complications Following Mini-Screw-Assisted Rapid Palatal Expansion in Adults and Late Adolescents: A Systematic Review
Abstract
1. Introduction
2. Materials and Methods
2.1. Search Strategy
2.2. Eligibility Criteria
2.2.1. Inclusion Criteria
2.2.2. Exclusion Criteria
2.3. Data Extraction
2.4. Definition and Classification of Adverse Events
- Osseous and dentoalveolar events, including alveolar bone loss, reduction in buccal alveolar bone thickness, and buccal alveolar bone dehiscence;
- Periodontal and gingival events, such as gingival hypertrophy or clinically relevant gingival inflammation;
- Failure of expansion, defined as failure of mid-palatal suture opening;
- Device-related adverse events, including miniscrew loosening or failure, fracture or deformation of the expansion device, soft tissue irritation related to the appliance, or other device-related complications, when explicitly reported in the included studies.
2.5. Quality Assessment
- Bias due to confounding, evaluated by examining whether patient characteristics or clinical factors could have influenced the occurrence or reporting of adverse events (AEs);
- Bias in selection of participants, assessed by reviewing recruitment methods and exclusion criteria and their potential impact on sample representativeness;
- Bias in classification of interventions, evaluated by verifying the accurate distinction of MARPE from other maxillary expansion techniques;
- Bias due to deviations from intended interventions, assessed by analyzing adherence to activation protocols and treatment procedures;
- Bias due to missing data, evaluated by reviewing the completeness of follow-up and the reporting of AEs;
- Bias in measurement of outcomes, assessed by considering the reliability, objectivity, and consistency of AE assessment methods across studies;
- Bias in selection of the reported result, evaluated by comparing reported outcomes with study protocols or expected AE profiles, when available.
2.6. Data Synthesis and Management of Heterogeneity
3. Results
3.1. Description of the Included Studies
3.2. Diagnostic Methods and Outcome Assessment
3.3. Synthesis of Key Domains
3.3.1. Adverse Events (AEs)
3.3.2. Diagnostic Tools
3.3.3. Follow-Up
3.3.4. Expansion Protocol
3.3.5. Type of Appliance
3.4. Technical Findings
3.5. Risk of Bias Assessment
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Correction Statement
References
- Li, Q.; Tang, H.; Liu, X.; Luo, Q.; Jiang, Z.; Martin, D.; Guo, J. Comparison of dimensions and volume of upper airway before and after mini-implant assisted rapid maxillary expansion. Angle Orthod. 2020, 90, 432–441. [Google Scholar] [CrossRef] [Scilit]
- Hur, J.S.; Kim, H.H.; Choi, J.Y.; Suh, S.H.; Baek, S.H. Investigation of the effects of miniscrew-assisted rapid palatal expansion on airflow in the upper airway of an adult patient with obstructive sleep apnea syndrome using computational fluid-structure interaction analysis. Korean J. Orthod. 2017, 47, 353–364. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Benetti, M.; Montresor, L.; Trevisiol, L.; D’Agostino, A.; Zerman, N.; Verdecchia, A.; Spinas, E. Health and TMJ Function in Adult Patients Treated for Dentoskeletal Open Bite with Orthognathic Surgery—A Retrospective Cohort Study. Appl. Sci. 2024, 14, 8559. [Google Scholar] [CrossRef] [Scilit]
- Anéris, F.F.; El Haje, O.; Rosário, H.D.; de Menezes, C.C.; Franzini, C.M.; Custodio, W. The effects of miniscrew-assisted rapid palatal expansion on the upper airway of adults with midpalatal suture in the last two degrees of ossification. J. World Fed. Orthod. 2023, 12, 150–155. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Mehta, P.; Singh, A.K.; Malhotra, A.; Aziz, S.B.; Batra, P. Effect of customized 3D-printed MARPE appliance on hard tissues, soft tissues, and airway: A prospective CBCT study. J. World Fed. Orthod. 2025, 14, 161–169. [Google Scholar] [CrossRef] [Scilit]
