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Published in: Cancer Cell International 1/2001

Open Access 01-12-2001 | Review

Mitotic death: a mechanism of survival? A review

Authors: Jekaterina Erenpreisa, M S Cragg

Published in: Cancer Cell International | Issue 1/2001

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Abstract

Mitotic death is a delayed response of p53 mutant tumours that are resistant to genotoxic damage. Questions surround why this response is so delayed and how its mechanisms serve a survival function. After uncoupling apoptosis from G1 and S phase arrests and adapting these checkpoints, p53 mutated tumour cells arrive at the G2 compartment where decisions regarding survival and death are made. Missed or insufficient DNA repair in G1 and S phases after severe genotoxic damage results in cells arriving in G2 with an accumulation of point mutations and chromosome breaks. Double strand breaks can be repaired by homologous recombination during G2 arrest. However, cells with excessive chromosome lesions either directly bypass the G2/M checkpoint, starting endocycles from G2 arrest, or are subsequently detected by the spindle checkpoint and present with the features of mitotic death. These complex features include apoptosis from metaphase and mitosis restitution, the latter of which can also facilitate transient endocycles, producing endopolyploid cells. The ability of cells to initiate endocycles during G2 arrest and mitosis restitution most likely reflects their similar molecular environments, with down-regulated mitosis promoting factor activity. Resulting endocycling cells have the ability to repair damaged DNA, and although mostly reproductively dead, in some cases give rise to mitotic progeny. We conclude that the features of mitotic death do not simply represent aberrations of dying cells but are indicative of a switch to amitotic modes of cell survival that may provide additional mechanisms of genotoxic resistance.
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Literature
1.
go back to reference Okada S: Radiation Biochemistry. (Eds: Altman KI, Gerber GB and Okada S), Vol.1, Academic Press, New York. 1970 Okada S: Radiation Biochemistry. (Eds: Altman KI, Gerber GB and Okada S), Vol.1, Academic Press, New York. 1970
2.
go back to reference Radford IR, Murphy TK: Radiation response of mouse lymphoid and myeloid cell lines. Part III. Different signals can lead to apoptosis and may influence sensitivity to killing by DNA double-strand breakage. Int J Radiat Biol. 1994, 65: 229-239.CrossRefPubMed Radford IR, Murphy TK: Radiation response of mouse lymphoid and myeloid cell lines. Part III. Different signals can lead to apoptosis and may influence sensitivity to killing by DNA double-strand breakage. Int J Radiat Biol. 1994, 65: 229-239.CrossRefPubMed
4.
go back to reference Friedberg EC: DNA repair and mutagenesis. (Eds: Friedberg EC, Walker GS, Siede W) Washingtone, DC:ASM Press. 1995 Friedberg EC: DNA repair and mutagenesis. (Eds: Friedberg EC, Walker GS, Siede W) Washingtone, DC:ASM Press. 1995
5.
go back to reference Zhivotovsky B, Bertrand J, Orrenius S: Tumour radiosensitivity and apoptosis. Exp Cell Res. 1999, 248: 10-17. 10.1006/excr.1999.4452.CrossRefPubMed Zhivotovsky B, Bertrand J, Orrenius S: Tumour radiosensitivity and apoptosis. Exp Cell Res. 1999, 248: 10-17. 10.1006/excr.1999.4452.CrossRefPubMed
6.
go back to reference Lock RB, Ross WE: Possible Role for the p34cdc2 Kinase in Etoposide-induced Cell Death of Chinese Hamster Ovary Cells. Cancer Res. 1990, 50: 3767-3771.PubMed Lock RB, Ross WE: Possible Role for the p34cdc2 Kinase in Etoposide-induced Cell Death of Chinese Hamster Ovary Cells. Cancer Res. 1990, 50: 3767-3771.PubMed
7.
go back to reference Bernhard EJ, Muschel RJ, Bakanauskas VJ, McKenna W: Reducing the radiation-induced G2 delay causes HeLa cells to undergo apoptosis instead of mitotic death. Int J Radiat Biol. 1996, 69: 575-584. 10.1080/095530096145580.CrossRefPubMed Bernhard EJ, Muschel RJ, Bakanauskas VJ, McKenna W: Reducing the radiation-induced G2 delay causes HeLa cells to undergo apoptosis instead of mitotic death. Int J Radiat Biol. 1996, 69: 575-584. 10.1080/095530096145580.CrossRefPubMed
8.
