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Published in: Neurotherapeutics 2/2012

01-04-2012 | Original Article

CR8, a Selective and Potent CDK Inhibitor, Provides Neuroprotection in Experimental Traumatic Brain Injury

Authors: Shruti V. Kabadi, Bogdan A. Stoica, Marie Hanscom, David J. Loane, Giorgi Kharebava, Michael G. Murray II, Rainier M. Cabatbat, Alan I. Faden

Published in: Neurotherapeutics | Issue 2/2012

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Abstract

Traumatic brain injury (TBI) induces secondary injury mechanisms, including cell cycle activation (CCA), that leads to neuronal death and neurological dysfunction. We recently reported that delayed administration of roscovitine, a relatively selective cyclin-dependent kinase (CDK) inhibitor, inhibits CCA and attenuates neurodegeneration and functional deficits following controlled cortical impact (CCI) injury in mice. Here we evaluated the neuroprotective potential of CR8, a more potent second-generation roscovitine analog, using the mouse CCI model. Key CCA markers (cyclin A and B1) were significantly up-regulated in the injured cortex following TBI, and phosphorylation of CDK substrates was increased. Central administration of CR8 after TBI, at a dose 20 times less than previously required for roscovitine, attenuated CCA pathways and reduced post-traumatic apoptotic cell death at 24 h post-TBI. Central administration of CR8, at 3 h after TBI, significantly attenuated sensorimotor and cognitive deficits, decreased lesion volume, and improved neuronal survival in the cortex and dentate gyrus. Moreover, unlike roscovitine treatment in the same model, CR8 also attenuated post-traumatic neurodegeneration in the CA3 region of the hippocampus and thalamus at 21 days. Furthermore, delayed systemic administration of CR8, at a dose 10 times less than previously required for roscovitine, significantly improved cognitive performance after CCI. These findings further demonstrate the neuroprotective potential of cell cycle inhibitors following experimental TBI. Given the increased potency and efficacy of CR8 as compared to earlier purine analog types of CDK inhibitors, this drug should be considered as a candidate for future clinical trials of TBI.
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Literature
1.
go back to reference Faul M, Xu L, Wald M, Coronado V. Traumatic brain injury in the United States: Emergency department visits, hospitalizations and deaths 2002–2006. Atlanta (GA): Centers for Disease Control and Prevention, National Center for Injury Prevention and Control 2010;xx:xx-xx. Faul M, Xu L, Wald M, Coronado V. Traumatic brain injury in the United States: Emergency department visits, hospitalizations and deaths 2002–2006. Atlanta (GA): Centers for Disease Control and Prevention, National Center for Injury Prevention and Control 2010;xx:xx-xx.
2.
go back to reference Dutton R, Stansbury L, Leone S, Kramer E, Hess J, Scalea T. Trauma mortality in mature trauma systems: are we doing better? An analysis trauma mortality patterns, 1997–2008. J Trauma 2010;69:620–626.CrossRefPubMed Dutton R, Stansbury L, Leone S, Kramer E, Hess J, Scalea T. Trauma mortality in mature trauma systems: are we doing better? An analysis trauma mortality patterns, 1997–2008. J Trauma 2010;69:620–626.CrossRefPubMed
3.
go back to reference Panter SS, Faden AI. Pretreatment with NMDA antagonists limits release of excitatory amino acids following traumatic brain injury. Neurosci Lett. 1992;136:165–168.CrossRefPubMed Panter SS, Faden AI. Pretreatment with NMDA antagonists limits release of excitatory amino acids following traumatic brain injury. Neurosci Lett. 1992;136:165–168.CrossRefPubMed
4.
go back to reference Bramlett H, Dietrich W. Progressive damage after brain and spinal cord injury: pathomechanisms and treatment strategies. Prog Brain Res 2007;161:125–141.CrossRefPubMed Bramlett H, Dietrich W. Progressive damage after brain and spinal cord injury: pathomechanisms and treatment strategies. Prog Brain Res 2007;161:125–141.CrossRefPubMed
5.
