Protection Effect of GDNF and Neurturin on Photosensitized Crayfish Neurons and Glial Cells
详细信息    查看全文
  • 作者:Anatoly Uzdensky (1)
    Maxim Komandirov (1)
    Grigory Fedorenko (1) (2)
    Andrej Lobanov (1)
  • 关键词:GDNF ; Neuron ; Glia ; Ultrastructure ; Photodynamic ; Cell death
  • 刊名:Journal of Molecular Neuroscience
  • 出版年:2013
  • 出版时间:March 2013
  • 年:2013
  • 卷:49
  • 期:3
  • 页码:480-490
  • 全文大小:1312KB
  • 参考文献:1. Airaksinen MS, Saarma M (2002) The GDNF family: signaling, biological functions and therapeutical value. Nat Rev Neurosci 3:383鈥?94 CrossRef
    2. Airaksinen MS, Holm L, Hatinen T (2006) Evolution of the GDNF family ligands and receptors. Brain Behav Evol 68:181鈥?90 CrossRef
    3. Almeida RD, Manada BJ, Carvalho AP, Duarte CB (2004) Intracellular signaling mechanisms in photodynamic therapy. Biochim Biophys Acta 1704:59鈥?6
    4. Andersen JK (2004) Oxidative stress in neurodegeneration: cause or consequence? Nat Med 10:S18鈥揝25 CrossRef
    5. Barde YA (1994) Neurotrophic factors: an evolutionary perspective. J Neurobiol 25:1329鈥?333 CrossRef
    6. Binder DK, Scharfman HE (2004) Brain-derived neurotrophic factor. Growth Fact 22:123鈥?31 CrossRef
    7. Brown SB, Brown EA, Walker I (2004) The present and future role of photodynamic therapy in cancer treatment. Lancet Oncol 5:497鈥?08 CrossRef
    8. Buytaert E, Dewaele M, Agostinis P (2007) Molecular pathways in cell death following photodynamic therapy. In: Uzdensky AB (ed). Photodynamic therapy at the cellular level Trivandrum: Research Signpost. p 63-96
    9. Castano AP, Demidova TN, Hamblin MR (2005) Mechanisms in photodynamic therapy: part two鈥攃ellular signaling, cell metabolism and modes of cell death. Photodiagn Photodyn Ther 2:1鈥?3 CrossRef
    10. Chao MV, Rajagopal R, Lee FS (2006) Neurotrophin signaling in health and disease. Clin Sci (Lond) 110:167鈥?73 CrossRef
    11. Cheng H, Fu YS (2004) Ability of GDNF to diminish free radical production leads to protection against kainate-induced excitotoxicity in hippocampus. Hippocampus 14:77鈥?6 CrossRef
    12. Du Y, Dreyfus CF (2002) Oligodendrocytes as providers of growth factors. J Neurosci Res 68:647鈥?54 CrossRef
    13. Eljamel MS (2004) Brain PDD and PDT unlocking the mystery of malignant gliomas. Photodiagn Photodyn Ther 1:303鈥?10 CrossRef
    14. Fedorenko GM, Uzdensky AB (2008) Dynamics of ultrastructural changes in the isolated crayfish mechanoreceptor neuron under photodynamic impact. J Neurosci Res 86:1409鈥?416 CrossRef
    15. Fedorenko GM, Uzdensky AB (2009a) Ultrastructure of neuroglial contacts in crayfish stretch receptor. Cell Tissue Res 337:477鈥?90 CrossRef
    16. Fedorenko GM, Uzdensky AB (2009b) Cellular structures involved in the transport processes and neuroglial interactions in the crayfish stretch receptor. J Integr Neurosci 8:433鈥?40 CrossRef
    17. Fedorenko GM, Fedorenko YP, Fedorenko AG, Uzdensky AB (2011) Dynamics of ultrastructural alterations in photosensitized crayfish glial and neuronal cells: structures involved in transport processes and neuroglial interactions. J Neurosci Res 89:341鈥?51 CrossRef
    18. Florey E, Florey E (1955) Microanatomy of the abdominal stretch receptors of the crayfish ( / Astacus fluviatili L.). J Gen Physiol 39:69鈥?5 CrossRef
    19. Girotti A (2001) Photosensitized oxidation of membrane lipids: reaction pathways, cytotoxic effects, and cytoprotective mechanisms. J Photochem Photobiol B: Biol 63:103鈥?13 CrossRef
    20. Hauck SM, Kinkl N, Deeg CA, Swiatek DE, Lange M, Schoffmann S, Ueffing M (2006) GDNF family ligands trigger indirect neuroprotective signaling in retinal glial cells. Mol Cell Biol 26:2746鈥?757 CrossRef
