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Active, not recruitingNCT07256730Updated Jul 14, 2026

Computer-Guided Ridge Split and Expansion Using an Electromagnetic Mallet

An interventional study of free-hand ridge splitting and AI/guided ridge splitting in Reconstruction of Horizontal Ridge Defects, sponsored by Kafrelsheikh University. Active, not recruiting at 1 site in Egypt. Open to participants aged 18 Years to 40 Years, including healthy volunteers. Per ClinicalTrials.gov, last updated 2026-07-14.

Sponsored by Kafrelsheikh University · Not applicable, Interventional, and Treatment

From the registry’s dates

  • Registered 1 year 2 months after the study started (first participant enrolled Aug 2024, registered Nov 2025).
Phase
Not applicable
Study type
Interventional
Enrollment
22
Allocation
Randomized
Ages
18 Years to 40 Years
Sex
All
01

Study summary

The current trial aims to assess the efficacy of utilizing the electromagnetic mallet either by AI-assisted digital workflow or by the conventional freehand approach for reconstruction of horizontal ridge defects utilizing the ridge-split and expansion technique.

Read the detailed description

Dental implants are a durable and long-term choice for tooth replacement to provide both functional and aesthetic benefits. However, successful implantation is critical, as it needs a sufficient amount of bone to maintain an ideal implant pathway and avoid vital structures. Vertical and horizontal ridge defects might occur after tooth extraction.

The pattern of alveolar ridge defect after extraction is classified according to the Cologne Classification into horizontal, vertical, combination, and sinus defects. mild (up to 4 mm), moderate (4-8 mm), and significant (over 8 mm) atrophy.

Successful implant placement is difficult to maintain with insufficient bone height and width. Many surgical techniques were introduced for the horizontally collapsed ridges, such as ridge augmentation, block graft, guided bone regeneration, and onlay graft. But these techniques need a long period of time for reconstruction, and an additional surgery is required for delayed implant placement.

Among these techniques, the ridge-splitting technique was performed for treating horizontally collapsed ridges by means of splitting the deficient ridge followed by ridge expansion to accommodate simultaneous implant placement.

The concept of the ridge-splitting technique is to make a self-space-making defect. The ridge-splitting technique was introduced by Tatum Jr. in 1986 and reintroduced in 1990 by Scipioni et al. In 1994, the technique was adapted by Summers, who utilized the viscoelastic properties of bone by applying pressure in-between buccal and lingual cortical bones using Summers osteotome to increase the width of the bone.

The ridge-splitting technique allowed the clinician to achieve desirable results within the shortest period and provide ridge expansion with simultaneous implant placement without the need for additional surgery and increase wound healing and satisfaction of the patient. Different instruments were used for splitting, such as chisels, discs, saws, osteomes, piezo surgery, and electromagnetic mallets.

The electromagnetic mallet consists of a handpiece that produces electromagnetic pulses with a rapid, non-impact motion that transmits to its tip, allowing high-intensity and precise movements with reduced trauma, minimal tissue damage, a greater safety margin, improved surgical outcomes, and faster recovery times. The precise movements make the repeatability of the procedure more applicable, which is very difficult to obtain with manual instruments.

Computer-guided surgery provides predictable and accurate treatment planning and implant positioning. It permits visualizing the jawbones and vital anatomical structures for preserving them during guided surgery. Artificial intelligence (AI) refers to the ability of machines to execute tasks that traditionally require human intelligence. Enhancing the high-quality dental treatment and precision of patient management, diagnosis, and treatment planning.

The current trial aims to assess the efficacy of utilizing the electromagnetic mallet either by AI-assisted digital workflow or by the conventional freehand approach for reconstruction of horizontal ridge defects utilizing the ridge-split and expansion technique.

02

Conditions studied

  • Reconstruction of Horizontal Ridge Defects

Keywords

  • ridge defects
  • ridge split
  • electromagnetic mallet
  • dental implant
03

In context

Lead sponsor

Kafrelsheikh University is the lead sponsor of 285 studies on the registry; 110 are open to participants now.

Of its 9 completed or terminated interventional studies of FDA-regulated products, 0 (0%) have results posted.

Counted across the registry records on this site, refreshed daily.

04

Who can participate

Ages eligible
18 Years to 40 Years
Sexes eligible
All
Accepts healthy volunteers
Yes

Inclusion criteria

  1. The target population with inadequate bone volume for implant placement due to width insufficiency of maxillary anterior alveolar ridges.
  2. Age ranges from 18 to 40 years of both sexes.
  3. Absence of any complicating systemic condition that may contraindicate surgical procedures and implant placement.
  4. Adequate oral hygiene.
  5. Eligible participants should present good general health and agree to random assignment to any of the two parallel study groups.
  6. Participants had a minimum 3-month post-extraction healing period and a horizontal defect in the maxillary esthetic zone with at least a bone width of 3 mm.