- Baik, H.S.; Kang, Y.G.; Choi, Y.J. Miniscrew-assisted rapid palatal expansion: A review of recent reports. J. World Fed. Orthod. 2020, 9, S54–S58. [Google Scholar] [CrossRef] [Scilit]
- Shetty, A.; Ratti, S.; Nakra, P.; Shetty, S.; Mohammed, A.; Saidath, K. Evaluation of Soft Tissue and Airway Changes in Individuals Treated with Mini-Implant Assisted Rapid Palatal Expansion (MARPE). J. Long-Term Eff. Med. Implant. 2022, 32, 7–18. [Google Scholar] [CrossRef] [Scilit]
- Kapetanović, A.; Theodorou, C.I.; Bergé, S.J.; Schols, J.G.J.H.; Xi, T. Efficacy of Miniscrew-Assisted Rapid Palatal Expansion (MARPE) in late adolescents and adults: A systematic review and meta-analysis. Eur. J. Orthod. 2021, 43, 313–323. [Google Scholar] [CrossRef] [Scilit]
- Gurdan, Z.; Szalma, J. Evaluation of the success and complication rates of self-drilling orthodontic mini-implants. Niger. J. Clin. Pr. 2018, 21, 546–552. [Google Scholar] [CrossRef] [Scilit]
- Jeon, J.Y.; Choi, S.H.; Chung, C.J.; Lee, K.J. The success and effectiveness of miniscrew-assisted rapid palatal expansion are age- and sex-dependent. Clin. Oral Investig. 2022, 26, 2993–3003. [Google Scholar] [CrossRef] [Scilit]
- Krijt, L.L.; Kapetanović, A.; Sijmons, W.J.; Bruggink, R.; Baan, F.; Bergé, S.J.; Noverraz, R.R.; Xi, T.; Schols, J.G. What is the impact of miniscrew-assisted rapid palatal expansion on the midfacial soft tissues? A prospective three-dimensional stereophotogrammetry study. Clin. Oral Investig. 2023, 27, 5343–5351. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Labunet, A.; Iosif, C.; Kui, A.; Vigu, A.; Sava, S. Miniscrew-Assisted Rapid Palatal Expansion: A Scoping Review of Influencing Factors, Side Effects, and Soft Tissue Alterations. Biomedicines 2024, 12, 2438. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Oliveira, C.B.; Ayub, P.; Angelieri, F.; Murata, W.H.; Suzuki, S.S.; Ravelli, D.B.; Santos-Pinto, A. Evaluation of factors related to the success of miniscrew-assisted rapid palatal expansion. Angle Orthod. 2021, 91, 187–194. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Salmoria, I.; de Souza, E.C.; Furtado, A.; Franzini, C.M.; Custodio, W. Dentoskeletal changes and their correlations after micro-implant-assisted palatal expansion (MARPE) in adults with advanced midpalatal suture ossification. Clin. Oral Investig. 2022, 26, 3021–3031. [Google Scholar] [CrossRef] [Scilit]
- Moher, D.; Shamseer, L.; Clarke, M.; Ghersi, D.; Liberati, A.; Petticrew MShekelle, P.; Stewart, L.A.; PRISMA-P Group. Preferred reporting items for systematic review and meta-analysis protocols (PRISMA-P) 2015 statement. Syst. Rev. 2015, 4, 1. [Google Scholar] [CrossRef]
- Sterne, J.A.C.; Savović, J.; Page, M.J.; Elbers, R.G.; Blencowe, N.S.; Boutron, I.; Cates, C.J.; Cheng, H.Y.; Corbett, M.S.; Eldridge, S.M.; et al. RoB 2: A revised tool for assessing risk of bias in randomised trials. BMJ 2019, 366, l4898. [Google Scholar] [CrossRef] [Scilit]
- Sterne, J.A.C.; Hernán, M.A.; Reeves, B.C.; Savović, J.; Berkman, N.D.; Viswanathan, M.; Henry, D.; Altman, D.G.; Ansari, M.T.; Boutron, I.; et al. ROBINS-I: A tool for assessing risk of bias in non-randomised studies of interventions. BMJ 2016, 355, i4919. [Google Scholar] [CrossRef] [Scilit]
- Guyatt, G.H.; Oxman, A.D.; Kunz, R.; Brozek, J.; Alonso-Coello, P.; Rind, D.; Devereaux, P.; Montori, V.M.; Freyschuss, B.; Vist, G.; et al. GRADE guidelines 6. Rating the quality of evidence—Imprecision. J. Clin. Epidemiol. 2011, 64, 1283–1293. [Google Scholar] [CrossRef] [Scilit]
- Choi, S.H.; Shi, K.K.; Cha, J.Y.; Park, Y.C.; Lee, K.J. Nonsurgical miniscrew-assisted rapid maxillary expansion results in acceptable stability in young adults. Angle Orthod. 2016, 86, 713–720. [Google Scholar] [CrossRef] [Scilit]
