Schrade Anja, Kyrönlahti Antti, Akinrinade Oyediran, Pihlajoki Marjut, Fischer Simon, Rodriguez Verena Martinez, Otte Kerstin, Velagapudi Vidya, Toppari Jorma, Wilson David B, Heikinheimo Markku
Children's Hospital (A.S., A.K., O.A., M.P., M.H.), University of Helsinki and Helsinki University Central Hospital, Helsinki 00014, Finland; Institute of Applied Biotechnology (S.F., K.O.), University of Applied Sciences Biberach, Biberach 88400, Germany; Metabolomics Unit (V.V.), Institute for Molecular Medicine Finland, University of Helsinki 00014, Helsinki, Finland; Departments of Physiology and Pediatrics (J.T.), University of Turku and Turku University Hospital, Turku 20520, Finland; and Departments of Pediatrics (A.S., V.M.R., D.B.W., M.H.) and Developmental Biology (D.B.W.), Washington University, St Louis, Missouri 63110.
Endocrinology. 2016 Jun;157(6):2416-31. doi: 10.1210/en.2015-1927. Epub 2016 Mar 14.
Conditional deletion of Gata4 in Sertoli cells (SCs) of adult mice has been shown to increase permeability of the blood-testis barrier (BTB) and disrupt spermatogenesis. To gain insight into the molecular underpinnings of these phenotypic abnormalities, we assessed the impact of Gata4 gene silencing in cell culture models. Microarray hybridization identified genes dysregulated by siRNA-mediated inhibition of Gata4 in TM4 cells, an immortalized mouse SC line. Differentially expressed genes were validated by quantitative RT-PCR analysis of primary cultures of Gata4(flox/flox) mouse SCs that had been subjected to cre-mediated recombination in vitro. Depletion of GATA4 in TM4 cells and primary SCs was associated with altered expression of genes involved in key facets of BTB maintenance, including tight/adherens junction formation (Tjp1, Cldn12, Vcl, Tnc, Csk) and extracellular matrix reorganization (Lamc1, Col4a1, Col4a5, Mmp10, Mmp23, Timp2). Western blotting and immunocytochemistry demonstrated reduced levels of tight junction protein-1, a prototypical tight junction protein, in GATA4-depleted cells. These changes were accompanied by a loss of morphologically recognizable junctional complexes and a decline in epithelial membrane resistance. Furthermore, Gata4 gene silencing was associated with altered expression of Hk1, Gpi1, Pfkp, Pgam1, Gls2, Pdk3, Pkd4, and Ldhb, genes regulating the production of lactate, a key nutrient that SCs provide to developing germ cells. Comprehensive metabolomic profiling demonstrated impaired lactate production in GATA4-deficient SCs. We conclude that GATA4 plays a pivotal role in the regulation of BTB function and lactate metabolism in mouse SCs.
成年小鼠支持细胞(SCs)中Gata4的条件性缺失已被证明会增加血睾屏障(BTB)的通透性并破坏精子发生。为了深入了解这些表型异常的分子基础,我们在细胞培养模型中评估了Gata4基因沉默的影响。微阵列杂交鉴定了在永生化小鼠支持细胞系TM4中,由siRNA介导的Gata4抑制作用导致失调的基因。通过对体外经cre介导重组的Gata4(flox/flox)小鼠支持细胞原代培养物进行定量RT-PCR分析,验证了差异表达基因。TM4细胞和原代支持细胞中GATA4的缺失与BTB维持关键方面相关基因的表达改变有关,包括紧密/黏附连接形成(Tjp1、Cldn12、Vcl、Tnc、Csk)和细胞外基质重组(Lamc1、Col4a1、Col4a5、Mmp10、Mmp23、Timp2)。蛋白质印迹和免疫细胞化学表明,在GATA4缺失的细胞中,典型的紧密连接蛋白紧密连接蛋白-1水平降低。这些变化伴随着形态上可识别的连接复合体的丧失和上皮膜电阻的下降。此外,Gata4基因沉默与Hk1、Gpi1、Pfkp、Pgam1、Gls2、Pdk3、Pkd4和Ldhb的表达改变有关,这些基因调节乳酸的产生,乳酸是支持细胞提供给发育中的生殖细胞的关键营养物质。综合代谢组学分析表明,GATA4缺陷的支持细胞中乳酸产生受损。我们得出结论,GATA4在小鼠支持细胞的BTB功能和乳酸代谢调节中起关键作用。