[1] |
Kosho T, Okamoto N, Ohashi H, et al. Clinical correlations of mutations affecting six components of the SWI/SNF complex: Detailed description of 21 patients and a review of the literature[J]. Am J Med Genet A, 2013, 161A(6):1221-1237.
|
[2] |
Määttänen L, Hietala M, Ignatius J, et al. A 69-year-old woman with Coffin-Siris syndrome[J]. Am J Med Genet A, 2018, 176(8):1764-1767.
doi: 10.1002/ajmg.a.38844
pmid: 30055038
|
[3] |
Kosho T, Miyake N, Carey JC. Coffin-Siris syndrome and related disorders involving components of the BAF (mSWI/SNF) complex: Historical review and recent advances using next generation sequencing[J]. Am J Med Genet C Semin Med Genet, 2014, 166C(3):241-251.
|
[4] |
Santen GW, Aten E, Sun Y, et al. Mutations in SWI/SNF chromatin remodeling complex gene ARID1B cause Coffin-Siris syndrome[J]. Nat Genet 2012, 44(4):379-380.
doi: 10.1038/ng.2217
pmid: 22426309
|
[5] |
Tsurusaki Y, Okamoto N, Ohashi H, et al. Coffin-Siris syndrome is a SWI/SNF complex disorder[J]. Clin Genet, 2014, 85(6):548-554.
doi: 10.1111/cge.12225
pmid: 23815551
|
[6] |
Vals MA, Öiglane-Shlik E, Nõukas M, et al. Coffin-Siris Syndrome with obesity, macrocephaly, hepatomegaly and hyperinsulinism caused by a mutation in the ARID1B gene[J]. Eur J Hum Genet, 2014, 22(11):1327-1329.
doi: 10.1038/ejhg.2014.25
URL
|
[7] |
Smith JA, Holden KR, Friez MJ, et al, A novel familial autosomal dominant mutation in ARID1B causing neurodevelopmental delays, short stature, and dysmorphic features[J]. Am J Med Genet A, 2016, 170(12):3313-3318.
doi: 10.1002/ajmg.a.v170.12
URL
|
[8] |
Sonmez FM, Uctepe E, Gunduz M, et al. Coffin-Siris syndrome with café-au-lait spots, obesity and hyperinsulinism caused by a mutation in the ARID1B gene[J]. Intractable Rare Dis Res, 2016, 5(3):222-226.
doi: 10.5582/irdr.2014.01040
URL
|
[9] |
Pranckènienè L, Siavrienè E, Gueneau L, et al. De novo splice site variant of ARID1B associated with pathogenesis of Coffin-Siris syndrome[J]. Mol Genet Genomic Med, 2019, 7(12):e1006.
|
[10] |
Malli T, Duba HC, Erdel M, et al. Disruption of the ARID1B and ADAMTS6 loci due to a t(5;6)(q12.3;q25.3) in a patient with developmental delay[J]. Am J Med Genet A, 2014, 164A(12):3126-3131.
|
[11] |
Mannino EA, Miyawaki H, Santen G, et al. First data from a parent-reported registry of 81 individuals with Coffin-Siris syndrome: Natural history and management recommendations[J]. Am J Med Genet A, 2018, 176(11):2250-2258.
doi: 10.1002/ajmg.a.40471
URL
|
[12] |
Ben-Salem S, Sobreira N, Akawi NA, et al. Gonadal mosaicism in ARID1B gene causes intellectual disability and dysmorphic features in three siblings[J]. Am J Med Genet A, 2016, 170A(1):156-161.
doi: 10.1002/ajmg.a.37405
pmid: 26395437
|
[13] |
Natsume T, Takano K, Motobayashi M, et al. Hepatomegaly in a boy with ARID1B-related Coffin-Siris syndrome[J]. Pediatr Int, 2018, 60(4):378-380.
doi: 10.1111/ped.13508
URL
|
[14] |
Melo Gomes S, Dias C, Omoyinmi E, et al, Inflammatory arthritis as a possible feature of Coffin-Siris Syndrome[J]. Pediatrics, 2019, 144(1):e20181741.
doi: 10.1542/peds.2018-1741
URL
|
[15] |
Sweeney NM, Nahas SA, Chowdhury S, et al, The case for early use of rapid whole-genome sequencing in management of critically ill infants: late diagnosis of Coffin-Siris syndrome in an infant with left congenital diaphragmatic hernia, congenital heart disease, and recurrent infections[J]. Cold Spring Harb Mol Case Stud, 2018, 4(3):a002469.