- Lim, H.M.; Park, Y.C.; Lee, K.J.; Kim, K.H.; Choi, Y.J. Stability of dental, alveolar, and skeletal changes after miniscrew-assisted rapid palatal expansion. Korean J. Orthod. 2017, 47, 313–322. [Google Scholar] [CrossRef] [Scilit]
- Bud, E.S.; Bică, C.I.; Păcurar, M.; Vaida, P.; Vlasa, A.; Martha, K.; Bud, A. Observational Study Regarding Possible Side Effects of Miniscrew-Assisted Rapid Palatal Expander (MARPE) with or without the Use of Corticopuncture Therapy. Biology 2021, 10, 187. [Google Scholar] [CrossRef] [Scilit]
- Madeeh, S.; Gasgoos, S. Evaluation of Dental Changes After Mini-Implant Assisted Rapid Maxillary Expansion in Young Adults: CBCT Study. Georgian Med. News 2023, 342, 66–73. [Google Scholar]
- Marín, C.; Benitez, M.d.C.; Otazu, A.; Torres, D.; Cotrin, P.; Pinzan-Vercelino, C.; Valarelli, F.; Freitas, K. Correlation of age and skeletal effects after miniscrew assisted rapid palatal expansion. J. Clin. Exp. Dent. 2023, 15, e269–e276. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Park, J.J.; Park, Y.C.; Lee, K.J.; Cha, J.Y.; Tahk, J.H.; Choi, Y.J. Skeletal and dentoalveolar changes after miniscrew-assisted rapid palatal expansion in young adults: A cone-beam computed tomography study. Korean J. Orthod. 2017, 47, 77–86. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Clement, E.; Krishnaswamy, N.R. Skeletal and Dentoalveolar Changes after Skeletal Anchorage-assisted Rapid Palatal Expansion in Young Adults: A Cone Beam Computed Tomography Study. APOS Trends Orthod. 2017, 7, 113–119. [Google Scholar] [CrossRef] [Scilit]
- Ngan, P.; Nguyen, U.K.; Nguyen, T.; Tremont, T.; Martin, C. Skeletal, Dentoalveolar, and Periodontal Changes of Skeletally Matured Patients with Maxillary Deficiency Treated with Microimplant-assisted Rapid Palatal Expansion Appliances: A Pilot Study. APOS Trends Orthod. 2018, 8, 71–85. [Google Scholar] [CrossRef] [Scilit]
- Shin, H.; Hwang, C.J.; Lee, K.J.; Choi, Y.J.; Han, S.S.; Yu, H.S. Predictors of midpalatal suture expansion by miniscrew-assisted rapid palatal expansion in young adults: A preliminary study. Korean J. Orthod. 2019, 49, 360–371. [Google Scholar] [CrossRef] [Scilit]
- Annarumma, F.; Posadino, M.; De Mari, A.; Drago, S.; Aghazada, H.; Gravina, G.M.; Qorri, E.; Silvestrini-Biavati, A.; Migliorati, M. Skeletal and dental changes after maxillary expansion with a bone-borne appliance in young and late adolescent patients. Am. J. Orthod. Dentofac. Orthop. 2021, 159, e363–e375. [Google Scholar] [CrossRef] [Scilit]
- Lee, S.R.; Lee, J.W.; Chung, D.H.; Lee, S.M. Short-term impact of microimplant-assisted rapid palatal expansion on the nasal soft tissues in adults: A three-dimensional stereophotogrammetry study. Korean J. Orthod. 2020, 50, 75–85. [Google Scholar] [CrossRef] [Scilit]
- Basu, S.; Goje, S.K. Comparative Evaluation of Skeletal and Dental Effects of Mini-Implant Assisted and Corticopuncture-Facilitated Rapid Palatal Expansion in Adults: A Randomized Clinical Study. J. Datta Meghe Inst. Med. Sci. Univ. 2023, 18, 629–642. [Google Scholar] [CrossRef] [Scilit]
- Choi, E.-H.A.; Lee, K.-J.; Choi, S.-H.; Jung, H.-D.; Ahn, H.-J.; Deguchi, T.; Cha, J.-Y. Skeletal and dentoalveolar effects of miniscrew-assisted rapid palatal expansion based on the length of the miniscrew: A randomized clinical trial. Angle Orthod. 2023, 93, 390–397. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wang, C.; Liu, C.; Mao, Q.; Zhou, L.; Xiang, X. Skeletal and dentoalveolar modifications in adults with different sagittal facial patterns after personalized miniscrew-assisted rapid palatal expansion: A prospective cone-beam computed tomography study. Am. J. Orthod. Dentofac. Orthop. 2023, 164, 843–854. