1.Genetic analysis of a Chinese pedigree affected with congenital split-hand/foot malformation.
Libin MEI ; Xuemei HE ; Haijie GAO ; Yanru HUANG ; Xiaolin WU ; Huan HE ; Ping LI
Chinese Journal of Medical Genetics 2021;38(12):1208-1210
OBJECTIVE:
To analyze the molecular genetics of a Chinese pedigree with congenital hand foot cleft.
METHODS:
Single nucleotide polymorphism microarray (SNP array) was used to analyze the whole genome copy number variation.
RESULTS:
SNP array analysis showed that there was a 433 kb repeat in 10q24.31-10q24.32 region, which contained LBX1, BTRC, POLL, OPCD and FBXW4 genes.
CONCLUSION
Microduplication of chromosome 10q24.31-10q24.32 may be the cause of congenital hand foot cleft in this pedigree.
China
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DNA Copy Number Variations/genetics*
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Foot Deformities, Congenital/genetics*
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Hand Deformities, Congenital/genetics*
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Humans
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Pedigree
3.Genetic analysis of three families affected with split-hand/split-foot malformation.
Wenbin HE ; Ge LIN ; Ping LIANG ; Dehua CHENG ; Xiao HU ; Lihua ZHOU ; Bo XIONG ; Yueqiu TAN ; Guangxiu LU ; Wen LI
Chinese Journal of Medical Genetics 2017;34(4):476-480
OBJECTIVETo explore the genetic etiology of three families affected with split-hand/split-foot malformation (SHFM).
METHODSPeripheral venous blood samples from 21 members of pedigree 1, 2 members of pedigree 2, and 2 members of pedigree 3 were collected. PCR-Sanger sequencing, microarray chip, fluorescence in situ hybridization (FISH), real-time PCR, and next-generation sequencing were employed to screen the mutations in the 3 families. The effect of the identified mutations on the finger (toe) abnormality were also explored.
RESULTSMicroarray and real-time PCR analysis has identified a duplication in all patients from pedigrees 1 and 3, which have spanned FKSG40, TLX1, LBX1, BTRC, POLL and FBXW4 (exons 6-9) and LBX1, BTRC, POLL and FBXW4 (exons 6-9) genes, respectively. A missense mutation of the TP63 gene, namely c.692A>G (p.Tyr231Cys), was found in two patients from pedigree 2. FISH analysis of chromosome 10 showed that the rearrangement could fita tandem duplication model. However, next-generation sequencing did not identify the breakpoint.
CONCLUSIONThe genetic etiology for three families affected with SHFM have been identified, which has provideda basis for genetic counseling and guidance for reproduction.
Chromosomes, Human, Pair 10 ; genetics ; Female ; Foot Deformities, Congenital ; genetics ; Genetic Testing ; Hand Deformities, Congenital ; genetics ; Humans ; Limb Deformities, Congenital ; genetics ; Male ; Mutation ; genetics ; Pedigree
4.Split hand/foot malformation: report of a family with 20 cases.
Anli SHU ; Chua-nan YI ; Miao-miao LIU ; Cui-qin HUANG ; She CHEN ; Shu-mei YANG ; Qiang HE ; Xi-dan LI
Chinese Journal of Medical Genetics 2013;30(4):498-499
Adult
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Female
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Foot Deformities, Congenital
;
diagnosis
;
genetics
;
Hand Deformities, Congenital
;
diagnosis
;
genetics
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Humans
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Male
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Pedigree
;
Young Adult
5.Seven patients with congenital finger flexion contracture deformity in a family.
Qingli QUAN ; Xueshuang HUANG ; Genyun TANG ; Shali LI ; Haiou JIANG
Chinese Journal of Medical Genetics 2015;32(2):302-302
Adult
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Aged
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Contracture
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congenital
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genetics
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Fingers
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abnormalities
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Hand Deformities, Congenital
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genetics
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Humans
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Male
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Middle Aged
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Pedigree
6.Congenital syndactyly combined with split hand malformation: a family with 19 affected members.
Guang YANG ; Zhi-qiang GUO ; Shu-wen LIU ; Zhonghui GUO ; Jun YANG
Chinese Journal of Medical Genetics 2012;29(6):733-734
Female
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Hand Deformities, Congenital
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diagnosis
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genetics
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Humans
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Male
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Phenotype
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Syndactyly
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diagnosis
;
genetics
7.Genetic analysis of a Chinese pedigree with split hand and foot malformation.
Jun YANG ; Ling-han GAO ; An-li SHU ; Wei QIN ; Guo-yin FENG ; Lin HE
Chinese Journal of Medical Genetics 2007;24(6):620-624
OBJECTIVETo analyze the clinical manefestation and genetic basis of split hand and foot malformation (SHFM) in a Chinese pedigree.
METHODSThe affected people in the family were checked by X-rays. Eighteen patients provided their peripheral blood, and the genomic DNA of the samples was extracted. The linkage and haplotype analysis were carried out using the microsatellite markers, and the limb malformation related gene Dactylin (DAC) including the coding region, exon-intron boundaries and part of promoter region was sequenced.
RESULTSMost members of the family with the disease phenotype showed absence or hypoplasia of the index finger, and absence or 3-4 syndactyly of the middle finger. The degree of abnormality in feet was severer than that in hands. All phenotypes of the patients display the basic characters of SHFM. Since the maximum two point LOD score of the D10S192 was 3.50 (theta=0.00), the SHFM in this pedigree can be categorized to the SHFM3. The haplotype analysis of recombination events revealed the candidate locus to a 21cM region between D10S185 and D10S1693. No mutation was found by the sequencing result of DAC gene.