go back to reference Grafi G: Cell cycle regulation of DNA replication. The endoreduplication perspective (minireview). Exp Cell Res. 1998, 244: 372-378. 10.1006/excr.1998.4213.CrossRefPubMed Grafi G: Cell cycle regulation of DNA replication. The endoreduplication perspective (minireview). Exp Cell Res. 1998, 244: 372-378. 10.1006/excr.1998.4213.CrossRefPubMed
9.
go back to reference O'Connor PM, Jackman J, Jondle D, Bhatia K, Magrath I: Role of the p53 tumor supressor gene in cell cycle arrest and radiosensitivity of Burkitt's lymphoma cell lines. Cancer Res. 1993, 53: 4776-4780.PubMed O'Connor PM, Jackman J, Jondle D, Bhatia K, Magrath I: Role of the p53 tumor supressor gene in cell cycle arrest and radiosensitivity of Burkitt's lymphoma cell lines. Cancer Res. 1993, 53: 4776-4780.PubMed
10.
11.
go back to reference King KL, Cidlowski JA: Cell cycle and apoptosis: common pathways to life and death. J Cell Biochem. 1995, 58: 175-180.CrossRefPubMed King KL, Cidlowski JA: Cell cycle and apoptosis: common pathways to life and death. J Cell Biochem. 1995, 58: 175-180.CrossRefPubMed
12.
go back to reference Diffey JFX, Evan G: Oncogenes and cell proliferation. Cell cycle, genome integrity, and cancer – millenial view. Curr Opin Genet Dev. 1993, 10: 13-16. 10.1016/S0959-437X(99)00053-2.CrossRef Diffey JFX, Evan G: Oncogenes and cell proliferation. Cell cycle, genome integrity, and cancer – millenial view. Curr Opin Genet Dev. 1993, 10: 13-16. 10.1016/S0959-437X(99)00053-2.CrossRef
13.
14.
go back to reference Bedi A, Barber JP, Bedi JC, El-Deiry WC, Sidransky D, Vala MS, Akhtar AJ, Hilton J, Jones RJ: BCR-ABL-mediated inhibition of apoptosis with delay of G2-M transition after DNA damage: a mechanism of resistance to multiple anticancer agents. Blood. 1995, 86: 1148-1158.PubMed Bedi A, Barber JP, Bedi JC, El-Deiry WC, Sidransky D, Vala MS, Akhtar AJ, Hilton J, Jones RJ: BCR-ABL-mediated inhibition of apoptosis with delay of G2-M transition after DNA damage: a mechanism of resistance to multiple anticancer agents. Blood. 1995, 86: 1148-1158.PubMed
15.
go back to reference Bracey TS, Williams AC, Paraskeva C: Inhibition of radiation-induced G2 delay potentiates cell death by apoptosis and/or the induction of giant cells in colorectal tumour cells with disrupted p53 function. Nature. 1996, 381: 713-716. 10.1038/381713a0.CrossRef Bracey TS, Williams AC, Paraskeva C: Inhibition of radiation-induced G2 delay potentiates cell death by apoptosis and/or the induction of giant cells in colorectal tumour cells with disrupted p53 function. Nature. 1996, 381: 713-716. 10.1038/381713a0.CrossRef
16.
go back to reference Pfeifer GP, Holmquist GP: Mutagenesis in the P53 gene. Biochem Biophys Acta. 1997, 1333: M1-M8. 10.1016/S0304-419X(97)00004-8.PubMed Pfeifer GP, Holmquist GP: Mutagenesis in the P53 gene. Biochem Biophys Acta. 1997, 1333: M1-M8. 10.1016/S0304-419X(97)00004-8.PubMed
17.
