期刊论文详细信息
Proteome Science
Spatiotemporal expression profiling of proteins in rat sciatic nerve regeneration using reverse phase protein arrays
Kimberly M Rieger-Christ6  Ian C Summerhayes6  John Austin1  Antonia H Holway1  Tanya Logvinenko5  Jeffrey V Manchio2  C Robert Litchfield4  David J Bryan3 
[1] Aushon BioSystems Inc., Billerica, Massachusetts, USA;Department Surgery, Section of General Surgery, Saint Joseph Mercy Hospital, Ann Arbor, Michigan, USA;Department of Plastic and Reconstructive Surgery, Lahey Clinic Medical Center, Burlington, Massachusetts, USA;Tissue Engineering Laboratory, Lahey Clinic Medical Center, Burlington, Massachusetts, USA;Institute for Clinical Research and Health Policy Studies, Tufts Medical Center, Boston, Massachusetts, USA;Ian C. Summerhayes Cell and Molecular Biology Laboratory, Lahey Clinic Medical Center, Burlington, Massachusetts, USA
关键词: Growth factors;    Proteomics;    Extracellular matrix;    Reverse phase protein array;    Peripheral nerve regeneration;   
Others  :  817576
DOI  :  10.1186/1477-5956-10-9
 received in 2011-09-19, accepted in 2012-02-10,  发布年份 2012
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【 摘 要 】

Background

Protein expression profiles throughout 28 days of peripheral nerve regeneration were characterized using an established rat sciatic nerve transection injury model. Reverse phase protein microarrays were used to identify the spatial and temporal expression profile of multiple proteins implicated in peripheral nerve regeneration including growth factors, extracellular matrix proteins, and proteins involved in adhesion and migration. This high-throughput approach enabled the simultaneous analysis of 3,360 samples on a nitrocellulose-coated slide.

Results

The extracellular matrix proteins collagen I and III, laminin gamma-1, fibronectin, nidogen and versican displayed an early increase in protein levels in the guide and proximal sections of the regenerating nerve with levels at or above the baseline expression of intact nerve by the end of the 28 day experimental course. The 28 day protein levels were also at or above baseline in the distal segment however an early increase was only noted for laminin, nidogen, and fibronectin. While the level of epidermal growth factor, ciliary neurotrophic factor and fibroblast growth factor-1 and -2 increased throughout the experimental course in the proximal and distal segments, nerve growth factor only increased in the distal segment and fibroblast growth factor-1 and -2 and nerve growth factor were the only proteins in that group to show an early increase in the guide contents. As expected, several proteins involved in cell adhesion and motility; namely focal adhesion kinase, N-cadherin and β-catenin increased earlier in the proximal and distal segments than in the guide contents reflecting the relatively acellular matrix of the early regenerate.

Conclusions

In this study we identified changes in expression of multiple proteins over time linked to regeneration of the rat sciatic nerve both demonstrating the utility of reverse phase protein arrays in nerve regeneration research and revealing a detailed, composite spatiotemporal expression profile of peripheral nerve regeneration.

【 授权许可】

   
2012 Bryan et al; licensee BioMed Central Ltd.

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【 参考文献 】
  • [1]Noble J, Munro CA, Prasad VS, Midha R: Analysis of upper and lower extremity peripheral nerve injuries in a population of patients with multiple injuries. J Trauma 1998, 45(1):116-122.
  • [2]Terenghi G: Peripheral nerve regeneration and neurotrophic factors. J Anat 1999, 194(Pt 1):1-14.
  • [3]Abe N, Cavalli V: Nerve injury signaling. Curr Opin Neurobiol 2008, 18(3):276-283.
  • [4]Lundborg G, Dahlin LB, Danielsen N, Gelberman RH, Longo FM, Powell HC, Varon S: Nerve regeneration in silicone chambers: influence of gap length and of distal stump components. Exp Neurol 1982, 76:361-375.
  • [5]Danielsen N, Dahlin LB, Lee YF, Lundborg F: Axonal growth in mesothelial chambers. The role of the distal nerve segment. Scand J Plast Reconstr Surg 1983, 17(2):119-125.
  • [6]Fu SY, Gordon T: The cellular and molecular basis of peripheral nerve regeneration. Mol Neurobiol 1997, 14:(1-2):67-116.
  • [7]Ide C: Peripheral nerve regeneration. Neurosci Res 1996, 25(2):101-121.
  • [8]Parrinello S, Napoli I, Ribeiro S, Digby PW, Fedorova M, Parkinson DB, Doddrell RD, Nakayama M, Adams RH, Lloyd AC: EphB signaling directs peripheral nerve regeneration through Sox2-dependent Schwann cell sorting. Cell 2010, 143(1):145-155.
