Personalized Genomics Laboratory, Center for Computational Systems Biology, RG Perry College of Engineering, Prairie View A&M University, Prairie View, TX 77446, USA.
DP Purpura Department of Neuroscience, Albert Einstein College of Medicine, New York, NY 10461, USA.
Genes (Basel). 2020 May 7;11(5):520. doi: 10.3390/genes11050520.
We profiled the transcriptomes of primary mouse cortical astrocytes cultured alone or co-cultured with immortalized precursor oligodendrocytes ( cells). Filters between the cell types prevented formation of hetero-cellular gap junction channels but allowed for free exchange of the two culture media. We previously reported that major functional pathways in the cells are remodeled by the proximity of non-touching astrocytes and that astrocytes and oligodendrocytes form a panglial transcriptomic syncytium in the brain. Here, we present evidence that the astrocyte transcriptome likewise changes significantly in the proximity of non-touching cells. Our results indicate that the cellular environment strongly modulates the transcriptome of each cell type and that integration in a heterocellular tissue changes not only the expression profile but also the expression control and networking of the genes in each cell phenotype. The significant decrease of the overall transcription control suggests that in the co-culture astrocytes are closer to their normal conditions from the brain. The secretome regulates astrocyte genes known to modulate neuronal synaptic transmission and remodels calcium, chemokine, NOD-like receptor, PI3K-Akt, and thyroid hormone signaling, as well as actin-cytoskeleton, autophagy, cell cycle, and circadian rhythm pathways. Moreover, the co-culture significantly changes the gene hierarchy in the astrocytes.
我们对单独培养或与永生化前体细胞( 细胞)共培养的原代小鼠皮质星形胶质细胞的转录组进行了分析。细胞类型之间的过滤器阻止了异细胞缝隙连接通道的形成,但允许两种培养基自由交换。我们之前曾报道过,非接触星形胶质细胞的临近会重塑 细胞中的主要功能途径,并且星形胶质细胞和少突胶质细胞在大脑中形成一个神经上皮转录组合胞体。在这里,我们提供的证据表明,星形胶质细胞转录组在非接触 细胞的临近时也会发生显著变化。我们的结果表明,细胞环境强烈调节每种细胞类型的转录组,并且在异细胞组织中的整合不仅改变了表达谱,而且改变了每个细胞表型中基因的表达控制和网络。整体转录控制的显著降低表明,在共培养中,星形胶质细胞更接近其来自大脑的正常状态。 细胞外泌体调节已知调节神经元突触传递的星形胶质细胞基因,并重塑钙、趋化因子、NOD 样受体、PI3K-Akt 和甲状腺激素信号转导,以及肌动蛋白细胞骨架、自噬、细胞周期和昼夜节律途径。此外,共培养还显著改变了星形胶质细胞中的基因层次结构。