go back to reference Lowndes NF, Muguia JR: Sensing and responding to DNA damage. Curr Opin Genet Dev. 2000, 10: 17-25. 10.1016/S0959-437X(99)00050-7.CrossRefPubMed Lowndes NF, Muguia JR: Sensing and responding to DNA damage. Curr Opin Genet Dev. 2000, 10: 17-25. 10.1016/S0959-437X(99)00050-7.CrossRefPubMed
18.
go back to reference Karran P: DNA double strand break repair in mammalian cells. Curr Opin Genet Dev. 2000, 10: 144-150. 10.1016/S0959-437X(00)00069-1.CrossRefPubMed Karran P: DNA double strand break repair in mammalian cells. Curr Opin Genet Dev. 2000, 10: 144-150. 10.1016/S0959-437X(00)00069-1.CrossRefPubMed
19.
go back to reference Goodman MF, Tippin B: Sloppier copier DNA polymerases involved in genome repair. Curr Opin Genet Dev. 2000, 10: 162-168. 10.1016/S0959-437X(00)00057-5.CrossRefPubMed Goodman MF, Tippin B: Sloppier copier DNA polymerases involved in genome repair. Curr Opin Genet Dev. 2000, 10: 162-168. 10.1016/S0959-437X(00)00057-5.CrossRefPubMed
20.
go back to reference Linke SP, Clarkin KC, Wahl GM: p53 mediates permanent arrest over multiple cell cycles in response to gamma-irradiation. Cancer Res. 1997, 57: 1171-1179.PubMed Linke SP, Clarkin KC, Wahl GM: p53 mediates permanent arrest over multiple cell cycles in response to gamma-irradiation. Cancer Res. 1997, 57: 1171-1179.PubMed
21.
go back to reference Takata M, Sasaki MS, Sonoda E, Morrison C, Hashimoto M, Utsumi H, Yamaguchi-Iwai Y, Shinohara A, Takeda S: Homologous recombination and non-homologous end-joining pathways of DNA double-strand break repair have overlapping roles in the maintenance of chromosomal integrity in vertebrate cells. EMBO J. 1998, 17: 5497-5508. 10.1093/emboj/17.18.5497.PubMedCentralCrossRefPubMed Takata M, Sasaki MS, Sonoda E, Morrison C, Hashimoto M, Utsumi H, Yamaguchi-Iwai Y, Shinohara A, Takeda S: Homologous recombination and non-homologous end-joining pathways of DNA double-strand break repair have overlapping roles in the maintenance of chromosomal integrity in vertebrate cells. EMBO J. 1998, 17: 5497-5508. 10.1093/emboj/17.18.5497.PubMedCentralCrossRefPubMed
22.
go back to reference Weinert T: DNA damage checkpoint update: Getting molecular. Curr Opin Genet Dev. 1998, 8: 185-193. 10.1016/S0959-437X(98)80140-8.CrossRefPubMed Weinert T: DNA damage checkpoint update: Getting molecular. Curr Opin Genet Dev. 1998, 8: 185-193. 10.1016/S0959-437X(98)80140-8.CrossRefPubMed
23.
go back to reference Liang FM, Han M, Romanienko PJ, Jasin M: Homology-directed repair is a major double-strand break repair pathway in mammalian cells. Proc Natl Acad Sci USA. 1998, 95: 5172-5177. 10.1073/pnas.95.9.5172.PubMedCentralCrossRefPubMed Liang FM, Han M, Romanienko PJ, Jasin M: Homology-directed repair is a major double-strand break repair pathway in mammalian cells. Proc Natl Acad Sci USA. 1998, 95: 5172-5177. 10.1073/pnas.95.9.5172.PubMedCentralCrossRefPubMed
24.
go back to reference Mekeel K, Tang W, Kachnic LA, Luo CM, DeFrank JS, Powell SN: Inactivation of p 53 results in high rates of homologous recombination. Oncogene. 1997, 14: 1847-1857. 10.1038/sj/onc/1201143.CrossRefPubMed Mekeel K, Tang W, Kachnic LA, Luo CM, DeFrank JS, Powell SN: Inactivation of p 53 results in high rates of homologous recombination. Oncogene. 1997, 14: 1847-1857. 10.1038/sj/onc/1201143.CrossRefPubMed
25.