  • [9]Gallo G, Lefcort FB, Letourneau PC: The trkA receptor mediates growth cone turning toward a localized source of nerve growth factor. J Neurosci 1997, 17(14):5445-5454.
  • [10]Dodla MC, Bellamkonda RV: Differences between the effect of anisotropic and isotropic laminin and nerve growth factor presenting scaffolds on nerve regeneration across long peripheral nerve gaps. Biomaterials 2008, 29(1):33-46.
  • [11]Brushart TM: Motor axons preferentially reinnervate motor pathways. J Neurosci 1993, 13(6):2730-2738.
  • [12]Abernethy DA, Rud A, Thomas PK: Neurotropic influence of the distal stump of transected peripheral nerve on axonal regeneration: absence of topographic specificity in adult nerve. J Anat 1992, 180(Pt 3):395-400.
  • [13]Bailey SB, Eichler ME, Villadiego A, Rich KM: The influence of fibronectin and laminin during Schwann cell migration and peripheral nerve regeneration through silicon chambers. J Neurocytol 1993, 22(3):176-184.
  • [14]Bryan DJ, Tang JB, Holway AH, Rieger-Christ KM, Trantolo DJ, Wise DL, Summerhayes IC: Enhanced peripheral nerve regeneration elicited by cell-mediated events delivered via a bioresorbable PLGA guide. J Reconstr Microsurg 2003, 19(2):125-134.
  • [15]Lee HK, Seo IA, Park HK, Park YM, Ahn KJ, Yoo YH, Park HT: Nidogen is a prosurvival and promigratory factor for adult Schwann cells. J Neurochem 2007, 102(3):686-698.
  • [16]Vanlair C: De la régénération des nerfs périphériques par la procédé de la suture tubulaire. Arch Biol 1882, 3:379-496.
  • [17]Gu X, Ding F, Yang Y, Liu J: Construction of tissue engineered nerve grafts and their application in peripheral nerve regeneration. Progress Neurobio 2010, 93(2):204-230.
  • [18]Siemionow M, Bozkurt M, Zor F: Regeneration and repair of peripheral nerves with different biomaterials: review. Microsurgery 2010, 30(7):574-588.
  • [19]Wang KK, Costas PD, Bryan DJ, Eby PL, Seckel BR: Inside-out vein graft repair compared with nerve grafting for nerve regeneration in rats. Microsurgery 1995, 16(2):65-70.
  • [20]Yang Y, Ding F, Wu J, Hu W, Liu W, Liu J, Gu X: Development and evaluation of silk fibrin-based nerve grafts used for peripheral nerve regeneration. Biomaterials 2007, 28(36):5526-5535.
  • [21]Kim YT, Haftel VK, Kumar S, Bellamkonda RV: The role of aligned polymer fiber-based constructs in the bridging of long peripheral nerve gaps. Biomaterials 2008, 29(21):3117-3127.
  • [22]Oh SH, Kim JH, Song KS, Jeon BH, Yoon JH, Seo TB, Namgung U, Lee IW, Lee JH: Peripheral nerve regeneration within an asymmetrically porous PLGA/Pluronic F127 nerve guide conduit. Biomaterials 2008, 29(11):1601-1609.
  • [23]Bian YZ, Wang Y, Aibaidoula G, Chen GQ, Wu Q: Evaluation of poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) conduits for peripheral nerve regeneration. Biomaterials 2009, 30(2):217-225.
  • [24]Bini TB, Gao S, Xu X, Wang S, Ramakrishna S, Leong KW: Peripheral nerve regeneration by microbraided poly(L-lactide-co-glycolide) biodegradable polymer fibers. J Biomed Mater Res A 2004, 68(2):286-295.
  • [25]Matsuyama T, Mackay M, Midha R: Peripheral nerve repair and grafting techniques: a review. Neurol Med Chir (Tokyo) 2000, 40(4):187-199.
  • [26]Dvali L, Mackinnon S: Nerve repair, grafting, and nerve transfers. Clin Plast Surg 2003, 30(2):203-221.
  • [27]Nichols CM, Brenner MJ, Fox IK, Tung TH, Hunter DA, Rickman SR, Mackinnon SE: Effects of motor versus sensory nerve grafts on peripheral nerve regeneration. Exp Neurol 2004, 190(2):347-355.
  • [28]Hoke A, Redett R, Hameed H, Jari R, Zhou C, Li ZB, Griffin JW, Brushart TM: Schwann cells express motor and sensory phenotypes that regulate axon regeneration. J Neurosci 2006, 26(38):9646-9655.
  • [29]Cohen S, Levi-Montalcini R, Hamburger V: A Nerve Growth-Stimulating Factor Isolated from Sarcomas 37 and 180. Proc Natl Acad Sci USA 1954, 40(10):1014-1018.
