A Novel Guided Zygomatic and Pterygoid Implant Surgery System: A Human Cadaver Study on Accuracy

The aim of this human cadaver study was to assess the accuracy of zygomatic/pterygoid implant placement using custom-made bone-supported laser sintered titanium templates. For this purpose, pre-surgical planning was done on computed tomography scans of each cadaver. Surgical guides were printed using direct metal laser sintering technology. Four zygomatic and two pterygoid implants were inserted in each case using the guided protocol and related tools. Post-operative computed tomography (CT) scans were obtained to evaluate deviations between the planned and inserted implants. Accuracy was measured by overlaying the real position in the post-operative CT on the virtual presurgical placement of the implant in a CT image. Descriptive and bivariate analyses of the data were performed. As a result, a total of 40 zygomatic and 20 pterygoid implants were inserted in 10 cadavers. The mean deviations between the planned and the placed zygomatic and pterygoid implants were respectively (mean ± SD): 1.69° ± 1.12° and 4.15° ± 3.53° for angular deviation. Linear distance deviations: 0.93 mm ± 1.23 mm and 1.35 mm ± 1.45 mm at platform depth, 1.35 mm ± 0.78 mm and 1.81 mm ± 1.47 mm at apical plane, 1.07 mm ± 1.47 mm and 1.22 mm ± 1.44 mm for apical depth. In conclusion, the surgical guide system showed accuracy for all the variables studied and allowed acceptable and accurate implant placement regardless of the case complexity.


Introduction
The goal of every surgical procedure, including implantology, is to achieve the planned result after carefully evaluating the cost-benefit ratio. Many variables can be influential on the design of the project and the accuracy of the outcomes. The accuracy of the diagnostic phase, the quality of the materials used, the operator's skills and expertise are all essential factors, and together with the advances in technology and the progressive improvement in the development of the devices used, allow one to achieve optimal clinical outcomes [1][2][3][4]. reasonable to increase the safety and the accuracy. It is still difficult to achieve the correct driven angle of zygomatic osteotomies, and additional researches with randomized clinical trials are needed to assess the predictability of these procedures [13,40,41].
The aim of this cadaver study was to analyze zygomatic and pterygoid implant deviations when applying a novel surgical guide protocol for ZI/PI surgery, as an alternative to free hand placement. The accuracy was evaluated by merging the pre-operative and post-operative CT scan datasets to assess the effect of this novel surgical guide on implant deviations.

Materials and Methods
This study evaluates accuracy of zygomatic and pterygoid implant insertions, during a practical training on human cadavers with unexperienced surgeons (in zygomatic implant insertions). A total of 4 zygomatic and 2 pterygoid implants were placed in each cadaver's head (10 cadaver heads in total), using DMLS (Direct Metal Laser Sintering) 3D printed titanium surgical templates.
The cadavers were donated by individuals for their use in scientific purposes and an official laboratory permission to work on cadavers was obtained from Italian competent authority (Prot. Nr 08-05 Maggio 2021). Common rules/guidelines applied in European Union which was used in this study while working on cadavers were as follows: • Cadavers were treated with respect at all times • A professional attitude was applied during all lab procedures • Human cadaver material was not removed from the laboratory under any circumstances.

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No photographs or video cameras were used in the laboratory • Only health professionals enrolled in the course and instructors entered the lab • All cadaver material remained at the assigned dissection table • Incomplete dissections or intentional destruction of dissected structures was considered unprofessional behavior and work area was kept as clean as possible.
The guide design was performed by a clinical plan based on the CT scan of each maxilla. The CT scan Gantry tilt was 0 • and slices thickness were 0.4 mm. After implant insertions, a new CT scan was carried out to compare deviations between planned and achieved implants. Accuracy was measured by overlaying the real implant position in the postoperative CT on the virtual presurgical placement of the implants in the preoperative CT scan. The accuracy evaluation involved angular and linear (coronal, apical and depth) deviations.

