Saint Joseph University of Beirut
Beirut, 1000, Lebanon
Location status: Recruiting
NCT Number: NCT07526337
Maxillary posterior area is the most challenging site for dental implant placement. Indeed, complex remodeling processes, resulting in changes of the maxillary sinus and shape of the alveolar ridge will cause difficulties in rehabilitating the posterior maxillae sites. Various techniques have been proposed in order to achieve the necessary bone volume for the placement of long term successful implants. However, unbalanced crown to implant ratio remains a risk factor after successful dental implants installation following sinus graft. No study on humans assessed the effect of apical positioning of the implants in posterior grafted sites (sinus graft or sinus graft + vertical GBR) on the following clinical parameters: The peri-implant bone remodeling (vertical bone loss (mm) and probing depth (mm) around the implants, crown bulkiness, emergence profile and crown height, and Patients satisfaction, food impaction (PROM)).
This study will elucidate these points and based on the parameter's results, suggest a treatment based classification facilitating the treatment decision-making of the clinicians in case of an atrophic posterior maxilla; aiming to ensure a long-term successful supra-implant rehabilitation which will maintain its bio-mechanically and biological success.
Interested in participating?
Request Info18 year and older
All sexes
Observational
Beirut, 1000, Lebanon
Location status: Recruiting
Director:
Pr. Nadim Mokbel, DDS, MSc, PhD Department of Periodontology, Faculty of Dental Medicine, Saint Joseph University of Beirut, Beirut, Lebanon [email protected]
Co-director:
Dr. Abdel Rahman Kassir, DDS, MSc Department of Periodontology, Faculty of Dental Medicine, Saint Joseph University of Beirut, Beirut, Lebanon [email protected]
Main Researcher:
Dr Joseph Younes, DDS Department of Periodontology, Faculty of Dental Medicine, Saint Joseph University of Beirut, Beirut, Lebanon [email protected]
Contributor roles in publications:
Postgraduate student, Department of Periodontology, Faculty of Dental Medicine, Saint Joseph University of Beirut, Beirut, Lebanon
Department of Periodontology, Faculty of Dental Medicine, Saint Joseph University of Beirut, Beirut, Lebanon
Cranio-Facial Research Laboratory, Faculty of Dental Medicine, Saint Joseph University of Beirut, Beirut, Lebanon.
Department of Periodontology, Faculty of Dental Medicine, Saint Joseph University of Beirut, Beirut, Lebanon
Department of Periodontology, Faculty of Dental Medicine, Saint Joseph University of Beirut, Beirut, Lebanon
Self-funded by the researcher
Alveolar bone atrophy, digital planning, guided bone regeneration, maxillary sinus, peri-implant disease, peri-implantitis, sinus floor augmentation.
Background:
Pneumatization of the maxillary sinus limits the quantity of alveolar bone available for implant placement and may result in a lack of primary stability and difficulty in achieving osseointegration(1).
Indeed, the maxillary posterior area is the most challenging site for dental implant placement. Residual ridge resorption (RRR) after tooth loss is the combined result of complex remodeling processes, resulting in changes in the maxillary sinus and shape of the alveolar ridge(2,3). These morphometric changes have a big impact on the subsequent pre-prosthetic treatment and thus the focus of research since the early days of implant therapy in dentistry. The prevalence of sinus augmentation associated to implant rehabilitation was defined as 54.2% of the cases(4).
Various techniques have been proposed in order to achieve the necessary bone volume for the placement of long term successful implants: Sinus grafting, Crestal bone augmentation achieved through vertical GBR or autogenous blocks or allografts(5).
Although the sinus graft is very often used as a predictable and successful technique for rehabilitation of atrophic and pneumatized posterior maxilla, some challenges may arise in the case of an advanced atrophic maxilla. An unbalanced crown-to-implant ratio remains a risk factor after successful dental implants installation following sinus graft(6,7). This being said, there is a need to perform a "crestal" vertical augmentation of the maxillary posterior alveolar ridge either combined or not to a sinus grafting technique.
The vertical crestal augmentation is recommended especially in case of severe atrophy which result in a deeper position of the implant neck (compared to the CEJ) where authors found that those implants showed more peri-implant bone loss (less success rate) (1,7).