|
[16] |
Paulraj P, Palumbos JC, Openshaw A, et al. Multiple congenital anomalies and global developmental delay in a patient with interstitial 6q25.2q26 Deletion: A diagnostic odyssey[J]. Cytogenet Genome Res, 2018, 156(4):191-196.
doi: 10.1159/000494871
URL
|
[17] |
Pascolini G, Valiante M, Bottillo I, et al. Striking phenotypic overlap between Nicolaides-Baraitser and Coffin-Siris syndromes in monozygotic twins with ARID1B intragenic deletion[J]. Eur J Med Genet 2019, 63(3):103739.
doi: 10.1016/j.ejmg.2019.103739
URL
|
[18] |
van der Sluijs PJ, Jansen S, Vergano SA, et al, The ARID1B spectrum in 143 patients: from nonsyndromic intellectual disability to Coffin-Siris syndrome[J]. Genet Med, 2019, 21(6):1295-1307.
doi: 10.1038/s41436-018-0330-z
URL
|
[19] |
Wieczorek D, Bögershausen N, Beleggia F, et al. A comprehensive molecular study on Coffin-Siris and Nicolaides-Baraitser syndromes identifies a broad molecular and clinical spectrum converging on altered chromatin remodeling[J]. Hum Mol Genet, 2013, 22(25):5121-5135.
doi: 10.1093/hmg/ddt366
pmid: 23906836
|
[20] |
赵培伟, 高丹, 黄玉凤, 等, 一例Coffin-Siris综合征患儿的临床表型及遗传学分析[J]. 中华医学遗传学杂, 2018, 35(5):707-710.
|
[21] |
Michelson M, Ben-Sasson A, Vinkler C, et al. Delineation of the interstitial 6q25 microdeletion syndrome: Refinement of the critical causative region[J]. Am J Med Genet A, 2012, 158A(6):1395-1399.
doi: 10.1002/ajmg.a.35361
pmid: 22585544
|
[22] |
Amankwah EK, Thompson RC, Nabors LB, et al. SWI/SNF gene variants and glioma risk and outcome[J]. Cancer Epidemiol, 2013, 37(2):162-165.
doi: 10.1016/j.canep.2012.12.001
pmid: 23276717
|
[23] |
Santen GW, Kriek M, van Attikum H. SWI/SNF complex in disorder: SWItching from malignancies to intellectual disability[J]. Epigenetics, 2012, 7(11):1219-1224.
doi: 10.4161/epi.22299
pmid: 23010866
|
[24] |
Wilson BG, Roberts CW. SWI/SNF nucleosome remodellers and cancer. Nature reviews[J]. Cancer, 2011, 11(7):481-492.
|
[25] |
Euskirchen G, Auerbach RK, Snyder M. SWI/SNF chromatin-remodeling factors: Multiscale analyses and diverse functions[J]. J Biol Chem, 2012, 287(37):30897-30905.
doi: 10.1074/jbc.R111.309302
pmid: 22952240
|
[26] |
Tsurusaki Y, Okamoto N, Ohashi H, et al. Mutations affecting components of the SWI/SNF complex cause Coffin-Siris syndrome[J]. Nat Genet, 2012, 44(4):376-378.
doi: 10.1038/ng.2219
URL
|
[27] |
Wang X, Nagl NG, Wilsker D, et al. Two related ARID family proteins are alternative subunits of human SWI/SNF complexes[J]. Biochem J, 2004, 383(Pt 2):319-325.
doi: 10.1042/BJ20040524
URL
|
[28] |
Wilsker D, Patsialou A, Zumbrun SD, et al. The DNA-binding properties of the ARID-containing subunits of yeast and mammalian SWI/SNF complexes[J]. Nucleic Acids Res, 2004, 32(4):1345-1353.
doi: 10.1093/nar/gkh277
URL
|
[29] |
Inoue H, Furukawa T, Giannakopoulos S, et al. Largest subunits of the human SWI/SNF chromatin-remodeling complex promote transcriptional activation by steroid hormone receptors[J]. J Biol Chem, 2002, 277(44):41674-41685.
doi: 10.1074/jbc.M205961200
URL
|
[30] |
Hurlstone AF, Olave IA, Barker N, et al. Cloning and characterization of hELD/OSA1, a novel BRG1 interacting protein[J]. Biochem J, 2002, 364(Pt 1):255-264.
pmid: 11988099
|
[31] |
Sim JC, White SM, Lockhart PJ. ARID1B-mediated disorders: Mutations and possible mechanisms[J]. Intractable Rare Dis Res, 2015, 4(1):17-23.
doi: 10.5582/irdr.2014.01021
URL
|