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The Apert syndrome hand: pathologic anatomy and clinical manifestations.

The Apert syndrome hand demonstrates many typical clinical features including syndactyly, symbrachyphalangism, and growth disturbances. This is due to the grossly abnormal anatomy of both the skeletal and soft-tissue structures associated with a progressive disease process. This paper presents a clinical, radiologic, and histologic analysis of the Apert syndrome hand anatomy and correlates it with the clinical manifestations. It also links hand and craniofacial dysplasia to other regions of the skeleton as well as the overall disease process. From our analysis, we conclude that there is a genetic anomaly causing variable and uncoordinated differentiation of the mesenchyme at the time of embryologic separation into its various skeletal components, particularly in the distal limb bud and craniofacial skeleton. This disease process continues postnatally in endochondral bone growth center malformation and malfunction as well as ectopic cartilage ossification in soft tissues. We discuss the role of abnormal musculotendinous anatomy and altered biomechanical forces in relation to these processes.

Acrocephalosyndactylia↗

The kleeblattschädel anomaly in Apert syndrome: intracranial anatomy, surgical correction, and subsequent cranial vault development.

We present a case of Apert syndrome in which intracranial anomalies of the cranial base were localized to the lesser wings of the sphenoid and sphenoid ridge. The lesser wings of the sphenoid were displaced superiorly to follow the fused coronal sutures bilaterally, where they met at a single point on the skull vertex. Careful preoperative study of the intracranial anatomy in the kleeblattschädel anomaly led to a surgical plan for early correction of the anomaly. The present report indicates that an aggressive approach to the correction of the kleeblattschädel anomaly beginning early in infancy can result in normalization of the trilobar skull configuration. Although this approach can correct the kleeblattschädel anomaly, 3.5-year follow-up in this patient with Apert syndrome demonstrates progressive turricephaly despite repeated cranial vault remodeling. Although the trilobar skull configuration can be corrected through early surgical intervention, the long-term correction of progressive turricephaly in patients with Apert syndrome remains an unsolved problem.

Acrocephalosyndactylia↗

Mutation of the fibroblast growth factor receptor 2 gene in Japanese patients with Apert syndrome.

Apert syndrome is a clinically distinctive condition characterized by craniosynostosis, mid-face hypoplasia, and severe symmetrical syndactyly of the hands and feet. Recently, mutations of the fibroblast growth factor receptor 2 (FGFR2) gene have been associated with several craniosynostosis conditions including Apert, Crouzon, Jackson-Weiss, and Pfeiffer syndromes. Mutations detected in Crouzon, Jackson-Weiss, and Pfeiffer syndromes are located at several sites in the FGFR2 gene. However, the mutational spectrum in Apert syndrome is remarkably narrow. Mutations detected thus far in Caucasian patients with this syndrome are exclusively transversions from cytosine to guanine at either nucleotide position 934 (C934G) or 937 (C937G) in the FGFR2 gene. To examine the possibility that the narrow mutational spectrum in Apert syndrome was a result of racial or environmental predilection, we studied three Apert syndrome patients from two unrelated Japanese families for C934G and C937G mutations. The C934G mutation was found in all three patients. This is the first demonstration of FGFR2 gene mutations in Japanese patients. Our evidence that the C934G mutation identified in Caucasian patients also occurs among Japanese patients excludes the possibility of racial or environmental predilection for this mutation. Nucleotide position 934 is a mutational hotspot of the FGFR2 gene in Japanese patients as well, although the mechanism by which the mutation occurs remains to be clarified. Whether C937G is a mutational hotspot in Japanese patients as well remains to be determined.

Acrocephalosyndactylia↗

Distraction osteogenesis in the hand.

Distraction osteogenesis was used to correct congenital hand deformities in 12 digits. The patients' ages at the time of distraction ranged between 2.5 and 7 years. A total of nine patients underwent lengthening of 12 bones. The average period of distraction was 31.1 +/- 17.6 days. The average length of distraction was 23.6 +/- 7.3 mm. Seventeen percent of the patients after lengthening had an angular deformity that required remodeling of the regenerate. No infections were noted. Distraction osteogenesis provides a useful tool for reliable and predictable correction of osseous defects with vascular bone in patients with congenital anomalies of the hand.

Acrocephalosyndactylia↗

Analysis of fronto-orbital advancement for Apert, Crouzon, Pfeiffer, and Saethre-Chotzen syndromes.