go back to reference Schwartz D, Rotter V: p53-dependant cell cycle control: response to genotoxic stress. Semin Cancer Biol. 1998, 8: 325-336. 10.1006/scbi.1998.0095.CrossRefPubMed Schwartz D, Rotter V: p53-dependant cell cycle control: response to genotoxic stress. Semin Cancer Biol. 1998, 8: 325-336. 10.1006/scbi.1998.0095.CrossRefPubMed
26.
go back to reference Scott D, Fox M, Fox BW: The relationship between chromosomal aberrations, survival and DNA repair in tumour cell lines of differential sensitivity to X-rays and sulphur mustard. Mutat Res. 1974, 22: 207-221.CrossRefPubMed Scott D, Fox M, Fox BW: The relationship between chromosomal aberrations, survival and DNA repair in tumour cell lines of differential sensitivity to X-rays and sulphur mustard. Mutat Res. 1974, 22: 207-221.CrossRefPubMed
27.
go back to reference Chadwick KH, Leenhouts HP: Radiation induced chromosome aberrations: some biophysical considerations. Mutat Res. 1998, 404: 113-117. 10.1016/S0027-5107(98)00102-X.CrossRefPubMed Chadwick KH, Leenhouts HP: Radiation induced chromosome aberrations: some biophysical considerations. Mutat Res. 1998, 404: 113-117. 10.1016/S0027-5107(98)00102-X.CrossRefPubMed
28.
go back to reference Bryant PE: The Signal Model: a possible explanation for the conversion of DNA double-strand breaks into chromatid breaks. Int J Radiat Biol. 1998, 73: 243-251. 10.1080/095530098142338.CrossRefPubMed Bryant PE: The Signal Model: a possible explanation for the conversion of DNA double-strand breaks into chromatid breaks. Int J Radiat Biol. 1998, 73: 243-251. 10.1080/095530098142338.CrossRefPubMed
29.
go back to reference Rogers-Bald M, Sargent RG, Bryant PE: Production of chromatid breaks by single dsb: Evidence supporting the signal model. Int J Radiat Biol. 2000, 76: 23-29. 10.1080/095530000138970.CrossRefPubMed Rogers-Bald M, Sargent RG, Bryant PE: Production of chromatid breaks by single dsb: Evidence supporting the signal model. Int J Radiat Biol. 2000, 76: 23-29. 10.1080/095530000138970.CrossRefPubMed
30.
go back to reference Mackay MA, Morgan WF, Dewey WC: Nuclear fragmentation and premature chromosome condensation induced by heat shock in S-phase Chinese hamster ovary cells. Cancer Res. 1988, 48: 6478-6483. Mackay MA, Morgan WF, Dewey WC: Nuclear fragmentation and premature chromosome condensation induced by heat shock in S-phase Chinese hamster ovary cells. Cancer Res. 1988, 48: 6478-6483.
31.
go back to reference lanzini F, Mackay MA: Delayed DNA damage associated with mitotic catastrophe following X-irradiation of HeLa S3 cells. Mutagenesis. 1998, 13: 337-344.CrossRef lanzini F, Mackay MA: Delayed DNA damage associated with mitotic catastrophe following X-irradiation of HeLa S3 cells. Mutagenesis. 1998, 13: 337-344.CrossRef
32.
go back to reference Miranda El, Santana C, Rojas E, Hernandez A, Ostrosky-Wegman P, Garcia-Carranca A: Induced mitotic death of HeLa cells by abnormal expression of c-H-ras. Mutat Res. 1996, 349: 173-182. 10.1016/0027-5107(95)00164-6.CrossRefPubMed Miranda El, Santana C, Rojas E, Hernandez A, Ostrosky-Wegman P, Garcia-Carranca A: Induced mitotic death of HeLa cells by abnormal expression of c-H-ras. Mutat Res. 1996, 349: 173-182. 10.1016/0027-5107(95)00164-6.CrossRefPubMed
33.
go back to reference Kondo S: Apoptosis by antitumour agents and other factors in relation to cell-cycle checkpoints. J Radiat Res (Tokyo). 1995, 36: 56-62.CrossRef Kondo S: Apoptosis by antitumour agents and other factors in relation to cell-cycle checkpoints. J Radiat Res (Tokyo). 1995, 36: 56-62.CrossRef
34.
