mTOR-regulated senescence and autophagy during reprogramming of somatic cells to pluripotency A roadmap from energy metabolism to stem cell renewal and aging

被引:117
作者
Menendez, Javier A. [1 ,2 ]
Vellon, Luciano [3 ]
Oliveras-Ferraros, Cristina [1 ,2 ]
Cufi, Silvia [1 ,2 ]
Vazquez-Martin, Alejandro [1 ,2 ]
机构
[1] Catalan Inst Oncol, Unit Translat Res, Lhospitalet De Llobregat, Spain
[2] Girona Biomed Res Inst, Girona, Catalonia, Spain
[3] Fdn INBIOMED, Cell Reprogramming Unit, San Sebastian, Basque Country, Spain
关键词
rapamycin; aging; reprogramming; iPSCs; senescence; mitochondria; autophagy; progeria; ANTIDIABETIC DRUG METFORMIN; LIFE-SPAN EXTENSION; CALORIE RESTRICTION MIMETICS; HUTCHINSON-GILFORD PROGERIA; TUMOR-STROMA COEVOLUTION; DNA-DAMAGE RESPONSE; PROTEIN S6 KINASE; MAMMALIAN TARGET; BREAST-CANCER; DIETARY RESTRICTION;
D O I
10.4161/cc.10.21.18128
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Molecular controllers of the number and function of tissue stem cells may share common regulatory pathways for the nuclear reprogramming of somatic cells to become induced pluripotent stem cells (iPSCs). If this hypothesis is true, testing the ability of longevity-promoting chemicals to improve reprogramming efficiency may provide a proof-of-concept validation tool for pivotal housekeeping pathways that limit the numerical and/or functional decline of adult stem cells. Reprogramming is a slow, stochastic process due to the complex and apparently unrelated cellular processes that are involved. First, forced expression of the Yamanaka cocktail of stemness factors, OSKM, is a stressful process that activates apoptosis and cellular senescence, which are the two primary barriers to cancer development and somatic reprogramming. Second, the a priori energetic infrastructure of somatic cells appears to be a crucial stochastic feature for optimal successful routing to pluripotency. If longevity-promoting compounds can ablate the drivers and effectors of cellular senescence while concurrently enhancing a bioenergetic shift from somatic oxidative mitochondria toward an alternative ATP-generating glycolytic metabotype, they could maximize the efficiency of somatic reprogramming to pluripotency. Support for this hypothesis is evidenced by recent findings that well-characterized mTOR inhibitors and autophagy activators (e.g., PP242, rapamycin and resveratrol) notably improve the speed and efficiency of iPSC generation. This article reviews the existing research evidence that the most established mTOR inhibitors can notably decelerate the cellular senescence that is imposed by DNA damage-like responses, which are somewhat equivalent to the responses caused by reprogramming factors. These data suggest that fine-tuning mTOR signaling can impact mitochondrial dynamics to segregate mitochondria that are destined for clearance through autophagy, which results in the loss of mitochondrial function and in the accelerated onset of the glycolytic metabolism that is required to fuel reprogramming. By critically exploring how mTOR-regulated senescence, bioenergetic infrastructure and autophagy can actively drive the reprogramming of somatic cells to pluripotency, we define a metabolic roadmap that may be helpful for designing pharmacological and behavioral interventions to prevent or retard the dysfunction/exhaustion of aging stem cell populations.
引用
收藏
页码:3658 / 3677
页数:20
相关论文
共 210 条
[1]   A novel type of cellular senescence that can be enhanced in mouse models and human tumor xenografts to suppress prostate tumorigenesis [J].
Alimonti, Andrea ;
Nardella, Caterina ;
Chen, Zhenbang ;
Clohessy, John G. ;
Carracedo, Arkaitz ;
Trotman, Lloyd C. ;
Cheng, Ke ;
Varmeh, Shohreh ;
Kozma, Sara C. ;
Thomas, George ;
Rosivatz, Erika ;
Woscholski, Rudiger ;
Cognetti, Francesco ;
Scher, Howard I. ;
Pandolfi, Pier Paolo .