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gokturk, M.; Yavan, M.A. Comparison of the short-term effects of tooth–bone-borne and tooth-borne rapid maxillary expansion in older adolescents. J. Orofac. Orthop. 2024, 85, 43–55. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kapetanović, A.; Odrosslij, B.M.M.J.; Baan, F.; Bergé, S.J.; Noverraz, R.R.M.; Schols, J.G.J.H.; Xi, T. Efficacy of Miniscrew-Assisted Rapid Palatal Expansion (MARPE) in late adolescents and adults with the Dutch Maxillary Expansion Device: A prospective clinical cohort study. Clin. Oral Investig. 2022, 26, 6253–6263. [Google Scholar] [CrossRef] [Scilit] [PubMed] [PubMed Central]
- Calil, R.C.; Ramirez, C.M.M.; Otazu, A.; Torres, D.M.; Gurgel, J.d.A.; Oliveira, R.C.; de Oliveira, R.C.G.; Valarelli, F.P.; Freitas, K.M.S. Maxillary dental and skeletal effects after treatment with self-ligating appliance and miniscrew-assisted rapid maxillary expansion. Am. J. Orthod. Dentofac. Orthop. 2021, 159, e93–e101. [Google Scholar] [CrossRef] [Scilit]
- Naveda, R.; Dos Santos, A.M.; Miranda, F.; Da Cunha Bastos, J.C.; Garib, D. Immediate dentoskeletal and periodontal effects of miniscrew-assisted rapid palatal expansion: Comparison between young vs middle-aged adults. Am. J. Orthod. Dentofac. Orthop. 2023, 164, 416–422. [Google Scholar] [CrossRef] [Scilit]
- Ning, R.; Chen, J.; Liu, S.; Lu, Y. Treatment effects after maxillary expansion using tooth-borne vs tissue-borne miniscrew-assisted rapid palatal expansion appliance. Am. J. Orthod. Dentofac. Orthop. 2023, 164, 545–553. [Google Scholar] [CrossRef] [Scilit]
- Yoon, A.; Payne, J.; Suh, H.; Phi, L.; Chan, A.; Oh, H. A retrospective analysis of the complications associated with miniscrew-assisted rapid palatal expansion. AJO-DO Clin. Companion 2022, 2, 423–430. [Google Scholar] [CrossRef] [Scilit]
- Bratu, D.C.; Bratu, E.A.; Popa, G.; Luca, M.; Bălan, R.; Ogodescu, A. Skeletal and dentoalveolar changes in the maxillary bone morphology using two-arm maxillary expander. Rom. J. Morphol. Embryol. 2012, 53, 35–40. [Google Scholar]
- Lázaro-Abdulkarim, A.; Hernández-Alfaro, F.; Puigdollers-Pérez, A.; Giralt-Hernando, M.; Elnayef, B.; Valls-Ontañón, A. Is efficacy of miniscrew-assisted rapid palatal expansion in mid to late adolescents and young adults related to craniofacial sutures opening? A systematic review and meta-analysis. Med. Oral 2025, 30, e271–e281. [Google Scholar] [CrossRef] [Scilit]
- Matsumoto, M.A.N.; Itikawa, C.E.; Valera, F.C.P.; Faria, G.; Anselmo-Lima, W.T. Long-term effects of rapid maxillary expansion on nasal area and nasal airway resistance. Am. J. Rhinol. Allergy 2010, 24, 161–165. [Google Scholar] [CrossRef] [Scilit]
- Ventura, V.; Botelho, J.; Machado, V.; Mascarenhas, P.; Pereira, F.D.; Mendes, J.J.; Delgado, A.S.; Pereira, P.M. Miniscrew-Assisted Rapid Palatal Expansion (MARPE): An Umbrella Review. J. Clin. Med. 2022, 11, 1287. [Google Scholar] [CrossRef] [Scilit]
- Chung, C.H.; Goldman, A.M. Dental tipping and rotation immediately after surgically assisted rapid palatal expansion. Eur. J. Orthod. 2003, 25, 353–358. [Google Scholar] [CrossRef] [Scilit]
- Byloff, F.K.; Mossaz, C.F. Skeletal and dental changes following surgically assisted rapid palatal expansion. Eur. J. Orthod. 2004, 26, 403–409. [Google Scholar] [CrossRef] [Scilit]
- Sicca, N.; Benedetti, G.; Nieri, A.; Vitale, S.; Lopponi, G.; Mura, S.; Verdecchia, A.; Spinas, E. Comparison of Side Effects Between Miniscrew-Assisted Rapid Palatal Expansion (MARPE) and Surgically Assisted Rapid Palatal Expansion (SARPE) in Adult Patients: A Scoping Review. Dent. J. 2025, 13, 47. [Google Scholar] [CrossRef] [Scilit]
- Petit, F.X.; Pépin, J.L.; Bettega, G.; Sadek, H.; Raphaël, B.; Lévy, P. Mandibular advancement devices: Rate of contraindications in 100 consecutive obstructive sleep apnea patients. Am. J. Respir. Crit. Care Med. 2002, 166, 274–278. [Google Scholar] [CrossRef] [Scilit]