Presurgical Procedure
In brief, a pre-operative CT scan was taken for each cadaver and the resulting DICOM files were segmented, forming STL (Standard Triangulation Language) files. Using a dedicated planning software, both zygomatic (ZI) and pterygoid implants (PI) were planned ( Figure 1) and the surgical templates were designed (Figures 2 and 3). Each STL file of the maxillary bone with planned zygomatic and pterygoid implants became the baseline for the post-operative comparison. A post-operative CT scan of each cadaver's head with implants was taken after the surgery.    The DICOM images of the post-operative CT were uploaded in a dedi (mimics Medical 19.0, Materialise Dental, Leuven, Belgium). Segmentatio sue density was carried out in order to separate implants from the surroun The STL files of the maxillary bone with the planned implants, which from the first CT scan, were uploaded into the software. The superimposi op and post-op CT images was achieved by using the best fit alignment and 5).    The DICOM images of the post-operative CT were uploaded in a dedi (mimics Medical 19.0, Materialise Dental, Leuven, Belgium). Segmentatio sue density was carried out in order to separate implants from the surroun The STL files of the maxillary bone with the planned implants, which from the first CT scan, were uploaded into the software. The superimposit op and post-op CT images was achieved by using the best fit alignment and 5).    The DICOM images of the post-operative CT were uploaded in a dedi (mimics Medical 19.0, Materialise Dental, Leuven, Belgium). Segmentatio sue density was carried out in order to separate implants from the surroun The STL files of the maxillary bone with the planned implants, which from the first CT scan, were uploaded into the software. The superimposit op and post-op CT images was achieved by using the best fit alignment and 5). The DICOM images of the post-operative CT were uploaded in a dedicated software (mimics Medical 19.0, Materialise Dental, Leuven, Belgium). Segmentation based on tissue density was carried out in order to separate implants from the surrounding bone.
The STL files of the maxillary bone with the planned implants, which were obtained from the first CT scan, were uploaded into the software. The superimposition of the pre-op and post-op CT images was achieved by using the best fit alignment tool (Figures 4 and 5).  The planned and inserted implants were considered as cones with a base and an apex and their spatial coordinates (the center of the base and the apex) were registered by using a dedicated software (3-matic Medical 11.0, Materialise Dental, Leuven, Belgium) and were exported in an excel sheet in order to calculate coronal, apical, depth and angular deviations.
A diagnostic CT scan was performed to evaluate the residual maxillary bone anatomy in order to determine the location of ZI/PI sites using a 3D planning software. The implants' angulations, positions, and dimensions as well as the inclinations of the   The planned and inserted implants were considered as cones with a base and an apex and their spatial coordinates (the center of the base and the apex) were registered by using a dedicated software (3-matic Medical 11.0, Materialise Dental, Leuven, Belgium) and were exported in an excel sheet in order to calculate coronal, apical, depth and angular deviations.
A diagnostic CT scan was performed to evaluate the residual maxillary bone anatomy in order to determine the location of ZI/PI sites using a 3D planning software. The implants' angulations, positions, and dimensions as well as the inclinations of the The planned and inserted implants were considered as cones with a base and an apex and their spatial coordinates (the center of the base and the apex) were registered by using a dedicated software (3-matic Medical 11.0, Materialise Dental, Leuven, Belgium) and were exported in an excel sheet in order to calculate coronal, apical, depth and angular deviations.
A diagnostic CT scan was performed to evaluate the residual maxillary bone anatomy in order to determine the location of ZI/PI sites using a 3D planning software. The implants' angulations, positions, and dimensions as well as the inclinations of the multi-unit-abutments (MUA) were carried out using a dedicated implant surgical software (EZplan Real Guide, NORİS medical).
The ZIs were planned with an extra-sinus path with a lateral upward angulation of 45-60 degrees from the vertical axis. The implant's apex was positioned to pass through the zygomatic bone in a bi-cortical manner in order to obtain the maximum anchorage. PIs entry points were designed to be 10-12 mm posterior to the tuberosity and the angulation was adjusted to join the pterygoid medial plate.
Once the surgical plan was defined, the data set allowed to design a CT-derived bone supported surgical guide with a novel layout and showed an optimal stability. To do that, the designed guide was exported as a STL (standard triangulation language) file to be fabricated using 3D printing processes.

