• This record comes from PubMed

Lithium increases proliferation of hippocampal neural stem/progenitor cells and rescues irradiation-induced cell cycle arrest in vitro

. 2015 Nov 10 ; 6 (35) : 37083-97.

Language English Country United States Media print

Document type Journal Article, Research Support, Non-U.S. Gov't

Radiotherapy in children causes debilitating cognitive decline, partly linked to impaired neurogenesis. Irradiation targets primarily cancer cells but also endogenous neural stem/progenitor cells (NSPCs) leading to cell death or cell cycle arrest. Here we evaluated the effects of lithium on proliferation, cell cycle and DNA damage after irradiation of young NSPCs in vitro.NSPCs were treated with 1 or 3 mM LiCl and we investigated proliferation capacity (neurosphere volume and bromodeoxyuridine (BrdU) incorporation). Using flow cytometry, we analysed apoptosis (annexin V), cell cycle (propidium iodide) and DNA damage (γH2AX) after irradiation (3.5 Gy) of lithium-treated NSPCs.Lithium increased BrdU incorporation and, dose-dependently, the number of cells in replicative phase as well as neurosphere growth. Irradiation induced cell cycle arrest in G1 and G2/M phases. Treatment with 3 mM LiCl was sufficient to increase NSPCs in S phase, boost neurosphere growth and reduce DNA damage. Lithium did not affect the levels of apoptosis, suggesting that it does not rescue NSPCs committed to apoptosis due to accumulated DNA damage.Lithium is a very promising candidate for protection of the juvenile brain from radiotherapy and for its potential to thereby improve the quality of life for those children who survive their cancer.

See more in PubMed

Oeffinger KC, Mertens AC, Sklar CA, et al. Chronic health conditions in adult survivors of childhood cancer. The New England journal of medicine. 2006 Oct 12;355:1572–1582. PubMed

Spiegler BJ, Bouffet E, Greenberg ML, Rutka JT, Mabbot DJ. Change in neurocognitive functioning after treatment with cranial radiation in childhood. Journal of clinical oncology: official journal of the American Society of Clinical Oncology. 2004 Feb 15;22:706–713. PubMed

Kahalley LS, Conklin HM, Tyc VL, et al. Slower processing speed after treatment for pediatric brain tumor and acute lymphoblastic leukemia. Psycho-oncology. 2013 Sep;22:1979–1986. PubMed PMC

Gibson E, Monje M. Effect of cancer therapy on neural stem cells: implications for cognitive function. Curr Opin Oncol. 2012;24:672–678. PubMed PMC

Langer T, Martus P, Ottensmeier H, Hertzberg H, Beck JD, Meier W. CNS late-effects after ALL therapy in childhood Part III: neuropsychological performance in long-term survivors of childhood ALL: impairments of concentration, attention, and memory. Medical and pediatric oncology. 2002 May;38:320–328. PubMed

Fukuda A, Fukuda H, Swanpalmer J, et al. Age-dependent sensitivity of the developing brain to irradiation is correlated with the number and vulnerability of progenitor cells. Journal of neurochemistry. 2005 Feb;92:569–584. PubMed

Overstreet-Wadiche LS, Bensen AL, Westbrook GL. Delayed development of adult-generated granule cells in dentate gyrus. The Journal of neuroscience: the official journal of the Society for Neuroscience. 2006 Feb 22;26:2326–2334. PubMed PMC

Gilley JA, Yang CP, Kernie SG. Developmental profiling of postnatal dentate gyrus progenitors provides evidence for dynamic cell-autonomous regulation. Hippocampus. 2011;21:33–47. PubMed PMC

Semple BD, Blomgren K, Gimlin K, Ferriero DM, Noble-Haeusslein LJ. Brain development in rodents and humans: Identifying benchmarks of maturation and vulnerability to injury across species. Progress in neurobiology. 2013 Jul-Aug;109-107:1–16. PubMed PMC

Nicola Z, Fabel K, Kempermann G. Development of the adult neurogenic niche in the hippocampus of mice. Frontiers in neuroanatomy. 2015;9:53. PubMed PMC

Kuhn HG, Dickinson-Anson H, Gage FH. Neurogenesis in the dentate gyrus of the adult rat: age-related decrease of neuronal progenitor proliferation. The Journal of neuroscience: the official journal of the Society for Neuroscience. 1996 Mar 15;16:2027–2033. PubMed PMC