  • [30]Rich KM, Alexander TD, Pryor JC, Hollowell JP: Nerve growth factor enhances regeneration through silicone chambers. Exp Neurol 1989, 105(2):162-170.
  • [31]Boyd JG, Gordon T: Neurotrophic factors and their receptors in axonal regeneration and functional recovery after peripheral nerve injury. Mol Neurobiol 2003, 27(3):277-324.
  • [32]Huang EJ, Reichardt LF: Neurotrophins: roles in neuronal development and function. Annu Rev Neurosci 2001, 24:677-736.
  • [33]Cordeiro PG, Seckel BR, Lipton SA, D'Amore PA, Wagner J, Madison R: Acidic fibroblast growth factor enhances peripheral nerve regeneration in vivo. Plast Reconstr Surg 1989, 83(6):1013-1021.
  • [34]Walter MA, Kurouglu R, Caulfield JB, Vasconez LO, Thompson JA: Enhanced peripheral nerve regeneration by acidic fibroblast growth factor. Lymphokine Cytokine Res 1993, 12(3):135-141.
  • [35]Midha R, Munro CA, Dalton PD, Tator CH, Shoichet MS: Growth factor enhancement of peripheral nerve regeneration through a novel synthetic hydrogel tube. J Neurosurg 2003, 99(3):555-565.
  • [36]Ohta M, Suzuki Y, Chou H, Ishikawa N, Suzuki S, Tanihara M, Mizushima Y, Dezawa M, Ide C: Novel heparin/alginate gel combined with basic fibroblast growth factor promotes nerve regeneration in rat sciatic nerve. J Biomed Mater Res A 2004, 71(4):661-668.
  • [37]Wang S, Cai Q, Hou J, Bei J, Zhang T, Yang J, Wan Y: Acceleration effect of basic fibroblast growth factor on the regeneration of peripheral nerve through a 15-mm gap. J Biomed Mater Res A 2003, 66(3):522-531.
  • [38]Bryan DJ, Holway AH, Wang KK, Silva AE, Trantolo DJ, Wise D, Summerhayes IC: Influence of glial growth factor and Schwann cells in a bioresorbable guidance channel on peripheral nerve regeneration. Tissue Eng 2000, 6(2):129-138.
  • [39]Wells MR, Kraus K, Batter DK, Blunt DG, Weremowitz J, Lynch SE, Antoniades HN, Hansson HA: Gel matrix vehicles for growth factor application in nerve gap injuries repaired with tubes: a comparison of biomatrix, collagen and methylcellulose. Exp Neurol 1997, 146(2):395-402.
  • [40]Sendtner M, Stöckli KA, Thoenen H: Synthesis and localization of ciliary neurotrophic factor in the sciatic nerve of the adult rat after lesion and during regeneration. J Cell Biol 1992, 118(1):139-148.
  • [41]Sahenk Z, Seharaseyon J, Mendell JR: CNTF potentiates peripheral nerve regeneration. Brain Res 1994, 655:(1-2):246-250.
  • [42]Newman JP, Verity AN, Hawatmeh S, Fee WE Jr, Terris DJ: Ciliary neurotrophic factors enhances peripheral nerve regeneration. Arch Otolaryngol Head Neck Surg 1996, 122(4):399-403.
  • [43]Lewin SL, Utley DS, Cheng ET, Verity AN, Terris DJ: Simultaneous treatment with BDNF and CNTF after peripheral nerve transection and repair enhances rate of functional recovery compared with BDNF treatment alone. Laryngoscope 1997, 107(7):992-999.
  • [44]Archibald SJ, Krarup C, Shefner J, Li ST, Madison RD: A collagen-based nerve guide conduit for peripheral nerve repair: an electrophysiological study of nerve regeneration in rodents and nonhuman primates. J Comp Neurol 1991, 306(4):685-696.
  • [45]Li ST, Archibald SJ, Krarup C, Madison RD: Peripheral nerve repair with collagen conduits. Clin Mater 1992, 9:(3-4):195-200.
  • [46]Kauppila T, Jyväsjärvi E, Huopaniemi T, Hujanen E, Liesi P: A laminin graft replaces neurorrhaphy in the restorative surgery of the rat sciatic nerve. Exp Neurol 1993, 123(2):181-191.
  • [47]Whitworth IH, Brown RA, Doré C, Green CJ, Terenghi G: Oriented mats of fibronectin as a conduit material for use in peripheral nerve repair. J Hand Surg Br 1995, 20(4):429-436.