JOURNAL OF CLINICAL INVESTIGATION, 2010, 120 (03) :681-693
[2]   Metformin inhibits breast cancer cell growth, colony formation and induces cell cycle arrest in vitro [J].
Alimova, Irina N. ;
Liu, Bolin ;
Fan, Zeying ;
Edgerton, Susan M. ;
Dillon, Thomas ;
Lind, Stuart E. ;
Thor, Ann D. .
CELL CYCLE, 2009, 8 (06) :909-915
[3]   Metformin slows down aging and extends life span of female SHR mice [J].
Anisimov, Vladimir N. ;
Berstein, Lev M. ;
Egormin, Peter A. ;
Piskunova, Tatiana S. ;
Popovich, Irina G. ;
Zabezhinski, Mark A. ;
Tyndyk, Margarita L. ;
Yurova, Maria V. ;
Kovalenko, Irina G. ;
Poroshina, Tatiana E. ;
Semenchenko, Anna V. .
CELL CYCLE, 2008, 7 (17) :2769-2773
[4]   If started early in life, metformin treatment increases life span and postpones tumors in female SHR mice [J].
Anisimov, Vladimir N. ;
Berstein, Lev M. ;
Popovich, Irina G. ;
Zabezhinski, Mark A. ;
Egormin, Peter A. ;
Piskunova, Tatiana S. ;
Semenchenko, Anna V. ;
Tyndyk, Margarita L. ;
Yurova, Maria N. ;
Kovalenko, Irina G. ;
Poroshina, Tatiana E. .
AGING-US, 2011, 3 (02) :148-157
[5]   Metformin for aging and cancer prevention [J].
Anisimov, Vladimir N. .
AGING-US, 2010, 2 (11) :760-774
[6]   Rapamycin Extends Maximal Lifespan in Cancer-Prone Mice [J].
Anisimov, Vladimir N. ;
Zabezhinski, Mark A. ;
Popovich, Irina G. ;
Piskunova, Tatiana S. ;
Semenchenko, Anna V. ;
Tyndyk, Margarita L. ;
Yurova, Maria N. ;
Antoch, Marina P. ;
Blagosklonny, Mikhail V. .
AMERICAN JOURNAL OF PATHOLOGY, 2010, 176 (05) :2092-2097
[7]   Effect of metformin on life span and on the development of spontaneous mammary tumors in HER-2/neu transgenic mice [J].
Anisimov, VN ;
Berstein, LM ;
Egormin, PA ;
Piskunova, TS ;
Popovich, IG ;
Zabezhinski, MA ;
Kovalenko, IG ;
Poroshina, TE ;
Semenchenko, AV ;
Provinciali, M ;
Re, F ;
Franceschi, C .
EXPERIMENTAL GERONTOLOGY, 2005, 40 (8-9) :685-693
[8]   Evidence that curcumin suppresses the growth of malignant gliomas in vitro and in vivo through induction of autophagy: Role of Akt and extracellular signal-regulated kinase signaling pathways [J].
Aoki, Hiroshi ;
Takada, Yasunari ;
Kondo, Seiji ;
Sawaya, Raymond ;
Aggarwal, Bharat B. ;
Kondo, Yasuko .
MOLECULAR PHARMACOLOGY, 2007, 72 (01) :29-39
[9]   Human Induced Pluripotent Stem Cell Lines Show Stress Defense Mechanisms and Mitochondrial Regulation Similar to Those of Human Embryonic Stem Cells [J].
Armstrong, Lyle ;
Tilgner, Katarzyna ;
Saretzki, Gabriele ;
Atkinson, Stuart P. ;
Stojkovic, Miodrag ;
Moreno, Ruben ;
Przyborski, Stefan ;
Lako, Majlinda .
STEM CELLS, 2010, 28 (04) :661-673
[10]   Therapeutic potential of activators and inhibitors of sirtuins [J].
Balcerczyk, Aneta ;
Pirola, Luciano .
BIOFACTORS, 2010, 36 (05) :383-393