Retinoid X receptor α downregulation is required for tail and caudal spinal cord regeneration in the

来源 :中国神经再生研究(英文版) | 被引量 : 0次 | 上传用户:john20002000
下载到本地 , 更方便阅读
声明 : 本文档内容版权归属内容提供方 , 如果您对本文有版权争议 , 可与客服联系进行内容授权或下架
论文部分内容阅读
Some adult vertebrate species,such as newts,axolotls and zebrafish,have the ability to regenerate their central nervous system (CNS).However,the factors that establish a permissive CNS environment for correct morphological and functional regeneration in these species are not well understood.Recent evidence supports a role for retinoid signaling in the intrinsic ability of neurons,in these regeneration-competent species,to regrow after CNS injury.Previously,we demonstrated that a specific retinoic acid receptor (RAR)subtype,RARβ,mediates the effects of endogenous retinoic acid (RA) on neuronal growth and guidance in the adult newt CNS after injury.Here,we now examine the expression of the retinoid X receptor RXRα (a potential heterodimeric transcriptional regulator with RARβ),in newt tail and spinal cord regeneration.We show that at 21 days post-amputation (dpa),RXRct is expressed at temporally distinct periods and in non-overlapping spatial domains compared to RARβ.Whereas RARβ protein levels increase,RXRα proteins level decrease by 21 dpa.A selective agonist for RXR,SR11237,prevents both this downregulation of RXRct and upregulation of RARβ and inhibits tail and caudal spinal cord regeneration.Moreover,treatment with a selective antagonist for RARβ,LE135,inhibits regeneration with the same morphological consequences as treatment with SR11237.Interestingly,LE135 treatment also inhibits the normal downregulation of RXRa in tail and spinal cord tissues at 21 dpa.These results reveal a previously unidentified,indirect regulatory feedback loop between these two receptor subtypes in regulating the regeneration of tail and spinal cord tissues in this regeneration-competent newt.
其他文献
The mortality rate of acute severe intraventricular hematoma is extremely high,and the rate of disability in survivors is high.Intraventricular hematoma has alw
Catgut implantation at acupoints has been shown to alleviate spasticity after stroke in rats.However,the underlying mechanisms are poorly understood.In this stu
Puerarin suppresses autophagy to alleviate cerebral ischemia/reperfusion injury,and accumulating evidence indicates that the AMPK-mTOR signaling pathway regulat
Surgical brain injury may result in irreversible neurological deficits.Our previous report showed that partial regeneration of a traumatic brain lesion is achie
期刊