  • [48]Bryan DJ, Miller RA, Costas PD, Wang KK, Seckel BR: Immunocytochemistry of skeletal muscle basal lamina grafts in nerve regeneration. Plast Reconstr Surg 1993, 92(5):927-940.
  • [49]Yoshii S, Oka M, Shima M, Taniguchi A, Akagi M: 30 mm regeneration of rat sciatic nerve along collagen filaments. Brain Res 2002, 949:(1-2):202-208.
  • [50]Perlson E, Medzihradszky KF, Darula Z, Munno DW, Syed NI, Burlingame AL, Fainzilber M: Differential proteomics reveals multiple components in retrogradely transported axoplasm after nerve injury. Mol Cell Proteomics 2004, 3(5):510-520.
  • [51]Jiménez CR, Stam FJ, Li KW, Gouwenberg Y, Hornshaw MP, De Winter F, Verhaagen J, Smit AB: Proteomics of the injured rat sciatic nerve reveals protein expression dynamics during regeneration. Mol Cell Proteomics 2005, 4(2):120-132.
  • [52]Melle C, Ernst G, Grosheva M, Angelov DN, Irintchev A, Guntinas-Lichius O, von Eggeling F: Proteomic analysis of microdissected facial nuclei of the rate following facial nerve injury. J Neurosci Methods 2009, 185(1):23-28.
  • [53]Michaelevski I, Segal-Ruder Y, Rozenbaum M, Medzihradszky KF, Shalem O, Coppola G, Horn-Saban S, Ben-Yaakov K, Dagan SY, Rishal I, Geschwind DH, Pilpel Y, Burlingame AL, Fainzilber M: Signaling to transcription networks in the neuronal retrograde injury response. Sci signal 2010, 3(130):ra53.
  • [54]Paweletz CP, Charboneau L, Bichsel VE, Simone NL, Chen T, Gillespie JW, Emmert-Buck MR, Roth MJ, Petricoin EF III, Liotta LA: Reverse phase protein microarrays which capture disease progression show activation of pro-survival pathways at the cancer invasion front. Oncogene 2001, 20(16):1981-1989.
  • [55]Nishizuka S, Charboneau L, Young L, Major S, Reinhold WC, Waltham M, Kouros-Mehr H, Bussey KJ, Lee JK, Espina V, Munson PJ, Petricoin E, Liotta LA, Weinstein JN: Proteomic profiling of the NCI-60 cancer cell lines using new high-density reverse-phase lysate microarrays. Proc Natl Acad Sci USA 2003, 100(24):14229-14234.
  • [56]Espina V, Mehta AI, Winters ME, Calvert V, Wulfkuhle J, Petricoin EF, Liotta L: Protein microarrays: molecular profiling technologies for clinical specimens. Proteomics 2003, 3(11):2091-2100.
  • [57]Grubb RL, Calvert VS, Wulfkuhle JD, Paweletz CP, Linehan WM, Phillips JL, Chuaqui R, Valasco A, Gillespie J, Emmert-Buck M, Liotta LA, Petricoin EF: Signal pathway profiling of prostate cancer using reverse phase protein arrays. Proteomics 2003, 3(11):2142-2146.
  • [58]Wulfkuhle JD, Aquino JA, Calvert VS, Fishman DA, Coukos G, Liotta LA, Petricoin EF: Signal pathway profiling of ovarian cancer from human tissue specimens using reverse-phase microarrays. Proteomics 2003, 3(11):2085-2090.
  • [59]Hermann PC, Gillespie JW, Charboneau L, Bichsel VE, Paweletz CP, Calvert VS, Kohn EC, Emmert-Buck MR, Liotta LA, Petricoin EF: Mitochondrial proteome: Altered Cytochrome oxidase subunit levels in prostate. Proteomics 2003, 3(9):1801-1810.
  • [60]Liotta LA, Espina V, Mehta AI, Calvert V, Rosenblatt K, Geho D, Munson PJ, Young L, Wulfkuhle J, Petricoin EF: Protein microarrays: meeting analytical challenges for clinical applications. Cancer Cell 2003, 3(4):317-325.
  • [61]Wang K-K, Nemeth IR, Seckel BR, Chakalis-Haley DP, Swann DA, Kuo JW, Bryan DJ, Cetrulo CL Jr: Hyaluronic acid enhances peripheral nerve regeneration in vivo. Microsurgery 1998, 18:270-275.
  • [62]Williams LR, Longo FM, Powell HC, Lundborg G, Varon S: Spatial-temporal progress of peripheral nerve regeneration with a silicone chamber: parameters for a bioassay. J Comp Neurol 1983, 218:460-470.
  • [63]Longo FM, Skaper SD, Manthorpe M, Willimas LR, Lundborg G, Varon S: Temporal changes of neuronotrophic activities accumulating in vivo within nerve regeneration chambers. Exp Neurol 1983, 81:756-769.
