-
Je něco špatně v tomto záznamu ?
Analysis of chromosomal aberrations in patients with mental retardation using the array-CGH technique: a single Czech centre experience
Zrnová E, Vranová V, Slámová I, Gaillyová R, Kuglík P.
Jazyk angličtina Země Česko
Typ dokumentu práce podpořená grantem
NLK
Free Medical Journals
od 2000
Freely Accessible Science Journals
od 2000
ProQuest Central
od 2005-01-01
Health & Medicine (ProQuest)
od 2005-01-01
ROAD: Directory of Open Access Scholarly Resources
od 2000
- MeSH
- chromozomální aberace MeSH
- chromozomální delece MeSH
- dítě MeSH
- genová dávka MeSH
- lidé MeSH
- mentální retardace genetika MeSH
- mladiství MeSH
- srovnávací genomová hybridizace MeSH
- Check Tag
- dítě MeSH
- lidé MeSH
- mladiství MeSH
- mužské pohlaví MeSH
- ženské pohlaví MeSH
- Publikační typ
- práce podpořená grantem MeSH
- Geografické názvy
- Česká republika MeSH
Submicroscopic structural chromosomal aberrations (microduplications and microdeletions) are believed to be common causes of mental retardation. These so-called copy number variations can now be routinely detected using various platforms for array-based comparative genomic hybridization (array-CGH), which allow genome-wide identification of pathogenic genomic imbalances. In this study, oligonucleotide-based array-CGH was used to investigate a panel of 23 patients with mental retardation and developmental delay, dysmorphic features or congenital anomalies. Array-CGH confirmed or revealed 16 chromosomal aberrations in a total of 12 patients. Analysis of parental samples showed that five aberrations had occurred de novo: del(1)(p36.33p36.23), del(4)(p16.3p16.2) joined with dup(8)(p23.3p23.1), del(6)(q14.1q15), del(11)(q13.1q13.4). Three aberrations appeared to be inherited from an unaffected parent: dup(3)(q29), del(6)(q12), dup(16)(p13.11). Six aberrations appeared to be inherited from a parental carrier: del(1)(p36.33) joined with dup(12)(q24.32), del(21)(q22.2q22.3) joined with dup(11)(q24.2q25), del(X)(q22.3) and del(1)(q21.1). In two cases, parents were not available for testing: del(17)(q11.2q12) and del(2)(q24.3q31.1). Our results show that the use of oligonucleotide-based array- CGH in a clinical diagnostic laboratory increases the detection rate of pathogenic submicroscopic chromosomal aberrations in patients with mental retardation and congenital abnormalities, but it also presents challenges for clinical interpretation of the results (i.e., distinguishing between pathogenic and benign variants). Difficulties with analysis notwithstanding, the array-CGH is shown to be a sensitive, fast and reliable method for genome-wide screening of chromosomal aberrations in patients with mental retardation and congenital abnormalities.
Obsahuje tabulku
Bibliografie atd.Literatura
- 000
- 00000naa a2200000 a 4500
- 001
- bmc12000423
- 003
- CZ-PrNML
- 005
- 20120620085602.0
- 007
- ta
- 008
- 120113s2011 xr do f 000 0eng||
- 009
- AR
- 040 __
- $a ABA008 $d ABA008 $e AACR2 $b cze
- 041 0_
- $a eng
- 044 __
- $a xr
- 100 1_
- $a Zrnová, Eva. $7 xx0195767 $u University Hospital Brno, Department of Medical Genetics, Integrated Laboratory of Molecular Cytogenetics, Brno
- 245 10
- $a Analysis of chromosomal aberrations in patients with mental retardation using the array-CGH technique: a single Czech centre experience / $c Zrnová E, Vranová V, Slámová I, Gaillyová R, Kuglík P.
