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GFM2 和 NSA2 的共调控和同线性将核糖体在线粒体和细胞质中的功能与慢性肾病联系起来。

Co-regulation and synteny of GFM2 and NSA2 links ribosomal function in mitochondria and the cytosol with chronic kidney disease.

机构信息

Diabetes & Obesity, School of Cardiovascular Medicine and Metabolic Sciences, King's College London, London, SE1 1UL, UK.

Analytical, Environmental and Forensic Sciences, School of Cancer and Pharmaceutical Sciences, King's College London, London, SE1 8NH, UK.

出版信息

Mol Med. 2024 Oct 13;30(1):176. doi: 10.1186/s10020-024-00930-8.

Abstract

BACKGROUND

We previously reported aberrant expression of the cytosolic ribosomal biogenesis factor Nop-7-associated 2 (NSA2) in diabetic nephropathy, the latter also known to involve mitochondrial dysfunction, however the connections between NSA2, mitochondria and renal disease were unclear. In the current paper, we show that NSA2 expression is co-regulated with the GTP-dependent ribosome recycling factor mitochondrial 2 (GFM2) and provide a molecular link between cytosolic and mitochondrial ribosomal biogenesis with mitochondrial dysfunction in chronic kidney disease (CKD).

METHODS

Human renal tubular cells (HK-2) were cultured (+/- zinc, or 5mM/20mM glucose). mRNA levels were quantified using real-time qPCR. Transcriptomics data were retrieved and analysed from Nakagawa chronic kidney disease (CKD) Dataset (GSE66494) and Kidney Precision Medicine Project (KPMP) ( https://atlas.kpmp.org/ ). Protein levels were determined by immunofluorescence and Western blotting. Cellular respiration was measured using Agilent Seahorse XF Analyzer. Data were analysed using one-way ANOVA, Students' t-test and Pearson correlation.

RESULTS

The NSA2 gene, on human chromosome 5q13 was next to GFM2. The two genes were syntenic on opposite strands and orientation in multiple species. Their common 381 bp 5' region contained multiple transcription factor binding sites (TFBS) including the zinc-responsive transcription factor MTF1. NSA2 and GFM2 mRNAs showed a dose-dependent increase to zinc in-vitro and were highly expressed in proximal tubular cells in renal biopsies. CKD patients showed higher renal NSA2/GFM2 expression. In HK-2 cells, hyperglycaemia led to increased expression of both genes. The total cellular protein content remained unchanged, but GFM2 upregulation resulted in increased levels of several mitochondrial oxidative phosphorylation (OXPHOS) subunits. Furthermore, increased GFM2 expression, via transient transfection or hyperglycemia, correlated with decrease cellular respiration.

CONCLUSION

The highly conserved synteny of NSA2 and GFM2, their shared 5' region, and co-expression in-vitro and in CKD, shows they are co-regulated. Increased GFM2 affects mitochondrial function with a disconnect between an increase in certain mitochondrial respiratory proteins but a decrease in cellular respiration. These data link the regulation of 2 highly conserved genes, NSA2 and GFM2, connected to ribosomes in two different cellular compartments, cytosol and mitochondria, to kidney disease and shows that their dysregulation may be involved in mitochondrial dysfunction.

摘要

背景

我们之前报道过细胞质核糖体生物发生因子 Nop-7 相关 2(NSA2)在糖尿病肾病中的异常表达,后者也涉及线粒体功能障碍,然而 NSA2、线粒体和肾脏疾病之间的联系尚不清楚。在本论文中,我们表明 NSA2 的表达与 GTP 依赖性核糖体回收因子线粒体 2(GFM2)共同调控,并提供了细胞质和线粒体核糖体生物发生与慢性肾脏病(CKD)中线粒体功能障碍之间的分子联系。

方法

培养人肾小管细胞(HK-2)(+/-锌,或 5mM/20mM 葡萄糖)。使用实时 qPCR 定量测定 mRNA 水平。从 Nakagawa 慢性肾脏病(CKD)数据集(GSE66494)和肾脏精准医学项目(KPMP)(https://atlas.kpmp.org/)检索并分析转录组数据。通过免疫荧光和 Western blot 测定蛋白水平。使用 Agilent Seahorse XF 分析仪测量细胞呼吸。使用单向方差分析、学生 t 检验和 Pearson 相关性分析数据。

结果

NSA2 基因位于人类染色体 5q13 上,紧邻 GFM2。这两个基因在多个物种中位于相反链和方向的同顺位置。它们共同的 381bp 5' 区域包含多个转录因子结合位点(TFBS),包括锌反应性转录因子 MTF1。NSA2 和 GFM2 mRNA 在体外对锌表现出剂量依赖性增加,在肾活检的近端肾小管细胞中高度表达。CKD 患者的肾 NSA2/GFM2 表达更高。在 HK-2 细胞中,高血糖导致这两个基因的表达增加。细胞总蛋白含量保持不变,但 GFM2 的上调导致几种线粒体氧化磷酸化(OXPHOS)亚基的水平升高。此外,通过瞬时转染或高血糖增加 GFM2 表达与细胞呼吸减少相关。

结论

NSA2 和 GFM2 的高度保守同顺性、它们共同的 5' 区域以及体外和 CKD 中的共同表达表明它们受到共同调控。GFM2 的增加会影响线粒体功能,导致某些线粒体呼吸蛋白增加,但细胞呼吸减少。这些数据将 2 个高度保守的基因 NSA2 和 GFM2 的调节与两个不同细胞区室(细胞质和线粒体)中的核糖体联系起来,与肾脏疾病相关,并表明它们的失调可能与线粒体功能障碍有关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a98/11476648/96c291ddf53c/10020_2024_930_Fig1_HTML.jpg

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