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感觉剥夺后初级体感皮层的转录图谱绘制。

Transcriptional mapping of the primary somatosensory cortex upon sensory deprivation.

机构信息

Department of Neurophysiology, Heyendaalseweg 135, 6525 HJ Nijmegen, the Netherlands.

Department of Neuroinformatics, Donders Institute for Brain, Cognition, and Behaviour, Radboud University, Heyendaalseweg 135, 6525 HJ Nijmegen, the Netherlands.

出版信息

Gigascience. 2017 Oct 1;6(10):1-6. doi: 10.1093/gigascience/gix081.

Abstract

Experience-dependent plasticity (EDP) is essential for anatomical and functional maturation of sensory circuits during development. Although the principal synaptic and circuit mechanisms of EDP are increasingly well studied experimentally and computationally, its molecular mechanisms remain largely elusive. EDP can be readily studied in the rodent barrel cortex, where each "barrel column" preferentially represents deflections of its own principal whisker. Depriving select whiskers while sparing their neighbours introduces competition between barrel columns, ultimately leading to weakening of intracortical, translaminar (i.e., cortical layer (L)4-to-L2/3) feed-forward excitatory projections in the deprived columns. The same synapses are potentiated in the neighbouring spared columns. These experience-dependent alterations of synaptic strength are thought to underlie somatosensory map plasticity. We used RNA sequencing in this model system to uncover cortical-column and -layer specific changes on the transcriptome level that are induced by altered sensory experience. Column- and layer-specific barrel cortical tissues were collected from juvenile mice with all whiskers intact and mice that received 11-12 days of long whisker (C-row) deprivation before high-quality RNA was purified and sequenced. The current dataset entails an average of 50 million paired-end reads per sample, 75 base pairs in length. On average, 90.15% of reads could be uniquely mapped to the mm10 reference mouse genome. The current data reveal the transcriptional changes in gene expression in the barrel cortex upon altered sensory experience in juvenile mice and will help to molecularly map the mechanisms of cortical plasticity.

摘要

经验依赖性可塑性(EDP)对于发育过程中感觉回路的解剖和功能成熟至关重要。尽管 EDP 的主要突触和回路机制在实验和计算上的研究越来越多,但它的分子机制仍然很大程度上难以捉摸。EDP 可以在啮齿动物的桶状皮层中很容易地研究,在那里,每个“桶状柱”优先代表其自身主要胡须的偏转。剥夺特定的胡须而保留其邻居会在桶状柱之间产生竞争,最终导致剥夺柱内皮质内、跨层(即皮质层(L)4 到 L2/3)的前馈兴奋性投射减弱。相同的突触在相邻的保留柱中被增强。这些突触强度的经验依赖性变化被认为是体感图可塑性的基础。我们在这个模型系统中使用 RNA 测序来揭示转录组水平上由感觉经验改变引起的皮质柱和皮质层特异性变化。从小鼠出生后不久,所有胡须完整的和接受 11-12 天长胡须(C 行)剥夺的小鼠中收集柱和层特异性桶状皮质组织,然后纯化和测序高质量的 RNA。当前数据集平均每个样本包含 5000 万对末端读数,长度为 75 个碱基对。平均而言,90.15%的读数可以唯一映射到 mm10 参考小鼠基因组。当前的数据揭示了在幼年小鼠改变感觉经验后,桶状皮层中基因表达的转录变化,并将有助于对皮质可塑性的机制进行分子映射。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/63a8/5965344/0e75e1e86667/gix081fig1.jpg

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