| PubMed | ((MARPE)) OR (palatal expander) OR (palatal expansion)) AND ((miniscrews)) e ((adverse events) OR (efficacy)) |
| Scopus | (“palatal expansion”) AND (“miniscrew” OR “orthodontic mini implant” OR “palatal miniscrew”) AND (“side effect” OR (“adverse” AND “effect”)) AND (“adult” OR “late adolescents”) AND (“orthodontics”) AND (“MARPE” OR “palatal expander”)) |
| Embase | ((‘palatal expansion’/exp OR ‘palatal expansion’) AND (‘miniscrew’ OR ‘orthodontic mini implant’ OR ‘palatal miniscrew’) AND (‘side effect’ OR (adverse AND effect)) AND (‘adult’ OR ‘late adolescence’) AND ‘orthodontics’) |
| Cochrane | ((“palatal expansion”) AND (“miniscrew”) OR “orthodontic mini implant” OR “palatal miniscrew”) AND (“side effect” OR (“adverse” AND “effect”)) AND (“adult” OR “late adolescence”) AND (“orthodontics”) AND (“MARPE” OR “palatal expander”)) |
| EBSCO | (“MARPE”) AND (“PALATAL EXPANDER”) |
| Web of Science | “miniscrews” (All Fields) AND “MARPE” (All Fields) AND “palatal expander” (All Fields) AND “adverse effects” (All Fields) AND “adults” (All Fields) |
| Study, Year | Design | Geographical Area | Patients, n | Age, Years | Gender, M (%) |
|---|---|---|---|---|---|
| Choi, 2016 [19] | Prospective, study | Republic of Korea | 69 | 20.9 ± 2.9 | 10 (14.5) |
| Lim, 2017 [20] | Prospective, study | Republic of Korea | 24 | 21.6 | 8 (33.3) |
| Bud ES, 2021 [21] | Observational Study | Romania | 27 | 24 | 9 (33.3) |
| Madeeh S, 2023 [22] | Prospective study | Iraq | 24 | 19.5 ± 2.5 | 12 (50) |
| Marin CM, 2023 [23] | Prospective, study | Brazil | 19 | 24.92 | 5 (31.2) |
| Park, 2017 [24] | Retrospective, study | Republic of Korea | 14 ** | 20.1 ± 2.4 | 9 (64.3) |
| Clement, 2017 [25] | Prospective study | India | 10 | 21.5 ± 2.5 | 5 (50) |
| Ngan, 2018 [26] | Prospective, study | USA | 8 | 21.9 ± 1.5 | 6 (75) |
| Shin, 2019 [27] | Retrospective, study | Republic of Korea | 31 | 22.5 ± 5.11 | 16 (51) |
| Annarumma F, 2021 [28] | Retrospective, study | Italy | 24 | 16 | 12 (50) |
| * Lee, 2020 [29] | Prospective study | Republic of Korea | 30 | N/R | N/R |
| Basu, 2023 [30] | Randomized clinical trial study | India | 18 | 20.77 | N/R |
| Choi, 2023 [31] | RCT | Republic of Korea | 32 | 19–35 § | N/R |
| Wang, 2023 [32] | Observational study | China | 40 | 18–28 § | 25 (62.5) |
| Gokturk M, 2024 [33] | Retrospective, study | Turkey | 30 | 16.82 ± 0.48 | 13 (43.3) |
| Kapetanovic A, 2022 [34] | Prospective study | Netherlands | 34 | 27 ± 9.4 | 8 (23.5) |
| Calil, 2020 [35] | Comparative, study | Paraguay | 37 | 24.92 | N/R |
| Nevada R, 2023 [36] | Prospective study | Brazil | 28 | 28.8 | 9 (32.15) |
| Ning R, 2023 [37] | Prospective, study | China | 91 | 20.5 ± 4.5 | N/R |
| Yoon A, 2022 [38] | Retrospective, study | USA | 256 | 18.8 ± 8.6 | 130 (50.7) |
| Study | Patients, n | Type of Expander | AEs | Types of Adverse Events | Folllow-Up |
|---|---|---|---|---|---|
| Choi, 2016 [19] | 69 | Tooth–bone-born; Hyrax-type | 100% | N/R | N/R |
| Lim, 2017 [20] | 24 | Tooth–bone-born; Hyrax-type | 100% | Buccal alveolar bone dehiscence | 1 year |
| Bud ES, 2021 [21] | 27 | Tooth–bone-borne (MSE) | 62.5% | Failure of opening of the mid-palatal suture; gingival hypertrophy; decrease in buccal and palatal bone levels | N/R |
| Madeeh S, 2023 [22] | 24 | Tooth–bone-borne (MSE) | 100% | Failure of opening of the mid-palatal suture | N/R |
| Marin CM, 2023 [23] | 19 | Tooth–bone-born; Hyrax-type | 100% | Failure of opening of the mid-palatal suture; reduction in vestibular bone thickness | N/R |
| Park, 2017 [24] | 14 | Bone-born; Hyrax-type | 61% | Decrease in buccal bone thickness and crest height | N/R |
| Clement, 2017 [25] | 10 | Tooth–bone-borne (MSE) | 48% | N/R | N/R |
| Ngan, 2018 [26] | 8 | Tooth–bone-borne (MSE) | 100% | Reduction in buccal bone thickness | N/R |