Gould E, Reeves AJ, Fallah M, Tanapat P, Gross CG, Fuchs E. Hippocampal neurogenesis in adult Old World primates. Proceedings of the National Academy of Sciences of the United States of America. 1999 Apr 27;96:5263–5267. PubMed PMC

Frankland PW, Kohler S, Josselyn SA. Hippocampal neurogenesis and forgetting. Trends in neurosciences. 2013 Sep;36:497–503. PubMed

Rola R, Raber J, Rizk A, et al. Radiation-induced impairment of hippocampal neurogenesis is associated with cognitive deficits in young mice. Experimental neurology. 2004 Aug;188:316–330. PubMed

Saxe MD, Battaglia F, Wang JW, et al. Ablation of hippocampal neurogenesis impairs contextual fear conditioning and synaptic plasticity in the dentate gyrus. Proceedings of the National Academy of Sciences of the United States of America. 2006 Nov 14;103:17501–17506. PubMed PMC

Temprana SG, Mongiat LA, Yang SM, et al. Delayed coupling to feedback inhibition during a critical period for the integration of adult-born granule cells. Neuron. 2015 Jan 7;85:116–130. PubMed PMC

Bostrom M, Kalm M, Karlsson N, Hellstrom Erkenstam N, Blomgren K. Irradiation to the young mouse brain caused long-term, progressive depletion of neurogenesis but did not disrupt the neurovascular niche. Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism. 2013 Jun;33:935–943. PubMed PMC

Monje ML, Mizumatsu S, Fike JR, Palmer TD. Irradiation induces neural precursor-cell dysfunction. Nature medicine. 2002 Sep;8:955–962. PubMed

Limoli CL, Giedzinski E, Rola R, Otsuka S, Palmer TD, Fike JR. Radiation response of neural precursor cells: linking cellular sensitivity to cell cycle checkpoints, apoptosis and oxidative stress. Radiation research. 2004 Jan;161:17–27. PubMed

Fishman K, Baure J, Zou Y, et al. Radiation-induced reductions in neurogenesis are ameliorated in mice deficient in CuZnSOD or MnSOD. Free radical biology & medicine. 2009 Nov 15;47:1459–1467. PubMed PMC

Smith J, Ladi E, Mayer-Proschel M, Noble M. Redox state is a central modulator of the balance between self-renewal and differentiation in a dividing glial precursor cell. Proceedings of the National Academy of Sciences of the United States of America. 2000 Aug 29;97:10032–10037. PubMed PMC

Schneider L, Pellegatta S, Favaro R, et al. DNA damage in mammalian neural stem cells leads to astrocytic differentiation mediated by BMP2 signaling through JAK-STAT. Stem cell reports. 2013;1:123–138. PubMed PMC

Schneider L. Survival of neural stem cells undergoing DNA damage-induced astrocytic differentiation in self-renewal-promoting conditions in vitro. PloS one. 2014;9:e87228. PubMed PMC

Li T, Li L, Li F, Liu Y. X-ray irradiation accelerates senescence in hippocampal neural stem/progenitor cells via caspase-1 activation. Neuroscience letters. 2015 Jan 12;585:60–65. PubMed

Nowak E, Etienne O, Millet P, et al. Radiation-induced H2AX phosphorylation and neural precursor apoptosis in the developing brain of mice. Radiation research. 2006 Feb;165:155–164. PubMed

d'Adda di Fagagna F, Reaper PM, Clay-Farrace L, et al. A DNA damage checkpoint response in telomere-initiated senescence. Nature. 2003 Nov 13;426:194–198. PubMed

Rooney JW, Laack NN. Pharmacological interventions to treat or prevent neurocognitive decline after brain radiation. CNS oncology. 2013 Nov;2:531–541. PubMed PMC

Etienne O, Roque T, Haton C, Boussin FD. Variation of radiation-sensitivity of neural stem and progenitor cell populations within the developing mouse brain. International journal of radiation biology. 2012 Oct;88:694–702. PubMed

Rivera PD, Shih HY, Leblanc JA, et al. Acute and fractionated exposure to high-LET (56)Fe HZE-particle radiation both result in similar long-term deficits in adult hippocampal neurogenesis. Radiation research. 2013 Dec;180:658–667. PubMed PMC