Exclusion criteria

Exclusion Criteria:

  1. Vertical ridge defect.
  2. Undercut on the labial/buccal side.
  3. Thick cortical bone without cancellous bone inside.
  4. Uncontrolled systematic disorders as, diabetes mellitus, uncontrolled periodontal disease, history of head and neck radiotherapy, smokers, pregnancy, noncompliant patients, allergy to the used medications, uncooperative individuals or those unable to attend the study follow-up appointments.
05

Study design

Phase
Not applicable
Primary purpose
Treatment
Allocation
Randomized
Intervention model
Parallel assignment
Masking
Single (Outcomes assessor)
Enrollment
22 participants (actual)

Study arms

  • Experimental
    Freehand spit

    conventional ridge splitting with conventional simultaneous implant placement

    Procedure: free-hand ridge splitting

  • Experimental
    computer-guided split

    computer-guided ridge splitting assisted by artificial intelligence with simultaneous computer-guided implant placement.

    Procedure: AI/guided ridge splitting

Interventions

  • Procedurefree-hand ridge splitting

    Midcrestal incision will be followed by reflection of a full-thickness flap. A midcrestal cut without vertical osteotomy will be done using electromagnetic mallet unit, and then the cut will be extended deep to the implant length. The ridge will be expanded progressively using bone wedges. Dental implant fixtures will be placed stably with 1 mm minimal thickness of buccal bone plate. Surgical site will be completely closed, and wound edges will be sutured in a tension-free way.

  • ProcedureAI/guided ridge splitting

    The patient specific guides will be placed and fixed by monocortical osteosynthesis screws at the pre-planned positions at the labial buccal mucosa. A midcrestal cut will be performed on the crest of the alveolar ridge guided by the guide slits. The cuts will be expanded progressively using bone wedges through the guide slits to gradually lateralize and expand the labial alveolar plate of bone, so the labial cortex will move through the intentionally created micro gap till it touches the fitting aspect of the patient-specific guide. Implant drills will be inserted through the guiding holes in the surgical guide, and the implant osteotomy sites will be prepared. Finally, implants will be inserted in the osteotomy sites using a torque wrench in a self-tapping fashion, engaging palatal and basal bone for primary stability.

06

What researchers measure

Primary outcomes

  1. alveolar ridge width

    CBCT will have taken immediately after surgery and at 6, 12 and 24months postoperatively

    Time frame: 24 months

Secondary outcomes

  1. vertical bone height

    CBCT will be taken immediately after surgery and at 6, 12 and 24months postoperatively to evaluate vertical bone height.

    Time frame: 24months

07

Study locations

1 site
  • Faculty of Dentistry, Periodontology Department
    Kafr ash Shaykh, Egypt
08

References and documents

Publications

  • Elayah SA, Younis H, Cui H, Liang X, Sakran KA, Alkadasi B, Al-Moraissi EA, Albadani M, Al-Okad W, Tu J, Na S. Alveolar ridge preservation in post-extraction sockets using concentrated growth factors: a split-mouth, randomized, controlled clinical trial. Front Endocrinol (Lausanne). 2023 May 17;14:1163696. doi: 10.3389/fendo.2023.1163696. eCollection 2023. PubMed 37265705 ↗

Individual participant data

Plan to share: No

09

Updates

Tracking since Sep 25, 2026
No changes since tracking began. The registry record was last updated on Jul 14, 2026, before this site started recording changes on Sep 25, 2026. Its history is on ClinicalTrials.gov ↗
10

Registry details

Key details

Study ID
NCT07256730
Lead sponsor
Kafrelsheikh University
Responsible party
Walid Elamrousy (Assistant Professor, Kafrelsheikh University) — Principal investigator
First posted
Dec 1, 2025
Start date
Aug 27, 2024
Primary completion
Aug 27, 2026 (estimated)
Completion
Sep 15, 2026 (estimated)
Last update
Jul 14, 2026

Study contacts

walid elamrousy
study chair · Kafrelsheikh University

Oversight

Data monitoring committee
Yes
FDA-regulated drug
No
FDA-regulated device
No
View the source record on ClinicalTrials.gov ↗

Not currently enrolling

This study is active, not recruiting, as verified in Jul 2026. You cannot join it, but the record below documents what was studied.

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