| Literature DB >> 23484157 |
Abstract
Cell transplantation, as a therapeutic intervention for spinal cord injury (SCI), has been extensively studied by researchers in recent years. A number of different kinds of stem cells, neural progenitors, and glial cells have been tested in basic research, and most have been excluded from clinical studies because of a variety of reasons, including safety and efficacy. The signaling pathways, protein interactions, cellular behavior, and the differentiated fates of experimental cells have been studied in vitro in detail. Furthermore, the survival, proliferation, differentiation, and effects on promoting functional recovery of transplanted cells have also been examined in different animal SCI models. However, despite significant progress, a "bench to bedside" gap still exists. In this paper, we comprehensively cover publications in the field from the last years. The most commonly utilized cell lineages were covered in this paper and specific areas covered include survival of grafted cells, axonal regeneration and remyelination, sensory and motor functional recovery, and electrophysiological improvements. Finally we also review the literature on the in vivo tracking techniques for transplanted cells.Entities:
Mesh:
Year: 2013 PMID: 23484157 PMCID: PMC3581246 DOI: 10.1155/2013/786475
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
In vivo transplantations of ESCs and iPSCs.
| First author | Year | SCI Models | Main graft | Transplantation methods | Pre-differentiation or pretreated | Combination | Tissue sparing | Neuronal regeneration | Axonal regeneration | Sensory function | Motor function | Cavity and/or scare formation | Inflammation | Others |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Bottai, [ | 2010 | T8, contusion | Mouse ESCs | i.v. | — | — | — | — | Imp. | — | Imp. | — | Decreased nr. of macrophages and neutrophils | — |
|
Kumagai, [ | 2009 | T10, contusion | Mouse ESCs | Lesion epicenter i. medu. | Neurogenic neurospheres | — | Imp. | No Imp. | No Imp. | — | No Imp. | — | — | No angiogenesis |
| Mouse ESCs | Lesion epicenter i. medu. | Gliogenic neurospheres | — | Imp. | Imp. | Imp. | — | Imp. | — | — | Enhanced angiogenesis | |||
| Lowry, [ | 2008 | T8, dorsal | Mouse ESCs | Lesion site and rostral | Endothelial cells/hedgehog | — | — | Imp. | Imp. | Imp. | Imp. | — | — | — |
| Fujimoto, [ | 2012 | T10, contusion | Human iPSCs | Lesion epicenter i. medu. | Neuroepithelial-like stem cells | — | Imp. | Imp. | Imp. | — | Imp. | — | — | — |
| Chen, [ | 2005 | T8, compression | Primed-hNSCs | Rostral and caudal | L1-transfection | — | Imp. | Imp. | Imp. | — | — | Imp. | — | — |
| Cui, [ | 2011 | T9, compression | Mouse ESCs | Rostral and caudal | Neuronal differentiation and L1 expression | — | Imp. | Imp. | Imp. | — | Imp. | — | Decreased microglial reaction | — |
| Perrin, [ | 2010 | T9, compression | Human ESCs | Lesion site, rostral and caudal i. medu. | Ngn2-transfection | — | No Imp. | Imp. | Imp. | — | Imp. | — | — | — |
| Hatami, [ | 2009 | T10, lateral | Human ESCs | Lesion site, i. medu. | Differentiated to NPs | Collagen I | — | Imp. | — | Imp. | Imp. | — | — | — |
| Niapour, [ | 2012 | T9, contusion-rats | Human ESCs | Lesion epicenter i. medu. | Differentiated to NPs | NPs + rat SCs | — | Imp. | Imp. | — | Imp. | — | — | — |
| Rossi, [ | 2010 | C5-C6, contusion | Human ESCs | ventral horn, | Differentiated to MPs | — | — | Imp. | Imp. | — | Imp. | — | — | — |
| Kim, [ | 2010 | T13, lateral | Mouse ESCs | s. i. | GABAergic differentiation | — | — | — | — | Imp. | — | — | — | Increased evoked activity of WDR neurons |
| Keirstead, [ | 2005 | T10, contusion | Human ESCs | Rostral and caudal | OPCs differentiation | — | No Imp. | Imp. | Imp. | — | Imp. | — | — | — |