    21. Jarro H, Fainzilber M (2006) Building complex brains鈥攎issing pieces in an evolutionary puzzle. Brain Behav Evol 68:191鈥?95 CrossRef
    22. Jarro H, Beck G, Conticello SG, Fainzilber M (2001) Evolving better brains: a need for neurotrophins? TiNS 24:79鈥?5
    23. Kolosov M, Uzdensky A (2006) Crayfish mechanoreceptor neuron prevents photoinduced apoptosis of satellite glial cells. Brain Res Bull 69:495鈥?00 CrossRef
    24. Kopp DM, Trachtenberg JT, Thompson WJ (1997) Glial growth factor rescues Schwann cells of mechanoreceptors from denervation-induced apoptosis. J Neurosci 17:6697鈥?706
    25. Kostron H (2010) Photodynamic diagnosis and therapy and the brain. In: Gomer CJ (ed) Phorodynamic therapy. Methods and protocols. Methods in molecular biology, vol 635. Springer, New York, pp 261鈥?80
    26. Lobanov AV, Uzdensky AB (2009) Protection of crayfish glial cells but not neurons from photodynamic injury by nerve growth factor. J Mol Neurosci 39:308鈥?19 CrossRef
    27. McKay S, Purcell AL, Carew TJ (1999) Regulation of synaptic function by neurotrophic factors in vertebrates and invertebrates: implications for development and learning. Learn Mem 6:193鈥?15
    28. Messer CJ, Son JH, Joh TH, Beck KD, Nestler EJ (1999) Regulation of tyrosine hydroxylase gene transcription in ventral midbrain by glial cell line-derived neurotrophic factor. Synapse 34:241鈥?43 CrossRef
    29. Nakamura TY, Jeromin A, Smith G, Kurushima H, Koga H, Nakabeppu Y, Wakabayashi S, Nabekura J (2006) Novel role of neuronal Ca2+ sensor-1 as a survival factor up-regulated in injured neurons. J Cell Biol 172:1081鈥?091 CrossRef
    30. Nicole O, Ali C, Docagne F, Plawinski L, MacKenzie ET, Vivien D, Buisson A (2001) Neuroprotection mediated by glial cell line-derived neurotrophic factor: involvement of a reduction of NMDA-induced calcium influx by the mitogen-activated protein kinase pathway. J Neurosci 21:3024鈥?033
    31. Odinak MM, Tsigan NV (2005) Neurotrophic growth factors in the central nervous system. Nauka, Sankt-Petersburg
    32. Onyango IG, Tuttle JB, Bennett JP (2005) Brain-derived growth factor and glial cell line-derived growth factor use distinct intracellular signaling pathways to protect PD cybrids from H2O2-induced neuronal death. Neurobiol Dis 20:141鈥?54 CrossRef
    33. Pellitteri R, Russo A, Stanzani S (2006) Schwann cell: a source of neurotrophic activity on cortical glutamatergic neurons in culture. Brain Res 1069:139鈥?44 CrossRef
    34. Rubin GM, Yandell MD, Wortman JR et al (2000) Comparative genomics of the eukaryotes. Science 287:2204鈥?215 CrossRef
    35. Saarma M, Sariola H (1999) Other neurotrophic factors: glial cell line-derived neurotrophic factor (GDNF). Microsc Res Tech 45:292鈥?02 CrossRef
    36. Saavedra A, Baltazar G, Carvalho CM, Duarte EP (2005) GDNF modulates HO-1 expression in substantia nigra postnatal cell cultures. Free Rad Biol Med 39:1611鈥?619 CrossRef
    37. Saavedra A, Baltazar G, Santos P, Carvalho CM, Duarte EP (2006) Selective injury to dopaminergic neurons up-regulates GDNF in substantia nigra postnatal cell cultures: role of neuron鈥揼lia crosstalk. Neurobiol Dis 23:533鈥?42 CrossRef
    38. Sofroniew MV, Howe CL, Mobley WC (2001) Nerve growth factor signaling, neuroprotection, and neural repair. Annu Rev Neurosci 24:1217鈥?281 CrossRef
    39. Stylli SS, Kaye AH (2006) Photodynamic therapy of cerebral glioma鈥攁 review. Part I. A biological basis. J Clin Neurosci 13:615鈥?25 CrossRef
