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The epigenetic reader PHF21B modulates murine social memory and synaptic plasticity–related genes
Eunice W.M. Chin, … , Julio Licinio, Ma-Li Wong
Eunice W.M. Chin, … , Julio Licinio, Ma-Li Wong
Published July 22, 2022
Citation Information: JCI Insight. 2022;7(14):e158081. https://doi.org/10.1172/jci.insight.158081.
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Research Article Neuroscience

The epigenetic reader PHF21B modulates murine social memory and synaptic plasticity–related genes

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Abstract

Synaptic dysfunction is a manifestation of several neurobehavioral and neurological disorders. A major therapeutic challenge lies in uncovering the upstream regulatory factors controlling synaptic processes. Plant homeodomain (PHD) finger proteins are epigenetic readers whose dysfunctions are implicated in neurological disorders. However, the molecular mechanisms linking PHD protein deficits to disease remain unclear. Here, we generated a PHD finger protein 21B–depleted (Phf21b-depleted) mutant CRISPR mouse model (hereafter called Phf21bΔ4/Δ4) to examine Phf21b’s roles in the brain. Phf21bΔ4/Δ4 animals exhibited impaired social memory. In addition, reduced expression of synaptic proteins and impaired long-term potentiation were observed in the Phf21bΔ4/Δ4 hippocampi. Transcriptome profiling revealed differential expression of genes involved in synaptic plasticity processes. Furthermore, we characterized a potentially novel interaction of PHF21B with histone H3 trimethylated lysine 36 (H3K36me3), a histone modification associated with transcriptional activation, and the transcriptional factor CREB. These results establish PHF21B as an important upstream regulator of synaptic plasticity–related genes and a candidate therapeutic target for neurobehavioral dysfunction in mice, with potential applications in human neurological and psychiatric disorders.

Authors

Eunice W.M. Chin, Qi Ma, Hongyu Ruan, Camille Chin, Aditya Somasundaram, Chunling Zhang, Chunyu Liu, Martin D. Lewis, Melissa White, Tracey L. Smith, Malcolm Battersby, Wei-Dong Yao, Xin-Yun Lu, Wadih Arap, Julio Licinio, Ma-Li Wong

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Figure 6

PHF21B modulates the expression of genes involved in neurotransmission.

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PHF21B modulates the expression of genes involved in neurotransmission.
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(A) Heatmap of differential gene expression (–2 ≤ fold change ≥ 2) of Phf21b+/+ (+/+) and Phf21bΔ4/Δ4 (Δ4/Δ4) hippocampal tissues; n = 3/group. (B) Top PANTHER gene ontology (GO) classifications associated with the differentially expressed genes (DEGs with FDR < 0.05 and gene count > 5) in +/+ and Δ4/Δ4 hippocampal tissues. (C) Venn diagram depicting the number of DEGs enriched in neurons, astrocytes, and oligodendrocytes. (D) qRT-PCR validation of DEGs (from left to right: Gm5741, Chat, Slc18a3, Vav3, and Fibcd1) with significant fold changes between +/+ and Δ4/Δ4 hippocampi were performed once; n = 10/group. Values are presented as mean ± SEM; Student’s or Welch’s t test; * P < 0.05.

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ISSN 2379-3708

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