| Kerr, [ | 2010 | T9, contusion-rats | Human ESCs | Lesion site, | OPCs differentiation | — | — | Imp. | Imp. | — | Imp. | Imp. | — | Improved electrophysiological activities |
| Sharp, [ | 2010 | C5, contusion-rats | Human ESCs | Rostral and caudal | OPCs differentiation | — | Imp. | — | Imp. | — | Imp. | Imp. | Suppression of acute inflammation | — |
| Erceg, [ | 2010 | T8, complete | Human ESCs | Rostral and caudal | OPCs and MPs differentiation | OPCs + MPs | — | Imp. | Imp. | — | Imp. | — | — | Improved electrophysiological activities |
| Salehi, [ | 2009 | T9, complete | Human ESCs | Lesion site, | MNs differentiation | MNs + OECs | Imp. | Imp. | Imp. | — | Imp. | Imp. | — | — |
—: Not reported; Imp.: Improvement; i.v.: intravenously; i. medu.: intramedullary injection; s. i.: subarachnoid injection; SCI: spinal cord injury; NPs: neural precursors; OPCs: oligodendrocyte progenitor cells; MPs: motoneuron progenitors; MNs: motoneurons, SCs: Schwann cells; OECs: olfactory ensheathing cells.
In vivo transplantations of mesenchymal stem cells.
| First author | Year | SCI Models | Main graft | Transplantation methods | Pre-differentiation or pretreated | Combination | Tissue sparing | Neuronal regeneration | Axonal regeneration | Sensory function | Motor function | Cavity and/or scare formation | Inflammation | Others |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Nakajima, [ | 2012 | T9-T10, contusion-rats | Rats bMSCs | Lesion epicenter | — | — | Imp. | — | Imp. | — | Imp. | Imp. | Shifting of macrophage phenotype | — |
| Karaoz, [ | 2012 | T9–T11, contusion-rats | Rats bMSCs | Lesion epicenter | — | — | Imp. | — | — | — | Imp. | — | — | Only Nestin+/GFAP+ astrocytic-like cells were observed |
| Park, [ | 2010 | T9, contusion-rats | Rats bMSCs | Lesion epicenter | — | — | — | No Imp. | — | — | more rapid restora- | — | Decreased nr. of macrophages and monocytes | No bladder function improvement |
| Abrams, [ | 2009 | T11-12, contusion-rats | Rats bMSCs | Lesion site, rostral and caudal | — | — | — | — | — | Partially Imp. | Imp. | Imp. | Attenuated chronic inflammation | — |
| Kang, [ | 2012 | T8–10, contusion-rats | Rats bMSCs | i.v. | — | — | — | No Imp. | — | — | Imp. | — | — | — |
| T8–10, contusion-rats | Rats bMSCs | Rostral and caudal | — | — | — | NeuN+ differentiation | — | — | Imp. | — | — | Expression of BDNF and NGF | ||
| Osaka, [ | 2010 | T9, contusion-rats | Rats bMSCs | i.v. | — | — | — | — | — | — | Imp. | Imp. | — | — |
| Mothe, [ | 2011 | T8-9, clip compression-rats | Rats bMSCs | i. thec. | — | — | — | No Imp. | Imp. | — | — | — | — | — |
| Boido, [ | 2012 | T9, compressed-mice | Mice bMSCs | Lesion site, | — | — | Imp. | No Imp. | — | Imp. | Imp. | — | — | — |
| Gu, [ | 2010 | T9, contusion-rats | Rats bMSCs | Rostral and caudal | — | — | Imp. | No Imp. | Imp. | Imp. | Imp. | Imp. | — | Expression of BDNF and GDNF |
| Alexanian, [ | 2011 | T9, contusion-rats | Human bMSCs | Rostral and caudal | Neural differentiation | — | Imp. | Imp. | — | No Imp. | Imp. | Imp. | — | — |
| Ban, [ | 2011 | T9, contusion-rats | Rats bMSCs | Lesion epicenter | — | MSCs + SCs | — | — | Imp. | — | Imp. | Imp. | — | — |
| Cho, [ | 2009 | T9, contusion-rats | Rats bMSCs | Lesion epicenter | Neural differentiation | — | — | Imp. | — | — | Imp. | — | — | Improvements in SSEPs and MEPs |
| Pedram, [ | 2010 | T8-9, catheter compression-rats | Rats bMSCs | Rostral and caudal | Neural differentiation | Differentiated and undifferentiated MSCs | — | Imp. | — | — | Imp. | — | — | — |
| Liu, [ | 2011 | T9, contusion-rats | Rats bMSCs | Lesion epicenter | bFGF-transfection | — | — | Imp. | Imp. | — | Imp. | — | — | — |