Huo K, Sun Y, Li H, et al. Lithium reduced neural progenitor apoptosis in the hippocampus and ameliorated functional deficits after irradiation to the immature mouse brain. Molecular and cellular neurosciences. 2012 Aug;51:32–42. PubMed

Yang ES, Wang H, Jiang G, et al. Lithium-mediated protection of hippocampal cells involves enhancement of DNA-PK-dependent repair in mice. The Journal of clinical investigation. 2009 May;119:1124–1135. PubMed PMC

Wexler EM, Geschwind DH, Palmer TD. Lithium regulates adult hippocampal progenitor development through canonical Wnt pathway activation. Molecular psychiatry. 2008 Mar;13:285–292. PubMed

Malaterre J, McPherson CS, Denoyer D, et al. Enhanced lithium-induced brain recovery following cranial irradiation is not impeded by inflammation. Stem cells translational medicine. 2012 Jun;1:469–479. PubMed PMC

Yazlovitskaya EM, Edwards E, Thotala D, et al. Lithium treatment prevents neurocognitive deficit resulting from cranial irradiation. Cancer research. 2006 Dec 1;66:11179–11186. PubMed

Zhukova N, Ramaswamy V, Remke M, et al. WNT activation by lithium abrogates TP53 mutation associated radiation resistance in medulloblastoma. Acta neuropathologica communications. 2014;2:174. PubMed PMC

Tafreshi AP, Sylvain A, Sun G, Herszfeld D, Schulze K, Bernard CC. Lithium chloride improves the efficiency of induced pluripotent stem cell-derived neurospheres. Biological chemistry. 2015 Mar 14; PubMed

Jensen JB, Parmar M. Strengths and limitations of the neurosphere culture system. Molecular neurobiology. 2006 Dec;34:153–161. PubMed

Le Belle JE, Orozco NM, Paucar AA, et al. Proliferative neural stem cells have high endogenous ROS levels that regulate self-renewal and neurogenesis in a PI3K/Akt-dependant manner. Cell stem cell. 2011 Jan 7;8:59–71. PubMed PMC

Hellstrom NA, Bjork-Eriksson T, Blomgren K, Kuhn HG. Differential recovery of neural stem cells in the subventricular zone and dentate gyrus after ionizing radiation. Stem Cells. 2009 Mar;27:634–641. PubMed

Riccardi C, Nicoletti I. Analysis of apoptosis by propidium iodide staining and flow cytometry. Nature protocols. 2006;1:1458–1461. PubMed

Thellier M, Wissocq JC, Heurteaux C. Quantitative microlocation of lithium in the brain by a (n, alpha) nuclear reaction. Nature. 1980 Jan 17;283:299–302. PubMed

Thellier M, Heurteaux C, Wissocq JC. Quantitative study of the distribution of lithium in the mouse brain for various doses of lithium given to the animal. Brain research. 1980 Oct 13;199:175–196. PubMed

Contestabile A, Greco B, Ghezzi D, Tucci V, Benfenati F, Gasparini L. Lithium rescues synaptic plasticity and memory in Down syndrome mice. The Journal of clinical investigation. 2013 Jan;123:348–361. PubMed PMC

Lauterbach EC. Psychotropic drug effects on gene transcriptomics relevant to Parkinson's disease. Progress in neuro-psychopharmacology & biological psychiatry. 2012 Aug 7;38:107–115. PubMed

Su Y, Ryder J, Li B, et al. Lithium, a common drug for bipolar disorder treatment, regulates amyloid-beta precursor protein processing. Biochemistry. 2004 Jun 8;43:6899–6908. PubMed

King MK, Jope RS. Lithium treatment alleviates impaired cognition in a mouse model of fragile × syndrome. Genes, brain, and behavior. 2013 Oct;12:723–731. PubMed PMC

Ph I Study of Lithium During Whole Brain Radiotherapy For Patients With Brain Metastases. https://clinicaltrials.gov/ct2/show/NCT00469937

Neuroprotective Effects of Lithium in Patients With Small Cell Lung Cancer Undergoing Radiation Therapy to the Brain. https://clinicaltrials.gov/ct2/show/NCT01553916

A Feasibility Trial Using Lithium As A Neuroprotective Agent In Patients Undergoing Prophylactic Cranial Irradiation For Small Cell Lung Cancer (TULIP) https://clinicaltrials.gov/ct2/show/NCT01486459

