Literature DB >> 25205914

The neuroprotective effect of bone marrow stem cells is not dependent on direct cell contact with hypoxic injured tissue: Experimental Neurology 2009; 215: 317-327.

Anna Sarnowska1, Holger Braun2, Steven Sauerzweig2, Klaus G Reymann3.   

Abstract

Entities:  

Year:  2011        PMID: 25205914      PMCID: PMC4117024          DOI: 10.5214/ans.0972.7531.1118107

Source DB:  PubMed          Journal:  Ann Neurosci        ISSN: 0972-7531


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Background

Numerous studies have shown that the pharmacological neuroprotection has failed to prevent damage following stroke in clinical trials.[1] The focus has shifted to new strategies to involving replacement of dead cells after injury. Stem-cell based therapy can be an important supportive strategy in brain protection and repair. The bone-marrow derived stem cells have been shown to confer beneficial effects after transplantation into the animals with ischemic brain injuries. Animal studies have shown that transplanted stem cells improve functional deficits after stroke.[2,3] However, it is unclear whether the beneficial effect is associated with stem-cell differentiation into neural cells or is induced by the release of secreted growth factors, which are capable of stimulating endogenous repair mechanisms and improving functional deficits.[4-6]

Study Design

The study was designed to determine whether the neuroprotective effects of BMSCs in ischemic brain injuries are dependent on direct cell-cell contacts. Sarnowska et al used an in-vitro model of hippocampal organotypic slice cultures (OHCs). These OHCs were subjected to oxygen-glucose deprivation (OGD) to mimic the ischemic injury in-vitro. OHCs were prepared from hippocampus slices of 7-9 day old rats. The OHC slices were maintained in serum-based medium for 2-3 days and thereafter cultivated in serum-free medium for 14 days. To mimic the ischemic injury, the authors subjected the culture to oxygen-glucose deprivation by setting up culture in mannitol saturated medium under anaerobic conditions. BMSCs were collected from the femurs of 5-week old rats and were cultured to 80% confluence. The authors designed two paradigms to evaluate the neuroprotective effects of BMSCs. In one design, approximately 10[5] CFDA labeled BMSCs were transplanted into one-week-old, OGD-treated OHCs, while in the other paradigm, OGD treated OHCs and cells were cultivated in same medium, separated through a membrane but without direct cell-cell contact. Both populations of BMSCs were compared with a mixed cortical primary culture prepared from embryonic rats. The cell death was quantified by adding fluorescent cell death marker, PI 24h prior to experiment and measuring the intensity. The cell viability was also characterised by immunochemical analysis for cytochrome c and caspase 3. The authors also analysed cells and hippocampal slices immunocytochemically for GFAP, Nestin, MAP2, NG2, TUJ1. The mRNA expression level for various growth factors such as NGF beta, IGF-1, bFGF, was analysed using PCR.

Implications

Sarnowska et al have elucidated the potential for BMSCs to confer neuroprotection within a short period of time (24h), and thus excluding any chance of differentiation into neural cells. Thus, the authors concluded that the neuroprotective effect evoked shortly after the ischemia injury is not dependent on the cell-cell contacts and involves the secretion of growth factors like NGF, bFGF and IGF. The ischemic tissue is also involved in induction of growth factor production, thus demonstrating a bilateral interaction between transplanted BMSCs and ischemic injured tissue. This implied that in clinical practice bone marrow stem cells could deploy beneficial effects even when applied intravenously after stroke. Even if the BMSCs do not reach the infarcted area, therapeutic effects can still be expected. This information is of clinical relevance because the most appropriate route for cell delivery is actively debated.
  6 in total

Review 1.  Pathobiology of ischaemic stroke: an integrated view.

Authors:  U Dirnagl; C Iadecola; M A Moskowitz
Journal:  Trends Neurosci       Date:  1999-09       Impact factor: 13.837

2.  Adult bone marrow cells differentiate into neural phenotypes and improve functional recovery in rats following traumatic brain injury.

Authors:  Jia Lu; Shabbir Moochhala; Xiao-Lei Moore; Kian Chye Ng; Mui Hong Tan; Lionel Kim Hock Lee; Beiping He; Meng Cheong Wong; Eng-Ang Ling
Journal:  Neurosci Lett       Date:  2006-02-07       Impact factor: 3.046

3.  Wound repair by bone marrow stromal cells through growth factor production.

Authors:  Yongbo Liu; Deborah S Dulchavsky; Xiaohua Gao; David Kwon; Michael Chopp; Scott Dulchavsky; Subhash C Gautam
Journal:  J Surg Res       Date:  2006-10-11       Impact factor: 2.192

Review 4.  Ischemia-induced neurogenesis: role of growth factors.

Authors:  Robert J Dempsey; Haviryaji S G Kalluri
Journal:  Neurosurg Clin N Am       Date:  2007-01       Impact factor: 2.509

5.  Expression of insulin-like growth factor 1 and receptor in ischemic rats treated with human marrow stromal cells.

Authors:  Jing Zhang; Yi Li; Jieli Chen; Maozhou Yang; Mark Katakowski; Mei Lu; Michael Chopp
Journal:  Brain Res       Date:  2004-12-24       Impact factor: 3.252

6.  Ischemic rat brain extracts induce human marrow stromal cell growth factor production.

Authors:  Xiaoguang Chen; Yi Li; Lei Wang; Mark Katakowski; Lijie Zhang; Jieli Chen; Yongxian Xu; Subhash C Gautam; Michael Chopp
Journal:  Neuropathology       Date:  2002-12       Impact factor: 1.906

  6 in total

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