Exosome-Mediated Transfer of miR-133b from Multipotent Mesenchymal Stromal Cells to Neural Cells Contributes to Neurite Outgrowth

Опосредованный экзосомами перенос miR-133b из мультипотентных мезенхимальных стромальных клеток в нейральные клетки способствует росту нейритов
Hongqi Xin, Yi Li, Ben Buller, Mark Katakowski, Yi Zhang, Xinli Wang, Xia Shang, Zheng Gang Zhang, Michael Chopp
2012-05-17

exosome-mediated microRNA transfermesenchymal stromal cellsmiR-133bmiddle cerebral artery occlusionneurite outgrowth
Multipotent mesenchymal stromal cells (MSCs) have potential therapeutic benefit for the treatment of neurological diseases and injury. MSCs interact with and alter brain parenchymal cells by direct cell-cell communication and/or by indirect secretion of factors and thereby promote functional recovery. In this study, we found that MSC treatment of rats subjected to middle cerebral artery occlusion (MCAo) significantly increased microRNA 133b (miR-133b) level in the ipsilateral hemisphere. In vitro, miR-133b levels in MSCs and in their exosomes increased after MSCs were exposed to ipsilateral ischemic tissue extracts from rats subjected to MCAo. miR-133b levels were also increased in primary cultured neurons and astrocytes treated with the exosome-enriched fractions released from these MSCs. Knockdown of miR-133b in MSCs confirmed that the increased miR-133b level in astrocytes is attributed to their transfer from MSCs. Further verification of this exosome-mediated intercellular communication was performed using a cel-miR-67 luciferase reporter system and an MSC-astrocyte coculture model. Cel-miR-67 in MSCs was transferred to astrocytes via exosomes between 50 and 100 nm in diameter. Our data suggest that the cel-miR-67 released from MSCs was primarily contained in exosomes. A gap junction intercellular communication inhibitor arrested the exosomal microRNA communication by inhibiting exosome release. Cultured neurons treated with exosome-enriched fractions from MSCs exposed to 72 hours post-MCAo brain extracts significantly increased the neurite branch number and total neurite length. This study provides the first demonstration that MSCs communicate with brain parenchymal cells and may regulate neurite outgrowth by transfer of miR-133b to neural cells via exosomes.
1
A cel-miR-67 reporter and coculture experiments demonstrated that MSC-derived exosomes, primarily 50–100 nm vesicles, mediate microRNA transfer to astrocytes.
2
Exosome-enriched fractions from ischemia-conditioned MSCs increased neuronal neurite branching and total neurite length, linking exosomal miR-133b transfer to neurite outgrowth.
3
Inhibition of gap junctional intercellular communication suppressed exosome release and interrupted MSC-to-neural-cell microRNA communication.
4
Ischemic tissue extracts induced MSCs and their exosomes to accumulate higher miR-133b levels, which subsequently increased miR-133b in cultured neurons and astrocytes.
5
MSC miR-133b knockdown confirmed that elevated astrocyte miR-133b resulted from transfer by MSCs rather than endogenous induction.
6
MSC treatment after middle cerebral artery occlusion significantly increased miR-133b levels in the ipsilateral brain hemisphere.

Exosome-mediated transfer of miR-133b from multipotent mesenchymal stromal cells to neural cells

The contribution of intercellular miR-133b transfer to neurite outgrowth and its regulation after cerebral ischemia

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2012-05-17
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Hongqi Xin
Yi Li
Ben Buller
Mark Katakowski
Yi Zhang
Xinli Wang
Xia Shang
Zheng Gang Zhang
Michael Chopp
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