EZgoma Principle
The EZgoma guide is an apparatus for the placement of zygomatic implants previously planned by a dedicated software. The guide provided two separate supports for two ZIs on one side ( Figure 6). Each support had a cylindric form divided into two parts (upper support on the buccal part and lower support on the palatal part). The lower support worked with the upper support creating an efficient system to avoid the bending momentum due to the rotational movement of the bur during drilling, which also allowed the alignment of the burs to the cylindric body. multi-unit-abutments (MUA) were carried out using a dedicated implant surgical software (EZplan Real Guide, NORİS medical). The ZIs were planned with an extra-sinus path with a lateral upward angulation of 45-60 degrees from the vertical axis. The implant's apex was positioned to pass through the zygomatic bone in a bi-cortical manner in order to obtain the maximum anchorage. PIs entry points were designed to be 10-12 mm posterior to the tuberosity and the angulation was adjusted to join the pterygoid medial plate.
Once the surgical plan was defined, the data set allowed to design a CT-derived bone supported surgical guide with a novel layout and showed an optimal stability. To do that, the designed guide was exported as a STL (standard triangulation language) file to be fabricated using 3D printing processes.

EZgoma Principle
The EZgoma guide is an apparatus for the placement of zygomatic implants previously planned by a dedicated software. The guide provided two separate supports for two ZIs on one side ( Figure 6). Each support had a cylindric form divided into two parts (upper support on the buccal part and lower support on the palatal part). The lower support worked with the upper support creating an efficient system to avoid the bending momentum due to the rotational movement of the bur during drilling, which also allowed the alignment of the burs to the cylindric body. Figure 6. The 3D printed titanium surgical guide provides the support for the burs. Attention is paid to the supports which are designed in two parts, as upper and lower, in order to allow the surgeon to have a comfortable approach and to avoid a bur's stop.

EZgoma Procedure
A palatal incision was carried out in the maxillary soft tissues with bilateral vertical posterior releasing incisions. The muco-periosteal flap was elevated to expose the alveolar crest, the piriform aperture, the lateral wall of the maxillary sinus, the infraorbital nerve emergence, the tuber maxilla, the central and the posterior part of the zygomatic complex ( Figure 7). Figure 6. The 3D printed titanium surgical guide provides the support for the burs. Attention is paid to the supports which are designed in two parts, as upper and lower, in order to allow the surgeon to have a comfortable approach and to avoid a bur's stop.

EZgoma Procedure
A palatal incision was carried out in the maxillary soft tissues with bilateral vertical posterior releasing incisions. The muco-periosteal flap was elevated to expose the alveolar crest, the piriform aperture, the lateral wall of the maxillary sinus, the infraorbital nerve emergence, the tuber maxilla, the central and the posterior part of the zygomatic complex ( Figure 7). The bone-supported surgical drill guide was placed and fixed with th ameter mono-cortical osteosynthesis screws. These screws provided a stab guide to the bone, preventing any tilting, which is crucial for the success surgery ( Figure 8).

Pterygoid Implant Protocol
When pterygoid implants are planned in addition to zygomatic one mended to start the procedure with pterygoid implants placement in order plants as anchor pin, in addition to the screw fixation.
The pterygoid osteotomy was performed by a long 2.8 mm diameter d a reduction spoon placed in a long sleeve defining the planned drilling marks on the drills were used to check the drilling depth ( Figure 9). The bone-supported surgical drill guide was placed and fixed with three 1.6 mm diameter mono-cortical osteosynthesis screws. These screws provided a stable fitting of the guide to the bone, preventing any tilting, which is crucial for the success of the guided surgery ( Figure 8).  The bone-supported surgical drill guide was placed and fixed with th ameter mono-cortical osteosynthesis screws. These screws provided a stab guide to the bone, preventing any tilting, which is crucial for the success surgery ( Figure 8).