35.
go back to reference Heddle JA, Carrano AV: The DNA content of micronuclei induced in mouse bone marrow by gamma-irradiation: evidence that micronuclei arise from acentric chromosomal fragments. Mutat Res. 1977, 44: 63-69. 10.1016/0027-5107(77)90115-4.CrossRefPubMed Heddle JA, Carrano AV: The DNA content of micronuclei induced in mouse bone marrow by gamma-irradiation: evidence that micronuclei arise from acentric chromosomal fragments. Mutat Res. 1977, 44: 63-69. 10.1016/0027-5107(77)90115-4.CrossRefPubMed
36.
go back to reference Abend M, Gilbertz K-P, Rhein A, van Beuningen D: Early and late G2 arrest of cells undergoing radiation-induced apoptosis or micronucleation. Cell Prolif. 1996, 29: 101-113. 10.1046/j.1365-2184.1996.00989.x.CrossRefPubMed Abend M, Gilbertz K-P, Rhein A, van Beuningen D: Early and late G2 arrest of cells undergoing radiation-induced apoptosis or micronucleation. Cell Prolif. 1996, 29: 101-113. 10.1046/j.1365-2184.1996.00989.x.CrossRefPubMed
37.
go back to reference Dini L, Coppola S, Ruzittu MT, Ghibelli L: Multiple Pathways for Apoptotic Nuclear Fragmentation. Exp Cell Res. 1996, 223: 340-347. 10.1006/excr.1996.0089.CrossRefPubMed Dini L, Coppola S, Ruzittu MT, Ghibelli L: Multiple Pathways for Apoptotic Nuclear Fragmentation. Exp Cell Res. 1996, 223: 340-347. 10.1006/excr.1996.0089.CrossRefPubMed
38.
39.
go back to reference Erenpreisa Je, Ivanov A, Dekena G, Vitina A, Krampe R, Freivalds T, Selivanova G, Roach Hl: Arrest in metaphase and anatomy of mitotic catastrophe: mild heat shock in two human osteosarcoma cell lines. Cell Biol Int. 2000, 24: 61-71. 10.1006/cbir.1999.0466.CrossRefPubMed Erenpreisa Je, Ivanov A, Dekena G, Vitina A, Krampe R, Freivalds T, Selivanova G, Roach Hl: Arrest in metaphase and anatomy of mitotic catastrophe: mild heat shock in two human osteosarcoma cell lines. Cell Biol Int. 2000, 24: 61-71. 10.1006/cbir.1999.0466.CrossRefPubMed
40.
go back to reference Shimizu N, Itoh N, Utiyama H, Wahl GM: Selective entrapment of extrachromosomally amplified DNA by nuclear budding and micronucleation during S-phase. J Cell Biol. 1998, 140: 1307-1320. 10.1083/jcb.140.6.1307.PubMedCentralCrossRefPubMed Shimizu N, Itoh N, Utiyama H, Wahl GM: Selective entrapment of extrachromosomally amplified DNA by nuclear budding and micronucleation during S-phase. J Cell Biol. 1998, 140: 1307-1320. 10.1083/jcb.140.6.1307.PubMedCentralCrossRefPubMed
41.
go back to reference Illidge TM, Cragg MS, Fringes B, Olive P, Erenpreisa JA: Polyploid giant cells provide a survival mechanism for p53 mutant cells after DNA damage. Cell Biol Int. 2000, 24: 621-633. 10.1006/cbir.2000.0557.CrossRefPubMed Illidge TM, Cragg MS, Fringes B, Olive P, Erenpreisa JA: Polyploid giant cells provide a survival mechanism for p53 mutant cells after DNA damage. Cell Biol Int. 2000, 24: 621-633. 10.1006/cbir.2000.0557.CrossRefPubMed
42.
go back to reference Nagl W: Cdc2-kinases, cyclins, and the switch from proliferation to polyploidization. Protoplasma. 1995, 188: 143-150.CrossRef Nagl W: Cdc2-kinases, cyclins, and the switch from proliferation to polyploidization. Protoplasma. 1995, 188: 143-150.CrossRef
43.