  • [64]Verhaagen J, Oesteicher AB, Edwards PM, Veldman H, Jennekens FG, Gispen WH: Light and electron-microscopical study of phosphoprotein B-50 following denervation and reinnervation of the rat soleus muscle. J Neurosci 1988, 8(5):1759-1766.
  • [65]Verhaagen J, van Hooff CO, Edwards PM, De Graan PN, Oestreicher AB, Schotman P, Jennekens FG, Gispen WH: The kinase C substrate protein B-50 and axonal regeneration. Brain Res Bull 1986, 17(6):737-741.
  • [66]Verkade P, Oestreicher AB, Verkleig AJ, Gispen WH: The increase in B-50/GAP-43 in regenerating rat sciatic nerve occurs predominantly in unmyelinated axon shafts: a quantitative ultrastructural study. J Comp Neurol 1995, 356(3):433-443.
  • [67]Verkade P, Schrama LH, Verkleij AJ, Gispen WH, Oestreicher AB: Ultrastructural co-localization of calmodulin and B-50/growth-associated protein-43 at the plasma membrane of proximal unmyelinated axon shafts studied in the model of the regenerating rat sciatic nerve. Neuroscience 1997, 79(4):1207-1218.
  • [68]Plantinga LC, Verhaagen J, Edwards PM, Hol EM, Bar PR, Gispen WH: The expression of B-50/GAP-43 in Schwann cells is up-regulated in degenerating peripheral nerve stumps following nerve injury. Brain Res 1993, 602(1):69-76.
  • [69]Buffo A, Holtmaat AJ, Savio T, Verbeek JS, Oberdick J, Oestreicher AB, Gispen WH, Verhaagen J, Rossi F, Strata P: Targeted overexpression of the neurite growth-associated protein B-50/GAP-43 in cerebellar Purkinje cells induces sprouting after axotomy but not axon regeneration into growth permissive transplants. J Neurosci 1997, 17(22):8778-8791.
  • [70]Van der Zee CEEM, Nielander HB, Vos JP, da Silva SL, Verhaagen J, Oestreicher AB, Schrama LH, Schotman P, Gispen WH: Expression of growth-associated protein B-50 (GAP-43) in dorsal root ganglia and sciatic nerve during regenerative sprouting. J Neurosci 1989, 9(10):3505-3512.
  • [71]Tetzlaff W, Zwiers H, Lederis K, Cassar L, Bisby MA: Axonal transport and localization of B-50/GAP-43-like immunoreactivity in regenerating sciatic and facial nerves of the rat. J Neurosci 1989, 9(4):1303-1313.
  • [72]Tricaud N, Perrin-Tricaud C, Brusés JL, Rutishauser U: Adherens junctions in myelinating Schwann cells stabilize Schmidt-Lanterman incisures via recruitment of p120 catenin to E-cadherin. J Neurosci 2005, 25(13):3259-3269.
  • [73]Hasegawa M, Seto A, Uchiyama N, Kida S, Yamashima T, Yamashita J: Localization of E-cadherin in peripheral glia after nerve injury and repair. J Neuropathol Exp Neurol 1996, 55(4):424-434.
  • [74]Tada H, Hatoko M, Tanaka A, Kuwahara M, Mashiba K, Yurugi S: The difference in E-cadherin expression between nonvascularized and vascularized nerve grafts: study in the rat sciatic nerve model. J Surg Res 2001, 100(1):57-62.
  • [75]Hatoko M, Tanaka A, Kuwahara M, Yurugi S, Iioka H, Niitsuma K: Expression of alpha, beta, and gamma catenins in vascularized and nonvascularized nerve grafts during the regeneration process. J Reconstr Microsurg 2003, 19(4):271-278.
  • [76]Bixby JL, Lilien J, Reichardt LF: Identification of the major proteins that promote neuronal process outgrowth on Schwann cells in vitro. J Cell Biol 1988, 107(1):353-361.
  • [77]Matsunaga M, Hatta K, Nagafuchi A, Takeichi M: Guidance of optic nerve fibers by N-cadherin adhesion molecules. Nature 1988, 334(6177):62-64.
  • [78]Cifuentes-Diaz C, Nicolet M, Gondou D, Rieger F, Mege RM: N-cadherin expression in developing adult and denervated chicken neuromansular system: accumulations at both the neuromuscular junction and the node of Ranvier. Development 1994, 120(1):1-11.
  • [79]Hatoko M, Tada H, Tanaka A, Kuwahara M, Yurugi S: The differential expression of N-cadherin in vascularized and nonvascularized nerve grafts: a study in a rat sciatic nerve model. Ann Plast Surg 2001, 47(3):322-327.