go back to reference Loane DJ, Faden AI. Neuroprotection for traumatic brain injury: translational challenges and emerging therapeutic strategies. Trends Pharmacol Sci 2010;31:596–604.CrossRefPubMed Loane DJ, Faden AI. Neuroprotection for traumatic brain injury: translational challenges and emerging therapeutic strategies. Trends Pharmacol Sci 2010;31:596–604.CrossRefPubMed
6.
go back to reference Kranenburg O, vanderEb A, Zantema A. Cyclin D1 is an essential mediator of apoptotic neuronal cell death. EMBO J 1996;15:46–54.PubMed Kranenburg O, vanderEb A, Zantema A. Cyclin D1 is an essential mediator of apoptotic neuronal cell death. EMBO J 1996;15:46–54.PubMed
7.
go back to reference Herrup K, Yang Y. Cell cycle regulation in the postmitotic neuron: oxymoron or new biology? Nat Rev Neurosci 2007;8:368–378.CrossRefPubMed Herrup K, Yang Y. Cell cycle regulation in the postmitotic neuron: oxymoron or new biology? Nat Rev Neurosci 2007;8:368–378.CrossRefPubMed
8.
go back to reference Osuga H, Osuga S, Wang F, et al. Cyclin-dependent kinases as a therapeutic target for stroke. Proc Natl Acad Sci U S A 2000;97:10254–10259.CrossRefPubMed Osuga H, Osuga S, Wang F, et al. Cyclin-dependent kinases as a therapeutic target for stroke. Proc Natl Acad Sci U S A 2000;97:10254–10259.CrossRefPubMed
9.
go back to reference Arendt T. Synaptic plasticity and cell cycle activation in neurons are alternative effector pathways: the "Dr. Jekyll and Mr. Hyde concept" of Alzheimer’s disease or disease or the yin and yang of neuroplasticity. Prog Neurobiol 2003;71:83–248.CrossRefPubMed Arendt T. Synaptic plasticity and cell cycle activation in neurons are alternative effector pathways: the "Dr. Jekyll and Mr. Hyde concept" of Alzheimer’s disease or disease or the yin and yang of neuroplasticity. Prog Neurobiol 2003;71:83–248.CrossRefPubMed
10.
go back to reference Stoica BA, Byrnes KR, Faden AI. Cell cycle activation and CNS injury. Neurotox Res 2009;16:221–237.CrossRefPubMed Stoica BA, Byrnes KR, Faden AI. Cell cycle activation and CNS injury. Neurotox Res 2009;16:221–237.CrossRefPubMed
11.
12.
go back to reference Greene L, Biswas S, Liu D. Cell cycle molecules and vertebrate neuron death: E2F at the hub. Cell Death Differ 2004;11:49–60.CrossRefPubMed Greene L, Biswas S, Liu D. Cell cycle molecules and vertebrate neuron death: E2F at the hub. Cell Death Differ 2004;11:49–60.CrossRefPubMed
13.
go back to reference Nguyen M, Boudreau M, Kriz J, Couillard-Despres S, Kaplan D, Julien J. Cell cycle regulators in the neuron death pathway of amyotrophic lateral sclerosis caused by mutant superoxide dismutase. J Neurosci 2003;23:2131–2140.PubMed Nguyen M, Boudreau M, Kriz J, Couillard-Despres S, Kaplan D, Julien J. Cell cycle regulators in the neuron death pathway of amyotrophic lateral sclerosis caused by mutant superoxide dismutase. J Neurosci 2003;23:2131–2140.PubMed
14.
go back to reference Wesierska-Gadek J, Gritsch D, Zulehner N, Komina O, Maurer M. Roscovitine, a selective CDK inhibitor, reduces the basal and estrogen-induced phosphorylation of ER-alpha in human ER-positive breast cancer cells. J Cell Biochem. [Research Support, Non-U.S. Gov't]. 2011;112:761–772. Wesierska-Gadek J, Gritsch D, Zulehner N, Komina O, Maurer M. Roscovitine, a selective CDK inhibitor, reduces the basal and estrogen-induced phosphorylation of ER-alpha in human ER-positive breast cancer cells. J Cell Biochem. [Research Support, Non-U.S. Gov't]. 2011;112:761–772.