go back to reference Waldman T, Lengauer C, Kinzler KW, Vogelstein B: Uncoupling of S phase and mitosis induced by anticancer agents in cells lacking p21. Nature. 1996, 381: 713-716. 10.1038/381713a0.CrossRefPubMed Waldman T, Lengauer C, Kinzler KW, Vogelstein B: Uncoupling of S phase and mitosis induced by anticancer agents in cells lacking p21. Nature. 1996, 381: 713-716. 10.1038/381713a0.CrossRefPubMed
44.
go back to reference Nagl W: Endopolyploidy and polyteny in differentiation and evolution. North-Holland Publ, Amsterdam-New York-Oxford. 1978 Nagl W: Endopolyploidy and polyteny in differentiation and evolution. North-Holland Publ, Amsterdam-New York-Oxford. 1978
45.
go back to reference Hall L, Th'ng JPH, Guo XW, Teplitz RL, Bradbury EM: A brief staurosporine treatment of mitotic cells triggers premature exit from mitosis and polyploid cell formation. Cancer Res. 1996, 56: 3551-3559.PubMed Hall L, Th'ng JPH, Guo XW, Teplitz RL, Bradbury EM: A brief staurosporine treatment of mitotic cells triggers premature exit from mitosis and polyploid cell formation. Cancer Res. 1996, 56: 3551-3559.PubMed
46.
go back to reference Brodsky VY, Uryvayeva IV: Genome multiplication in growth and development. Cambridge University Press,. 1985 Brodsky VY, Uryvayeva IV: Genome multiplication in growth and development. Cambridge University Press,. 1985
47.
go back to reference Vitrat N, Cohen-Solal K, Pique C, Couedic J-P, Norol F, Larsen AK, Katz A, Vaichenker W, Debili N: Endomitosis of human megakaryocytes are due to abortive mitosis. Blood. 1998, 91: 3711-3723.PubMed Vitrat N, Cohen-Solal K, Pique C, Couedic J-P, Norol F, Larsen AK, Katz A, Vaichenker W, Debili N: Endomitosis of human megakaryocytes are due to abortive mitosis. Blood. 1998, 91: 3711-3723.PubMed
48.
49.
go back to reference Grell M: Cytological studies in Culex. I Somatic reduction division. Genetics. 1946, 31: 60-70.PubMedCentral Grell M: Cytological studies in Culex. I Somatic reduction division. Genetics. 1946, 31: 60-70.PubMedCentral
50.
go back to reference Raikov IB: The protozoan nucleus. Morphology and evolution. Springer Verlag, Wien-N.Y. 1982 Raikov IB: The protozoan nucleus. Morphology and evolution. Springer Verlag, Wien-N.Y. 1982
51.
go back to reference Bohm N, Sandritter W: DNA in human tumours: a cytophotometric study. Curr Top Pathol. 1975, 560: 151-219. Bohm N, Sandritter W: DNA in human tumours: a cytophotometric study. Curr Top Pathol. 1975, 560: 151-219.
52.
go back to reference Gustavino B, Bassani B, Pacchierotti F: Vinblastine-induced numerical chromosome changes and selection processes in mouse bone marrow cells. Mutat Res. 1991, 248: 45-50. 10.1016/0027-5107(91)90086-4.CrossRefPubMed Gustavino B, Bassani B, Pacchierotti F: Vinblastine-induced numerical chromosome changes and selection processes in mouse bone marrow cells. Mutat Res. 1991, 248: 45-50. 10.1016/0027-5107(91)90086-4.CrossRefPubMed
53.
go back to reference Frankfurt OS, Chin JL, Erglander LS, Greco WR, Pontes JE, Rustum YM: Relationship between DNA ploidy, glandular differentiation and tumour spread in human prostate cancer. Cancer Res. 1985, 45: 1418-1423.PubMed Frankfurt OS, Chin JL, Erglander LS, Greco WR, Pontes JE, Rustum YM: Relationship between DNA ploidy, glandular differentiation and tumour spread in human prostate cancer. Cancer Res. 1985, 45: 1418-1423.PubMed
54.
