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Merck
CN
  • SRF depletion in early life contributes to social interaction deficits in the adulthood.

SRF depletion in early life contributes to social interaction deficits in the adulthood.

Cellular and molecular life sciences : CMLS (2022-05-04)
Matylda Roszkowska, Anna Krysiak, Lena Majchrowicz, Karolina Nader, Anna Beroun, Piotr Michaluk, Martyna Pekala, Jacek Jaworski, Ludwika Kondrakiewicz, Alicja Puścian, Ewelina Knapska, Leszek Kaczmarek, Katarzyna Kalita
摘要

Alterations in social behavior are core symptoms of major developmental neuropsychiatric diseases such as autism spectrum disorders or schizophrenia. Hence, understanding their molecular and cellular underpinnings constitutes the major research task. Dysregulation of the global gene expression program in the developing brain leads to modifications in a number of neuronal connections, synaptic strength and shape, causing unbalanced neuronal plasticity, which may be important substrate in the pathogenesis of neurodevelopmental disorders, contributing to their clinical outcome. Serum response factor (SRF) is a major transcription factor in the brain. The behavioral influence of SRF deletion during neuronal differentiation and maturation has never been studied because previous attempts to knock-out the gene caused premature death. Herein, we generated mice that lacked SRF from early postnatal development to precisely investigate the role of SRF starting in the specific time window before maturation of excitatory synapses that are located on dendritic spine occurs. We show that the time-controlled loss of SRF in neurons alters specific aspects of social behaviors in SRF knock-out mice, and causes deficits in developmental spine maturation at both the structural and functional levels, including downregulated expression of the AMPARs subunits GluA1 and GluA2, and increases the percentage of filopodial/immature dendritic spines. In aggregate, our study uncovers the consequences of postnatal SRF elimination for spine maturation and social interactions revealing novel mechanisms underlying developmental neuropsychiatric diseases.

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Sigma-Aldrich
抗 α-微管蛋白单克隆抗体 小鼠抗, clone DM1A, ascites fluid
Sigma-Aldrich
抗谷氨酸受体2抗体,细胞外,克隆6C4, clone 6C4, Chemicon®, from mouse
Sigma-Aldrich
抗-PSD95抗体,克隆K28/43, clone K28/43, from mouse
Sigma-Aldrich
抗-GluR1抗体, from rabbit, purified by affinity chromatography