  • [80]Thornton MR, Mantovani C, Birchall MA, Terenghi G: Quantification of N-CAM and N-cadherin expression in axotomized and crushed rat sciatic nerve. J Anat 2005, 206(1):69-78.
  • [81]Shibuya Y, Mizoguchi A, Takeichi M, Shimada K, Ide C: Localization of N-cadherin in the normal and regenerating nerve fibers of the chicken peripheral nervous system. Neuroscience 1995, 67(1):253-261.
  • [82]Grove M, Komiyama NH, Nave KA, Grant SG, Sherman DL, Brophy PJ: FAK is required for axonal sorting by Schwann cells. J Cell Biol 2007, 176(3):277-282.
  • [83]Tucker BA, Rahimtula M, Mearow KM: Src and FAK are key early signaling intermediates required for neurite growth in NGF-responsive adult DRG neurons. Cell Signal 2008, 20(1):241-257.
  • [84]Grothe C, Wewetzer K: Fibroblast growth factor and its implications for developing and regenerating neurons. Int J Dev Biol 1996, 40(1):403-410.
  • [85]Ebadi M, Bashir RM, Heidrick ML, Hamada FM, Refaey HE, Hamed A, Helal G, Baxi MD, Cerutis DR, Lassi NK: Neurotrophins and their receptors in nerve injury and repair. Neurochem Int 1997, 30:(4-5):347-374.
  • [86]Danielsen N, Pettmann B, Vahlsing HL, Manthorpe M, Varon S: Fibroblast growth factor effects on peripheral nerve regeneration in a silicone chamber model. J Neurosci Res 1998, 20(3):320-330.
  • [87]Laird JM, Mason GS, Thomas KA, Hargreaves RJ, Hill RG: Acidic fibroblast growth factor stimulates motor and sensory axon regeneration after sciatic nerve crush in the rat. Neuroscience 1995, 65(1):209-216.
  • [88]Trigg DJ, O'Grady KM, Bhattacharyya T, Reinke M, Toriumi DM: Peripheral nerve regeneration: comparison of laminin and acidic fibroblast growth factor. Am J Otolaryngol 1998, 19(1):29-32.
  • [89]Jungnickel J, Haase K, Konitzer J, Timmer M, Grothe C: Faster nerve regeneration after sciatic nerve injury in mice over-expressing basic fibroblast growth factor. J Neurobiol 2006, 66(9):940-948.
  • [90]Meisinger C, Grothe C: Differential regulation of fibroblast growth factor (FGF)-2 and FGF receptor 1 mRNAs and FGF-2 isoforms in spinal ganglia and sciatic nerve after peripheral nerve lesion. J Neurochem 1997, 68(3):1150-1158.
  • [91]Grothe C, Meisinger C, Claus P: In vivo expression and localization of the fibroblast growth factor system in the intact and lesioned rat peripheral nerve and spinal ganglia. J Comp Neurol 2001, 434(3):342-357.
  • [92]Grothe C, Meisinger C, Hertenstein A, Kurz H, Wewetzer K: Expression of fibroblast growth factor-2 and fibroblast growth factor receptor 1 messenger RNAs in spinal ganglia and sciatic nerve: regulation after peripheral nerve lesion. Neuroscience 1997, 76(1):123-135.
  • [93]Eckenstein FP, Shipley GD, Nishi R: Acidic and basic fibroblast growth factors in the nervous system: Distribution and differential alteration of levels after injury of central versus peripheral nerve. J Neurosci 1991, 11(2):412-419.
  • [94]Ishikawa R, Nishikori K, Furukawa Y, Hayashi K, Furukawa S: Injury-induced reduction of acidic fibroblast growth factor levels in the distal parts of rat sciatic nerve. Neurosci Lett 1992, 135(1):113-116.
  • [95]Toma JG, Pareek S, Barker P, Mathew TC, Murphy RA, Acheson A, Miller FD: Spatiotemporal increases in epidermal growth factor receptors following peripheral nerve injury. J Neurosci 1992, 12(7):2504-2515.
  • [96]Wildering WC, Hermann PM, Bulloch AG: Lymnaea epidermal growth factor promotes axonal regeneration in CNS organ culture. J Neurosci 2001, 21(23):9345-9354.
  • [97]Dubuisson AS, Beuermann RW, Kline DG: Sciatic nerve regeneration across gaps within collagen chambers: the influence of epidermal growth factor. J Reconstr Microsurg 1993, 9(5):341-346.
  • [98]Whitworth IH, Brown RA, Dorè CH, Anand P, Green CJ, Terenghi G: Nerve growth factor enhances nerve regeneration through fibronectin grafts. J Hand Surg Br 1996, 21(4):514-522.
