Clinical applications of the Mini-Screw-Anchorage-System (M.A.S.) in the maxillary alveolar bone.

AIMS anchorage control with self-tapping screws has become an important part of the clinical management of the orthodontic patients. Mechanical resistance and sites of insertion of miniscrews as orthodontic anchorage are critical to ensure successful outcomes. Aim of this clinical study was threefold: 1) to measure the mechanical resistance of the M.A.S., 2) to evaluate if the alveolar areas usually selected for mini-screws placement are adequate, 3) to illustrate the most frequent clinical application on the maxillary alveolar bone. METHODS two methods were chosen to test these screws mechanically, representing two potential modes of failure during insertion or removal: torsional strenght and bending strenght. Three-dimension images of fifty maxillas have been retrieved from a group of 200 patients, age range between 20 and 40 years with a new type of tomogram called Newtom System. For each area mesio-distal and labio-lingual measurements from four horizontal cuts made at 2-5-8-11 mm below the bone-crest have been evaluated. RESULTS the mean value of resistance to breakage in torsion is of 48.7 N.cm (around 5 Kg) for the miniscrew of 1.5 diameter, while the mean value of resistance to breakage in torsion is of 23.4 N.cm (around 2 Kg) for the miniscrew of 1.3 diameter.. The mean value of resistance to breakage in flexion is of 120.4 N (around 12 Kg) for the miniscrew of 1.5 diameter, while the mean value of resistance to the flexion is of 63.7 N (around 6 Kg) for the miniscrew of 1.3 diameter. On the maxillary alveolar bone the highest amount of bone was in mesio-distal dimension between 6 and 5 on the palatal side (minimum 1.9 mm at -11 mm cut; maximum 5.5 mm at -5 mm cut). The smallest amount of bone was in the tuber (minimum 0.2 mm; maximum 1.3 mm). Examination of the labio-palatal dimension demonstrated similar high thickness between 5-6 and 6-7 (minimum 3.7 mm at -11 mm cut; maximum 13.2 mm at -2 mm cut). The smallest amount of bone was recorded on the tuber (minimum 0.6 mm; maximum 4.1 mm). The following clinical applications are described: Closure of the extractions space, Symmetric intrusion of the incisors, Correction of the cant of the plane of occlusion and of the dental midline, Molar intrusion of one or two teeth, Molar distalization with the Distal Jet and miniscrews, Molar mesialization, Intermaxillary anchorage. CONCLUSIONS the mechanical resistance of the miniscrews M.A.S. is suitable for their use in orthodontics. The best anatomical zones for their implantation are the interradicular spaces mesial to the first maxillary molars. From our experience to date, the miniscrews are a reliable and convenient system for skeletal anchorage when compared with other more invasive osseo-integrated systems.

[1]  T D Creekmore,et al.  The possibility of skeletal anchorage. , 1983, Journal of clinical orthodontics : JCO.

[2]  R Kanomi,et al.  Mini-implant for orthodontic anchorage. , 1997, Journal of clinical orthodontics : JCO.

[3]  H. Kyung,et al.  Micro-implant anchorage for treatment of skeletal Class I bialveolar protrusion. , 2001, Journal of clinical orthodontics : JCO.

[4]  J. Burch,et al.  Closing anterior open bites by intruding molars with titanium miniplate anchorage. , 2002, American journal of orthodontics and dentofacial orthopedics : official publication of the American Association of Orthodontists, its constituent societies, and the American Board of Orthodontics.

[5]  E. Nkenke,et al.  Bone contact, growth, and density around immediately loaded implants in the mandible of mini pigs. , 2003, Clinical oral implants research.

[6]  R Enciso,et al.  Three-dimensional visualization of the craniofacial patient: volume segmentation, data integration and animation. , 2003, Orthodontics & craniofacial research.

[7]  Doo-Hyung Kim,et al.  Intrusion of posterior teeth using mini-screw implants. , 2003, American journal of orthodontics and dentofacial orthopedics : official publication of the American Association of Orthodontists, its constituent societies, and the American Board of Orthodontics.

[8]  H. Mitani,et al.  Skeletal anchorage system for open-bite correction. , 1999, American journal of orthodontics and dentofacial orthopedics : official publication of the American Association of Orthodontists, its constituent societies, and the American Board of Orthodontics.

[9]  Hyo-Sang Park,et al.  An Anatomical Study using CT Images for the Implantation of Micro-implants , 2002 .

[10]  B Melsen,et al.  Miniscrews as orthodontic anchorage: a preliminary report. , 1998, The International journal of adult orthodontics and orthognathic surgery.

[11]  Jae-Hyun Sung,et al.  Development of orthodontic micro-implants for intraoral anchorage. , 2003, Journal of clinical orthodontics : JCO.

[12]  T. Takano-Yamamoto,et al.  The Use of Small Titanium Screws for Orthodontic Anchorage , 2003, Journal of dental research.

[13]  A. Carano,et al.  Evaluation of maxillary molar distalization with the distal jet: a comparison with other contemporary methods. , 2002, The Angle orthodontist.

[14]  A. Carano,et al.  The monkey hook: an auxiliary for impacted, rotated, and displaced teeth. , 2002, Journal of clinical orthodontics : JCO.

[15]  Jae-Hyun Sung,et al.  Clinical application of micro-implant anchorage. , 2002, Journal of clinical orthodontics : JCO.

[16]  Aldo Carano,et al.  The distal jet simplified and updated. , 2002, Journal of clinical orthodontics : JCO.

[17]  Y Shibasaki,et al.  A clinical and histological evaluation of titanium mini-implants as anchors for orthodontic intrusion in the beagle dog. , 2001, American Journal of Orthodontics and Dentofacial Orthopedics.

[18]  C Bourauel,et al.  Three-dimensional analysis of endosseous palatal implants and bones after vertical, horizontal, and diagonal force application. , 2003, European journal of orthodontics.

[19]  Hyo-sang Park,et al.  Micro-implant anchorage for forced eruption of impacted canines. , 2004, Journal of clinical orthodontics : JCO.

[20]  Hyo-sang Park The skeletal cortical anchorage using titanium microscrew implants , 1999 .