Molecular Causes for BUBR1 Dysfunction in the Human Cancer Predisposition Syndrome Mosaic Variegated Aneuploidy

被引:92
|
作者
Suijkerbuijk, Saskia J. E. [1 ,2 ]
van Osch, Maria H. J. [1 ,2 ]
Bos, Frank L. [3 ]
Hanks, Sandra [4 ]
Rahman, Nazneen [4 ]
Kops, Geert J. P. L. [1 ,2 ]
机构
[1] Univ Med Ctr Utrecht, Dept Physiol Chem, NL-3584 CG Utrecht, Netherlands
[2] Univ Med Ctr Utrecht, Canc Genom Ctr, NL-3584 CG Utrecht, Netherlands
[3] Univ Med Ctr Utrecht, Expt Oncol Lab, Dept Med Oncol, NL-3584 CG Utrecht, Netherlands
[4] Inst Canc Res, Sect Canc Genet, Sutton, Surrey, England
关键词
SPINDLE-ASSEMBLY CHECKPOINT; PREMATURE CHROMATID SEPARATION; MITOTIC CHECKPOINT; CHROMOSOME ALIGNMENT; AURORA-B; CYCLIN-B; CENP-E; INHIBITOR; KINETOCHORES; COMPLEX;
D O I
10.1158/0008-5472.CAN-09-4319
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Genetic mutations in the mitotic regulatory kinase BUBR1 are associated with the cancer-susceptible disorder mosaic variegated aneuploidy (MVA). In patients with biallelic mutations, a missense mutation pairs with a truncating mutation. Here, we show that cell lines derived from MVA patients with biallelic mutations have an impaired mitotic checkpoint, chromosome alignment defects, and low overall BUBR1 abundance. Ectopic expression of BUBR1 restored mitotic checkpoint activity, proving that BUBR1 dysfunction causes chromosome segregation errors in the patients. Combined analysis of patient cells and functional protein replacement shows that all MVA mutations fall in two distinct classes: those that impose specific defects in checkpoint activity or microtubule attachment and those that lower BUBR1 protein abundance. Low protein abundance is the direct result of the absence of transcripts from truncating mutants combined with high protein turnover of missense mutants. In this group of missense mutants, the amino acid change consistently occurs in or near the BUBR1 kinase domain. Our findings provide a molecular explanation for chromosomal instability in patients with biallelic genetic mutations in BUBR1. Cancer Res; 70(12); 4891-900. (C)2010 AACR.
引用
收藏
页码:4891 / 4900
页数:10
相关论文
共 36 条
  • [31] BubR1 Acts as a Promoter in Cellular Motility of Human Oral Squamous Cancer Cells through Regulating MMP-2 and MMP-9
    Chou, Chou-Kit
    Wu, Chang-Yi
    Chen, Jeff Yi-Fu
    Ng, Ming-Chong
    Wang, Hui-Min David
    Chen, Jen-Hao
    Yuan, Shyng-Shiou F.
    Tsai, Eing-Mei
    Chang, Jan-Gowth
    Chiu, Chien-Chih
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2015, 16 (07) : 15104 - 15117
  • [32] Functional genetic approach identifies cancer-specific requirement for BUB1B/BubR1 in human brain tumor isolates and genetically transformed cells
    Ding, Yu
    Hubert, Christopher
    Herman, Jacob
    DeLuca, Jennifer
    Olson, James
    Paddison, Patrick
    MOLECULAR CANCER THERAPEUTICS, 2013, 12 (05)
  • [33] BubR1 is required for a sustained mitotic spindle checkpoint arrest in human cancer cells treated with tubulin-targeting pyrrolo-1,5-benzoxazepines
    Greene, Lisa M.
    Campiani, Giuseppe
    Lawler, Mark
    Williams, D. Clive
    Zisterer, Daniela M.
    MOLECULAR PHARMACOLOGY, 2008, 73 (02) : 419 - 430
  • [34] Mosaic FMR1 deletion causes fragile X syndrome and can lead to molecular misdiagnosis:: A case report and review of the literature
    Coffee, Bradford
    Ikeda, Morna
    Budimirovic, Dejan B.
    Hjelm, Lawrence N.
    Kaufmann, Walter E.
    Warren, Stephen T.
    AMERICAN JOURNAL OF MEDICAL GENETICS PART A, 2008, 146A (10) : 1358 - 1367
  • [35] Glucose starvation-induced oxidative stress causes mitochondrial dysfunction and apoptosis via Prohibitin 1 upregulation in human breast cancer cells
    Raut, Ganesh Kumar
    Chakrabarti, Moumita
    Pamarthy, Deepika
    Bhadra, Manika Pal
    FREE RADICAL BIOLOGY AND MEDICINE, 2019, 145 : 428 - 441
  • [36] Non-mosaic germline cancer hotspot mutation p. Ser1344Leu in the RNase IIIa domain of DICER1 causes a GLOW syndrome-like phenotype
    Frisk, S. A.
    Ponten, E.
    Lagerstedt-Robinson, K.
    Vaz, R.
    Taylan, F.
    Nordgren, A.
    EUROPEAN JOURNAL OF HUMAN GENETICS, 2020, 28 (SUPPL 1) : 462 - 463