| Shin, 2019 [27] | 31 | Tooth–bone-born; Hyrax-type | 100% | Buccal alveolar bone dehiscence | N/R |
| Annarumma F, 2021 [28] | 24 | Bone-born; Hyrax-type | 100% | Failure of opening of mid-palatal | N/R |
| Lee, 2020 [29] | 30 | Tooth–bone-born; Hyrax-type | 100% | Soft tissue changes; nose widening and movement forward/downward | N/R |
| Basu, 2023 [30] | 18 | Bone-born; Hyrax-type | 100% | Bone resorption | N/R |
| Choi, 2023 [31] | 32 | Tooth-born; Hyrax-type | 100% | Failure of opening of the mid-palatal suture | N/R |
| Wang, 2023 [32] | 40 | Tooth-born; Hyrax-type | 100% | Buccal alveolar bone dehiscence | N/R |
| Gokturk M, 2024 [33] | 30 | Tooth-born; Hyrax-type | 90% | N/R | N/R |
| Kapetanovic A, 2022 [34] | 34 | Tooth-born; Dutch maxillary expansion device (D-MED) | 100% | Decrease in buccal bone thickness; failure of opening of the mid-palatal suture | N/R |
| Calil, 2020 [35] | 37 | Tooth-born; Hyrax-type | 100% | Loss of buccal bone | N/R |
| Nevada R, 2023 [36] | 28 | Tooth-born; Hyrax-type | 100% | Decrease in buccal bone thickness | N/R |
| Ning R, 2023 [37] | 91 | Tooth-born; Hyrax-type | 100% | Alveolar bone loss | N/R |
| Yoon A, 2022 [38] | 256 | Tooth-born; Hyrax-type | 83.9% | Gingival inflammation | N/R |
| Study (Author, Year) | Diagnostic Method | Imaging Modality | Measurement Type | Timing of Evaluation |
|---|---|---|---|---|
| Choi, 2016 [19] | Prospective study | CBCT | Suture opening; skeletal/dental expansion; alveolar bending; molar tipping; stability | T1–T3 (pre, post, 1-year) |
| Lim, 2017 [20] | Prospective clinical study | CBCT, casts | Suture opening; skeletal expansion; dental tipping; alveolar changes; stability | T1–T3 (pre, post, 6–12 mo) |
| Bud ES, 2021 [21] | Observational study | CBCT, casts, clinical | Dental tipping; alveolar changes; skeletal expansion; complications | T1–T2 (pre, post) |
| Madeeh S, 2023 [22] | Prospective study | CBCT | Dental tipping; transverse movement; side effects | T1–T2 |
| Marin CM, 2023 [23] | Prospective study | CBCT | Skeletal expansion; suture opening; tipping; age correlation | T1–T2 |
| Park, 2017 [24] | Prospective clinical study | CBCT | Suture opening; skeletal expansion; tipping; alveolar movement | T1–T2 |
| Clement, 2017 [25] | Prospective clinical study | CBCT | Suture opening; skeletal expansion; tipping; alveolar bone changes | T1–T2 |
| Ngan, 2018 [26] | Pilot clinical study | CBCT, periodontal exam | Suture opening; skeletal/dental expansion; alveolar thickness; periodontal changes | T1–T2 |
| Shin, 2019 [27] | Observational clinical study | CBCT | Suture opening; skeletal expansion; tipping; cortical thickness; predictors | T1–T2 |
| Annarumma F, 2021 [28] | Prospective comparative clinical study | CBCT | Suture opening; skeletal/dental expansion; tipping; alveolar changes; age comparison | T1–T2 |
| Lee, 2020 [29] | Prospective clinical | 3D stereophotogrammetry (+CBCT ref.) | Nasal width; alar widening; nasal volume | T1–T2 (short-terms) |
| Basu, 2023 [30] | Randomized clinical trial | CBCT | Suture opening; skeletal/dental expansion; tipping; corticopunture effect | T1–T2 |
| Choi, 2023 [31] | Randomized clinical trial | CBCT | Suture opening; skeletal/dental expansion; tipping; miniscrew length effect | T1–T2 |
| Wang, 2023 [32] | Prospective clinical study | CBCT | Suture opening; skeletal/dental expansion; alveolar changes; sagittal-type comparison | T1–T2 |
| Gokturk M, 2024 [33] | Prospective comparative clinical study | CBCT | Suture opening; skeletal/dental expansion; tipping; alveolar changes; appliance comparison | T1–T2 |
| Kapetanovic A, 2022 [34] | Prospective clinical cohort study | CBCT + intra-oral scans (IOS) | Skeletal expansion; alveolar expansion; dental expansion; buccal bone thinning; clinical crown height; periodontal side-effects | T1–T2 |