| Zhang, [ | 2012 | T9, ethidium bromide-induced demyelination-rats | Rats bMSCs | Lesion site, | NT-3-transfection | — | — | Imp. | Imp. | — | Imp. | — | — | Improvements in SCEPs |
| Zeng, [ | 2011 | T8, complete transection-rats | Human bMSCs | Lesion site, | — | Scaffolds + MSCs | — | Imp. | Imp. | — | Imp. | Imp. | Decreased nr. of macrophages and microglial | Enhanced angiogenesis |
| Kang, [ | 2012 | T8-9, complete removal of a 2-mm length of spinal cord | Human bMSCs | Lesion site, | — | Scaffolds + MSCs | — | Imp. | Imp. | — | Imp. | — | — | Improvements in MEPs |
| Park, [ | 2012 | L2-3 balloon catheter compression-dogs | Canine aMSCs | Lesion site, | Neural differentiation | Matrigel + neural-induced MSCs | — | Imp. | — | — | Imp. | Imp. | Decreased expression of inflammation markers | Increased expression of neurotrophic markers |
| Guo, [ | 2011 | T9, contusion-rats | Human uMSCs | Lesion epicenter | Schwann-like cells | NT-3 + huMSC-derived Schwann-like cells | — | Imp. | — | — | Imp. | — | — | — |
| Shang, [ | 2011 | T9, contusion-rats | Human uMSCs | Lesion epicenter | NT-3-transfection | — | — | Imp. | Imp. | Imp. | Imp. | — | — | |
| Lee, [ | 2011 | L2-3 balloon catheter compression-dogs | Human uMSCs | Lesion site, rostral and caudal | — | — | — | Imp. | Imp. | Imp. | — | — | Expression of BDNF and NT-4 |
*More rapid restoration of hindlimb function without significant differences compared with control groups; —: Not reported; Imp., Improvement; i.v.: intravenously; i. medu.: intramedullary injection; i. thec.: Intrathecal implantation; SCI: spinal cord injury; SCs: Schwann cells; bMSCs: bone-marrow-derived Mesenchymal stem cells; aMSCs: canine adipose-derived mesenchymal stem cells; uMSCs: umbilical-cord mesenchymal stem cells.
In vivo transplantations of neural stem/progenitor cells.
| First author | Year | SCI Models | Main graft | Transplantation methods | Pre-differentiation or pretreated | Combination | Tissue sparing | Neuronal regeneration | Axonal regeneration | Sensory function | Motor function | Cavity and/or scare formation | Inflammation | Others |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Åkesson, | 2007 | T8, clamp compression-rats | human spinal cord-derived neurospheres | Lesion epicenter i. medu. | — | — | — | Imp. | — | — | — | — | — | — |
| Webber, [ | 2007 | C4, dorsal hemisection-rats | Fetal NSCs-rats | Lesion site, | — | — | — | No Imp. | No Imp. | Partially Imp. | No Imp. | — | — | High glial differentiation rate |
| Tarasenko, [ | 2007 | T9-10, contusion-rats | Human fetal NSCs | Lesion epicenter i. medu. | — | — | — | Imp. | Imp. | — | Imp. | — | — | — |
| Yan, [ | 2007 | L4 and L5 roots avulsion—nude rats | Human fetal NSCs | Lesion epicenter i. medu. | — | — | — | Imp. | Imp. | — | — | — | — | Synaptic contact reformation |
| Yasuda, [ | 2011 | T10, contusion-mice | Mouse fetal NSCs | Lesion epicenter i. medu. | — | — | Imp. | Imp. | Imp. | — | Imp. | — | — | — |
| Hwang, [ | 2009 | T9-10, contusion-rats | Human fetal NSCs | Lesion epicenter and rostral | Olig2-transfection | — | Imp. | Imp. | Imp. | Imp. | Imp. | Imp. | — | — |
| Alexanian, [ | 2010 | T8, compressed-rats | Human fetal NPs | Rostral and caudal | Differentiated to OPCs | — | — | — | Imp. | Imp. | Imp. | — | — | — |
| Wang, [ | 2010 | 3/4 lateral transection-rats | Rats fetal NSCs | Rostral and caudal | — | NSCs + OECs | — | Imp. | Imp. | — | Imp. | — | — | — |
| Salazar, [ | 2010 | T9, contusion-mice | Human fetal NSCs | Rostral and caudal | — | — | No Imp. | Imp. | — | No Imp. | Imp. | No Imp. | — | — |
—: Not reported; Imp.: Improvement; i. medu.: intramedullary injection; SCI: spinal cord injury; NSCs: neural stem cells; NPs: neural precursors; OPCs: oligodendrocyte progenitor cells; OECs: olfactory ensheathing cells.