Zinke J, Schneider FT, Harter PN, et al. beta-Catenin-Gli1 interaction regulates proliferation and tumor growth in medulloblastoma. Molecular cancer. 2015;14:17. PubMed PMC

Zhu Z, Kremer P, Tadmori I, et al. Lithium suppresses astrogliogenesis by neural stem and progenitor cells by inhibiting STAT3 pathway independently of glycogen synthase kinase 3 beta. PloS one. 2011;6:e23341. PubMed PMC

Zhu Z, Yin J, Guan J, et al. Lithium stimulates human bone marrow derived mesenchymal stem cell proliferation through GSK-3beta-dependent beta-catenin/Wnt pathway activation. The FEBS journal. 2014 Dec;281:5371–5389. PubMed

Klein PS, Melton DA. A molecular mechanism for the effect of lithium on development. Proceedings of the National Academy of Sciences of the United States of America. 1996 Aug 6;93:8455–8459. PubMed PMC

Ptashne K, Stockdale FE, Conlon S. Initiation of DNA synthesis in mammary epithelium and mammary tumors by lithium ions. Journal of cellular physiology. 1980 Apr 6;103:41–46. PubMed

Draganova K, Zemke M, Zurkirchen L, et al. Wnt/beta-catenin signaling regulates sequential fate decisions of murine cortical precursor cells. Stem Cells. 2015 Jan;33:170–182. PubMed

Boku S, Nakagawa S, Masuda T, et al. Glucocorticoids and lithium reciprocally regulate the proliferation of adult dentate gyrus-derived neural precursor cells through GSK-3beta and beta-catenin/TCF pathway. Neuropsychopharmacology: official publication of the American College of Neuropsychopharmacology. 2009 Feb;34:805–815. PubMed

Salomoni P, Calegari F. Cell cycle control of mammalian neural stem cells: putting a speed limit on G1. Trends in cell biology. 2010 May;20:233–243. PubMed

Lange C, Huttner WB, Calegari F. Cdk4/cyclinD1 overexpression in neural stem cells shortens G1, delays neurogenesis, and promotes the generation and expansion of basal progenitors. Cell stem cell. 2009 Sep 4;5:320–331. PubMed

Varodayan FP, Zhu XJ, Cui XN, Porter BE. Seizures increase cell proliferation in the dentate gyrus by shortening progenitor cell-cycle length. Epilepsia. 2009 Dec;50:2638–2647. PubMed PMC

Hellstrom NA, Lindberg OR, Stahlberg A, et al. Unique gene expression patterns indicate microglial contribution to neural stem cell recovery following irradiation. Molecular and cellular neurosciences. 2011 Apr;46:710–719. PubMed

Zhou Q, Dalgard CL, Wynder C, Doughty ML. Valproic acid inhibits neurosphere formation by adult subventricular cells by a lithium-sensitive mechanism. Neuroscience letters. 2011 Aug 18;500:202–206. PubMed

Dietlein F, Thelen L, Reinhardt HC. Cancer-specific defects in DNA repair pathways as targets for personalized therapeutic approaches. Trends in genetics: TIG. 2014 Aug;30:326–339. PubMed

Bhattacharjee D, Rajan R, Krishnamoorthy L, Singh BB. Effects of lithium chloride as a potential radioprotective agent on radiation response of DNA synthesis in mouse germinal cells. Radiation and environmental biophysics. 1997 Jun;36:125–128. PubMed

Roque T, Haton C, Etienne O, et al. Lack of a p21waf1/ cip-dependent G1/S checkpoint in neural stem and progenitor cells after DNA damage in vivo. Stem Cells. 2012 Mar;30:537–547. PubMed PMC

Robles SJ, Adami GR. Agents that cause DNA double strand breaks lead to p16INK4a enrichment and the premature senescence of normal fibroblasts. Oncogene. 1998 Mar 5;16:1113–1123. PubMed

Agami R, Bernards R. Distinct initiation and maintenance mechanisms cooperate to induce G1 cell cycle arrest in response to DNA damage. Cell. 2000 Jul 7;102:55–66. PubMed

Kalm M, Fukuda A, Fukuda H, et al. Transient inflammation in neurogenic regions after irradiation of the developing brain. Radiation research. 2009 Jan;171:66–76. PubMed

Fukuda H, Fukuda A, Zhu C, et al. Irradiation-induced progenitor cell death in the developing brain is resistant to erythropoietin treatment and caspase inhibition. Cell death and differentiation. 2004 Nov;11:1166–1178. PubMed

