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PLOS ONE  2009 

Multipolar Spindle Pole Coalescence Is a Major Source of Kinetochore Mis-Attachment and Chromosome Mis-Segregation in Cancer Cells

DOI: 10.1371/journal.pone.0006564

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Abstract:

Many cancer cells display a CIN (Chromosome Instability) phenotype, by which they exhibit high rates of chromosome loss or gain at each cell cycle. Over the years, a number of different mechanisms, including mitotic spindle multipolarity, cytokinesis failure, and merotelic kinetochore orientation, have been proposed as causes of CIN. However, a comprehensive theory of how CIN is perpetuated is still lacking. We used CIN colorectal cancer cells as a model system to investigate the possible cellular mechanism(s) underlying CIN. We found that CIN cells frequently assembled multipolar spindles in early mitosis. However, multipolar anaphase cells were very rare, and live-cell experiments showed that almost all CIN cells divided in a bipolar fashion. Moreover, fixed-cell analysis showed high frequencies of merotelically attached lagging chromosomes in bipolar anaphase CIN cells, and higher frequencies of merotelic attachments in multipolar vs. bipolar prometaphases. Finally, we found that multipolar CIN prometaphases typically possessed γ-tubulin at all spindle poles, and that a significant fraction of bipolar metaphase/early anaphase CIN cells possessed more than one centrosome at a single spindle pole. Taken together, our data suggest a model by which merotelic kinetochore attachments can easily be established in multipolar prometaphases. Most of these multipolar prometaphase cells would then bi-polarize before anaphase onset, and the residual merotelic attachments would produce chromosome mis-segregation due to anaphase lagging chromosomes. We propose this spindle pole coalescence mechanism as a major contributor to chromosome instability in cancer cells.