In vivo transplantations of olfactory ensheathing cells.
| First author | Year | SCI Models | Main graft | Transplantation methods | Pre-differentiation or pretreated | Combination | Tissue sparing | Neuronal regeneration | Axonal regeneration | Sensory function | Motor function | Cavity and/or scare formation | Inflammation | Others |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Ziegler, [ | 2011 | T9, complete transection-rats | Rats OECs | Rostral and caudal | — | — | — | — | — | — | Imp. | — | — | Improvements in MEPs |
| Lu, [ | 2006 | C4, dorsal hemisection-rats | Rats OECs | Rostral and caudal | — | — | — | No Imp. | Partially Imp. | — | — | — | — | — |
| Collazos-Castro, [ | 2005 | C7, contusion-rats | Rats OECs | Rostral and caudal | — | — | — | No Imp. | No Imp. | — | Partially Imp. | — | — | — |
| Centenaro, [ | 2011 | T9, complete transection-rats | OLP and RLP-rats | Lesion site, | — | — | — | — | Imp. | — | No Imp. | — | — | — |
| Aoki, [ | 2010 | T10, complete transection-rats | Rats-whole-layer olfactory mucosa | Rostral and caudal | — | — | — | — | Partially Imp. | — | Partially Imp. | No Imp. | — | — |
| Richter, [ | 2005 | C4, dorsal lateral hemisection-rats | Mouse lamina propria-derived OECs | Lesion epicenter and rostral | — | — | Imp. | — | Imp. | — | — | Imp. | — | Enhanced angiogenesis |
| Zhang, [ | 2011 | T10, contusion-rats | OLP and RLP-rats | Lesion site, | — | — | — | — | Imp. | — | — | — | — | Activation of host SCs |
| Zhang, [ | 2011 | T10, contusion-rats | Rats lamina propria-derived OECs | Rostral and caudal | — | Glial scar ablation + OECs | — | — | Imp. | — | No Imp. | Imp. | — | Activation of host SCs |
| Yamamoto, [ | 2009 | T10, hemisection-rats | Rats OECs | Lesion epicenter i. medu. | — | — | — | — | No Imp. | — | — | — | — | — |
| Muñoz-Quiles, [ | 2009 | T9, complete transection-rats | Rats OECs | Rostral and caudal | — | — | — | — | Imp. | Imp. | Imp. | — | Best results in sub-acute transplantation group | |
| Novikova, [ | 2011 | C4, lateral hemisection-rats | Rats OECs | Rostral and caudal | 3 Weeks or 7 weeks pre-culture | — | — | Imp. | Imp. | — | — | — | — | Aged cells are less effective |
| Toft, [ | 2007 | L3, lateral hemisection-rats | Rats OECs | Lesion site, | — | — | — | — | Imp. | — | — | Imp. | — | Improvements in cord dorsum potentials and SEPs |
| Liu, [ | 2010 | T11-12, catheter compression-rats | Rats OECs | Lesion epicenter i. medu. | — | — | — | Imp. | — | — | Imp. | — | — | Improvements in SEPs and MEPs |
| alinčík, [ | 2010 | T4, complete transection-rats | Rats OECs | Lesion epicenter i. medu. | — | — | — | Imp. | — | — | — | — | — | Improvements of autonomic dysreflexia |
| Tharion, [ | 2011 | T10, contusion-rats | Rats OECs | Lesion site, | — | — | — | — | Imp. | — | Imp. | — | — | Improvements of MEPs |
