TY - JOUR
T1 - Restoration of FMRP expression in adult V1 neurons rescues visual deficits in a mouse model of fragile X syndrome
AU - Yang, Chaojuan
AU - Tian, Yonglu
AU - Su, Feng
AU - Wang, Yangzhen
AU - Liu, Mengna
AU - Wang, Hongyi
AU - Cui, Yaxuan
AU - Yuan, Peijiang
AU - Li, Xiangning
AU - Li, Anan
AU - Gong, Hui
AU - Luo, Qingming
AU - Zhu, Desheng
AU - Cao, Peng
AU - Liu, Yunbo
AU - Wang, Xunli
AU - Luo, Min hua
AU - Xu, Fuqiang
AU - Xiong, Wei
AU - Wang, Liecheng
AU - Li, Xiang yao
AU - Zhang, Chen
N1 - Publisher Copyright:
© 2021, The Author(s).
PY - 2022/3
Y1 - 2022/3
N2 - Many people affected by fragile X syndrome (FXS) and autism spectrum disorders have sensory processing deficits, such as hypersensitivity to auditory, tactile, and visual stimuli. Like FXS in humans, loss of Fmr1 in rodents also cause sensory, behavioral, and cognitive deficits. However, the neural mechanisms underlying sensory impairment, especially vision impairment, remain unclear. It remains elusive whether the visual processing deficits originate from corrupted inputs, impaired perception in the primary sensory cortex, or altered integration in the higher cortex, and there is no effective treatment. In this study, we used a genetic knockout mouse model (Fmr1KO), in vivo imaging, and behavioral measurements to show that the loss of Fmr1 impaired signal processing in the primary visual cortex (V1). Specifically, Fmr1KO mice showed enhanced responses to low-intensity stimuli but normal responses to high-intensity stimuli. This abnormality was accompanied by enhancements in local network connectivity in V1 microcircuits and increased dendritic complexity of V1 neurons. These effects were ameliorated by the acute application of GABAA receptor activators, which enhanced the activity of inhibitory neurons, or by reintroducing Fmr1 gene expression in knockout V1 neurons in both juvenile and young-adult mice. Overall, V1 plays an important role in the visual abnormalities of Fmr1KO mice and it could be possible to rescue the sensory disturbances in developed FXS and autism patients.
AB - Many people affected by fragile X syndrome (FXS) and autism spectrum disorders have sensory processing deficits, such as hypersensitivity to auditory, tactile, and visual stimuli. Like FXS in humans, loss of Fmr1 in rodents also cause sensory, behavioral, and cognitive deficits. However, the neural mechanisms underlying sensory impairment, especially vision impairment, remain unclear. It remains elusive whether the visual processing deficits originate from corrupted inputs, impaired perception in the primary sensory cortex, or altered integration in the higher cortex, and there is no effective treatment. In this study, we used a genetic knockout mouse model (Fmr1KO), in vivo imaging, and behavioral measurements to show that the loss of Fmr1 impaired signal processing in the primary visual cortex (V1). Specifically, Fmr1KO mice showed enhanced responses to low-intensity stimuli but normal responses to high-intensity stimuli. This abnormality was accompanied by enhancements in local network connectivity in V1 microcircuits and increased dendritic complexity of V1 neurons. These effects were ameliorated by the acute application of GABAA receptor activators, which enhanced the activity of inhibitory neurons, or by reintroducing Fmr1 gene expression in knockout V1 neurons in both juvenile and young-adult mice. Overall, V1 plays an important role in the visual abnormalities of Fmr1KO mice and it could be possible to rescue the sensory disturbances in developed FXS and autism patients.
KW - autism spectrum disorder
KW - calcium imaging
KW - fragile X syndrome
KW - primary visual cortex
KW - visual hypersensitivity
UR - https://www.scopus.com/pages/publications/85118344525
U2 - 10.1007/s13238-021-00878-z
DO - 10.1007/s13238-021-00878-z
M3 - 文章
C2 - 34714519
AN - SCOPUS:85118344525
SN - 1674-800X
VL - 13
SP - 203
EP - 219
JO - Protein and Cell
JF - Protein and Cell
IS - 3
ER -