go back to reference Therman E, Kuhn EM: Mitotic modifications and aberrations in cancer. Crit Rev Oncog. 1989, 1: 293-305.PubMed Therman E, Kuhn EM: Mitotic modifications and aberrations in cancer. Crit Rev Oncog. 1989, 1: 293-305.PubMed
55.
go back to reference Dooley WC, Allison DC, Robertson J: Discrepancies among the metaphase, telophase, and the GO/G1 and G2 DNA peaks of heteroploid cell lines. Cytometry. 1991, 12: 99-106.CrossRefPubMed Dooley WC, Allison DC, Robertson J: Discrepancies among the metaphase, telophase, and the GO/G1 and G2 DNA peaks of heteroploid cell lines. Cytometry. 1991, 12: 99-106.CrossRefPubMed
56.
go back to reference de la Hoz C, Baroja A: Proliferative behaviour of high-ploidy cells in two murine tumour lines. J Cell Sci. 1993, 104: 31-36.PubMed de la Hoz C, Baroja A: Proliferative behaviour of high-ploidy cells in two murine tumour lines. J Cell Sci. 1993, 104: 31-36.PubMed
57.
go back to reference Je Erenpreisa A, Cragg MS, Fringes B, Sharakhov I, Illidge TM: Release of mitotic descendants from irradiated Burkitt's lymphoma cell lines. Cell Biol Int. 2000, 24: 635-648. 10.1006/cbir.2000.0558.CrossRef Je Erenpreisa A, Cragg MS, Fringes B, Sharakhov I, Illidge TM: Release of mitotic descendants from irradiated Burkitt's lymphoma cell lines. Cell Biol Int. 2000, 24: 635-648. 10.1006/cbir.2000.0558.CrossRef
58.
go back to reference Grafi G, Larkins BA: Endoreduplication in maize endosperm: Involvement of M-phase-promoting factor inhibition and induction of S-phase related kinases. Science. 1995, 269: 1262-1264.CrossRefPubMed Grafi G, Larkins BA: Endoreduplication in maize endosperm: Involvement of M-phase-promoting factor inhibition and induction of S-phase related kinases. Science. 1995, 269: 1262-1264.CrossRefPubMed
59.
60.
go back to reference Price CM: Telomeres and telomerase: broad effect on cell growth. Curr Opin Genet Dev. 1999, 9: 218-224. 10.1016/S0959-437X(99)80032-X.CrossRefPubMed Price CM: Telomeres and telomerase: broad effect on cell growth. Curr Opin Genet Dev. 1999, 9: 218-224. 10.1016/S0959-437X(99)80032-X.CrossRefPubMed
61.
62.
go back to reference Amon A: The spindle checkpoint. Curr Opin Genet Dev. 1999, 9: 67-75. 10.1016/S0959-437X(99)80010-0.CrossRef Amon A: The spindle checkpoint. Curr Opin Genet Dev. 1999, 9: 67-75. 10.1016/S0959-437X(99)80010-0.CrossRef
63.
64.
go back to reference Lilly MA, Spradling AC: The Drosophila endocycle is controlled by cyclin E and lacks a checkpoint ensuring S-phase completion. Genes Dev. 1996, 10: 2514-2526.CrossRefPubMed Lilly MA, Spradling AC: The Drosophila endocycle is controlled by cyclin E and lacks a checkpoint ensuring S-phase completion. Genes Dev. 1996, 10: 2514-2526.CrossRefPubMed
65.
66.
go back to reference Merrit AJ, Terence DA, Potten CHS, Hickman JA: Apoptosis in small intestinal epithelia from p53-null mice: evidence for a delayed, p53-independent G2/M-associated cell death after irradiation. Oncogene. 1997, 14: 2759-2766. 10.1038/sj.onc.1201126.CrossRef Merrit AJ, Terence DA, Potten CHS, Hickman JA: Apoptosis in small intestinal epithelia from p53-null mice: evidence for a delayed, p53-independent G2/M-associated cell death after irradiation. Oncogene. 1997, 14: 2759-2766. 10.1038/sj.onc.1201126.CrossRef
67.
go back to reference King RW, Deshaies RJ, Peters J-M, Kirschner MW: How proteolysis drives the cell cycle. Science. 1996, 274: 1652-1659. 10.1126/science.274.5293.1652.CrossRefPubMed King RW, Deshaies RJ, Peters J-M, Kirschner MW: How proteolysis drives the cell cycle. Science. 1996, 274: 1652-1659. 10.1126/science.274.5293.1652.CrossRefPubMed
68.
go back to reference Wandel KH: Spatial relationships in the replication of chromosomal DNA. Genetics. 1965, 51: 915-929. Wandel KH: Spatial relationships in the replication of chromosomal DNA. Genetics. 1965, 51: 915-929.
