FNDC5 prevents oxidative stress and neuronal apoptosis after traumatic brain injury through SIRT3-dependent regulation of mitochondrial quality control

Autor: Shunnan Ge, yufeng Ge, xun wu, Yaning Cai, Qing Hu, Jin Wang, Shenghao Zhang, Baocheng Zhao, Wenxing Cui, Yang Wu, Qiang Wang, Tian Feng, Haixiao Liu, Yan Qu
Rok vydání: 2023
Popis: Mitochondrial dysfunction and oxidative stress are important mechanisms for secondary injury after traumatic brain injury (TBI), which result in progressive pathophysiological exacerbation. Although the Fibronectin type III domain-containing 5 (FNDC5) was reported to repress oxidative stress by retaining mitochondrial biogenesis and dynamics, while its possible role in the secondary injury after TBI remain obscure. In the present study, we observed thatthe level of plasma irisin (the cleavage product of FNDC5) significantly correlated with the neurological outcomes ofTBI patients. Knockout of FNDC5increased the lesion volume and exacerbated apoptosis and neurological deficitsafter TBI in mice, whileFNDC5 overexpression yielded a neuroprotective effect. Moreover, FNDC5 deficiency disrupted mitochondrial dynamics and function. Activation of Sirtuin 3 (SIRT3) alleviated FNDC5 deficiency-induced disruption of mitochondrial dynamics and bioenergetics. In neuron-specific SIRT3 knockout mice, FNDC5failed to attenuateTBI-induced mitochondrial damage and brain injuries. Mechanically, FNDC5 deficiency led to reduced SIRT3 expression via enhanced ubiquitin degradation of transcription factor Nuclear factor erythroid 2-related factor 2 (NRF2), which contributed to the hyperacetylation and inactivation of key regulatory proteins of mitochondrial dynamics and function, including OPA1 and SOD2. Finally, engineered RVG29-conjugated nanoparticles were generated to selectively and efficiently deliver irisin to the brain of mice, which yielded a satisfactory curative effect against TBI. In conclusion, FNDC5/irisin exerts a protective role against acute brain injury by promoting SIRT3-dependent mitochondrial quality control and thus represents a potential target for neuroprotection after TBI.
Databáze: OpenAIRE