- 500 __
- $a Obsahuje tabulku
- 504 __
- $a Literatura $b 53
- 520 9_
- $a Submicroscopic structural chromosomal aberrations (microduplications and microdeletions) are believed to be common causes of mental retardation. These so-called copy number variations can now be routinely detected using various platforms for array-based comparative genomic hybridization (array-CGH), which allow genome-wide identification of pathogenic genomic imbalances. In this study, oligonucleotide-based array-CGH was used to investigate a panel of 23 patients with mental retardation and developmental delay, dysmorphic features or congenital anomalies. Array-CGH confirmed or revealed 16 chromosomal aberrations in a total of 12 patients. Analysis of parental samples showed that five aberrations had occurred de novo: del(1)(p36.33p36.23), del(4)(p16.3p16.2) joined with dup(8)(p23.3p23.1), del(6)(q14.1q15), del(11)(q13.1q13.4). Three aberrations appeared to be inherited from an unaffected parent: dup(3)(q29), del(6)(q12), dup(16)(p13.11). Six aberrations appeared to be inherited from a parental carrier: del(1)(p36.33) joined with dup(12)(q24.32), del(21)(q22.2q22.3) joined with dup(11)(q24.2q25), del(X)(q22.3) and del(1)(q21.1). In two cases, parents were not available for testing: del(17)(q11.2q12) and del(2)(q24.3q31.1). Our results show that the use of oligonucleotide-based array- CGH in a clinical diagnostic laboratory increases the detection rate of pathogenic submicroscopic chromosomal aberrations in patients with mental retardation and congenital abnormalities, but it also presents challenges for clinical interpretation of the results (i.e., distinguishing between pathogenic and benign variants). Difficulties with analysis notwithstanding, the array-CGH is shown to be a sensitive, fast and reliable method for genome-wide screening of chromosomal aberrations in patients with mental retardation and congenital abnormalities.
- 650 02
- $a mladiství $7 D000293
- 650 02
- $a dítě $7 D002648
- 650 02
- $a chromozomální aberace $7 D002869
- 650 02
- $a chromozomální delece $7 D002872
- 650 02
- $a srovnávací genomová hybridizace $7 D055028
- 650 02
- $a ženské pohlaví $7 D005260
- 650 02
- $a genová dávka $7 D018628
- 650 02
- $a lidé $7 D006801
- 650 02
- $a mentální retardace $x genetika $7 D008607
- 650 02
- $a mužské pohlaví $7 D008297
- 651 _2
- $a Česká republika $7 D018153
- 655 _2
- $a práce podpořená grantem $7 D013485
- 700 1_
- $a Vallová, Vladimíra. $7 mub2011669456 $u University Hospital Brno, Department of Medical Genetics, Integrated Laboratory of Molecular Cytogenetics, Brno; Masaryk University, Faculty of Science, Institute of Experimental Biology, Department of Genetics and Molecular Biology, Brno
- 700 1_
- $a Slámová, Iva $7 xx0138280 $u University Hospital Brno, Department of Medical Genetics, Integrated Laboratory of Molecular Cytogenetics, Brno; Masaryk University, Faculty of Science, Institute of Experimental Biology, Department of Genetics and Molecular Biology, Brno
- 700 1_
- $a Gaillyová, Renata, $d 1957- $7 jo20010084782 $u University Hospital Brno, Department of Medical Genetics, Integrated Laboratory of Molecular Cytogenetics, Brno
- 700 1_
- $a Kuglík, Petr, $d 1957- $7 ola2003204793 $u University Hospital Brno, Department of Medical Genetics, Integrated Laboratory of Molecular Cytogenetics, Brno; Masaryk University, Faculty of Science, Institute of Experimental Biology, Department of Genetics and Molecular Biology, Brno
- 773 0_
- $t Folia biologica $x 0015-5500 $g Roč. 57, č. 5 (2011), s. 206-215 $w MED00011004
- 856 41
- $u https://fb.cuni.cz/file/5601/FB2011A0030.pdf $y plný text volně přístupný
- 910 __
- $a ABA008 $b A 970 $c 89 $y 2
- 990 __
- $a 20120112101500 $b ABA008
- 991 __
- $a 20120620085525 $b ABA008
- 999 __
- $a ok $b bmc $g 893109 $s 757104
- BAS __
- $a 3
- BMC __
- $a 2011 $b 57 $c 5 $d 206-215 $i 0015-5500 $m Folia biologica (Praha) $n Folia biol. (Praha) $x MED00011004
- LZP __
- $a 2012-01/mkme