Single Cell Deletion of the Transcription Factors Trps1 and Sox9 in Astrocytes Reveals Novel Functions in the Adult Cerebral Cortex.

IF 5.4 2区 医学 Q1 NEUROSCIENCES Glia Pub Date : 2024-11-28 DOI:10.1002/glia.24645
Poornemaa Natarajan, Christina Koupourtidou, Thibault de Resseguier, Manja Thorwirth, Riccardo Bocchi, Judith Fischer-Sternjak, Sarah Gleiss, Diana Rodrigues, Michael H Myoga, Jovica Ninkovic, Giacomo Masserdotti, Magdalena Götz
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Abstract

Astrocytes play key roles in brain function, but how these are orchestrated by transcription factors (TFs) in the adult brain and aligned with astrocyte heterogeneity is largely unknown. Here we examined the localization and function of the novel astrocyte TF Trps1 (Transcriptional Repressor GATA Binding 1) and the well-known astrocyte TF Sox9 by Cas9-mediated deletion using Mokola-pseudotyped lentiviral delivery into the adult cerebral cortex. Trps1 and Sox9 levels showed heterogeneity among adult cortical astrocytes, which prompted us to explore the effects of deleting either Sox9 or Trps1 alone or simultaneously at the single-cell (by patch-based single-cell transcriptomics) and tissue levels (by spatial transcriptomics). This revealed TF-specific functions in astrocytes, such as synapse maintenance with the strongest effects on synapse number achieved by Trps1 deletion and a common effect on immune response. In addition, spatial transcriptomics showed non-cell-autonomous effects on the surrounding cells, such as oligodendrocytes and other immune cells with TF-specific differences on the type of immune cells: Trps1 deletion affecting monocytes specifically, while Sox9 deletion acting mostly on microglia and deletion of both TF affecting mostly B cells. Taken together, this study reveals novel roles of Trps1 and Sox9 in adult astrocytes and their communication with other glial and immune cells.

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星形胶质细胞中转录因子Trps1和Sox9的单细胞缺失揭示了成人大脑皮层的新功能。
星形胶质细胞在脑功能中发挥着关键作用,但这些作用是如何由成人大脑中的转录因子(tf)协调的,以及星形胶质细胞的异质性是如何一致的,这在很大程度上是未知的。在这里,我们通过mokola -伪慢病毒传递到成人大脑皮层,通过cas9介导的缺失,研究了新型星形胶质细胞TF Trps1(转录抑制因子GATA结合1)和著名的星形胶质细胞TF Sox9的定位和功能。Trps1和Sox9水平在成人皮质星形胶质细胞中表现出异质性,这促使我们探索单独或同时删除Sox9或Trps1在单细胞(通过基于斑块的单细胞转录组学)和组织水平(通过空间转录组学)上的影响。这揭示了tf在星形胶质细胞中的特异性功能,如突触维持,其中Trps1缺失对突触数量的影响最大,对免疫反应的影响也很普遍。此外,空间转录组学对周围细胞,如少突胶质细胞和其他在免疫细胞类型上具有TF特异性差异的免疫细胞显示非细胞自主作用:Trps1缺失特异性影响单核细胞,而Sox9缺失主要作用于小胶质细胞,TF的缺失主要影响B细胞。综上所述,本研究揭示了Trps1和Sox9在成人星形胶质细胞及其与其他胶质细胞和免疫细胞的通讯中的新作用。
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来源期刊
Glia
Glia 医学-神经科学
CiteScore
13.10
自引率
4.80%
发文量
162
审稿时长
3-8 weeks
期刊介绍: GLIA is a peer-reviewed journal, which publishes articles dealing with all aspects of glial structure and function. This includes all aspects of glial cell biology in health and disease.
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