Measuring renal cortical cell-specific mitochondrial metabolism.

Kyle Feola, Andrea H Venable, Mina Rasouli, Julie Do, Tatyana McCoy, Claire B Llamas, Dana Straus, Prashant Mishra, Behzad Najafian, Sarah C Huen
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Abstract

The metabolic health of the kidney is a primary determinant of the risk of progressive kidney disease. Our understanding of the metabolic processes that fuel kidney functions is limited by the kidney's structural and functional heterogeneity. As the kidney contains many different cell types, we sought to determine the intra-renal mitochondrial heterogeneity that contributes to cell-specific metabolism. To interrogate this, we utilized a recently developed mitochondrial tagging technique to isolate kidney cell-type specific mitochondria. Here, we investigate mitochondrial functional capacities and the metabolomes of the early and late proximal tubule (PT) and the distal convoluted tubule (DCT). The conditional MITO-Tag transgene was combined with Slc34a1-CreERT2 , Ggt1-Cre , or Pvalb-Cre transgenes to generate mouse models capable of cell-specific isolation of hemagglutinin (HA)-tagged mitochondria from the early PT, late PT, or the DCT, respectively. Functional assays measuring mitochondrial respiratory and fatty acid oxidation (FAO) capacities and metabolomics were performed on anti-HA immunoprecipitated mitochondria from kidneys of ad libitum fed and 24-hour fasted male mice. The renal MITO-Tag models targeting the early PT, late PT, and DCT revealed differential mitochondrial respiratory and FAO capacities which dynamically changed during fasting conditions. The renal MITO-Tag model captured differential mitochondrial metabolism and functional capacities across the early PT, late PT, and DCT at baseline and in response to fasting.

New & noteworthy: This study described the generation and utilization of mouse models capable of interrogating kidney tubular epithelial cell-specific mitochondrial metabolism. Applying the MITO-Tag system in the kidney, we have for the first time defined the mitochondrial metabolic heterogeneity of renal cortical tubular epithelium and discovered differential mitochondrial functional capacities in response to an acute metabolic stress such as fasting.

肾皮质细胞特异性氧化代谢。
肾脏的代谢健康是进展性肾脏疾病风险的主要决定因素。我们对促进肾脏功能的代谢过程的理解受到肾脏结构和功能异质性的限制。由于肾脏包含许多不同的细胞类型,我们假设肾脏内线粒体异质性有助于细胞特异性代谢。为了解决这个问题,我们利用了最近开发的线粒体标记技术来分离肾细胞类型特异性线粒体。在这里,我们研究了线粒体功能能力和早期和晚期近端小管(PT)和远端曲小管(DCT)的代谢组。条件mto -tag等位基因与Slc34a1-CreERT2、Ggt1-Cre或Pvalb-Cre等位基因结合,生成能够分别从早期PT、晚期PT或DCT细胞特异性分离血凝素(HA)标记线粒体的小鼠模型。对自由喂养和禁食24小时的雄性小鼠肾脏抗ha免疫沉淀线粒体进行了线粒体呼吸和脂肪酸氧化(FAO)能力和代谢组学的功能测定。针对早期PT、晚期PT和DCT的肾脏MITO-Tag模型显示,在禁食条件下,线粒体呼吸和粮农组织能力发生了动态变化。禁食引起的线粒体代谢组变化表明,PT晚期显著增加了禁食期间的FAO。肾脏MITO-Tag模型捕获了早期PT、晚期PT和DCT在基线和对禁食的反应中线粒体代谢和功能能力的差异。虽然肾皮质通常被认为是一个单一的代谢室,但我们发现线粒体代谢组和功能能力在近端小管和远端曲小管之间存在显著的多样性。由于线粒体功能障碍是与肾脏疾病进展相关的主要生化途径,因此了解不同肾脏细胞群中线粒体代谢的差异对于开发针对急性和慢性肾脏疾病的有效和靶向治疗方法至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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