PLPPR4 haploinsufficiency causes neurodevelopmental disorders by disrupting synaptic plasticity via mTOR signalling
Huanzheng Li1, Qian Zhang2, Ru Wan2
1Human Aging Research Institute, Nanchang University, Nanchang, China.
Insights
Loss of the PLPPR4 gene causes neurodevelopmental disorders like intellectual disability and autism spectrum disorder. This protein impacts neuronal plasticity through the mTOR signaling pathway.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Phospholipid phosphatase related 4 (PLPPR4) is a neuron-specific protein at postsynaptic densities, implicated in neuronal plasticity.
- Previous research had not linked PLPPR4 dysfunction to genetic disorders.
Observation:
- Three unrelated patients with intellectual disability or autism spectrum disorder presented with genetic variations in PLPPR4, including copy number loss, a nonsense mutation, and a splice mutation.
- Bionano optical mapping confirmed PLPPR4 deletions lacked additional pathogenic genes.
Findings:
- Loss-of-function mutations in PLPPR4 are associated with neurodevelopmental disorders.
- Neurons derived from patient-derived iPSCs with PLPPR4 deletion showed reduced dendritic protrusions, shorter neurites, and reduced axon length.
- PLPPR4 deficiency inhibited the mTOR signaling pathway, evidenced by altered phosphorylation levels of AKT, mTOR, PI3K, and ERK1/2.
Implications:
- PLPPR4 plays a critical role in neurodevelopment.
- The findings suggest PLPPR4 modulates neuronal plasticity via the mTOR signaling pathway, offering potential therapeutic targets for related neurodevelopmental disorders.
Abstract:
Phospholipid phosphatase related 4 (PLPPR4), a neuron-specific membrane protein located at the postsynaptic density of glutamatergic synapses, is a putative regulator of neuronal plasticity. However, PLPPR4 dysfunction has not been linked to genetic disorders. In this study, we report three unrelated patients with intellectual disability (ID) or autism spectrum disorder (ASD) who harbour a de novo heterozygous copy number loss of PLPPR4 in 1p21.2p21.3, a heterozygous nonsense mutation in PLPPR4 (NM_014839, c.4C > T, p.Gln2*) and a homozygous splice mutation in PLPPR4 (NM_014839: c.408 + 2 T > C), respectively. Bionano single-molecule optical mapping confirmed PLPPR4 deletion contains no additional pathogenic genes. Our results suggested that the loss of function of PLPPR4 is associated with neurodevelopmental disorders. To test the pathogenesis of PLPPR4, peripheral blood mononuclear cells obtained from the patient with heterozygous deletion of PLPPR4 were induced to specific iPSCs (CHWi001-A) and then differentiated into neurons. The neurons carrying the deletion of PLPPR4 displayed the reduced density of dendritic protrusions, shorter neurites and reduced axon length, suggesting the causal role of PLPPR4 in neurodevelopmental disorders. As the mTOR signalling pathway was essential for regulating the axon maturation and function, we found that mTOR signalling was inhibited with a higher level of p-AKT, p-mTOR and p-ERK1/2, decreased p-PI3K in PLPPR4-iPSCs neurons. Additionally, we found silencing PLPPR4 disturbed the mTOR signalling pathway. Our results suggested PLPPR4 modulates neurodevelopment by affecting the plasticity of neurons via the mTOR signalling pathway.
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