  • [99]Heumann R, Lindholm D, Bandtlow C, Meyer M, Radeke MJ, Misko TP, Shooter E, Thoenen H: Differential regulation of mRNA encoding nerve growth factor and its receptor in rat sciatic nerve during development, degeneration and regeneration: role of macrophages. Proc Natl Acad Sci USA 1987, 84(23):8735-8739.
  • [100]Sendtner M, Kreutzberg GW, Thoenen H: Ciliary neurotrophic factor prevents the degeneration of motor neurons after axotomy. Nature 1990, 345(6274):440-441.
  • [101]Sango K, Yanagisawa H, Komuta Y, Si Y, Kawano H: Neuroprotective properties of ciliary neurotrophic factor for cultured adult rat dorsal root ganglion neurons. Histochem Cell Biol 2008, 130(4):669-679.
  • [102]Ito Y, Yamamoto M, Li M, Doyu M, Tanaka F, Mutch T, Mitsuma T, Sobue G: Differential temporal expression of mRNAs for ciliary neurotrophic factor (CNTF), leukemia inhibitory factor (LIF), interleukin-6 (IL-6), and their receptors (CNTFR alpha, LIFR beta, IL-6R alpha and gp130) in injured peripheral nerves. Brain Res 1998, 793:(1-2):321-327.
  • [103]Rabinovsky ED, Smith GM, Browder DP, Shine HD, McManaman JL: Peripheral nerve injury down-regulates CNTF expression in adult rat sciatic nerves. J Neurosci Res 1992, 31(1):188-192.
  • [104]Chernousov MA, Stahl RC, Carey DJ: Schwann cells use a novel collagen-dependent mechanism for fibronectin fibril assembly. J Cell Sci 1998, 111(Pt 18):2763-2777.
  • [105]Baron-Van Evercooren A, Kleinman HK, Seppa HE, Rentier B, Dubois-Dalcq M: Fibronectin promotes rat Schwann cell growth and motility. J Cell Biol 1982, 93(1):211-216.
  • [106]Ahmed Z, Brown RA: Adhesion, alignment, and migration of cultured Schwann cells on ultrathin fibronectin fibres. Cell Motil Cytoskeleton 1999, 42(4):331-343.
  • [107]Lefcort F, Venstrom K, McDonald JA, Reichardt LF: Regulation of expression of fibronectin and its receptor, alpha 5 beta 1, during development and regeneration of peripheral nerve. Development 1992, 116(3):767-782.
  • [108]Siironen J, Sandberg M, Vuorinen V, Röyttä M: Expression of type I and III collagens and fibronectin after transection of rat sciatic nerve. Reinnervation compared with denervation. Lab Invest 1992, 67(1):80-87.
  • [109]Matthews GA, Ffrench-Constant C: Embryonic fibronectins are up-regulated following peripheral nerve injury in rats. J Neurobiol 1995, 26(2):171-188.
  • [110]Zhang J, Oswald TM, Lineaweaver WC, Chen Z, Zhang G, Chen Z, Zhang F: Enhancement of rat sciatic nerve regeneration by fibronectin and laminin through a silicone chamber. J Reconstr Microsurg 2003, 19(7):467-472.
  • [111]Chen ZL, Strickland S: Laminin γ1 is critical for Schwann cell differentiation, axon myelination, and regeneration in the peripheral nerve. J Cell Biol 2003, 163(4):889-899.
  • [112]Grimpe B, Dong S, Doller C, Temple K, Malouf AT, Silver J: The critical role of basement membrane-independent laminin gamma 1 chain during axon regeneration in the CNS. J Neurosci 2002, 22(8):3144-3160.
  • [113]Wallquist W, Patarroyo M, Thams S, Carlstedt T, Stark B, Cullheim S, Hammarberg H: Laminin chains in rat and human peripheral nerve: distribution and regulation during development and after axonal injury. J Comp Neurol 2002, 454(3):284-293.
  • [114]Doyu M, Sobue G, Ken E, Kimata K, Shinomura T, Yamada Y, Mitsuma T, Takahashi A: Laminin A, B1 and B2 chain gene expression in transected and regenerating nerves: Regulation by axonal signals. J Neurochem 1993, 60(2):543-551.
  • [115]Siironen J, Vuorinen V, Taskinen HS, Röyttä M: Axonal regeneration into chronically denervated distal stump.2. Active expression of type I collagen mRNA in epineurium. Acta Neuropathol 1995, 89(3):219-226.
  • [116]Siironen J, Vuorio E, Sandberg M, Röyttä M: Expression of type I and II collagen and laminin beta1 after sciatic nerve crush injury. J Peripher Nerv Syst 1996, 1(3):209-221.