69.
go back to reference Schwarzacher HG, W Schnedl: Position of labelled chromatids in diplochromosomes of endo-reduplicated cells after uptake of tritiated thymidine. Nature. 1966, 209: 107-108.CrossRefPubMed Schwarzacher HG, W Schnedl: Position of labelled chromatids in diplochromosomes of endo-reduplicated cells after uptake of tritiated thymidine. Nature. 1966, 209: 107-108.CrossRefPubMed
70.
go back to reference Henderson SA: Chromosome pairing, chiasmata and crossingover. In: Handbook of Molecular Cytology, Frontiers of Biology 15: North Holand publishers, Amsterdam, 2969. Ed Lima-de-Faria. 1969, 326-357. Henderson SA: Chromosome pairing, chiasmata and crossingover. In: Handbook of Molecular Cytology, Frontiers of Biology 15: North Holand publishers, Amsterdam, 2969. Ed Lima-de-Faria. 1969, 326-357.
71.
go back to reference Inbar , Kupiec M: Homology search and choice of homologous partner during mitotic recombination. Mol Cell Biol. 1999, 19: 4134-4142.PubMedCentralPubMed Inbar , Kupiec M: Homology search and choice of homologous partner during mitotic recombination. Mol Cell Biol. 1999, 19: 4134-4142.PubMedCentralPubMed
72.
go back to reference White MJD: Animal cytology and evolution. 3rd ed., Cambridge University press,. 1973 White MJD: Animal cytology and evolution. 3rd ed., Cambridge University press,. 1973
73.
go back to reference Martinez-Perez E, Shaw P, Moore G: The PH1 locus is needed to ensure specific somatic and meiotic centromere association. Nature. 2001, 411: 204-207. 10.1038/35075597.CrossRefPubMed Martinez-Perez E, Shaw P, Moore G: The PH1 locus is needed to ensure specific somatic and meiotic centromere association. Nature. 2001, 411: 204-207. 10.1038/35075597.CrossRefPubMed
75.
go back to reference Page AW, Orr-Weaver TL: Stopping and starting the meiotic cell cycle. Curr Opin Genet Dev. 1997, 7: 23-31. 10.1016/S0959-437X(97)80105-0.CrossRefPubMed Page AW, Orr-Weaver TL: Stopping and starting the meiotic cell cycle. Curr Opin Genet Dev. 1997, 7: 23-31. 10.1016/S0959-437X(97)80105-0.CrossRefPubMed
76.
go back to reference Kondrashov AS: The asexual ploidy cycle and the origin of sex. Nature. 1994, 370: 213-216. 10.1038/370213a0.CrossRefPubMed Kondrashov AS: The asexual ploidy cycle and the origin of sex. Nature. 1994, 370: 213-216. 10.1038/370213a0.CrossRefPubMed
77.
78.
go back to reference Kadyk LC, Hartwell LH: Sister chromatids are preferred over homologs as substrates for recombination repair in Saccharomyces cerevisae. Genetics. 1992, 132: 387-402.PubMedCentralPubMed Kadyk LC, Hartwell LH: Sister chromatids are preferred over homologs as substrates for recombination repair in Saccharomyces cerevisae. Genetics. 1992, 132: 387-402.PubMedCentralPubMed
Metadata
Title
Mitotic death: a mechanism of survival? A review
Authors
Jekaterina Erenpreisa
M S Cragg
Publication date
01-12-2001
Publisher
BioMed Central
Published in
Cancer Cell International / Issue 1/2001
Electronic ISSN: 1475-2867
DOI
https://doi.org/10.1186/1475-2867-1-1
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