15.
go back to reference Komina O, Nosske E, Maurer M, Wesierska-Gadek J. Roscovitine, a small molecule CDK inhibitor induces apoptosis in multidrug-resistant human multiple myeloma cells. J Exp Ther Oncol. [Research Support, Non-U.S. Gov't]. 2011;9:27–35. Komina O, Nosske E, Maurer M, Wesierska-Gadek J. Roscovitine, a small molecule CDK inhibitor induces apoptosis in multidrug-resistant human multiple myeloma cells. J Exp Ther Oncol. [Research Support, Non-U.S. Gov't]. 2011;9:27–35.
16.
go back to reference Bettayeb K, Oumata N, Echalier A, et al. CR8, a potent and selective, roscovitine-derived inhibitor of cyclin-dependent kinases. Oncogene. [Research Support, Non-U.S. Gov't] 2008;27:5797–5807. Bettayeb K, Oumata N, Echalier A, et al. CR8, a potent and selective, roscovitine-derived inhibitor of cyclin-dependent kinases. Oncogene. [Research Support, Non-U.S. Gov't] 2008;27:5797–5807.
17.
go back to reference Hilton GD, Stoica BA, Byrnes KR, Faden AI. Roscovitine reduces neuronal cell loss, glial activation, and neurological deficits after brain trauma. J Cereb Blood Flow Metab 2008;28:1845–1859.CrossRefPubMed Hilton GD, Stoica BA, Byrnes KR, Faden AI. Roscovitine reduces neuronal cell loss, glial activation, and neurological deficits after brain trauma. J Cereb Blood Flow Metab 2008;28:1845–1859.CrossRefPubMed
18.
go back to reference Kabadi SV, Stoica BA, Byrnes KR, Hanscom M, Loane DJ, Faden AI. Selective CDK inhibitor limits neuroinflammation and progressive neurodegeneration after brain trauma. J Cereb Blood Flow Metab 2011, Aug 10; doi:10.1038/jcbfm.2011.117. Kabadi SV, Stoica BA, Byrnes KR, Hanscom M, Loane DJ, Faden AI. Selective CDK inhibitor limits neuroinflammation and progressive neurodegeneration after brain trauma. J Cereb Blood Flow Metab 2011, Aug 10; doi:10.​1038/​jcbfm.​2011.​117.
19.
go back to reference Bettayeb K, Baunbaek D, Delehouze C, et al. CDK Inhibitors roscovitine and CR8 trigger Mcl-1 down-regulation and apoptotic cell death in neuroblastoma cells. Genes Cancer 2010;1:369–380.CrossRefPubMed Bettayeb K, Baunbaek D, Delehouze C, et al. CDK Inhibitors roscovitine and CR8 trigger Mcl-1 down-regulation and apoptotic cell death in neuroblastoma cells. Genes Cancer 2010;1:369–380.CrossRefPubMed
20.
go back to reference Nutley BP, Raynaud FI, Wilson SC, et al. Metabolism and pharmacokinetics of the cyclin-dependent kinase inhibitor R-roscovitine in the mouse. Mol Cancer Ther. [Research Support, Non-U.S. Gov't] 2005;4:125–139. Nutley BP, Raynaud FI, Wilson SC, et al. Metabolism and pharmacokinetics of the cyclin-dependent kinase inhibitor R-roscovitine in the mouse. Mol Cancer Ther. [Research Support, Non-U.S. Gov't] 2005;4:125–139.
21.
go back to reference Fox GB, Fan L, Levasseur RA, Faden AI. Sustained sensory/motor and cognitive deficits with neuronal apoptosis following controlled cortical impact brain injury in the mouse. J Neurotrauma 1998;15:599–614.CrossRefPubMed Fox GB, Fan L, Levasseur RA, Faden AI. Sustained sensory/motor and cognitive deficits with neuronal apoptosis following controlled cortical impact brain injury in the mouse. J Neurotrauma 1998;15:599–614.CrossRefPubMed
22.
go back to reference Loane DJ, Pocivavsek A, Moussa CE, et al. Amyloid precursor protein secretases as therapeutic targets for traumatic brain injury. Nat Med 2009;15:377–379.CrossRefPubMed Loane DJ, Pocivavsek A, Moussa CE, et al. Amyloid precursor protein secretases as therapeutic targets for traumatic brain injury. Nat Med 2009;15:377–379.CrossRefPubMed
23.
go back to reference Kabadi SV, Stoica BA, Loane DJ, et al. Cyclin D1 gene ablation confers neuroprotection in traumatic brain injury. J Neurotrauma 2011, Sep 6. Kabadi SV, Stoica BA, Loane DJ, et al. Cyclin D1 gene ablation confers neuroprotection in traumatic brain injury. J Neurotrauma 2011, Sep 6.