  • [117]Nath RK, Mackinnon SE, Jensen JN, Parks WC: Spatial pattern of type I collagen expression in injured peripheral nerve. J Neurosurg 1997, 86(5):866-870.
  • [118]Alluin O, Wittmann C, Marqueste T, Chabas JF, Garcia S, Lavaut MN, Guinard D, Feron F, Decherchi P: Functional recovery after peripheral nerve injury and implantation of a collagen guide. Biomaterials 2009, 30(3):363-373.
  • [119]Lee HK, Seo IA, Suh DJ, Park HT: Nidogen plays a role in the regenerative axon growth of adult sensory neurons through Schwann cells. J Korean Med Sci 2009, 24(4):654-659.
  • [120]Niederöst BP, Zimmermann DR, Schwab ME, Bandtlow CE: Bovine CNS myelin contains neurite growth-inhibitory activity associated with chondroitin sulfate proteoglycans. J Neurosci 1999, 19(20):8979-8989.
  • [121]Schmalfeldt M, Bandtlow CE, Dours-Zimmermann MT, Winterhalter KH, Zimmermann DR: Brain derived versican V2 is a potent inhibitor of axonal growth. J Cell Sci 2000, 113(Pt 5):807-816.
  • [122]Wu Y, Sheng W, Chen L, Dong H, Lee V, Lu F, Wong CS, Lu WY, Yang BB: Versican V1 isoform induces neuronal differentiation and promotes neurite outgrowth. Mol Biol Cell 2004, 15(5):2093-2104.
  • [123]Shukla S, Nair R, Rolle MW, Braun KR, Chan CK, Johnson PY, Wight TN, McDevitt TC: Synthesis and organization of hyaluronan and versican by embryonic stem cells undergoing embryoid body differentiation. J Histochem Cytochem 2010, 58(4):345-358.
  • [124]Gupta SK, Meiri KF, Mahfooz K, Upasna B, Mani S: Coordination between extrinsic matrix cues and intrinsic responses to orient the centrosome in polarizing cerebellar granule neurons. J Neurosci 2010, 30(7):2755-2766.
  • [125]Cheng H, Huang Y-C, Chang P-T, Huang Y-Y: Laminin-incorporated nerve conduits made by plasma treatment for repairing spinal cord injury. Biochem Biophys Res Commun 2007, 357(4):938-944.
  • [126]Spurrier B, Ramalingam S, Nishizuka S: Reverse-phase protein lysate microarrays for cell signaling analysis. Nat Protoc 2008, 3(11):1796-1808.
  • [127]Spurrier B, Honkanen P, Holway A, Kumamoto K, Terashima M, Takenoshita S, Wakabayashi G, Austin J, Nishizuka S: Protein and lysate array technologies in cancer research. Biotechnol Adv 2008, 26(4):361-369.
  • [128]Nishizuka S, Charboneau L, Young L, Major S, Reinhold WC, Waltham M, Kouros-Mehr H, Bussey KJ, Lee JK, Espina V, Munson PJ, Petricoin E, Liotta LA, Weinstein JN: Proteomic profiling of the NCI-60 cancer cell lines using new high-density reverse-phase lysate microarrays. Proc Natl Acad Sci USA 2003, 100(24):14229-14234.
  • [129]Miller RG Jr: Simultaneous Statistical Inference. 2nd edition. New York: Springer; 1981.
  • [130]Storey JD: The positive false discovery rate: a Bayesian interpretation and the -value. Ann Statist 2003, 31(6):2013-2035.
  • [131]Storey JD, Taylor JE, Siegmund D: Strong control, conservative point estimation, and simultaneous conservative consistency of false discovery rates: a unified approach. J R Statist Soc B 2004, 66(Pt 1):187-205.
  • [132]R Development Core Team: R: A language and environment for statistical computing. Vienna, Austria; 2008. ISBN 3-90051-07-0, [http://www.R-project.org webcite]
  • [133]Pinheiro J, Bates D, Debroy S, Sarkar S, the R core team: nlme: Linear and nonlinear mixed effects models. R package 2008. version 3.1-88
  • [134]Dabney A, Storey JD, Warnes GR: q-value: Q-value estimation for false discovery rate control. R packageversion 1.1
  • [135]Li C, Wong WH: Model-based analysis of oligonucleotide arrays: model validation, design issues and standard error application. Genome Biol 2001, 2(8):RESEARCH0032.
  • [136]Li C, Wong WH: Model-based analysis of oligonucleotide arrays: expression index computation and outlier detection. Proc Natl Acad Sci USA 2001, 98(1):31-36.
  • [137]Parmigiani G, Garret ES, Irizarry RA, Zeger SL: The analysis of gene expression data: methods and software. New York: Springer; 2003.
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