    40. Ugarte SD, Lin E, Klann E, Zigmond MJ, Perez RG (2003) Effects of GDNF on 6-OHDA-induced death in a dopaminergic cell line: modulation by inhibitors of PI3 kinase and MEK. J Neurosci Res 73:105鈥?12 CrossRef
    41. Uzdensky AB (2008) Signal transduction and photodynamic therapy. Curr Sign Transduct Ther 3:55鈥?4 CrossRef
    42. Uzdensky AB (2010) Cellular and molecular mechanisms of photodynamic therapy. Nauka, Sankt-Petersburg
    43. Uzdensky AB, Bragin DE, Kolosov MS, Dergacheva OY, Fedorenko GM, Zhavoronkova AA (2002) Photodynamic inactivation of isolated crayfish mechanoreceptor neuron: different death modes under different photosensitizer concentrations. Photochem Photobiol 76:431鈥?37 CrossRef
    44. Uzdensky A, Kolosov M, Bragin D, Dergacheva O, Vanzha O, Oparina L (2005) Involvement of adenylate cyclase and tyrosine kinase signaling pathways in response of crayfish stretch receptor neuron and satellite glia cell to photodynamic treatment. Glia 49:339鈥?48 CrossRef
    45. Venter JC, Adams MD, Myers EW et al (2001) The sequence of human genome. Science 291:1304鈥?351 CrossRef
    46. Zigmond MJ (2006) Triggering endogenous neuroprotective mechanisms in Parkinson's disease: studies with a cellular model. J Neural Transm Suppl 70:439鈥?42 CrossRef
  • 作者单位:Anatoly Uzdensky (1)
    Maxim Komandirov (1)
    Grigory Fedorenko (1) (2)
    Andrej Lobanov (1)

    1. Department of Biophysics and Biocybernetics, Institute of Neurocybernetics, Southern Federal University, 194/1 Stachky Ave., NII NK, Rostov-on-Don, 344090, Russia
    2. Southern Scientific Center RAN, Rostov-on-Don, Russia
文摘
Neurons and glial cells can protect each other from stress and following death by mutual exchange with neurotrophins. In order to examine involvement of different neurotrophic factors in neuroglial interactions in a photosensitized crayfish stretch receptor, a simple model object consisting of only two sensory neurons enveloped by glial cells, we studied the influence of glial cell line-derived neurotrophic factor (GDNF), neurturin, and ciliary neurotrophic factor (CNTF) on its photodynamic injury. Photodynamic treatment, which causes strong oxidative stress, induced firing abolition and necrosis of neurons, necrosis, and apoptosis of glial cells. GDNF significantly reduced photoinduced neuronal necrosis and neurturin but not CNTF showed a similar tendency. Both of them significantly reduced necrosis and apoptosis of glial cells. At the ultrastructural level, neurons and glial cells treated with GDNF in the darkness contained large mitochondria with well-developed cristae, numerous ribosomes, polysomes, rough endoplasmic reticulum (ER), and dictyosomes. This indicated the high level of bioenergetic, biosynthetic, and transport processes. Photodynamic treatment caused swelling and vacuolization of mitochondria, dictyosomes, and ER. It also impaired formation of glial protrusions and double membrane vesicles that transfer glial material into the neuron. GDNF prevented photoinduced mitochondria swelling that disturbed the cellular bioenergetics and cytoplasm vacuolization associated with injury of intracellular organelles. It also preserved the structures involved in protein synthesis and transport: rough ER, dictyosomes, polysomes, microtubule bundles, submembrane cisterns, and double membrane vesicles. GDNF-mediated maintenance of metabolism and ultrastructure of photosensitized neurons and glial cells may be the basis of its neuro- and glia protective effects.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700