CONCLUSIONThrough the analysis of phenotype of the patients, the typical SHFM disease can be confirmed. The linkage and haplotype analysis demonstrated that the 21cM region in 10q23-q26 locus was the major cause to the disease in this pedigree. The mutation of DAC gene can be excluded from cause of SHFM3 phenotype.
Adult ; Asian Continental Ancestry Group ; genetics ; Chromosome Mapping ; Female ; Foot Deformities, Congenital ; genetics ; Hand Deformities, Congenital ; genetics ; Haplotypes ; genetics ; Humans ; Male ; Pedigree
8.One family investigation and pathogeny research on ectrodactyly, absence of radius side part palm and split foot malformation.
Zhou-jun HU ; Xiao-fen YU ; Qi-huan LI ; Ai-ju ZHANG ; Xi DENG ; Ai-ying ZHANG
Chinese Journal of Medical Genetics 2004;21(5):482-484
OBJECTIVEThe paper is a study on the clinical symptoms and pathogeny of ectrodactyly and absence of radius side part palm and split foot malformation of some patients in one family.
METHODSBased on the patient family investigation,a normal control group and a patient group were established. Then, polymerase chain reaction technique was used for DNA sequencing and analysis of the two groups for their exons 5-8 gene group DNA of P63 gene.
RESULTSThe medical examination found that the patients' upper bilateral limbs are short of thumbs, forefingers and middle fingers, and have radius side part palm and double lower limbs foot clefts malformation. The pathogeny research revealed that the PCR expansion pieces of the exons 5-8 of P63 are 284 bp, 259 bp, 245 bp and 259 bp respectively, and the size of the expansion piece of the patients was the same as that of the normal people group. However, a respective comparison between the DNA serial of the expansion piece of the patient and that of the normal people group and that of the P63 gene in the human gene bank showed that mutation occurs at the number 665 base pair of exon 5 of P63, namely a mutation from G to A.
CONCLUSIONThe ectrodactyly, absence of radius side part palm and split foot malformation are caused by the mutation of base pair at number 665 of the exon 5 of P63.
Exons ; genetics ; Female ; Foot Deformities, Congenital ; genetics ; pathology ; Genetic Predisposition to Disease ; Hand Deformities, Congenital ; genetics ; pathology ; Humans ; Male ; Membrane Proteins ; genetics ; Mutation ; Pedigree ; Polymerase Chain Reaction
9.Genetic analysis of one family with congenital limb malformations.
Fengying CAI ; Jijun MA ; Rui PAN ; Chao WANG ; Weichao LI ; Chunquan CAI ; Shuxiang LIN ; Jianbo SHU
Chinese Journal of Medical Genetics 2019;36(9):890-892
OBJECTIVE:
To detect potential mutation in a Chinese pedigree affected with congenital limb malformations.
METHODS:
Clinical data was collected. Genomic DNA was extracted from peripheral blood samples of family members. The zone of polarizing activity regulatory sequence (ZRS) were amplified by PCR and subjected to direct sequencing.
RESULTS:
Among the 13 individuals in this pedigree, there were 4 PPD patients, who were characterized by varying degrees of deformity. The female patients suffered triphalangeal thumb and preaxial polydactyly, while the male patients only had preaxial polydactyly. Only one patient had foot involvement. TA heterogeneous mutations was discovered in the ZRS (105C>G) in all patients, the same mutation was not detected in 2 healthy family members.
CONCLUSION
The inheritance pattern of PPD was autosomal dominant inheritance. There was a significant variability of symptoms among family patients. The heterozygous mutation of the ZRS (105C>G) probably underlie the disease.
Female
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Genetic Testing
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Hand Deformities, Congenital
;
genetics
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Humans
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Limb Deformities, Congenital
;
genetics
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Male
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Membrane Proteins
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genetics
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Pedigree
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Polydactyly
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genetics
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Thumb
;
pathology
10.Genetic analysis of a pedigree affected with congenital split-hand/foot malformation.
Qian LI ; Ming TONG ; Canming CHEN ; Yaping JI ; Kai ZHOU ; Guijiang XU ; Suwei HU
Chinese Journal of Medical Genetics 2020;37(4):467-470
OBJECTIVE:
To explore the genetic basis for a Chinese pedigree affected with split hand/foot malformation (SHFM).
METHODS:
Genomic DNA of the proband and other affected members was extracted from peripheral blood samples. Chromosomal microarray analysis was employed to detect genome-wide copy number variations (CNVs).
RESULTS:
A 400 kb microduplication was identified in the 10q24.31-q24.32 region among all affected individuals. The microduplication has involved four genes, namely LBX1, BTRC, POLL and DPCD, in addition with part of FBXW4 gene.
CONCLUSION
The 10q24.31-q24.32 microduplication has segregated with the disease phenotype in this pedigree and probably underlay the SHFM malformation in the patients.
Asian Continental Ancestry Group
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Chromosome Duplication
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Chromosomes, Human, Pair 10
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genetics
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DNA Copy Number Variations
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Foot Deformities, Congenital
;
genetics
;
Genetic Testing
;
Hand Deformities, Congenital
;
genetics
;
Humans
;
Limb Deformities, Congenital
;
genetics
;
Pedigree