1.Model test study on treatment of Pruzansky type ⅡB and Ⅲ hemifacial microsomia with artificial condyle-mandibular distractor complex.
Ruilin ZHAO ; Xi FU ; Jia QIAO ; Yu HE ; Shixing XU ; Ying CHEN ; Bing YU ; Jianfeng LIU ; Feng NIU
Chinese Journal of Reparative and Reconstructive Surgery 2023;37(10):1270-1275
OBJECTIVE:
To preliminarily verify the effectiveness of self-designed artificial condyle-mandibular distraction (AC-MD) complex in the treatment of Pruzansky type ⅡB and Ⅲ hemifacial microsomia (HFM) through model test.
METHODS:
Five children with Pruzansky type ⅡB and Ⅲ HFM who were treated with mandibular distraction osteogenesis (MDO) between December 2016 and December 2021 were selected as the subjects. There were 3 boys and 2 girls wih an average age of 8.4 years (range, 6-10 years). Virtual surgery and model test of AC-MD complex were performed according to preoperative skull CT of children. The model was obtained by three-dimensional (3D) printing according to the children's CT data at a ratio of 1∶1. The occlusal guide plate was designed and 3D printed according to the children's toothpaste model. The results of the model test and the virtual surgery were matched in three dimensions to calculate the error of the residual condyle on the affected side, and the model test was matched with the actual skull CT after MDO to measure and compare the inclination rotation of the mandible, the distance between the condylar of the healthy side and the residual condyle of the affected side, and the lengthening length of the mandible.
RESULTS:
The error of residual condyle was (1.07±0.78) mm. The inclination rotation of the mandible, the distance between the condylar of the healthy side and the residual condyle of the affected side, and the lengthening length of the mandible after 3D printing model test were significantly larger than those after MDO ( P<0.05).
CONCLUSION
In the model test, the implantation of AC-MD complex can immediately rotate the mandible to the horizontal position and improve facial symmetry, and the residual condyle segment can be guided close to the articular fossa or the preset pseudoarticular position of the skull base after operation.
Male
;
Child
;
Female
;
Humans
;
Goldenhar Syndrome/surgery*
;
Mandible/surgery*
;
Osteogenesis, Distraction/methods*
;
Printing, Three-Dimensional
;
Facial Asymmetry/surgery*
3.TCOF1 Gene variation in Treacher Collins syndrome and evaluation of speech rehabilitation after bone bridge surgery.
Yonghua LI ; Wenyue CHI ; Ken LIN ; Jinyan ZU ; Hua SHAO ; Zhiyong MAO ; Quandong CHEN ; Jing MA
Journal of Clinical Otorhinolaryngology Head and Neck Surgery 2023;37(9):748-754
Objective:By analyzing the clinical phenotypic characteristics and gene sequences of two patients with Treacher Collins syndrome(TCS), the biological causes of the disease were determined. Then discuss the therapeutic effect of hearing intervention after bone bridge implantation. Methods:All clinical data of the two family members were collected, and the patients signed the informed consent. The peripheral blood of the proband and family members was extracted, DNA was extracted for whole exome sequencing, and Sanger sequencing was performed on the family members for the mutation site.TCOF1genetic mutations analysis was performed on the paitents. Then, the hearing threshold and speech recognition rate of family 2 proband were evaluated and compared under the sound field between bare ear and wearing bone bridge. Results:In the two pedigrees, the probands of both families presented with auricle deformity, zygomatic and mandibular hypoplasia, micrognathia, hypotropia of the eye fissure, and hypoplasia of the medial eyelashes. The proband of Family 1 also presents with specific features including right-sided narrow anterior nasal aperture and dental hypoplasia, which were consistent with the clinical diagnosis of Treacher Collins syndrome. Genetic testing was conducted on both families, and two heterozygous mutations were identified in the TCOF1 gene: c. 1350_1351dupGG(p. A451Gfs*43) and c. 4362_4366del(p. K1457Efs*12), resulting in frameshift mutations in the amino acid sequence. Sanger sequencing validation of the TCOF1 gene in the parents of the proband in Family 1 did not detect any mutations. Proband 1 TCOF1 c. 1350_1351dupGG heterozygous variants have not been reported previously. The postoperative monosyllabic speech recognition rate of family 2 proband was 76%, the Categories of Auditory Performance(CAP) score was 6, and the Speech Intelligibility Rating(SIR) score was 4. Assessment using the Meaningful Auditory Integration Scale(MAIS) showed notable improvement in the patient's auditory perception, comprehension, and usage of hearing aids. Evaluation using the Glasgow Children's Benefit Inventory and quality of life assessment revealed significant improvements in the child's self care abilities, daily living and learning, social interactions, and psychological well being, as perceived by the parents. Conclusion:This study has elucidated the biological cause of Treacher Collins syndrome, enriched the spectrum of TCOF1 gene mutations in the Chinese population, and demonstrated that bone bridge implantation can improve the auditory and speech recognition rates in TCS patients.