Pterygoid Implant Protocol
When pterygoid implants are planned in addition to zygomatic on mended to start the procedure with pterygoid implants placement in orde plants as anchor pin, in addition to the screw fixation.
The pterygoid osteotomy was performed by a long 2.8 mm diameter d a reduction spoon placed in a long sleeve defining the planned drilling marks on the drills were used to check the drilling depth ( Figure 9).

Pterygoid Implant Protocol
When pterygoid implants are planned in addition to zygomatic ones, it is recommended to start the procedure with pterygoid implants placement in order to use the implants as anchor pin, in addition to the screw fixation.
The pterygoid osteotomy was performed by a long 2.8 mm diameter drill, used with a reduction spoon placed in a long sleeve defining the planned drilling direction. The marks on the drills were used to check the drilling depth ( Figure 9). mended to start the procedure with pterygoid implants placement in order plants as anchor pin, in addition to the screw fixation.
The pterygoid osteotomy was performed by a long 2.8 mm diameter d a reduction spoon placed in a long sleeve defining the planned drilling marks on the drills were used to check the drilling depth ( Figure 9).

Zygomatic Protocol
After the surgical guide was fixed, the implant site preparation continued with a spherical diamond bur (∅4.2 mm) to create a notch in the bone ( Figure 12) facilitating the bone approach of the next cylindric diamond bur ( Figure 13). Figure 11. Pterygoid implant was placed by an implant mount that allow to positio planned.

Zygomatic Protocol
After the surgical guide was fixed, the implant site preparation con spherical diamond bur (∅4.2 mm) to create a notch in the bone (Figure 12) bone approach of the next cylindric diamond bur ( Figure 13).  The cylindric diamond bur was used to create a cylindric groove in of the maxillary sinus to enable the drilling tools to complete the osteotomy adequate bone support to the zygomatic implant. The cylindric diamond placed between the bone and the upper support of the guide, that worke for the medial movement of the bur against the sinus lateral wall, that wa the bur was seated on the lower support. (Figure 13). A 4.2 mm diameter drill was positioned between the guide supports wards up to a mark on the drill (Figure 14), removing the remaining bone u support to allow a free setting of the following centering spoon. The cylindric diamond bur was used to create a cylindric groove in the lateral wall of the maxillary sinus to enable the drilling tools to complete the osteotomy and to provide adequate bone support to the zygomatic implant. The cylindric diamond bur's tip was placed between the bone and the upper support of the guide, that worked as a fulcrum for the medial movement of the bur against the sinus lateral wall, that was grinded until the bur was seated on the lower support. (Figure 13). A 4.2 mm diameter drill was positioned between the guide supports and driven inwards up to a mark on the drill (Figure 14), removing the remaining bone under the upper support to allow a free setting of the following centering spoon.
for the medial movement of the bur against the sinus lateral wall, that wa the bur was seated on the lower support. (Figure 13). A 4.2 mm diameter drill was positioned between the guide supports wards up to a mark on the drill (Figure 14), removing the remaining bone u support to allow a free setting of the following centering spoon. The centering spoon ( Figure 15) was placed in order to allow the bon tion with a 3 mm internal diameter. A centric drilling is always suggested spect the original planning and to avoid a final implant deviation higher t drilling depth was determined once the drill was stopped by the spoon slee The centering spoon ( Figure 15) was placed in order to allow the bone site preparation with a 3 mm internal diameter. A centric drilling is always suggested in order to respect the original planning and to avoid a final implant deviation higher than usual. The drilling depth was determined once the drill was stopped by the spoon sleeve ( Figure 16). the bur was seated on the lower support. (Figure 13). A 4.2 mm diameter drill was positioned between the guide supports wards up to a mark on the drill (Figure 14), removing the remaining bone u support to allow a free setting of the following centering spoon. The centering spoon ( Figure 15) was placed in order to allow the bon tion with a 3 mm internal diameter. A centric drilling is always suggested spect the original planning and to avoid a final implant deviation higher t drilling depth was determined once the drill was stopped by the spoon slee      A depth probe was inserted into the osteotomy through the guide an the osteotomy was assessed aligning the planned line on the probe with th guide (Figure 19).    A depth probe was inserted into the osteotomy through the guide an the osteotomy was assessed aligning the planned line on the probe with th guide (Figure 19).  An implant driver was used to perform the implant's seating until it position was aligned with the mark on the guide and the head geometry control its final alignment. Moreover, a pin was also used to definitely orie thetic connection as planned, in order to respect the following correct pla selected angulated abutment ( Figure 21).
Finally, the surgical guide was removed simply unscrewing the two f  An implant driver was used to perform the implant's seating until it position was aligned with the mark on the guide and the head geometry control its final alignment. Moreover, a pin was also used to definitely orie thetic connection as planned, in order to respect the following correct pla selected angulated abutment ( Figure 21).
Finally, the surgical guide was removed simply unscrewing the two fi An implant driver was used to perform the implant's seating until its final vertical position was aligned with the mark on the guide and the head geometry was helpful to control its final alignment. Moreover, a pin was also used to definitely orientate the prosthetic connection as planned, in order to respect the following correct placement of the selected angulated abutment (Figure 21). The above-mentioned guided approach allowed the placement of t abutment on the implants before the surgical guide was removed (Figures  Finally, the surgical guide was removed simply unscrewing the two fixation screws. The above-mentioned guided approach allowed the placement of the multi-unitabutment on the implants before the surgical guide was removed (Figures 22 and 23). The above-mentioned guided approach allowed the placement of t abutment on the implants before the surgical guide was removed (Figures