24.
go back to reference Brody DL, Holtzman DM. Morris water maze search strategy analysis in PDAPP mice before and after experimental traumatic brain injury. Exp Neurol 2006;197:330–340.CrossRefPubMed Brody DL, Holtzman DM. Morris water maze search strategy analysis in PDAPP mice before and after experimental traumatic brain injury. Exp Neurol 2006;197:330–340.CrossRefPubMed
25.
go back to reference Bevins R, Besheer J. Object recognition in rats and mice: a one-trial non-matching-to-sample learning task to study "recognition memory." Nat Protoc 2006;1:1306–1311.CrossRefPubMed Bevins R, Besheer J. Object recognition in rats and mice: a one-trial non-matching-to-sample learning task to study "recognition memory." Nat Protoc 2006;1:1306–1311.CrossRefPubMed
26.
go back to reference Siman R, Baudry M, Lynch G. Brain fodrin: substrate for calpain I, an endogenous calcium-activated protease. Proc Natl Acad Sci U S A 1984;81:3572–3576.CrossRefPubMed Siman R, Baudry M, Lynch G. Brain fodrin: substrate for calpain I, an endogenous calcium-activated protease. Proc Natl Acad Sci U S A 1984;81:3572–3576.CrossRefPubMed
27.
go back to reference Siman R, McIntosh TK, Soltesz KM, Chen Z, Neumar RW, Roberts VL. Proteins released from degenerating neurons are surrogate markers for acute brain damage. Neurobiol Dis 2004;16:311–320.CrossRefPubMed Siman R, McIntosh TK, Soltesz KM, Chen Z, Neumar RW, Roberts VL. Proteins released from degenerating neurons are surrogate markers for acute brain damage. Neurobiol Dis 2004;16:311–320.CrossRefPubMed
28.
go back to reference Nauta WJH, Feirtag M, eds. Fundamental Neuroanatomy. New York: W.H. Freeman and Company; 1986. Nauta WJH, Feirtag M, eds. Fundamental Neuroanatomy. New York: W.H. Freeman and Company; 1986.
29.
go back to reference Martin JH, ed. Neuroanatomy, text and atlas, 2nd ed. Stamford, CT: Appleton & Lange; 1996. Martin JH, ed. Neuroanatomy, text and atlas, 2nd ed. Stamford, CT: Appleton & Lange; 1996.
30.
go back to reference Cernak I, Stoica B, Byrnes K, Di Giovanni S, Faden A. Role of the cell cycle in the pathophysiology of central nervous system trauma. Cell cycle. 2005;4:1286–1293.CrossRefPubMed Cernak I, Stoica B, Byrnes K, Di Giovanni S, Faden A. Role of the cell cycle in the pathophysiology of central nervous system trauma. Cell cycle. 2005;4:1286–1293.CrossRefPubMed
31.
go back to reference Giovanni SD, Movsesyan V, Ahmed F, et al. Cell cycle inhibition provides neuroprotection and reduces glial proliferation and scar formation after traumatic brain injury. Proc Natl Acad Sci USA 2005;102:8333–8338.CrossRefPubMed Giovanni SD, Movsesyan V, Ahmed F, et al. Cell cycle inhibition provides neuroprotection and reduces glial proliferation and scar formation after traumatic brain injury. Proc Natl Acad Sci USA 2005;102:8333–8338.CrossRefPubMed
32.
go back to reference Byrnes K, Stoica B, Fricke S, Di Giovanni S, Faden A. Cell cycle activation contributes to post-mitotic cell death and secondary damage after spinal cord injury. Brain 2007;130:2977–2992.CrossRefPubMed Byrnes K, Stoica B, Fricke S, Di Giovanni S, Faden A. Cell cycle activation contributes to post-mitotic cell death and secondary damage after spinal cord injury. Brain 2007;130:2977–2992.CrossRefPubMed
33.