References

[1]  Cimini D (2008) Merotelic kinetochore orientation, aneuploidy, and cancer. Biochim Biophys Acta 1786: 32–40.
[2]  Weaver BA, Cleveland DW (2006) Does aneuploidy cause cancer? Curr Opin Cell Biol 18: 658–667.
[3]  Boveri T (2008) Concerning the origin of malignant tumours by Theodor Boveri. Translated and annotated by Henry Harris. J Cell Sci 121, Supplement 1: 1–84.
[4]  Lengauer C, Kinzler KW, Vogelstein B (1997) Genetic instability in colorectal cancers. Nature 386: 623–627.
[5]  Rajagopalan H, Lengauer C (2004) CIN-ful cancers. Cancer Chemother Pharmacol 54: Suppl 1S65–68.
[6]  Yuen KW, Desai A (2008) The wages of CIN. J Cell Biol 180: 661–663.
[7]  Cahill DP, Lengauer C, Yu J, Riggins GJ, Willson JK, et al. (1998) Mutations of mitotic checkpoint genes in human cancers. Nature 392: 300–303.
[8]  Tighe A, Johnson VL, Albertella M, Taylor SS (2001) Aneuploid colon cancer cells have a robust spindle checkpoint. EMBO Rep 2: 609–614.
[9]  Gascoigne KE, Taylor SS (2008) Cancer cells display profound intra- and interline variation following prolonged exposure to antimitotic drugs. Cancer Cell 14: 111–122.
[10]  Gisselsson D (2005) Mitotic instability in cancer: is there method in the madness? Cell Cycle 4: 1007–1010.
[11]  Masuda A, Takahashi T (2002) Chromosome instability in human lung cancers: possible underlying mechanisms and potential consequences in the pathogenesis. Oncogene 21: 6884–6897.
[12]  Ghadimi BM, Sackett DL, Difilippantonio MJ, Schrock E, Neumann T, et al. (2000) Centrosome amplification and instability occurs exclusively in aneuploid, but not in diploid colorectal cancer cell lines, and correlates with numerical chromosomal aberrations. Genes Chromosomes Cancer 27: 183–190.
[13]  Fukasawa K (2005) Centrosome amplification, chromosome instability and cancer development. Cancer Lett 230: 6–19.
[14]  Lingle WL, Lukasiewicz K, Salisbury JL (2005) Deregulation of the centrosome cycle and the origin of chromosomal instability in cancer. Adv Exp Med Biol 570: 393–421.
[15]  Lingle WL, Barrett SL, Negron VC, D'Assoro AB, Boeneman K, et al. (2002) Centrosome amplification drives chromosomal instability in breast tumor development. Proc Natl Acad Sci U S A 99: 1978–1983.
[16]  Kwon M, Godinho SA, Chandhok NS, Ganem NJ, Azioune A, et al. (2008) Mechanisms to suppress multipolar divisions in cancer cells with extra centrosomes. Genes Dev 22: 2189–2203.
[17]  Quintyne NJ, Reing JE, Hoffelder DR, Gollin SM, Saunders WS (2005) Spindle multipolarity is prevented by centrosomal clustering. Science 307: 127–129.
[18]  Brinkley BR (2001) Managing the centrosome numbers game: from chaos to stability in cancer cell division. Trends Cell Biol 11: 18–21.
[19]  Godinho SA, Kwon M, Pellman D (2009) Centrosomes and cancer: how cancer cells divide with too many centrosomes. Cancer Metastasis Rev 28: 85–98.
[20]  Reing JE, Gollin SM, Saunders WS (2004) The occurrence of chromosome segregational defects is an intrinsic and heritable property of oral squamous cell carcinoma cell lines. Cancer Genet Cytogenet 150: 57–61.
[21]  Saunders WS, Shuster M, Huang X, Gharaibeh B, Enyenihi AH, et al. (2000) Chromosomal instability and cytoskeletal defects in oral cancer cells. Proc Natl Acad Sci U S A 97: 303–308.
[22]  Thompson SL, Compton DA (2008) Examining the link between chromosomal instability and aneuploidy in human cells. J Cell Biol 180: 665–672.
[23]  Wolf KW, Mentzel M, Mendoza AS (1996) DNA-containing cytoplasmic bridges in a human breast cancer cell line, MX-1: morphological markers of a highly mobile cell type? J Submicrosc Cytol Pathol 28: 369–373.
[24]  Gisselsson D, Lv M, Tsao SW, Man C, Jin C, et al. (2005) Telomere-mediated mitotic disturbances in immortalized ovarian epithelial cells reproduce chromosomal losses and breakpoints from ovarian carcinoma. Genes Chromosomes Cancer 42: 22–33.
[25]  Pellman D (2001) Cancer. A CINtillating new job for the APC tumor suppressor. Science 291: 2555–2556.
[26]  Yang Z, Loncarek J, Khodjakov A, Rieder CL (2008) Extra centrosomes and/or chromosomes prolong mitosis in human cells. Nat Cell Biol 10: 748–751.
[27]  Fujiwara T, Bandi M, Nitta M, Ivanova EV, Bronson RT, et al. (2005) Cytokinesis failure generating tetraploids promotes tumorigenesis in p53-null cells. Nature 437: 1043–1047.
[28]  Nguyen HG, Makitalo M, Yang D, Chinnappan D, St Hilaire C, et al. (2009) Deregulated Aurora-B induced tetraploidy promotes tumorigenesis. Faseb J.
[29]  Pihan GA, Purohit A, Wallace J, Malhotra R, Liotta L, et al. (2001) Centrosome defects can account for cellular and genetic changes that characterize prostate cancer progression. Cancer Res 61: 2212–2219.
[30]  Sato N, Mizumoto K, Nakamura M, Maehara N, Minamishima YA, et al. (2001) Correlation between centrosome abnormalities and chromosomal instability in human pancreatic cancer cells. Cancer Genet Cytogenet 126: 13–19.
[31]  Jin Y, Stewenius Y, Lindgren D, Frigyesi A, Calcagnile O, et al. (2007) Distinct mitotic segregation errors mediate chromosomal instability in aggressive urothelial cancers. Clin Cancer Res 13: 1703–1712.
[32]  Kaplan KB, Burds AA, Swedlow JR, Bekir SS, Sorger PK, et al. (2001) A role for the Adenomatous Polyposis Coli protein in chromosome segregation. Nat Cell Biol 3: 429–432.
[33]  Stewenius Y, Gorunova L, Jonson T, Larsson N, Hoglund M, et al. (2005) Structural and numerical chromosome changes in colon cancer develop through telomere-mediated anaphase bridges, not through mitotic multipolarity. Proc Natl Acad Sci U S A 102: 5541–5546.
[34]  Stewenius Y, Jin Y, Ora I, de Kraker J, Bras J, et al. (2007) Defective chromosome segregation and telomere dysfunction in aggressive Wilms' tumors. Clin Cancer Res 13: 6593–6602.
[35]  Ganem NJ, Godinho SA, Pellman D (2009) A mechanism linking extra centrosomes to chromosomal instability. Nature.
[36]  Acilan C, Saunders WS (2008) A tale of too many centrosomes. Cell 134: 572–575.
[37]  Basto R, Brunk K, Vinadogrova T, Peel N, Franz A, et al. (2008) Centrosome amplification can initiate tumorigenesis in flies. Cell 133: 1032–1042.
[38]  Canman J, Salmon E, Fang G (2002) Inducing Precocious Anaphase in Cultured Mammalian Cells. Cell Motil Cyto 52: 61–65.
[39]  Cimini D, Moree B, Canman JC, Salmon ED (2003) Merotelic kinetochore orientation occurs frequently during early mitosis in mammalian tissue cells and error correction is achieved by two different mechanisms. J Cell Sci 116: 4213–4225.
[40]  Meraldi P, Draviam VM, Sorger PK (2004) Timing and checkpoints in the regulation of mitotic progression. Dev Cell 7: 45–60.
[41]  Cimini D (2007) Detection and correction of merotelic kinetochore orientationby Aurora B and its partners. Cell Cycle 6: 1558–1564.
[42]  Cimini D, Wan X, Hirel CB, Salmon ED (2006) Aurora kinase promotes turnover of kinetochore microtubules to reduce chromosome segregation errors. Curr Biol 16: 1711–1718.
[43]  Cimini D, Cameron LA, Salmon ED (2004) Anaphase spindle mechanics prevent mis-segregation of merotelically oriented chromosomes. Curr Biol 14: 2149–2155.
[44]  Cimini D, Fioravanti D, Salmon ED, Degrassi F (2002) Merotelic kinetochore orientation versus chromosome mono-orientation in the origin of lagging chromosomes in human primary cells. J Cell Sci 115: 507–515.
[45]  Bakhoum SF, Thompson SL, Manning AL, Compton DA (2009) Genome stability is ensured by temporal control of kinetochore-microtubule dynamics. Nat Cell Biol 11: 27–35.
[46]  Rieder CL, Hard R (1990) Newt lung epithelial cells: cultivation, use, and advantages for biomedical research. Int Rev Cytol 122: 153–220.
[47]  DeLuca JG, Moree B, Hickey JM, Kilmartin JV, Salmon ED (2002) hNuf2 inhibition blocks stable kinetochore-microtubule attachment and induces mitotic cell death in HeLa cells. J Cell Biol 159: 549–555.

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