The purposes of this study were (1) to document outcome after primary fronto-orbital advancement for the four major eponymous craniosynostotic syndromes (Apert, Crouzon, Pfeiffer, and Saethre-Chotzen) and (2) to identify factors that might influence need for primary and secondary fronto-orbital advancement or foreheadplasty. Also tested was the hypothesis that coincident sagittal synostosis could modulate brachycephaly and affect whether a primary or secondary frontal operation was necessary. Data were collected on age and indications for initial operation, type of primary and secondary frontal procedures, and concomitant sagittal synostosis. Patients initially managed by subcranial Le Fort III were included in the study group but excluded from analysis of fronto-orbital advancement. Patients treated by monobloc advancement or Le Fort III osteotomies with frontal grafting or Anderl modification were assessed as having had primary fronto-orbital advancement. Minimum time to follow-up was 5 years. A total of 126 patients met inclusion criteria. Lateral photographs were examined to assess preoperative and postoperative sagittal position of supraorbital rims-to-globes. Frontal re-advancement was indicated if the corneal apex was anterior to the supraorbital rim. Foreheadplasty was indicated for unacceptable frontal contour and normal supraorbital rim-to-globe relationship. Primary correction for frontal retrusion was not required in 4 percent of Apert (1 of 25), 16 percent of Crouzon (7 of 44), 6 percent of Pfeiffer (2 of 31), and 19 percent of Saethre-Chotzen (5 of 26) patients. Of those infants who had a primary fronto-orbital advancement, reoperation for either supraorbital retrusion or frontal deformity was necessary in all 16 Apert patients and in 5 of 19 Crouzon (26 percent), 10 of 26 Pfeiffer (38 percent), and 13 of 20 Saethre-Chotzen (65 percent) patients (p < 0.001). Age at initial fronto-orbital advancement did not influence reoperative rate. No correlation was found between concomitant sagittal synostosis and necessity for primary or secondary frontal correction (p = 0.22). In summary, phenotypic diagnosis was determinant for outcome as defined by need for secondary fronto-orbital advancement, foreheadplasty, or both. Apert patients had the highest incidence of reoperation for frontal retrusion or forehead contour. Crouzon and Saethre-Chotzen patients were most likely to express a minor phenotype and not require fronto-orbital correction. Coincident sagittal synostosis did not influence frontal projection, as reflected in need for either primary or secondary frontal advancement.

Acrocephalosyndactylia↗

Differential expression of fibroblast growth factor receptors in human digital development suggests common pathogenesis in complex acrosyndactyly and craniosynostosis.

The Apert hand is characterized by metaphyseal fusions of the metacarpals and distal phalanges, symphalangism, and soft-tissue syndactyly. More subtle skeletal anomalies of the limb characterize Pfeiffer and Crouzon syndromes. Different mutations in the fibroblast growth factor receptor 2 (FGFR2) gene cause these syndromes, and offer the opportunity to relate genotype to phenotype. The expression of FGFR1 and of the Bek and KGFR isoforms of FGFR2 has, therefore, been studied in human hand development at 12 weeks by in situ hybridization. FGFRs are differentially expressed in the mesenchyme and skeletal elements during endochondral ossification of the developing human hand. KGFR expression characterizes the metaphyseal periosteum and interphalangeal joints. FGFR1 is preferentially expressed in the diaphyses, whereas FGFR2-Bek expression characterizes metaphyseal and diaphyseal elements, and the interdigital mesenchyme. Apert metaphyseal synostosis and symphalangism reflect KGFR expression, which has independently been quantitatively related ex vivo to the severity of clinical digital presentations in these syndromes. Studies in avian development implicate FGF signaling in preventing interdigital apoptosis and maintaining the interdigital mesenchyme. Herein is proposed that in human FGFR syndromes the balance of signaling by means of KGFR and Bek in digital development determines the clinical severity of soft-tissue and bony syndactyly.

Acanthosis Nigricans↗

Reconstruction of the hand in Apert syndrome: a simplified approach.

Children born with Apert acrocephalosyndactyly pose great challenges to the pediatric hand surgeon. Reconstructive dilemmas consist of shortened, deviated phalanges and extensive skin deficits following syndactyly release. We present a 10-year review of patients with Apert acrocephalosyndactyly who were treated with a simplified surgical approach. Between 1986 and 1996, 10 patients with Apert syndrome underwent reconstructive surgery of their hands. The overall strategy involved early bilateral separation of syndactylous border digits at 1 year of age, followed by sequential unilateral middle syndactyly mass separation with thumb osteotomy and bone grafting as needed. In these 10 patients, a total of 53 web spaces were released, 49 of which involved osteotomies for complex syndactyly. Only local flaps and full-thickness skin grafts from the groin were used in all cases to achieve soft-tissue coverage. To date, seven of the 53 web spaces have needed revision (revision rate, 13 percent). Eleven thumb osteotomies (nine opening wedge and two closing wedge) were performed. Bone grafts from the proximal ulna or from other digits were used in all cases. To date, none of these thumb osteotomies have needed revision. This early, simplified approach to the complex hand anomalies of Apert acrocephalosyndactyly has been successful in achieving low revision rates and excellent functional outcomes as measured by gross grasp and pinch and by patient and parent satisfaction.

Acrocephalosyndactylia↗

Facial malformations and spinal anomalies. A predictable relationship.