| Calil, 2020 [35] | Prospective clinical study | CBCT | Suture opening; skeletal/dental expansion; tipping; alveolar changes | T1–T2 |
| Nevada R, 2023 [36] | Prospective comparative clinical study | CBCT + periodontal eval. | Suture opening; skeletal/dental expansion; tipping; periodontal changes | T1–T2 |
| Ning R, 2023 [37] | Prospective comparative clinical study | CBCT | Suture opening; skeletal/dental expansion; tipping; appliance comparison | T1–T2 |
| Yoon A, 2022 [38] | Retrospective clinical analysis | Panoramic/CBCT | Complications; miniscrew failure; periodontal effects; adverse events | Post-treatment (retrospective) |
| Outcome | N. of Studies Reporting the Outcome | Approximate n. of Patients Assessed | Reported Range/Proportion | Assessment Method |
|---|---|---|---|---|
| Alveolar bone loss/thinning | 11/20 studies | 758 patients * | Ranged from mild thinning to more pronounced reductions, depending on anatomical site and measurement method. | CBCT, periodontal examination |
| Buccal alveolar bone dehiscence | 3/20 studies | Not consistently reported | Presence reported; quantitative prevalence varied across studies | CBCT, clinical examination |
| Failure of mid-palatal suture opening | 6/20 studies | Not consistently Reported | Proportion of patients with expansion failure varied across studies | CBCT, radiographic assessment |
| Study | Protocol of Expansion | Holding Period |
|---|---|---|
| Choi, 2016 [19] | t¼ turn activation (0.2 mm) every other day | 3 months |
| Lim, 2017 [20] | ¼ turn activation (0.2 mm) once a day | 4 months |
| Bud ES, 2021 [21] | 4/6 activations per day until the interincisor diastema opens, after 2 activations per day. | 2 months |
| Madeeh S, 2023 [22] | N/R | N/R |
| Marin CM, 2023 [23] | 1/4 turn in the morning and 1/4 turn in the evening | 4 months |
| Park, 2017 [24] | 1 turn activation per day | N/R |
| Clement, 2017 [25] | 2 turn activation per day | 4 months |
| Ngan, 2018 [26] | N/R | N/R |
| Shin, 2019 [27] | 1 turn activation per day | N/R |
| Annarumma F, 2021 | 2 turn activation per day | 12 months |
| * Lee, 2020 [29] | 1 turn activation per day | N/R |
| Basu, 2023 [30] | After application it was activated by 1/4 turn. Then 2 turns per day until the diastema appears. After that, 1 turn per day. | N/R |
| Choi, 2023 [31] | ¼ turn activation per day | 3 months |
| Wang, 2023 [32] | 1/2 activation per day until the diastema appears, later 1/4 turn. | 6 months |
| Gokturk M, 2024 [33] | N/R | N/R |
| Kapetanovic A, 2022 [34] | ¼ turn (0.25 mm) once a day | 3 months |
| Calil, 2020 [35] | 2/4 turn activation per day | 4 months |
| Naveda R, 2023 [36] | 1/4 turn activation per day twice a day | N/R |
| Ning R, 2023 [37] | N/R | 6 months |
| Yoon A, 2022 [38] | N/R | 4/6 months |
| Study | Study Bias from Randomization Process | Bias Due to Deviations from Intended Interventions | Bias Due to Missing Outcome Data | Bias in Measurement of the Outcomes | Bias in Selection of the Reported Result | Overall Rick of Bias |
|---|---|---|---|---|---|---|
| Basu, 2023 [30] | Low | Low | Moderate | Low | Some concern | Moderate |
| Choi, 2023 [31] | Low | Low | Some concern | Low | Some concern | Moderate |
| Study | Bias Due to Confounding | Bias in Selection of Participants | Bias in Classification of Interventions | Bias Due to Deviations from Intended Interventions | Bias Due to Missing Data | Bias in Measurement of Outcomes | Bias in Selection of the Reported Results | Overall Risk of Bias Judgment |
|---|---|---|---|---|---|---|---|---|
| Choi, 2016 [19] | Low | Low | NI | Low | NI | Moderate | Moderate | Serious |
| Lim, 2017 [20] | Low | Low | Low | Low | NI | Low | Moderate | Serious |
| Bud ES, 2021 [21] | Low | Low | NI | Low | Low | Moderate | Moderate | Serious |