Results
A database was created using Excel (Microsoft, Redmond, WA, USA). Data were evaluated using standard statistical analysis software (version 20.0, Statistical Package for the Social Sciences, IBM Corporation, Armonk, NY, USA).
Descriptive statistics including minimum and maximum values and mean ± SD values were calculated for each variable, and box plots were used to evaluate data outliers. The Shapiro-Wilk test was used to determine whether or not the data conformed to a normal distribution.
The independent-samples t-test was used to identify statistically significant differences in the accuracy of zygomatic implants compared to pterygoid implants and to evaluate differences in the intragroup analysis between implants positioned on the right and the left sides of the maxilla.
In each test, the cut-off for statistical significance was p ≤ 0.05. In total, 10 cadavers were used for the study. In each cadaver heads were inserted four zygomatic implants, two for the left and two for the right side, and two pterygoid implants, one for each side (for a total of 40 zygomatic and 20 pterygoid implants).
The mean differences in the platform plane, platform depth, apical plane, apical depth and angle position between the zygomatic and pterygoid implants compared to the virtual implant planning are reported in Table 1 and Figure 24.

Discussion
In order to prevent possible complications of implantology, numerous authors have proposed surgical navigation systems with the support of techniques aimed at increasing precision and decreasing the risks. In this study, an innovative system used for a safe placement of zygomatic and pterygoid implants is reported. Each implant was carefully planned, starting from a virtual plan, based on a 3-D CT-scan, using a specific software. The surgeries were carried out by innovative customized 3-D printed surgical guides and a dedicated surgical kit.
The free hand extra-sinus drilling protocol for zygomatic implants requires a threedimensional visualization of the anatomy. The first step is to define the position of the multi-unit-abutment that have to be attached to the zygomatic implant on the alveolar ridge. Tracking a line connecting the entry point of the implant at the bone crest level with the zygomatic bone, it is possible to define the path of the bone preparation. Zygomatic and pterygoid implant insertions can be affected by many risks occurring during their planning and performing. Clear setting of the entrance point, trajectory path, and exit point of the implants, combined with a successful transition from the implant planning to the surgical phase, are all crucial factors [17,18,40].
This study tested a bone-supported technique that consists of a single sintered titanium template, placed during all the surgical procedures and clinically validated by the data emerging from the overlapping of the pre-operative planning with the post-operative CT of the specimens' heads (Tables 1 and 2).
The success of a guided procedure mostly depends on the precise position of the guide on the hard or soft tissues. Particularly, in cases of severe atrophic maxilla, it might be quite difficult to maintain the stability of the surgical guide throughout the whole drilling procedure [42]. A screw-retained surgical guide, fabricated with CAD-CAM (computer-aided design and computer aided manufacturing) technology, seems to make it feasible to ensure the accuracy and the safety of the final results [36,37,39,40]. The guide thus The independent-samples t-test showed no statistically significant mean difference in the platform plane, platform depth, apical plane, apical depth and a significant mean difference in the angle (p = 0.006) of zygomatic versus pterygoid implants (Table 1).
No difference was found in the accuracy between the left and right side in both zygomatic and pterygoid implants ( Table 2).

