Genetic variation of acquired structural chromosomal aberrations

被引:14
|
作者
Vodicka, Pavel [1 ,2 ,3 ,4 ]
Musak, Ludovit [5 ]
Vodiekova, Ludmila [1 ,2 ,3 ,4 ]
Vodenkova, Sona [1 ,2 ,6 ]
Catalano, Calogerina [7 ]
Kroupa, Michal [1 ,3 ,4 ]
Naccarati, Alessio [1 ,8 ]
Polivkova, Zdena [6 ]
Vymetalkova, Veronika [1 ,2 ,3 ,4 ]
Foersti, Asta [7 ]
Hemminki, Kari [7 ,9 ]
机构
[1] Czech Acad Sci, Inst Expt Med, Dept Mol Biol Canc, Prague 14220, Czech Republic
[2] Charles Univ Prague, Fac Med 1, Inst Biol & Med Genet, Prague 12800, Czech Republic
[3] Charles Univ Prague, Fac Med, Plzen 30605, Czech Republic
[4] Charles Univ Prague, Biomed Ctr Pilsen, Plzen 30605, Czech Republic
[5] Comenius Univ, Biomed Ctr Martin, Jessenius Fac Med, Martin 03601, Slovakia
[6] Charles Univ Prague, Fac Med 3, Dept Med Genet, Prague 10000, Czech Republic
[7] German Canc Res Ctr, Div Mol Genet Epidemiol, D-69120 Heidelberg, Germany
[8] IIGM, I-10126 Turin, Italy
[9] Lund Univ, Ctr Primary Hlth Care Res, S-21428 Malmo, Sweden
关键词
Chromosomal aberrations; Genetics; Xenobiotic metabolizing enzymes; DNA repair; Mitotic checkpoints; Cyclin D1; PERIPHERAL-BLOOD LYMPHOCYTES; GENOME-WIDE ASSOCIATION; LIGHT-CHAIN AMYLOIDOSIS; DNA-REPAIR GENES; TELOMERE LENGTH; CANCER; POLYMORPHISMS; DAMAGE; RISK; EXPRESSION;
D O I
10.1016/j.mrgentox.2018.05.014
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Human malignancies are often hallmarked with genomic instability, which itself is also considered a causative event in malignant transformation. Genomic instability may manifest itself as genetic changes in the nucleotide sequence of DNA, or as structural or numerical changes of chromosomes. Unrepaired or insufficiently repaired DNA double-strand breaks, as well as telomere shortening, are important contributors in the formation of structural chromosomal aberrations (CAs). In the present review, we discuss potential mechanisms behind the formation of CAs and their relation to cancer. Based on our own studies, we also illustrate how inherited genetic variation may modify the frequency and types of CAs occurring in humans. Recently, we published a series of studies on variations in genes relevant to maintaining genomic integrity, such as those encoding xenobiotic-metabolising enzymes, DNA repair, the tumour suppressor TP53, the spindle assembly checkpoint, and cyclin D1 (CCND1). While individually genetic variation in these genes exerted small modulating effects, in interactions they were associated with CA frequencies in peripheral blood lymphocytes of healthy volunteers. Moreover, we observed opposite associations between the CCND1 splice site polymorphism rs9344 G870A and the frequency of CAs compared to their association with translocation t(11,14). We discuss the functional consequences of the CCND1 gene in interplay with DNA damage response and DNA repair during malignant transformation. Our review summarizes existing evidence that gene variations in relevant cellular pathways modulate the frequency of CM, predominantly in a complex interaction. More functional/mechanistic studies elucidating these observations are required. Several questions emerge, such as the role of CAs in malignancies with respect to a particular phenotype and heterogeneity, the formation of CAs during the process of malignant transformation, and the formation of CM in individual types of lymphocytes in relation to the immune response.
引用
收藏
页码:13 / 21
页数:9
相关论文
共 50 条
  • [1] Genetic variation in the major mitotic checkpoint genes associated with chromosomal aberrations in healthy humans
    Foersti, Asta
    Frank, Christoph
    Smolkova, Bozena
    Kazimirova, Alena
    Barancokova, Magdalena
    Vymetalkova, Veronika
    Kroupa, Michal
    Naccarati, Alessio
    Vodickova, Ludmila
    Buchancova, Janka
    Dusinska, Maria
    Musak, Ludovit
    Vodicka, Pavel
    Hemminki, Kari
    [J]. CANCER LETTERS, 2016, 380 (02) : 442 - 446
  • [3] Genetic and environmental associations of nonspecific chromosomal aberrations
    Hemminki, Kari
    Niazi, Yasmeen
    Vodickova, Ludmila
    Vodicka, Pavel
    Foersti, Asta
    [J]. MUTAGENESIS, 2024,
  • [4] Chromosomal and genetic aberrations differ with meningioma subtype
    Wada K.
    Maruno M.
    Suzuki T.
    Kagawa N.
    Hashiba T.
    Fujimoto Y.
    Hashimoto N.
    Izumoto S.
    Yoshimine T.
    [J]. Brain Tumor Pathology, 2004, 21 (3) : 127 - 133
  • [5] NUMERICAL AND STRUCTURAL CHROMOSOMAL-ABERRATIONS IN A FAMILY
    ZIERLER, H
    ROSENKRANZ, W
    [J]. WIENER MEDIZINISCHE WOCHENSCHRIFT, 1977, 127 (09) : 289 - 292
  • [6] Pregnancy outcome of 345 cycles of preimplantation genetic diagnosis (PGD) for chromosomal structural aberrations.
    Fischer, JM
    Escudero, T
    Chen, S
    Cekleniak, N
    Garrisi, M
    Munne, S
    [J]. FERTILITY AND STERILITY, 2004, 82 : S27 - S28
  • [7] USE AND ABUSE OF CHROMOSOMAL ABERRATIONS AS AN INDICATOR OF GENETIC DAMAGE
    SAVAGE, JRK
    [J]. INTERNATIONAL JOURNAL OF ENVIRONMENTAL STUDIES, 1971, 1 (03) : 233 - 240
  • [8] Genetic and Chromosomal Aberrations and Their Clinical Significance in Renal Neoplasms
    Yap, Ning Yi
    Rajandram, Retnagowri
    Ng, Keng Lim
    Pailoor, Jayalakshmi
    Fadzli, Ahmad
    Gobe, Glenda Carolyn
    [J]. BIOMED RESEARCH INTERNATIONAL, 2015, 2015
  • [9] DIAGNOSIS OF ENCEPHALOPATHIES OF GENETIC ORIGIN (WITH THE EXCEPTION OF CHROMOSOMAL ABERRATIONS
    ROBERT, JM
    [J]. REVUE DE NEUROPSYCHIATRIE INFANTILE ET D HYGIENE MENTALE DE L ENFANCE, 1967, 15 (4-5): : 275 - 286
  • [10] Detection of chromosomal aberrations by preimplantation genetic diagnosis (PGD).
    Cheung, SW
    Wun, WS
    Angus, SC
    Cooper, ML
    Ybarra, AA
    Grunert, GM
    [J]. FERTILITY AND STERILITY, 2002, 78 (03) : S182 - S182