Facial malformations have generally been associated with spinal anomalies, but this report reviews patients with specific facial abnormalities and attempts to document accompanying spinal anomalies. The results indicate that the most common types of facial malformations vary predictably in their influence on spinal or other musculoskeletal abnormalities. Apert and Goldenhaar syndromes are associated with significant spinal anomalies.

Acrocephalosyndactylia↗

Three craniosynostotic patients with tracheal sleeve.

The gene was analysed in three craniosynostotic patients with a tracheal sleeve and other abnormalities. Although the majority of mutations are found in either exons IIIa or IIIc, this was not found in this study. It may be that patients with a tracheal sleeve are genetically heterogeneous.

Acrocephalosyndactylia↗

The appearance of the feet in Pfeiffer syndrome caused by FGFR1 P252R mutation.

Patients affected by Pfeiffer syndrome generally present with syndromic craniosynostosis and typical limb defects including broad thumbs, wide halluces with varus deformity, toe syndactyly and sometimes elbow ankylosis. This autosomal dominant condition can be caused by mutations in either fibroblast growth factor receptor gene type 1 or 2 (FGFR1 or FGFR2). We report four new affected families showing an FGFR1 P252R mutation and emphasize the characteristic malformations of the feet in this form of Pfeiffer syndrome. In one family this was the only abnormality.

Acrocephalosyndactylia↗

A diagnostic approach to identifying submicroscopic 7p21 deletions in Saethre-Chotzen syndrome: fluorescence in situ hybridization and dosage-sensitive Southern blot analysis.

PURPOSE: To report on the use of fluorescence in situ hybridization (FISH) and dosage-sensitive Southern blot analysis in the molecular diagnosis of patients with Saethre-Chotzen syndrome. METHODS: FISH and dosage-sensitive Southern blot analysis utilizing TWIST gene probes were performed on patients with Saethre-Chotzen syndrome but without an identifiable TWIST sequence variation. RESULTS: Four unrelated patients with a deletion of the TWIST gene were identified by Southern blot; one of them had a complex chromosomal rearrangement involving 7p21 and no apparent deletion by FISH, suggesting a smaller deletion in the region including the TWIST gene. A fifth patient had an abnormal TWIST gene fragment on Southern blot analysis that segregated with the disease in the family; FISH was normal in this patient, suggesting a partial deletion or rearrangement in or near the gene. CONCLUSION: FISH and dosage-sensitive Southern blot analysis are useful diagnostic tools in Saethre-Chotzen syndrome without TWIST sequence variation.

Acrocephalosyndactylia↗

Algorithm for treatment of apert hand.

The hand in Apert syndrome is one of the most complex examples of congenital deformity of the upper limb. The management is difficult, and mny different approaches have been published. The hands demonstrate many disturbances of soft tissue and bony structures. These include a short thumb with radial clinodactyly, complex syndactyly with a bony fusion involving the index, long and ring fingers, and symphalangism and simple syndactyly of the fourth web space. The soft tissue anomalies involve the intrinsic muscles, the extrinsic tendon insertions, and the neurovascular bundles. Correction of the appearance of the operated hand is readily apparent, but the complexity of the disorders in the bones and soft tissues explains the difficulty of the surgical management. The aim of this study is to propose a better surgical management: on the basis of the experience of our multidisciplinary team (188 procedures in 53 patients) in the light of recent publications and a better comprehension of the syndrome, we attempt to reduce the number of procedures and to select the best possible procedures for each patient. When possible, we perform a 3-step procedure (the first is bilateral, the others are unilateral) between 9 months and 2 years of age. Separation of the fingers improves function even though we must expect an inevitable stiffness in extension of the interphalangeal joints.

Acrocephalosyndactylia↗

Craniosynostosis with tracheal sleeve: a patient with Pfeiffer syndrome, tracheal sleeve and additional malformations in whom an FGFR2 mutation was found.

We discuss a patient with Pfeiffer syndrome who had a tracheal sleeve and an FGFR2 mutation. In the light of our findings, and previous reports of patients with craniosynostosis that also reported similar mutations, we suggest that genomic screening for FGFR2 may be useful in cases with negative FGFR2 mutation testing.

Abnormalities, Multiple↗

Pfeiffer-type cardiocranial syndrome: a patient with features of this condition and with an unbalanced subtelomeric rearrangement involving chromosomes 1p and 17q.

Pfeiffer-type cardiocranial syndrome (MIM 218450) was first delineated in 1987; several further patients have been reported confirming this as a distinct nosological entity. The aetiology of this condition remains unknown although an autosomal recessive pattern of inheritance has been suggested following the description of sib pairs. A patient is described with features of this condition including sagittal suture synostosis, growth retardation, learning difficulties, hypertelorism, low-set ears, micrognathia, congenital heart defects and genital anomalies. Telomere studies on blood and skin samples identified a de novo unbalanced rearrangement resulting in partial monosomy for 1p36.1 to pter and partial trisomy for 17q25.1 to qter. This case provides the first insight into the possible aetiology of this condition.

Acrocephalosyndactylia↗