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Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_892_Библиотеки_им_академика_М_И_Перельмана

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M. J. Recker et al.
Contemporary Treatment
The dilemmas posed by the challenging morphology of HFM and TCS patients have motivated surgeons and engineers to develop creative solutions that are no more invasive than the aforementioned treatment options. Currently, ramus distrac­tion can be simulated digitally as discussed in the previous section (Fig.1.6). In the
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Fig. 1.6 Patient with Nager syndrome presenting with decient rami and microretrognathia. (a, b) Preoperative prole view and skeletal anatomy. (c) Simulated movement using curvilinear distrac­tor. (d) Ramus cutting guide with predictive holes. (e, f) Intraoperative t of cutting guide and distractor with (g) stereolithographic model for verication. (h, i) Clinical result following the completion of mandibular distraction. (j, k) Second-stage maxillary surgery and genioplasty planned at the time of distractor removal to correct occlusion and further improve chin projection. (l, m) Final pre- and postoperative results showing improved midface and chin projection
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Fig. 1.6 (continued)
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1950s, Trauner and Obwegeser described the inverted L osteotomy; however, a tran­scervical approach was traditionally required to achieve the necessary exposure [39]. With computer-aided design and patient-specic cutting guides, bone graft templates, and xation hardware, it is now possible to perform the inverted L oste­otomy via a completely transoral approach [40]. This is a useful options for patients with enough soft tissue stretch to accommodate large counterclockwise advance­ments. The inverted L technique also permits surgeons to perform these large move­ments with less fear of lengthening the pterygomasseteric sling which is generally considered an unstable movement and prone to relapse in the context of the sagittal split osteotomy.
Another relatively recent development that began in the early 2000s was the commercially available custom temporomandibular joint (TMJ) replacement. The custom TMJ prosthesis has several advantages over the stock replacement and is almost mandatory for patients with extremely atypical anatomy as the stock pros­thesis may not reliably t the available bone even with surface contouring. For Kaban–Pruzansky type 3 patients with agenesis of both the RCU and glenoid fossa, extended custom TMJ replacements can be designed to independently rec­reate the missing anatomy without the need for preceding bony reconstruction. Large, broad footplates can be adapted to the skull base and shaped to simultane­ously recreate the both the zygomatic arch and glenoid fossa [41]. Long distal extensions off condylar component can be used to reach suitable bone in the para­symphyseal region. These unconventional custom joint replacements have been shown to have excellent mechanical stability and to drastically improve maximal incisal opening [41]. The extended custom joint is a welcomed solution for cases where the RCU anatomy is underdeveloped and inadequate for distraction or con­ventional orthognathic osteotomies.
Custom facial implants have emerged as an alternative to onlay bone grafts for midfacial augmentation. Although bone grafts are able to add reasonable bulk, it is hard to precisely contour them into the quadrangular shape needed to replace large zygomatic segments. For cases of HFM, mirroring technology allows engineers to create an immediate symmetric outcome that would be hard to manually reproduce. In our experience, the most frequently used materials for alloplastic implants include silicone, polyetheretherketone (PEEK), titanium, and high-density porous polyethylene (MedPor) (Fig.1.7). PEEK implants are thermally resistant and bio­mechanically similar to cortical bone, and unsurprisingly, they are the preferred material for cranial reconstruction. Although PEEK implants are considered the gold standard of patient-specic implants, their high cost may be prohibitive for some. MedPor is an affordable alternative that is also remarkably stable. Unlike PEEK, MedPor implants are porous in nature and conducive to rapid bovascular ingrowth, which is thought to improve long-term stability but also complicate sub­sequent removal [42, 43].
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Fig. 1.7 Orthognathic surgery combined with custom silicone implant malar augmentation. Pre­and postoperative (a) facial and (b) intraoral photos. (c) Orthognathic surgical plan. (d, e) Frontal view showing implant height, lateral view showing implant projection. (f, g) Patient-specic implants are xated after LeFort I osteotomy with care taken to avoid impinging on the infraorbital nerve. (Implantech Associates, Inc.; Ventura, CA). Pre- and postoperative side prole views of patient (h)
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Fig. 1.7 (continued)
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Fig. 1.7 (continued)
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Summary andOutlook
In conclusion, the benets of modern technology have extended into the eld of craniofacial surgery. The original osteotomies described by Tessier and Obwegeser are still used today; however, we are now able to execute them with an unprece­dented level of precision and condence. The acceptable margin of deviation from the surgical plan has narrowed thanks in large part to patient-specic guides and implants. Computer-aided surgical technology is becoming more commonplace, and medical centers are beginning to realize the associated healthcare value that it brings as the cost of doing business decreases. Consequently, we anticipate that there will be a drive to decentralize manufacturing. High-volume centers will likely reduce their reliance on outsourcing and seek to develop on-site point of care plan­ning and printing. This in-house service is already in place at many centers and has been shown to be cheaper with a shorter lead-time [44].
Although we are able to manipulate and predict the location of the bony skeleton, the quality of our soft tissue simulations still does not reach a level of usefulness. Likewise, one of the primary challenges of craniofacial surgery is being able to operate in the fourth dimension. We need to understand and predict the effects of surgery on growth and the effects of growth on surgery. In the future, computational frameworks may provide insight into these problems. Overall, it is important to recognize that continued progress in this eld relies on the cooperative multidisci­plinary efforts of all professionals caring for patients with craniofacial differences.
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