Treatment of rat spinal cord injury with a Rho-kinase inhibitor and bone marrow stromal cell transplantation

被引:33
作者
Furuya, Takeo [1 ]
Hashimoto, Masayuki [1 ]
Koda, Masao [1 ]
Okawa, Akihiko [1 ]
Murata, Atsushi [1 ]
Takahashi, Kazuhisa [1 ]
Yamashita, Toshihide [2 ]
Yamazaki, Masashi [1 ]
机构
[1] Chiba Univ, Grad Sch Med, Dept Orthopaed Surg, Chuo Ku, Chiba 2608670, Japan
[2] Osaka Univ, Grad Sch Med, Dept Mol Neurosci, Suita, Osaka 5650871, Japan
关键词
Spinal cord injury; Rho-kinase inhibitor; Fasudil; Bone marrow stromal cell (BMSC); Cell transplantation; CHONDROITIN SULFATE PROTEOGLYCANS; PROMOTE FUNCTIONAL RECOVERY; CENTRAL-NERVOUS-SYSTEM; STEM-CELLS; ADULT-RAT; IN-VITRO; AXONAL REGENERATION; NEURONAL DEATH; SCHWANN-CELLS; NEURAL CELLS;
D O I
10.1016/j.brainres.2009.07.087
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
In light of reports that the administration of fasudil, a Rho-kinase inhibitor, improved rats locomotor abilities following spinal cord injury, we hypothesized that combining fasudil with another type of therapy, such as stem cell transplantation, might further improve the level of locomotor recovery. Bone marrow stromal cells (BMSCs) are readily available for stem cell therapy. in the present study, we examined whether fasudil combined with BMSC transplantation would produce synergistic effects on recovery. Adult female Sprague-Dawley rats were subjected to spinal cord contusion injury at the T10 vertebral level using an IH impactor (200 Kdyn). Immediately after contusion, they were administrated fasudil intrathecally for 4 weeks. GFP rat-derived BMSCs (2.5x10(6)) were injected into the lesion site 14 days after contusion. Locomotor recovery was assessed for 9 weeks with BBB scoring. Sensory tests were conducted at 8 weeks. Biotinylated dextran amine (BDA) was injected into the sensory-motor cortex at 9 weeks. In addition to an untreated control group, the study also included a fasudil-only group and a BMSC-only group in order to compare the effects of combined therapy vs. single-agent therapy. Animals were perfused transcardially 11 weeks after contusion, and histological examinations were performed. The combined therapy group showed statistically better locomotor recovery than the untreated control group at 8 and 9 weeks after contusion. Neither of the two single-agent treatments improved open field locomotor function. Sensory tests showed no statistically significant difference by treatment. Histological and immunohistochemical studies provided some supporting evidence for better locomotor recovery following combined therapy. The average area of the cystic cavity was significantly smaller in the fasudil+BMSC group than in the control group. The number of 5-HT nerve fibers was significantly higher in the fasudil+BMSC group than in the control group on the rostral side of the lesion site. BDA-labeled fibers on the caudal side of the lesion epicenter were observed only in the fasudil+BMSC group. on the other hand, only small numbers of GFP-labeled grafted cells remained 9 weeks after transplantation, and these were mainly localized at the site of injection. Double immunofluorescence studies showed no evidence of differentiation of grafted BMSCs into glial cells or neurons. The Rho-kinase inhibitor fasudil combined with BMSC transplantation resulted in better locomotor recovery than occurred in the untreated control group. However, the data failed to demonstrate significant synergism from combined therapy compared with the levels of recovery following single-agent treatment. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:192 / 202
页数:11
相关论文
共 55 条
  • [21] Bone marrow stromal cells mediate protection through stimulation of PI3-K/Akt and MAPK signaling in neurons
    Isele, Nicola B.
    Lee, Hea-Sook
    Landshamer, Stefan
    Straube, Andreas
    Padovan, Claudio S.
    Plesnila, Nikolaus
    Culmsee, Carsten
    [J]. NEUROCHEMISTRY INTERNATIONAL, 2007, 50 (01) : 243 - 250
  • [22] Transplantation of bone marrow stromal cell-derived Schwann cells promotes axonal regeneration and functional recovery after complete transection of adult rat spinal cord
    Kamada, T
    Koda, M
    Dezawa, M
    Yoshinaga, K
    Hashimoto, M
    Koshizuka, S
    Nishio, Y
    Morlya, H
    Yamazaki, M
    [J]. JOURNAL OF NEUROPATHOLOGY AND EXPERIMENTAL NEUROLOGY, 2005, 64 (01) : 37 - 45
  • [23] Differentiation of adult bone marrow stem cells into neuroprogenitor cells in vitro
    Kim, BJ
    Seo, JH
    Bubien, JK
    Oh, YS
    [J]. NEUROREPORT, 2002, 13 (09) : 1185 - 1188
  • [24] Hematopoietic stem cell and marrow stromal cell for spinal cord injury in mice
    Koda, M
    Okada, S
    Nakayama, T
    Koshizuka, S
    Kamada, T
    Nishio, Y
    Someya, Y
    Yoshinaga, K
    Okawa, A
    Moriya, H
    Yamazaki, M
    [J]. NEUROREPORT, 2005, 16 (16) : 1763 - 1767
  • [25] Marrow stromal cells migrate throughout forebrain and cerebellum, and they differentiate into astrocytes after injection into neonatal mouse brains
    Kopen, GC
    Prockop, DJ
    Phinney, DG
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (19) : 10711 - 10716
  • [26] Transplanted hematopoietic stem cells from bone marrow differentiate into neural lineage cells and promote functional recovery after spinal cord injury in mice
    Koshizuka, S
    Okada, S
    Okawa, A
    Koda, M
    Murasawa, M
    Hashimoto, M
    Kamada, T
    Yoshinaga, K
    Murakami, M
    Moriya, H
    Yamazaki, M
    [J]. JOURNAL OF NEUROPATHOLOGY AND EXPERIMENTAL NEUROLOGY, 2004, 63 (01) : 64 - 72
  • [27] Kubo Takekazu, 2007, Recent Pat CNS Drug Discov, V2, P173, DOI 10.2174/157488907782411738
  • [28] A pre-clinical assessment model of rat autogeneic bone marrow stromal cell transplantation into the central nervous system
    Lee, JB
    Kuroda, S
    Shichinohe, H
    Yano, S
    Kobayashi, H
    Hida, K
    Iwasaki, Y
    [J]. BRAIN RESEARCH PROTOCOLS, 2004, 14 (01): : 37 - 44
  • [29] Liu XZ, 1997, J NEUROSCI, V17, P5395
  • [30] BDNF-expressing marrow stromal cells support extensive axonal growth at sites of spinal cord injury
    Lu, P
    Jones, LL
    Tuszynski, MH
    [J]. EXPERIMENTAL NEUROLOGY, 2005, 191 (02) : 344 - 360