Related Experiment Video
Updated: May 4, 2026

An Electrochemiluminescence-Based Assay for MeCP2 Protein Variants
Published on: May 22, 2020
Dendritic arborization and spine dynamics are abnormal in the mouse model of MECP2 duplication syndrome
Minghui Jiang1, Ryan T Ash, Steven A Baker
1Department of Neuroscience, Department of Neurology, Department of Pediatrics, Texas Children's Hospital and Baylor College of Medicine, and Department of Molecular and Human Genetics at Baylor College of Medicine, Houston, Texas 77030.
Abstract:
MECP2 duplication syndrome is a childhood neurological disorder characterized by intellectual disability, autism, motor abnormalities, and epilepsy. The disorder is caused by duplications spanning the gene encoding methyl-CpG-binding protein-2 (MeCP2), a protein involved in the modulation of chromatin and gene expression. MeCP2 is thought to play a role in maintaining the structural integrity of neuronal circuits. Loss of MeCP2 function causes Rett syndrome and results in abnormal dendritic spine morphology and decreased pyramidal dendritic arbor complexity and spine density. The consequences of MeCP2 overexpression on dendritic pathophysiology remain unclear. We used in vivo two-photon microscopy to characterize layer 5 pyramidal neuron spine turnover and dendritic arborization as a function of age in transgenic mice expressing the human MECP2 gene at twice the normal levels of MeCP2 (Tg1; Collins et al., 2004). We found that spine density in terminal dendritic branches is initially higher in young Tg1 mice but falls below control levels after postnatal week 12, approximately correlating with the onset of behavioral symptoms. Spontaneous spine turnover rates remain high in older Tg1 animals compared with controls, reflecting the persistence of an immature state. Both spine gain and loss rates are higher, with a net bias in favor of spine elimination. Apical dendritic arbors in both simple- and complex-tufted layer 5 Tg1 pyramidal neurons have more branches of higher order, indicating that MeCP2 overexpression induces dendritic overgrowth. P70S6K was hyperphosphorylated in Tg1 somatosensory cortex, suggesting that elevated mTOR signaling may underlie the observed increase in spine turnover and dendritic growth.
Insights
MECP2 duplication syndrome, caused by excess methyl-CpG-binding protein-2 (MeCP2), leads to abnormal neuron development. This study reveals MeCP2 overexpression causes persistent immature spine turnover and dendritic overgrowth in mice.
Area of Science:
- Neuroscience
- Genetics
- Developmental Biology
Background:
- MECP2 duplication syndrome is a severe childhood neurological disorder.
- It stems from increased levels of methyl-CpG-binding protein-2 (MeCP2).
- The impact of MeCP2 overexpression on neuronal structure is not fully understood.
Purpose of the Study:
- To investigate the effects of MeCP2 overexpression on neuronal morphology and function.
- To characterize spine turnover and dendritic arborization in a mouse model of MECP2 duplication syndrome.
Main Methods:
- In vivo two-photon microscopy was used to examine layer 5 pyramidal neurons in transgenic mice (Tg1) with elevated MeCP2 levels.
- Spine density, turnover rates, and dendritic arborization were analyzed as a function of age.
Main Results:
- Tg1 mice initially showed higher spine density, which decreased below control levels after 12 weeks.
- Spine turnover remained elevated in older Tg1 mice, indicating a prolonged immature state.
- MeCP2 overexpression led to increased branching and overgrowth of dendritic arbors.
- Hyperphosphorylation of P70S6K suggested elevated mTOR signaling in Tg1 mice.
Conclusions:
- MeCP2 overexpression induces significant alterations in neuronal structure, including dendritic overgrowth and persistent immaturity of dendritic spines.
- Elevated mTOR signaling may contribute to the observed neuropathology in MECP2 duplication syndrome.

