Polyploidy and Myc Proto-Oncogenes Promote Stress Adaptation via Epigenetic Plasticity and Gene Regulatory Network Rewiring

被引:19
作者
Anatskaya, Olga, V [1 ]
Vinogradov, Alexander E. [1 ]
机构
[1] Russian Acad Sci, Inst Cytol, St Petersburg 194064, Russia
关键词
polyploidy; epigenetic regulation; Myc; chromatin opening; adaptation to stress; gene regulatory network; cancer; cardiovascular diseases; neurodegeneration; hypertranscription; CANCER STEM-CELLS; NUCLEAR-FUSION; CRYPTOSPORIDIAL GASTROENTERITIS; CHROMATIN ORGANIZATION; PRETERM BIRTH; GIANT-CELLS; GENOME; TRANSCRIPTION; PLOIDY; HEART;
D O I
10.3390/ijms23179691
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Polyploid cells demonstrate biological plasticity and stress adaptation in evolution; development; and pathologies, including cardiovascular diseases, neurodegeneration, and cancer. The nature of ploidy-related advantages is still not completely understood. Here, we summarize the literature on molecular mechanisms underlying ploidy-related adaptive features. Polyploidy can regulate gene expression via chromatin opening, reawakening ancient evolutionary programs of embryonality. Chromatin opening switches on genes with bivalent chromatin domains that promote adaptation via rapid induction in response to signals of stress or morphogenesis. Therefore, stress-associated polyploidy can activate Myc proto-oncogenes, which further promote chromatin opening. Moreover, Myc proto-oncogenes can trigger polyploidization de novo and accelerate genome accumulation in already polyploid cells. As a result of these cooperative effects, polyploidy can increase the ability of cells to search for adaptive states of cellular programs through gene regulatory network rewiring. This ability is manifested in epigenetic plasticity associated with traits of stemness, unicellularity, flexible energy metabolism, and a complex system of DNA damage protection, combining primitive error-prone unicellular repair pathways, advanced error-free multicellular repair pathways, and DNA damage-buffering ability. These three features can be considered important components of the increased adaptability of polyploid cells. The evidence presented here contribute to the understanding of the nature of stress resistance associated with ploidy and may be useful in the development of new methods for the prevention and treatment of cardiovascular and oncological diseases.
引用
收藏
页数:22
相关论文
共 217 条
[51]   An Embryonic Diapause-like Adaptation with Suppressed Myc Activity Enables Tumor Treatment Persistence [J].
Dhimolea, Eugen ;
Simoes, Ricardo de Matos ;
Kansara, Dhvanir ;
Al'Khafaji, Aziz ;
Bouyssou, Juliette ;
Weng, Xiang ;
Sharma, Shruti ;
Raja, Joseline ;
Awate, Pallavi ;
Shirasaki, Ryosuke ;
Tang, Huihui ;
Glassner, Brian J. ;
Liu, Zhiyi ;
Gao, Dong ;
Bryan, Jordan ;
Bender, Samantha ;
Roth, Jennifer ;
Scheffer, Michal ;
Jeselsohn, Rinath ;
Gray, Nathanael S. ;
Georgakoudi, Irene ;
Vazquez, Francisca ;
Tsherniak, Aviad ;
Chen, Yu ;
Welm, Alana ;
Duy, Cihangir ;
Melnick, Ari ;
Bartholdy, Boris ;
Brown, Myles ;
Culhane, Aedin C. ;
Mitsiades, Constantine S. .
CANCER CELL, 2021, 39 (02) :240-+
[52]   A Distinct Oncogenerative Multinucleated Cancer Cell Serves as a Source of Stemness and Tumor Heterogeneity [J].
Diaz-Carballo, David ;
Saka, Sahitya ;
Klein, Jacqueline ;
Rennkamp, Tobias ;
Acikelli, Ali H. ;
Malak, Sascha ;
Jastrow, Holger ;
Wennemuth, Gunther ;
Tempfer, Clemens ;
Schmitz, Inge ;
Tannapfel, Andrea ;
Strumberg, Dirk .
CANCER RESEARCH, 2018, 78 (09) :2318-2331
[53]   Chromatin architecture reorganization during stem cell differentiation [J].
Dixon, Jesse R. ;
Jung, Inkyung ;
Selvaraj, Siddarth ;
Shen, Yin ;
Antosiewicz-Bourget, Jessica E. ;
Lee, Ah Young ;
Ye, Zhen ;
Kim, Audrey ;
Rajagopal, Nisha ;
Xie, Wei ;
Diao, Yarui ;
Liang, Jing ;
Zhao, Huimin ;
Lobanenkov, Victor V. ;
Ecker, Joseph R. ;
Thomson, James A. ;
Ren, Bing .
NATURE, 2015, 518 (7539) :331-336
[54]   Polyploidy in liver development, homeostasis and disease [J].
Donne, Romain ;
Saroul-Ainama, Maeva ;
Cordier, Pierre ;
Celton-Morizur, Severine ;
Desdouets, Chantal .
NATURE REVIEWS GASTROENTEROLOGY & HEPATOLOGY, 2020, 17 (07) :391-405
[55]   Metabolic and Redox Regulation of Cardiovascular Stem Cell Biology and Pathology [J].
Dudek, Jan ;
Kutschka, Ilona ;
Maack, Christoph .
ANTIOXIDANTS & REDOX SIGNALING, 2021, 35 (03) :163-181
[56]   Endoreplication cell cycles: More for less [J].
Edgar, BA ;
Orr-Weaver, TL .
CELL, 2001, 105 (03) :297-306
[57]   MOS, aneuploidy and the ploidy cycle of cancer cells [J].
Erenpreisa, J. ;
Cragg, M. S. .
ONCOGENE, 2010, 29 (40) :5447-5451
[58]  
Erenpreisa J., 2022, ORG J BIOL SCI, V5, P71
[59]   Release of mitotic descendants by giant cells from irradiated Burkitt's lymphoma cell lines [J].
Erenpreisa, JA ;
Cragg, MS ;
Fringes, B ;
Sharakhov, I ;
Illidge, TM .
CELL BIOLOGY INTERNATIONAL, 2000, 24 (09) :635-648
[60]   Heterochromatin Networks: Topology, Dynamics, and Function (a Working Hypothesis) [J].
Erenpreisa, Jekaterina ;
Krigerts, Jekabs ;
Salmina, Kristine ;
Gerashchenko, Bogdan I. ;
Freivalds, Talivaldis ;
Kurg, Reet ;
Winter, Ruth ;
Krufczik, Matthias ;
Zayakin, Pawel ;
Hausmann, Michael ;
Giuliani, Alessandro .
CELLS, 2021, 10 (07)