go back to reference Meijer L, Borgne A, Mulner O, et al. Biochemical and cellular effects of roscovitine, a potent and selective inhibitor of the cyclin-dependent kinases cdc2, cdk2 and cdk5. Eur J Biochem 1997;243:527–536.CrossRefPubMed Meijer L, Borgne A, Mulner O, et al. Biochemical and cellular effects of roscovitine, a potent and selective inhibitor of the cyclin-dependent kinases cdc2, cdk2 and cdk5. Eur J Biochem 1997;243:527–536.CrossRefPubMed
34.
35.
go back to reference Dixon CE, Clifton GL, Lighthall JW, Yaghmai AA, Hayes RL. A controlled cortical impact model of traumatic brain injury in the rat. J Neurosci Methods [Research Support, U.S. Gov't, P.H.S.] 1991;39:253–262. Dixon CE, Clifton GL, Lighthall JW, Yaghmai AA, Hayes RL. A controlled cortical impact model of traumatic brain injury in the rat. J Neurosci Methods [Research Support, U.S. Gov't, P.H.S.] 1991;39:253–262.
36.
go back to reference Mori T, Kawamata T, Katayama Y, Maeda T, Aoyama N, Kikuchi T, et al. Antioxidant, OPC-14117, attenuates edema formation, and subsequent tissue damage following cortical contusion in rats. Acta Neurochir Suppl 1998;71:120–122.PubMed Mori T, Kawamata T, Katayama Y, Maeda T, Aoyama N, Kikuchi T, et al. Antioxidant, OPC-14117, attenuates edema formation, and subsequent tissue damage following cortical contusion in rats. Acta Neurochir Suppl 1998;71:120–122.PubMed
37.
go back to reference Faden AI, Fox GB, Di X, et al. Neuroprotective and nootropic actions of a novel cyclized dipeptide after controlled cortical impact injury in mice. J Cereb Blood Flow Metab 2003;23:355–363.CrossRefPubMed Faden AI, Fox GB, Di X, et al. Neuroprotective and nootropic actions of a novel cyclized dipeptide after controlled cortical impact injury in mice. J Cereb Blood Flow Metab 2003;23:355–363.CrossRefPubMed
38.
go back to reference Mitra J, Enders GH. Cyclin A/Cdk2 complexes regulate activation of Cdk1 and Cdc25 phosphatases in human cells. Oncogene [Research Support, Non-U.S. Gov't Mitra J, Enders GH. Cyclin A/Cdk2 complexes regulate activation of Cdk1 and Cdc25 phosphatases in human cells. Oncogene [Research Support, Non-U.S. Gov't
39.
go back to reference Research Support, U.S. Gov't, P.H.S.] 2004;23:3361–3367. Research Support, U.S. Gov't, P.H.S.] 2004;23:3361–3367.
40.
go back to reference Lundberg A, Weinberg R. Functional inactivation of the retinoblastoma protein requires sequential modification by at least two distinct cyclin-CDK complexes. Mol Cell Biol 1998;23:1044–1053. Lundberg A, Weinberg R. Functional inactivation of the retinoblastoma protein requires sequential modification by at least two distinct cyclin-CDK complexes. Mol Cell Biol 1998;23:1044–1053.
41.
go back to reference Copani A, Condorelli F, Caruso A, et al. Mitotic signaling by beta-amyloid causes neuronal death. Faseb J [in vitro] 1999;13:2225–2234. Copani A, Condorelli F, Caruso A, et al. Mitotic signaling by beta-amyloid causes neuronal death. Faseb J [in vitro] 1999;13:2225–2234.
42.
go back to reference Vincent I, Jicha G, Rosado M, Dickson DW. Aberrant expression of mitotic cdc2/cyclin B1 kinase in degenerating neurons of Alzheimer's disease brain. J Neurosci [Research Support, U.S. Gov't, P.H.S.] 1997;17:3588–3598. Vincent I, Jicha G, Rosado M, Dickson DW. Aberrant expression of mitotic cdc2/cyclin B1 kinase in degenerating neurons of Alzheimer's disease brain. J Neurosci [Research Support, U.S. Gov't, P.H.S.] 1997;17:3588–3598.