| Madeeh S, 2023 [22] | Low | Low | NI | Low | Moderate | Moderate | Moderate | Serious |
| Marin CM, 2023 [23] | Low | Low | NI | Low | Moderate | Moderate | Moderate | Serious |
| Park, 2017 [24] | Low | Low | NI | Low | NI | Moderate | Moderate | Serious |
| Clement, 2017 [25] | Low | Low | NI | Low | Low | Moderate | Moderate | Serious |
| Ngan, 2018 [26] | Low | Low | NI | Low | Low | Moderate | Moderate | Serious |
| Shin, 2019 [27] | Low | Low | Low | Low | NI | Moderate | Moderate | Serious |
| Annarumma F, 2021 [28] | Low | Low | NI | Low | Moderate | Moderate | Moderate | Serious |
| Lee, 2020 [29] | Low | Low | NI | Low | NI | Moderate | Moderate | Serious |
| Wang, 2023 [32] | Low | Low | NI | Low | Moderate | Moderate | Moderate | Serious |
| Gokturk M, 2024 [33] | Low | Low | NI | Low | Low | Moderate | Moderate | Serious |
| Kapetanovic A, 2022 [34] | Low | Low | Low | Low | Low | Moderate | Moderate | Serious |
| Calil, 2020 [35] | Low | Low | NI | Low | Moderate | Moderate | Moderate | Serious |
| Nevada R, 2023 [36] | Low | Low | NI | Low | NI | Moderate | Moderate | Serious |
| Ning R, 2023 [37] | Low | Low | NI | Low | Moderate | Moderate | Moderate | Serious |
| Yoon A, 2022 [38] | Low | Low | Low | Low | Low | Moderate | Moderate | Moderate |
| Outcome | No. of Studies (Patients) | Assessment Methods | Main Limitations | Certainty of Evidence (GRADE) |
|---|---|---|---|---|
| Alveolar bone loss/thinning | 11 studies (~758 patients *) | CBCT, periodontal examination | Serious risk of bias, high heterogeneity, limited or absent follow-up | ⬤◯◯◯ Very low |
| Buccal alveolar bone dehiscence | 3 studies | CBCT, clinical examination | Very small sample sizes, serious imprecision | ⬤◯◯◯ Very low |
| Failure of mid-palatal suture opening | 6 studies | CBCT, radiographic assessment | Observational design, inconsistency, non-standardized follow-up | ⬤◯◯◯ Very low |
| Periodontal and gingival adverse events | 5 studies | Clinical and periodontal examination | Heterogeneous outcome definitions, reporting bias | ⬤◯◯◯ Very low |
| Device-related adverse events | 2 studies | Clinical examination | Very limited data, rare events, serious imprecision | ⬤◯◯◯ Very low |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 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.
Share and Cite
Frenna, B.; Grimaldi, R.; Fiandaca, S.; Basha, R.; Caprio, M.; Rizzo, G.E.M.; Verdecchia, A.; Spinas, E. Diagnostic Assessment of Periodontal and Dentoalveolar Complications Following Mini-Screw-Assisted Rapid Palatal Expansion in Adults and Late Adolescents: A Systematic Review. Diagnostics 2026, 16, 352. https://doi.org/10.3390/diagnostics16020352
Frenna B, Grimaldi R, Fiandaca S, Basha R, Caprio M, Rizzo GEM, Verdecchia A, Spinas E. Diagnostic Assessment of Periodontal and Dentoalveolar Complications Following Mini-Screw-Assisted Rapid Palatal Expansion in Adults and Late Adolescents: A Systematic Review. Diagnostics. 2026; 16(2):352. https://doi.org/10.3390/diagnostics16020352
Chicago/Turabian StyleFrenna, Barbara, Raffaella Grimaldi, Salvatore Fiandaca, Renisa Basha, Monica Caprio, Giacomo Emanuele Maria Rizzo, Alessio Verdecchia, and Enrico Spinas. 2026. "Diagnostic Assessment of Periodontal and Dentoalveolar Complications Following Mini-Screw-Assisted Rapid Palatal Expansion in Adults and Late Adolescents: A Systematic Review" Diagnostics 16, no. 2: 352. https://doi.org/10.3390/diagnostics16020352
APA StyleFrenna, B., Grimaldi, R., Fiandaca, S., Basha, R., Caprio, M., Rizzo, G. E. M., Verdecchia, A., & Spinas, E. (2026). Diagnostic Assessment of Periodontal and Dentoalveolar Complications Following Mini-Screw-Assisted Rapid Palatal Expansion in Adults and Late Adolescents: A Systematic Review. Diagnostics, 16(2), 352. https://doi.org/10.3390/diagnostics16020352