Child
;
Humans
;
Mandibulofacial Dysostosis/genetics*
;
Quality of Life
;
Speech
;
Parents
;
Mutation
;
Nuclear Proteins/genetics*
;
Phosphoproteins/genetics*
4.Research Advances of Human Homologue of Mouse Progressive Ankylosis Protein and Bone and Joint Diseases.
Acta Academiae Medicinae Sinicae 2021;43(2):293-299
The human homologue of mouse progressive ankylosis protein(ANKH)is an inorganic pyrophosphate transport regulator,which regulates tissue mineralization by controlling the level of inorganic pyrophosphate.It plays an important role in the pathogenesis and development of bone and joint diseases,such as ankylosing spondylitis,craniometaphyseal dysplasia,and articular cartilage calcification.This review summarizes the progress of research on ANKH and the above-mentioned diseases.
Ankylosis
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Humans
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Hyperostosis
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Hypertelorism
;
Joint Diseases
;
Mice
;
Mutation
5.Genetic analysis of a rare fetus with mandibulofacial dysostosis Guion-Almeida type.
Lulu YAN ; Liyun TIAN ; Juan CAO ; Bihua ZHOU ; Yuxin ZHANG ; Yingwen LIU ; Chunxiao HAN ; Haibo LI
Chinese Journal of Medical Genetics 2021;38(8):791-794
OBJECTIVE:
To delineate the clinical and genetic features of a fetus with micrognathia, low-set ears, microtia, polyhydramnios and anechoic stomach by ultrasonography.
METHODS:
Whole exome sequencing (WES) was carried out to detect genetic variant in the fetus, for which routine chromosomal karyotyping and chromosomal microarray analysis (CMA) yielded no positive finding. Candidate variants were verified by Sanger sequencing and bioinformatic analysis.
RESULTS:
WES revealed that the fetus has carried a de novo nonsense c.2302C>T (p.Q768X) variant in exon 23 of the EFTUD2 gene, which was detected in neither parent. The variant was unreported previously and may lead to premature termination of the translation of EFTUD2 protein at the 768th amino acid. Bioinformatic analysis predicted the amino acid to be highly conserved and may alter the structure and function of the EFTUD2 protein.
CONCLUSION
The c.2302C>T variant of the EFTUD2 gene probably underlay the mandibulofacial dysostosis Guion-Almeida type in the fetus. Discovery of the novel variant has enriched variant spectrum of the EFTUD2 gene and provided a basis for genetic counseling and prenatal diagnosis for the family.
Female
;
Fetus
;
Humans
;
Mandibulofacial Dysostosis/genetics*
;
Mutation
;
Peptide Elongation Factors/genetics*
;
Phenotype
;
Pregnancy
;
Ribonucleoprotein, U5 Small Nuclear/genetics*
6.Tetrasomy 9p syndrome in a Filipino infant
Ebner Bon G. Maceda ; Erena S. Kasahara ; Edsel Allan G. Salonga ; Myrian R. Dela Cruz ; Leniza De Castro-Hamoy
Acta Medica Philippina 2020;54(4):431-434
Tetrasomy 9p syndrome is a rare chromosomal abnormality syndrome whose most common features include hypertelorism, malformed ears, bulbous nose and microretrognathia. These features present as a result of an additional two copies of the short arm of chromosome 9. Here we present a neonate with characteristic facial features of hypertelorism, downslanted palpebral fissure, bulbous nose, small cupped ears, cleft lip and palate, and downturned corners of the mouth. Clinical features were consistent with the cytogenetic analysis of tetrasomy 9p. In general, clinicians are not as familiar with the features of tetrasomy 9p syndrome as that of more common chromosomal abnormalities like trisomies 13, 18, and 21. Hence, this case re-emphasizes the importance of doing the standard karyotyping for patients presenting with multiple congenital anomalies. Also, this is the first reported case of Tetrasomy 9p syndrome in Filipinos.
Isochromosomes
;
Hypertelorism
7.Pathogenic genes and clinical therapeutic strategies for Treacher Collins syndrome.
Bin YIN ; Bing SHI ; Zhong-Lin JIA
West China Journal of Stomatology 2019;37(3):330-335
Treacher Collins syndrome is a congenital craniofacial malformation with autosomal dominant inheritance as the main genetic pattern. In this condition, the biosynthesis of ribosomes in neural crest cells and neuroepithelial cells is blocked and the number of neural crest cells that migrate to the craniofacial region decreases, causing first and second branchial arch dysplasia. Definite causative genes include treacle ribosome biogenesis factor 1 (tcof1), RNA polymerase Ⅰ and Ⅲ subunit C (polr1c), and RNA polymerase Ⅰ and Ⅲ subunit D (polr1d). This paper provides a review of research of three major patho-genic genes, pathogenesis, phenotypic research, prevention, and treatment of the syndrome.