43.
go back to reference Mosch B, Morawski M, Mittag A, Lenz D, Tarnok A, Arendt T. Aneuploidy and DNA replication in the normal human brain and Alzheimer's disease. J Neurosci [Research Support, Non-U.S. Gov't] 2007;27:6859–6867. Mosch B, Morawski M, Mittag A, Lenz D, Tarnok A, Arendt T. Aneuploidy and DNA replication in the normal human brain and Alzheimer's disease. J Neurosci [Research Support, Non-U.S. Gov't] 2007;27:6859–6867.
44.
go back to reference Tian DS, Xie MJ, Yu ZY, et al. Cell cycle inhibition attenuates microglia induced inflammatory response and alleviates neuronal cell death after spinal cord injury in rats. Brain Res [Research Support, Non-U.S. Gov't] 2007;1135:177–185. Tian DS, Xie MJ, Yu ZY, et al. Cell cycle inhibition attenuates microglia induced inflammatory response and alleviates neuronal cell death after spinal cord injury in rats. Brain Res [Research Support, Non-U.S. Gov't] 2007;1135:177–185.
45.
go back to reference Maestre C, Delgado-Esteban M, Gomez-Sanchez JC, Bolanos JP, Almeida A. Cdk5 phosphorylates Cdh1 and modulates cyclin B1 stability in excitotoxicity. EMBO J [Research Support, Non-U.S. Gov't] 2008;27:2736–2745. Maestre C, Delgado-Esteban M, Gomez-Sanchez JC, Bolanos JP, Almeida A. Cdk5 phosphorylates Cdh1 and modulates cyclin B1 stability in excitotoxicity. EMBO J [Research Support, Non-U.S. Gov't] 2008;27:2736–2745.
46.
go back to reference Saatman KE, Creed J, Raghupathi R. Calpain as a therapeutic target in traumatic brain injury. Neurotherapeutics 2010;7:31–42.CrossRefPubMed Saatman KE, Creed J, Raghupathi R. Calpain as a therapeutic target in traumatic brain injury. Neurotherapeutics 2010;7:31–42.CrossRefPubMed
47.
go back to reference Goldstein LB. Model of recovery of locomotor ability after sensorimotor cortex injury in rats. ILAR J 2003;44:125–129.PubMed Goldstein LB. Model of recovery of locomotor ability after sensorimotor cortex injury in rats. ILAR J 2003;44:125–129.PubMed
48.
go back to reference Iizuka H, Sakatani K, Young W. Neural damage in the rat thalamus after cortical infarcts. Stroke [Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.] 1990;21:790–794. Iizuka H, Sakatani K, Young W. Neural damage in the rat thalamus after cortical infarcts. Stroke [Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.] 1990;21:790–794.
49.
go back to reference Hall ED, Sullivan PG, Gibson TR, Pavel KM, Thompson BM, Scheff SW. Spatial and temporal characteristics of neurodegeneration after controlled cortical impact in mice: more than a focal brain injury. J Neurotrauma 2005;22:252–265.CrossRefPubMed Hall ED, Sullivan PG, Gibson TR, Pavel KM, Thompson BM, Scheff SW. Spatial and temporal characteristics of neurodegeneration after controlled cortical impact in mice: more than a focal brain injury. J Neurotrauma 2005;22:252–265.CrossRefPubMed
50.
go back to reference Redish AD, Touretzky DS. The role of the hippocampus in solving the Morris water maze. Neural Comput 1998;10:73–111.CrossRefPubMed Redish AD, Touretzky DS. The role of the hippocampus in solving the Morris water maze. Neural Comput 1998;10:73–111.CrossRefPubMed
51.
go back to reference Broadbent NJ, Gaskin S, Squire LR, Clark RE. Object recognition memory and the rodent hippocampus. Learn Mem 2010;17:5–11.CrossRefPubMed Broadbent NJ, Gaskin S, Squire LR, Clark RE. Object recognition memory and the rodent hippocampus. Learn Mem 2010;17:5–11.CrossRefPubMed
52.
go back to reference Vorhees CV, Williams MT. Morris water maze: procedures for assessing spatial and related forms of learning and memory. Nature protocols [Research Support, N.I.H., Extramural] 2006;1:848–858. Vorhees CV, Williams MT. Morris water maze: procedures for assessing spatial and related forms of learning and memory. Nature protocols [Research Support, N.I.H., Extramural] 2006;1:848–858.