Augmentation technique's selection relies on a detailed pre-operative clinical and radiographic assessment of the area. Following this evaluation, the clinician will be able to select the optimal solution to ensure sustainable long-term implant rehabilitations. Several classifications based on radiological features or bone morphometry have been proposed to simplify the description of jaw resorption conditions and to facilitate the communication between clinicians(2,3,7-12). Together, these classifications provide complete guidelines for rehabilitation of the edentulous posterior maxilla but independently they are incomplete. Moreover, the implant treatment guidelines nowadays evolved. Additionally, the evolution of bone regeneration techniques made the management of both horizontal and vertical defects more predictable. This has led to the management of severe atrophic defects to obtain a satisfactory prosthetic outcome. Additionally, digitalization in dentistry is a helpful tool to plan the requirement of each clinical case and simulate the prosthetic outcome.
The goal of our study is to evaluate the long-term success of implants placed in atrophic posterior maxillae treated with sinus grafting originally needing vertical bone augmentation.
As a secondary objective, a digital assessment of the ideal bone augmentation project in the treated atrophic patients will be done. The recent use of milled or printed bone regenerative scaffolds (based on well-defined volumetric bone contour) will simplify and potentially add contemporary guidelines leading to a novel bone augmentation classification (when compared to Wang, Simion et al.).
This study will elucidate these points and based on the parameter's results, suggest a treatment based classification facilitating the treatment decision-making of the clinicians in case of an atrophic posterior maxilla; aiming to ensure a long-term successful supra-implant rehabilitation which will maintain its bio-mechanically and biological success.
Primary objective:
-To clinically and radiographically evaluate the long-term success of the implants placed in atrophic posterior maxillae.
Secondary objectives:
A total of 125 implants will be included in the study. Patients will be recalled for examination:
We will measure radiographically the peri-implant marginal bone remodeling (mm) using as a reference the platform of the implant to the first bone to implant contact. We will then measure the peri-implant probing depth (mm) with a Hu-Friedy Perio Probe PCP UNC15
Figure 1. Measurement of the emergence angle. Lm: the implant's long axis line in the mesial site; Ld: the implant's long axis line in the distal site; Pm: the lines tangent to the contour of the prosthesis of the mesial site; Pd: the lines tangent to the contour of the prosthesis of the distal site; ∠M: prosthetic emergence angle of the mesial site; ∠D: prosthetic emergence angle of the distal site.
B. A questionnaire will be given to the patients clinically evaluated and consists of 4 questions:
C. A digital analysis of CBCTs:
It will be done by Exporting the CBCT Dicom files to 3D Slicer and Bluesky Bio Softwares.
The following measurements will be done:
A- The sub-sinus Residual Bone Height. B- Distance from the CEJ of neighboring teeth to the top of the Crest. C- Digital Drawing of the prosthetic project. D- 3D Digital Drawing of the Bone Crest Curve. E- The distance of the Top of the Crest and the Sinus floor. F- Distance from the crestal edge to the ideal crown position. G- 3D digital simulation of bone graft shape (Allogenic or xenogenic Bone blocks or rigid, reinforced membranes or innovative digitally-designed (Yxoss, or printed material housing (zircone or Peek)).
Wax up (according to the distance between the CEJ line and the bone crest, and the Spee curve) and the implant placement simulations)
Drawing of the CEJ line and the vertical line (distance between the residual crest to the wax up teeth)
Drawing of the vertical line between the residual crest and the sinus floor
Depending on the results obtained, we will propose a classification facilitating the treatment decision-making of the clinicians in atrophic posterior maxillae.
12.2. Description of study population
Sample size:
To calculate the sample size required we will be using Epi Info 7 StatCalc functions for a population survey. In the absence of similar studies, we will assume an expected frequency of perfect success of an implant in our case to be 20%. Based on the 20% expected frequency, a confidence interval of 95%, a margin of error 7%, the minimal sample size calculated for the current study to achieve representative sample will be 125 implants.
Inclusion criteria
Exclusion criteria
12.3. Description of the variables
Primary variable:
Secondary Variables:
Source of the variables:
The variables will be collected by doing appropriate measurements on different employed softwares (Blue Sky Bio, Medit Design, Meshmixer, 3D Slicer) using DICOM files from CBCT scans.
Statistical tests:
Data is analyzed using IBM SPSS Statistics for Windows (Version 26) (IBM Corp., Armonk, NY, USA).
All tests are two-tailed, and the level of significance alpha is set at 5%.