Discussion
In order to prevent possible complications of implantology, numerous authors have proposed surgical navigation systems with the support of techniques aimed at increasing precision and decreasing the risks. In this study, an innovative system used for a safe placement of zygomatic and pterygoid implants is reported. Each implant was carefully planned, starting from a virtual plan, based on a 3-D CT-scan, using a specific software. The surgeries were carried out by innovative customized 3-D printed surgical guides and a dedicated surgical kit.
The free hand extra-sinus drilling protocol for zygomatic implants requires a threedimensional visualization of the anatomy. The first step is to define the position of the multi-unit-abutment that have to be attached to the zygomatic implant on the alveolar ridge. Tracking a line connecting the entry point of the implant at the bone crest level with the zygomatic bone, it is possible to define the path of the bone preparation. Zygomatic and pterygoid implant insertions can be affected by many risks occurring during their planning and performing. Clear setting of the entrance point, trajectory path, and exit point of the implants, combined with a successful transition from the implant planning to the surgical phase, are all crucial factors [17,18,40].
This study tested a bone-supported technique that consists of a single sintered titanium template, placed during all the surgical procedures and clinically validated by the data emerging from the overlapping of the pre-operative planning with the post-operative CT of the specimens' heads (Tables 1 and 2).
The success of a guided procedure mostly depends on the precise position of the guide on the hard or soft tissues. Particularly, in cases of severe atrophic maxilla, it might be quite difficult to maintain the stability of the surgical guide throughout the whole drilling procedure [42]. A screw-retained surgical guide, fabricated with CAD-CAM (computeraided design and computer aided manufacturing) technology, seems to make it feasible to ensure the accuracy and the safety of the final results [36,37,39,40]. The guide thus constructed was placed on the anterolateral wall of the maxilla and fixed to the bone surface by means of 3 screws with a diameter of 1.6 mm and was removed after implants and multi-unit-abutments were correctly placed. No additional nor more aggressive procedures were needed in terms of surgical access to the maxillary sinus.
A surgical guide for the placement of zygomatic implants fabricated in the same manner as conventional dental implants is considered less reliable, as these implants are significantly longer (35-60 mm) compared to conventional dental implants. Due to this fact, a slight error in the drill path direction and in the angular deviation can significantly alter the trajectory, the positions of the apex and the divergence at the exit point. In the event of deviations in zygomatic implant placement, the consequences can be much more serious than the complications of conventional implantology [37,41,42].
The use of the bone tissue as a supporting base has been considered mandatory, as well as the use of a rigid structural material as titanium, for the guide manufacturing, as both make it feasible to transfer the plan with absolute precision to the implant site. Moreover, due to the path of these extra-sinus long fixtures, a mucosal-supported guide cannot be feasible.
The guided templates for conventional implants, even the most advanced, provide occlusal sleeves to guide burs during osteotomy. The length of the above-mentioned sleeves usually ranges from 4 to 6 mm and they are suitable for implants within 15 mm. Besides, a 35 mm to 60 mm zygomatic sleeve would be exposed to the consistent risk that the bur may get stuck and may reduce handling.
The EZgoma inverted support system overcomes these difficulties by reducing the overall dimensions of the device, as it is based on a single bone-supported template consisting of two open, opposite half-sleeves, connected by a double track, in which it is possible to house the drills with extreme precision with a standard handpiece for low speed implantology. This is unconventional if compared with free hand zygomatic implants placement, which has usually been proposed to be performed by using a straight head handpiece.
The suggested surgical guide design made the entire guided surgery, as well as implant and abutment placement according to the planned project to support an immediate loading prosthesis, easier. In order to test implant deviations, the planned zygomatic and pterygoid implants have been saved as SLT files and compared with the ones obtained from the post-operative CT-scan. As shown in Table 1, both zygomatic and pterygoid implant deviations resulted in values comparable with those published for conventionally guided implants and no statistically significant differences have been reported [39,43,44].