53.
go back to reference Fox GB, Fan L, LeVasseur RA, Faden AI. Effect of traumatic brain injury on mouse spatial and nonspatial learning in the Barnes circular maze. J Neurotrauma 1998;15:1037–1046.CrossRefPubMed Fox GB, Fan L, LeVasseur RA, Faden AI. Effect of traumatic brain injury on mouse spatial and nonspatial learning in the Barnes circular maze. J Neurotrauma 1998;15:1037–1046.CrossRefPubMed
54.
go back to reference Lee I, Hunsaker MR, Kesner RP. The role of hippocampal subregions in detecting spatial novelty. Behav Neurosci 2005;119:145–153.CrossRefPubMed Lee I, Hunsaker MR, Kesner RP. The role of hippocampal subregions in detecting spatial novelty. Behav Neurosci 2005;119:145–153.CrossRefPubMed
55.
go back to reference Lee I, Kesner R. Encoding versus retrieval of spatial memory: double dissociation between the dentate gyrus and the perforant path inputs into CA3 in the dorsal hippocampus. Hippocampus 2004;14:66–76.CrossRefPubMed Lee I, Kesner R. Encoding versus retrieval of spatial memory: double dissociation between the dentate gyrus and the perforant path inputs into CA3 in the dorsal hippocampus. Hippocampus 2004;14:66–76.CrossRefPubMed
56.
go back to reference Gilbert PE, Brushfield AM. The role of the CA3 hippocampal subregion in spatial memory: a process oriented behavioral assessment. Prog Neuropsychopharmacol Biol Psychiatry 2009;33:774–781.CrossRefPubMed Gilbert PE, Brushfield AM. The role of the CA3 hippocampal subregion in spatial memory: a process oriented behavioral assessment. Prog Neuropsychopharmacol Biol Psychiatry 2009;33:774–781.CrossRefPubMed
57.
go back to reference Brunson KL, Eghbal-Ahmadi M, Bender R, Chen Y, Baram TZ. Long-term, progressive hippocampal cell loss and dysfunction induced by early-life administration of corticotropin-releasing hormone reproduce the effects of early-life stress. Proc Natl Acad Sci U S A [Research Support, U.S. Gov't, P.H.S.] 2001;98:8856–8861. Brunson KL, Eghbal-Ahmadi M, Bender R, Chen Y, Baram TZ. Long-term, progressive hippocampal cell loss and dysfunction induced by early-life administration of corticotropin-releasing hormone reproduce the effects of early-life stress. Proc Natl Acad Sci U S A [Research Support, U.S. Gov't, P.H.S.] 2001;98:8856–8861.
58.
go back to reference Jerman T, Kesner RP, Hunsaker MR. Disconnection analysis of CA3 and DG in mediating encoding but not retrieval in a spatial maze learning task. Learn Mem 2006;13:458–464.CrossRefPubMed Jerman T, Kesner RP, Hunsaker MR. Disconnection analysis of CA3 and DG in mediating encoding but not retrieval in a spatial maze learning task. Learn Mem 2006;13:458–464.CrossRefPubMed
Metadata
Title
CR8, a Selective and Potent CDK Inhibitor, Provides Neuroprotection in Experimental Traumatic Brain Injury
Authors
Shruti V. Kabadi
Bogdan A. Stoica
Marie Hanscom
David J. Loane
Giorgi Kharebava
Michael G. Murray II
Rainier M. Cabatbat
Alan I. Faden
Publication date
01-04-2012
Publisher
Springer-Verlag
Published in
Neurotherapeutics / Issue 2/2012
Print ISSN: 1933-7213
Electronic ISSN: 1878-7479
DOI
https://doi.org/10.1007/s13311-011-0095-4

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