Additionally, based on the clinical results. we will ultimately propose an updated treatment-guided-classification that will supplement novel guidelines for implant rehabilitation combined with contemporary regenerative procedures
2013 Dec [cited 2025 Jan 6];39(6):680-8. Available from: https://pubmed.ncbi.nlm.nih.gov/21651386/ 5. Long-term evaluation of osseointegrated implants placed in sites augmented with sinus floor elevation associated with vertical ridge augmentation: a retrospective study of 38 consecutive implants with 1- to 7-year follow-up - PubMed [Internet]. [cited 2025 Jan 6].
Available from: https://pubmed.ncbi.nlm.nih.gov/15227769/ 6. Mailoa J, Fu JH, Chan HL, Khoshkam V, Li J, Wang HL. The Effect of Vertical Implant Position in Relation to Adjacent Teeth on Marginal Bone Loss in Posterior Arches: A Retrospective Study. Int J Oral Maxillofac Implants [Internet]. 2015 Jul [cited 2025 Jan 6];30(4):931-6. Available from: https://pubmed.ncbi.nlm.nih.gov/26252046/ 7. Papadimitriou D, Salari S, Gannam C, Gallucci G, Friedland B. Implant-prosthodontic classification of the edentulous jaw for treatment planning with fixed rehabilitations. Int J
Prosthodont [Internet]. 2014 Jul [cited 2024 Nov 17];27(4):320-7. Available from:
https://pubmed.ncbi.nlm.nih.gov/25010874/ 8. ABC sinus augmentation classification - PubMed [Internet]. [cited 2024 Nov 17].
Available from: https://pubmed.ncbi.nlm.nih.gov/18717377/ 9. Tolstunov L, Thai D, Arellano L. Implant-guided volumetric analysis of edentulous maxillary bone with cone-beam computerized tomography scan. Maxillary sinus pneumatization classification. Journal of Oral Implantology. 2012 Aug;38(4):377-90.
Available from: https://pubmed.ncbi.nlm.nih.gov/9081248/ 12. Cawood JI, Howell RA. A classification of the edentulous jaws. Int J Oral Maxillofac
Surg [Internet]. 1988 [cited 2024 Nov 17];17(4):232-6. Available from:
Healthy volunteers accepted: Yes
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Time frame: 3 years
Recorded at the mesial and distal aspect of each implant. The distance from the implant-abutment interface to the first bone-to-implant contact (bone level) was assessed on peri-apical radiographs taken with the long cone paralleling technique that were taken during the recall visits (after implant loading). Bone Level values were calibrated according to the actual implant length, following the next formula, according to Chen et al. 2023: (99)
The BL was measured at the mesial (M) and distal (D) aspects of each implant at baseline (initial bone level, IBL) and follow-up (final bone level, FBL). The change in MBL was calculated as the difference between the mean FBL and mean IBL. The following formulas were used: (99).
Time frame: 1 week
is measured with the periodontal probe Hu-Friedy Periodontal Probe PCP UNC15 (Hu-Friedy, Chicago, Illinois), going parallel to the axis of the implant to the nearest 0.5 mm, at 6 different sites per implant (mesiobuccal, buccal, distobuccal, mesiopalatal, palatal, distopalatal)
Time frame: 1 week
analyzed 15 seconds following pocket probing around 6 sites per implant.
Time frame: 1 week
at the buccal aspect of every implant with a periodontal probe
Time frame: 1 week
The crown-to-implant ratio was determined by dividing the length of the superstructure (crown and the abutment) by the length of the implant that was placed crestally.
Time frame: 1 week
of the fixed dental prosthesis (FDPs) on implants, using a periodontal probe.
Time frame: 1 week
The supra-implant restoration bulkiness and height (mm) will be measured by measuring the emergence profile angle. A straight line will be drawn along the mesial and distal edge of the long axis of the implant, and the included angle between the lines tangent to the contour of the prosthesis is the emergence angle, and the mesial and distal emergence angles of the prosthesis are measured.
Time frame: 1 week
Patient reported outcomes (PROMs) were evaluated by means of a questionnaire that was handed out during the examination visit. In order to assess patients' perception of esthetic appearance, discomfort, food impaction and overall ease of the hygiene maintenance, a visual analogue score (VAS) ranging from 0 to 10 was used (fig 6).
Contact information is provided by the study sponsor or research team.
Saint-Joseph University
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