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N-Methyl-D-Aspartate Receptor Hypofunction in Meg-01 Cells Reveals a Role for Intracellular Calcium Homeostasis in Balancing Megakaryocytic-Erythroid Differentiation

机译:ñ-甲基-D-天冬氨酸受体在Meg-01细胞中的功能低下揭示了钙内稳态在平衡巨核细胞-红系分化中的作用

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摘要

The release of calcium ions (Ca ) from the endoplasmic reticulum (ER) and related store-operated calcium entry (SOCE) regulate maturation of normal megakaryocytes. The -methyl-D-aspartate (NMDA) receptor (NMDAR) provides an additional mechanism for Ca influx in megakaryocytic cells, but its role remains unclear. We created a model of NMDAR hypofunction in Meg-01 cells using CRISPR-Cas9 mediated knockout of the gene, which encodes an obligate, GluN1 subunit of the NMDAR. We found that compared with unmodified Meg-01 cells, Meg-01- cells underwent atypical differentiation biased toward erythropoiesis, associated with increased basal ER stress and cell death. Resting cytoplasmic Ca levels were higher in Meg-01- cells, but ER Ca release and SOCE were lower after activation. Lysosome-related organelles accumulated including immature dense granules that may have contributed an alternative source of intracellular Ca . Microarray analysis revealed that Meg-01- cells had deregulated expression of transcripts involved in Ca metabolism, together with a shift in the pattern of hematopoietic transcription factors toward erythropoiesis. In keeping with the observed pro-cell death phenotype induced by deletion, memantine (NMDAR inhibitor) increased cytotoxic effects of cytarabine in unmodified Meg-01 cells. In conclusion, NMDARs comprise an integral component of the Ca regulatory network in Meg-01 cells that help balance ER stress and megakaryocytic-erythroid differentiation. We also provide the first evidence that megakaryocytic NMDARs regulate biogenesis of lysosome-related organelles, including dense granules. Our results argue that intracellular Ca homeostasis may be more important for normal megakaryocytic and erythroid differentiation than currently recognized; thus, modulation may offer therapeutic opportunities.
机译:释放钙离子(Ca 内质网(ER)和相关的钙池操作钙进入(SOCE)调节正常巨核细胞的成熟。的 -D-天门冬氨酸甲酯(NMDA)受体(NMDAR)为钙提供了另外的机制 流入巨核细胞,但其作用尚不清楚。我们使用CRISPR-Cas9介导的Meg-01基因敲除在Meg-01细胞中创建了NMDAR功能低下的模型 该基因编码NMDAR的专一的GluN1亚基。我们发现与未修饰的Meg-01细胞相比,Meg-01- 细胞经历偏向红细胞生成的非典型分化,与基础内质网应激增加和细胞死亡有关。静息胞质钙 Meg-01-中的水平较高 细胞,但ER Ca 激活后释放和SOCE降低。溶酶体相关细胞器的积累,包括未成熟的致密颗粒,可能促成了细胞内钙的替代来源 。芯片分析表明,Meg-01- 细胞的Ca转录相关基因表达失控 代谢,以及造血转录因子模式向红细胞生成的转变。与观察到的诱导的前细胞死亡表型一致 美金刚胺(NMDAR抑制剂)的缺失增加了阿糖胞苷在未修饰的Meg-01细胞中的细胞毒性作用。总之,NMDARs是Ca的组成部分 Meg-01细胞中的调控网络,有助于平衡内质网应激和巨核红细胞分化。我们还提供了第一个证据,即巨核细胞NMDAR调节溶酶体相关细胞器的生物发生,包括致密颗粒。我们的研究结果表明细胞内钙 稳态对于正常巨核细胞和红系细胞的分化可能比目前公认的更为重要;因此,调节可提供治疗机会。

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