This present cadaver study was performed in an anatomical laboratory environment, however in real life, clinicians perform zygomatic implant surgery on patients with extremely atrophic maxillary bone. Management of oral rehabilitation in such patients can be quite demanding, and one of the key factors is the careful follow-up period. The marginal bone resorption and changes in bone levels must be evaluated at least every two years. Especially for the specific extra-sinus placement that is typical of the presented surgical protocol, peri-implant mucosal situation must be additionally controlled. For this purpose, it is mandatory to annually remove the prostheses to check the oral hygiene status of prosthesis and the status of the abutments that are placed over the zygomatic implants. The radiographic assessment of the on-going peri-implant vertical bone loss after implant placement is considered as an essential issue for clinicians. Cosola et al., proposed a method of standardization of two-dimensional radiographs that can allow the clinicians to minimize the patient's exposure to ionizing radiations for the measurement of marginal bone levels around dental implants [45]. Such methods can be critical in order to evaluate the bone changes around the zygomatic implants at the follow-up period and have a great impact on the long-term successful results.
In the present work, as the implants have been planned both on the right and the left side of the involved heads, a comparative analysis of the side-related deviations has been carried out. No statistically significant differences have been observed in terms of accuracy between the left and right side either in zygomatic or pterygoid implants. Since all the implants have been placed by the unexperienced surgeons involved in the clinical training on cadaver heads, the accuracy results gave evidence of the safety of this guided procedure.
In cases of guided implant surgery, patients with limited arch space can be a challenging situation, especially for zygomatic implant insertions. In such cases, various protocols were introduced in literature as a solution. De Santis et al., in a clinical study evaluated a novel radiologic protocol and a new occlusal radiographic index that can give the clinician the possibility of identifying patients with limited inter-arch space. As a result, the new radiological occlusal index made with condensation silicone (Sandwich Index) proved to be effective in reproducing the maxillary forced maximum opening position during the initial planning phase. Additionally, their method prevented errors in the inclusion or exclusion of patients suitable for NobelGuide treatment [46]. The EZgoma guide system represented in this study, is a suitable method even for patients with limited mouth opening. This guide system is fixed unilaterally, which is easy to use.
The proposed EZgoma method takes several advantages of conventional sleeve guides. The two opposite supports of the guide (Figure 1), the coronal one located palatal to the alveolar ridge and the apical one placed buccally, at the entry point of the zygomatic bone and on the lateral maxillary wall of the sinus, make easier the entire surgical procedure as they leave a certain degree of freedom to the surgeon to prepare the implant site. Moreover, there is a prosthetic advantage because of the extra-sinus implant placement, as it allows a better and natural emergence profile of the future prosthesis, avoiding an uncomfortable larger palatal volume.

Conclusions
Zygomatic and pterygoid implants have been suggested as a solution to rehabilitate severely resorbed maxillary bone. The proposed guided zygomatic and pterygoid surgery seems to be an easier and safer method when compared with the free hand approach. Further research on the accuracy of the entire procedure is mandatory in order to avoid critical surgical complications, which can involve accidents to the surrounding anatomy. This research, which utilized a new surgical guide design, in terms of accuracy between planned and placed zygomatic and pterygoid implants, resulted in very small deviations, comparable with the ones obtained with conventional surgical guides.
Zygomatic and pterygoid implant insertions represent an effective, quicker and less invasive treatment method in indicated cases, as compared to massive bone augmentation. According to the results of this study, in terms of accuracy and with respect to the presurgical planning, the procedure is feasible with successful results even if performed by unexperienced surgeons. However, the simplification of the surgery and the reduction of the invasiveness should be improved.
One of the limitations of this study is the fact that it is a cadaver study.