Rebeillard Florian, De Gois Stéphanie, Pietrancosta Nicolas, Mai Thi Hue, Lai-Kuen René, Kieffer Brigitte L, Giros Bruno, Massart Renaud, Darmon Michèle, Diaz Jorge
Cereb Cortex. 2022 Jan 22;32(3):479-489. doi: 10.1093/cercor/bhab224.
GPR88 is an orphan G-protein-coupled receptor (GPCR) highly expressed in striatal medium spiny neurons (MSN), also found in cortical neurons at low level. In MSN, GPR88 has a canonical GPCR plasma membrane/cytoplasmic expression, whereas in cortical neurons, we previously reported an atypical intranuclear localization. Molecular size analysis suggests that GPR88, expressed in plasma membrane of MSN or in nuclear compartment of cortical neurons, corresponds to the full-length protein. By transfection of cortical neurons, we showed that GPR88 fluorescent chimeras exhibit a nuclear localization. This localization is contingent on the third intracytoplasmic loop and C-terminus domains, even though these domains do not contain any known nuclear localization signals (NLS). Using yeast two-hybrid screening with these domains, we identified the nuclear proteins ATRX, TOP2B, and BAZ2B, all involved in chromatin remodeling, as potential protein partners of GPR88. We also validated the interaction of GPR88 with these nuclear proteins by proximity ligation assay on cortical neurons in culture and coimmunoprecipitation experiments on cortical extracts from GPR88 wild-type (WT) and knockout (KO) mice. The identification of GPR88 subcellular partners may provide novel functional insights for nonclassical modes of GPCR action that could be relevant in the maturating process of neocortical neurons.
GPR88是一种孤儿G蛋白偶联受体(GPCR),在纹状体中等棘状神经元(MSN)中高度表达,在皮质神经元中也有低水平表达。在MSN中,GPR88具有典型的GPCR质膜/细胞质表达,而在皮质神经元中,我们之前报道过其非典型的核内定位。分子大小分析表明,在MSN质膜或皮质神经元核区室中表达的GPR88对应于全长蛋白。通过转染皮质神经元,我们发现GPR88荧光嵌合体呈现核定位。这种定位取决于第三个胞质内环和C末端结构域,尽管这些结构域不包含任何已知的核定位信号(NLS)。利用这些结构域进行酵母双杂交筛选,我们鉴定出参与染色质重塑的核蛋白ATRX、TOP2B和BAZ2B,它们是GPR88潜在的蛋白伴侣。我们还通过对培养的皮质神经元进行邻近连接分析以及对来自GPR88野生型(WT)和敲除(KO)小鼠的皮质提取物进行免疫共沉淀实验,验证了GPR88与这些核蛋白的相互作用。GPR88亚细胞伴侣的鉴定可能为GPCR作用的非经典模式提供新的功能见解,这可能与新皮质神经元的成熟过程相关。