DNA-Directed RNA Polymerases
;
genetics
;
Humans
;
Mandibulofacial Dysostosis
;
genetics
;
Neural Crest
;
Nuclear Proteins
;
Phosphoproteins
8.Frontonasal dysplasia: A case report
Se Il LEE ; Seung Je LEE ; Hong Sil JOO
Archives of Craniofacial Surgery 2019;20(6):397-400
Frontonasal dysplasia is an uncommon congenital anomaly with diverse clinical phenotypes and highly variable clinical characteristics, including hypertelorism, a broad nasal root, median facial cleft, a missing or underdeveloped nasal tip, and a widow's peak hairline. Frontonasal dysplasia is mostly inherited and caused by the ALX genes (ALX1, ALX3, and ALX4). We report a rare case of a frontonasal dysplasia patient with mild hypertelorism, a broad nasal root, an underdeveloped nasal tip, an accessory nasal tag, and a widow's peak. We used soft tissue re-draping to achieve aesthetic improvements.
Humans
;
Hypertelorism
;
Phenotype
9.Smith-Kingsmore syndrome: The first report of a Korean patient with the MTOR germline mutation c.5395G>A p.(Glu1799Lys)
Dohwan LEE ; Ja Hyun JANG ; Cha Gon LEE
Journal of Genetic Medicine 2019;16(1):27-30
Smith-Kingsmore syndrome (SKS; OMIM 616638), also known as macrocephaly-intellectual disability-neurodevelopmental disorder-small thorax syndrome (MINDS; ORPHA 457485), is a rare autosomal dominant disorder, the prevalence of which is not known. It is caused by a heterozygous germline mutation in MTOR (OMIM 601231). Ten different MTOR germline mutations in 27 individuals have been reported in the medical literature to date. These were all gain-of-function missense variants, and about half of the 27 individuals had c.5395G>A p.(Glu1799Lys) in MTOR. Here, I report for the first time a Korean patient with the heterozygous germline mutation c.5395G>A p.(Glu1799Lys) in MTOR. It was found to be a de novo mutation, which was identified by whole-exome sequencing and confirmed by Sanger sequencing. The patient showed typical clinical features of SKS, including macrocephaly/megalencephaly; moderate intellectual disability; seizures; behavioral problems; and facial dysmorphic features of curly hair, frontal bossing, midface hypoplasia, and hypertelorism.
Databases, Genetic
;
Germ-Line Mutation
;
Hair
;
Humans
;
Hypertelorism
;
Intellectual Disability
;
Megalencephaly
;
Prevalence
;
Problem Behavior
;
Seizures
;
Thorax
10.Noonan syndrome and RASopathies: Clinical features, diagnosis and management
Journal of Genetic Medicine 2019;16(1):1-9
Noonan syndrome (NS) and NS-related disorders (cardio-facio-cutaneous syndrome, Costello syndrome, NS with multiple lentigines, or LEOPARD [lentigines, ECG conduction abnormalities, ocular hypertelorism, pulmonic stenosis, abnormal genitalia, retardation of growth and sensory neural deafness] syndrome) are collectively named as RASopathies. Clinical presentations are similar, featured with typical facial features, short stature, intellectual disability, ectodermal abnormalities, congenital heart diseases, chest & skeletal deformity and delayed puberty. During past decades, molecular etiologies of RASopathies have been growingly discovered. The functional perturbations of the RAS-mitogen-activated protein kinase pathway are resulted from the mutation of more than 20 genes (PTPN11, SOS1, RAF1, SHOC2, BRAF, KRAS, NRAS, HRAS, MEK1, MEK2, CBL, SOS2, RIT, RRAS, RASA2, SPRY1, LZTR1, MAP3K8, MYST4, A2ML1, RRAS2). The PTPN11 (40–50%), SOS1 (10–20%), RAF1 (3–17%), and RIT1 (5–9%) mutations are common in NS patients. In this review, the constellation of overlapping clinical features of RASopathies will be described based on genotype as well as their differential diagnostic points and management.
Congenital Abnormalities
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Costello Syndrome
;
Diagnosis
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Ectoderm
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Electrocardiography
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Genitalia
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Genotype
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Heart Diseases
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Humans
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Hypertelorism
;
Intellectual Disability
;
Lentigo
;
Noonan Syndrome
;
Panthera
;
Protein Kinases
;
Puberty, Delayed
;
Pulmonary Valve Stenosis
;
Thorax


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