Parplys AC, Petermann E, Petersen C, Dikomey E, Borgmann K. DNA damage by X-rays and their impact on replication processes. Radiotherapy and oncology: journal of the European Society for Therapeutic Radiology and Oncology. 2012 Mar;102:466–471. PubMed

Biebl M, Cooper CM, Winkler J, Kuhn HG. Analysis of neurogenesis and programmed cell death reveals a self-renewing capacity in the adult rat brain. Neuroscience letters. 2000 Sep 8;291:17–20. PubMed

Thomaidou D, Mione MC, Cavanagh JF, Parnavelas JG. Apoptosis and its relation to the cell cycle in the developing cerebral cortex. The Journal of neuroscience: the official journal of the Society for Neuroscience. 1997 Feb 1;17:1075–1085. PubMed PMC

Vermes I, Haanen C, Steffens-Nakken H, Reutelingsperger C. A novel assay for apoptosis Flow cytometric detection of phosphatidylserine expression on early apoptotic cells using fluorescein labelled Annexin, V. Journal of immunological methods. 1995 Jul 17;184:39–51. PubMed

Lu F, Li YQ, Aubert I, Wong CS. Endothelial cells regulate p53-dependent apoptosis of neural progenitors after irradiation. Cell death & disease. 2012;3:e324. PubMed PMC

Fike JR, Rola R, Limoli CL. Radiation response of neural precursor cells. Neurosurgery clinics of North America. 2007 Jan;18:115–127. PubMed

Chalecka-Franaszek E, Chuang DM. Lithium activates the serine/threonine kinase Akt-1 and suppresses glutamate-induced inhibition of Akt-1 activity in neurons. Proceedings of the National Academy of Sciences of the United States of America. 1999 Jul 20;96:8745–8750. PubMed PMC

Pan JQ, Lewis MC, Ketterman JK, et al. AKT kinase activity is required for lithium to modulate mood-related behaviors in mice. Neuropsychopharmacology: official publication of the American College of Neuropsychopharmacology. 2011 Jun;36:1397–1411. PubMed PMC

Nakai JS, Elwin J, Chu I, Marro L. Effect of anaestheticsterminal[sol] procedures on neurotransmitters from non-dosed and aroclor 14-dosed rats. J Appl Toxicol. 2005 May-Jun;25:224–233. PubMed

Derr RF. Pain perception in decapitated rat brain. Life Sci. 1991;49:1399–1402. PubMed

Yu S, Levi L, Siegel R, Noy N. Retinoic acid induces neurogenesis by activating both retinoic acid receptors (RARs) and peroxisome proliferator-activated receptor beta/delta (PPARbeta/delta) The Journal of biological chemistry. 2012 Dec 7;287:42195–42205. PubMed PMC

Takahashi J, Palmer TD, Gage FH. Retinoic acid and neurotrophins collaborate to regulate neurogenesis in adult-derived neural stem cell cultures. Journal of neurobiology. 1999 Jan;38:65–81. PubMed

Mori H, Ninomiya K, Kino-oka M, et al. Effect of neurosphere size on the growth rate of human neural stem/progenitor cells. Journal of neuroscience research. 2006 Dec;84:1682–1691. PubMed

Steffenhagen C, Kraus S, Dechant FX, et al. Identity, fate and potential of cells grown as neurospheres: species matters. Stem Cell Rev. 2011 Nov;7:815–835. PubMed

Alam S, Sen A, Behie LA, Kallos MS. Cell cycle kinetics of expanding populations of neural stem and progenitor cells in vitro. Biotechnology and bioengineering. 2004 Nov;88:332–347. PubMed

Lyckesvard MN, Delle U, Kahu H, et al. Alpha particle induced DNA damage and repair in normal cultured thyrocytes of different proliferation status. Mutat Res Fundam Mol Mech Mutagen. 2014 Apr 21; PubMed

Newest 20 citations...

See more in
Medvik | PubMed

Effects of Radiation Therapy on Neural Stem Cells

. 2019 Aug 24 ; 10 (9) : . [epub] 20190824

Differentiation Induction as a Response to Irradiation in Neural Stem Cells In Vitro

. 2019 Jun 29 ; 11 (7) : . [epub] 20190629

Find record

Citation metrics

Loading data ...

Archiving options

Loading data ...