| Stamegna, [ | 2011 | C2, lateral hemisection-rats | Rats OECs | Lesion site, | — | — | — | — | Imp. | — | Imp. | Imp. | — | Improvements in diaphragm activities |
| Bretzner, [ | 2010 | C4, dorsal lateral hemisection-rats | Mice OECs | Rostral and caudal | — | cAMP infusion + OECs | Imp. | — | Imp. | Imp. | Imp. | Imp. | — | — |
| Ma, [ | 2010 | T9, contusion-rats | Rats OECs | Lesion level, | NT-3-transfection | — | — | — | Imp. | — | Imp. | — | — | — |
| Salehi, [ | 2009 | T9, complete transection-rats | Rats OECs | Lesion site, | — | MNs + OECs | Imp. | Imp. | Imp. | — | Imp. | Imp. | — | — |
| Amemori, [ | 2010 | T8 balloon catheter compression-rats | Rats OECs | Rostral and caudal | — | OECs + MSCs | Imp. | — | — | Partially Imp. | Partially Imp. | — | — | Partial improvements of MEPs |
—: Not reported; Imp.: Improvement; i. medu.: intramedullary injection; s. i.: subarachnoid injection; SCI: spinal cord injury; MNs: motoneurons, SCs: Schwann cells; OECs: olfactory ensheathing cells; RLP: respiratory lamina propria; OLP: olfactory lamina propria; MSCs: mesenchymal stem cells.
In vivo transplantations of Schwann cells.
| First author | Year | SCI Models | Main graft | Transplantation methods | Pre-differentiation or pretreated | Combination | Tissue sparing | Neuronal regeneration | Axonal regeneration | Sensory function | Motor function | Cavity and/or scare formation | Inflammation | Others |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Biernaskie, [ | 2007 | T10, contusion-rats | Rats SKP-SCs | Lesion epicenter i. medu. | — | — | Imp. | Imp. | Imp. | — | Imp. | Imp. | — | — |
| Agudo, [ | 2008 | C4, dorsal hemisection-rats | SCPs-postnatal 2d rats | Rostral and caudal | — | — | — | — | Imp. | No Imp. | No Imp. | Imp. | — | Enhanced angiogenesis |
| Patel, [ | 2010 | T9, contusion-rats | Rats SCs | Lesion epicenter i. medu. | — | Gelling matrix (laminin + collagen) + SCs | — | — | Imp. | — | Imp. | — | — | — |
| Olson, [ | 2009 | T8-9, transection-rats | Rats SCs | Lesion epicenter i. medu. | — | Gelling matrix + NSCs + SCs | — | Imp. | Imp. | — | No Imp. | — | — | — |
| Ban, [ | 2011 | T9, contusion-rats | Rats SCs | Lesion epicenter i. medu. | — | MSCs + SCs | — | — | Imp. | — | Imp. | Imp. | — | — |
| Fouad, [ | 2005 | T8, complete removal of a 4-mm length of spinal cord-rats | Rats SCs | Lesion site, | — | Gelling matrix + MSCs + SCs | — | — | Imp. | Imp. | Imp. | — | — | — |
| Sharp, [ | 2012 | T9, contusion-rats | Rats SCs | Lesion site, | — | SCs + dbCAMP | — | — | Imp. | — | No Imp. | — | — | — |
—: Not reported; Imp.: Improvement; i. medu.: intramedullary injection; SCI: spinal cord injury; SCs: Schwann cells; SKP: skin-derived precursors; SCPs: Schwann cell precursors; dbCAMP, dibutyryl CAMP; MSCs: mesenchymal stem cells.