Phosphorylation of connexin 43 induced by traumatic brain injury promotes exosome release

被引:36
作者
Chen, Wei [1 ]
Guo, Yijun [1 ]
Yang, Wenjin [1 ]
Chen, Lei [1 ]
Ren, Dabin [1 ]
Wu, Chenxing [1 ]
He, Bin [1 ]
Zheng, Ping [1 ]
Tong, Wusong [1 ]
机构
[1] Peoples Hosp Pu Dong New Area, 490 South Chuanhuan Rd, Shanghai 201299, Peoples R China
关键词
connexin; 43; ERK; exosome-based therapy; hippocampus; traumatic brain injury; GAP-JUNCTIONAL COMMUNICATION; FIBRILLARY ACIDIC PROTEIN; NEUROVASCULAR PLASTICITY; REACTIVE ASTROCYTES; FUNCTIONAL RECOVERY; STROMAL CELLS; DEATH; REDUCTION; ISCHEMIA; MODEL;
D O I
10.1152/jn.00654.2017
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Traumatic brain injury (TBI) caused by the external force leads to the neuronal dysfunction and even death. TBI has been reported to significantly increase the phosphorylation of glial gap junction protein connexin 43 (Cx43), which in turn propagates damages into surrounding brain tissues. However, the neuroprotective and anti-apoptosis effects of glia-derived exosomes have also been implicated in recent studies. Therefore, we detected whether TBI-induced phosphorylation of Cx43 would promote exosome release in rat brain. To generate TBI model, adult male Sprague-Dawley rats were subjected to lateral fluid percussion injury. Phosphorylated Cx43 protein levels and exosome activities were quantified using Western blot analysis following TBI. Long-term potentiation (LTP) was also tested in rat hippocampal slices. TBI significantly increased the phosphorylated Cx43 and exosome markers expression in rat ipsilateral hippocampus, but not cortex. Blocking the activity of Cx43 or ERK, but not JNK, significantly suppressed TBI-induced exosome release in hippocampus. Furthermore, TBI significantly inhibited the induction of LTP in hippocampal slices, which could be partially but significantly restored by pretreatment with exosomes. The results imply that TBI-activated Cx43 could mediate a nociceptive effect by propagating the brain damages, as well as a neuroprotective effect by promoting exosome release. NEW & NOTEWORTHY We have demonstrated in rat traumatic brain injury (TBI) models that both phosphorylated connexin 43 (p-Cx43) expression and exosome release were elevated in the hippocampus following TBI. The promoted exosome release depends on the phosphorylation of Cx43 and requires ERK signaling activation. Exosome treatment could partially restore the attenuated long-term potentiation. Our results provide new insight for future therapeutic direction on the functional recovery of TBI by promoting p-Cx43-dependent exosome release but limiting the gap junction-mediated bystander effect.
引用
收藏
页码:305 / 311
页数:7
相关论文
共 35 条
[11]   Deep Sequencing of RNA from Three Different Extracellular Vesicle (EV) Subtypes Released from the Human LIM1863 Colon Cancer Cell Line Uncovers Distinct Mirna-Enrichment Signatures [J].
Ji, Hong ;
Chen, Maoshan ;
Greening, David W. ;
He, Weifeng ;
Rai, Alin ;
Zhang, Wenwei ;
Simpson, Richard J. .
PLOS ONE, 2014, 9 (10)
[12]   Role of exosomes/microvesicles in the nervous system and use in emerging therapies [J].
Lai, Charles Pin-Kuang ;
Breakefield, Xandra Owen .
FRONTIERS IN PHYSIOLOGY, 2012, 3
[13]   Exosome secreted by MSC reduces myocardial ischemia/reperfusion injury [J].
Lai, Ruenn Chai ;
Arslan, Fatih ;
Lee, May May ;
Sze, Newman Siu Kwan ;
Choo, Andre ;
Chen, Tian Sheng ;
Salto-Tellez, Manuel ;
Timmers, Leo ;
Lee, Chuen Neng ;
El Oakley, Reida Menshawe ;
Pasterkamp, Gerard ;
de Kleijn, Dominique P. V. ;
Lim, Sai Kiang .
STEM CELL RESEARCH, 2010, 4 (03) :214-222
[14]   PATTERNED STIMULATION AT THE THETA-FREQUENCY IS OPTIMAL FOR THE INDUCTION OF HIPPOCAMPAL LONG-TERM POTENTIATION [J].
LARSON, J ;
WONG, D ;
LYNCH, G .
BRAIN RESEARCH, 1986, 368 (02) :347-350
[15]   Protective role of reactive astrocytes in brain ischemia [J].
Li, Lizhen ;
Lundkvist, Andrea ;
Andersson, Daniel ;
Wilhelmsson, Ulrika ;
Nagai, Nobuo ;
Pardo, Andrea C. ;
Nodin, Christina ;
Stahlberg, Anders ;
Aprico, Karina ;
Larsson, Kerstin ;
Yabe, Takeshi ;
Moons, Lieve ;
Fotheringham, Andrew ;
Davies, Ioan ;
Carmeliet, Peter ;
Schwartz, Joan P. ;
Pekna, Marcela ;
Kubista, Mikael ;
Blomstrand, Fredrik ;
Maragakis, Nicholas ;
Nilsson, Michael ;
Pekny, Milos .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 2008, 28 (03) :468-481
[16]   Neuroprotection for traumatic brain injury: translational challenges and emerging therapeutic strategies [J].
Loane, David J. ;
Faden, Alan I. .
TRENDS IN PHARMACOLOGICAL SCIENCES, 2010, 31 (12) :596-604
[17]   Erythropoietin as a neuroprotective agent in traumatic brain injury Review [J].
Mammis, Antonios ;
Mclntosh, Tracy K. ;
Maniker, Allen H. .
SURGICAL NEUROLOGY, 2009, 71 (05) :527-531
[18]   TRAUMATIC BRAIN INJURY IN THE RAT - CHARACTERIZATION OF A LATERAL FLUID-PERCUSSION MODEL [J].
MCINTOSH, TK ;
VINK, R ;
NOBLE, L ;
YAMAKAMI, I ;
FERNYAK, S ;
SOARES, H ;
FADEN, AL .
NEUROSCIENCE, 1989, 28 (01) :233-244
[19]   Essential protective roles of reactive astrocytes in traumatic brain injury [J].
Myer, D. J. ;
Gurkoff, G. G. ;
Lee, S. M. ;
Hovda, D. A. ;
Sofroniew, M. V. .
BRAIN, 2006, 129 :2761-2772
[20]   Connexins and gap junctions of astrocytes and oligodendrocytes in the CNS [J].
Nagy, JI ;
Rash, JE .
BRAIN RESEARCH REVIEWS, 2000, 32 (01) :29-44