de Taffin de Tilques Maxence, Lasserre Jean-Paul, Godard François, Sardin Elodie, Bouhier Marine, Le Guedard Marina, Kucharczyk Roza, Petit Patrice X, Testet Eric, di Rago Jean-Paul, Tribouillard-Tanvier Déborah
Institut de Biochimie et Génétique Cellulaires, CNRS UMR 5095, Université de Bordeaux, 1 rue Camille Saint-Saëns, 33077 Bordeaux cedex, France.
Laboratoire de Biogenèse Membranaire, CNRS UMR 5200, Université de Bordeaux, INRA Bordeaux Aquitaine, Villenave d'Ornon, France.
Microb Cell. 2018 Feb 18;5(5):220-232. doi: 10.15698/mic2018.05.629.
Cardiolipin (CL) optimizes diverse mitochondrial processes, including oxidative phosphorylation (OXPHOS). To function properly, CL needs to be unsaturated, which requires the acyltransferase Tafazzin (TAZ). Loss-of-function mutations in the TAZ gene are responsible for the Barth syndrome (BTHS), a rare X-linked cardiomyopathy, presumably because of a diminished OXPHOS capacity. Herein we show that a partial inhibition of cytosolic protein synthesis, either chemically with the use of cycloheximide or by specific genetic mutations, fully restores biogenesis and the activity of the oxidative phosphorylation system in a yeast BTHS model (Δ). Interestingly, the defaults in CL were not suppressed, indicating that they are not primarily responsible for the OXPHOS deficiency in Δ yeast. Low concentrations of cycloheximide in the picomolar range were beneficial to TAZ-deficient HeLa cells, as evidenced by the recovery of a good proliferative capacity. These findings reveal that a diminished capacity of CL remodeling deficient cells to preserve protein homeostasis is likely an important factor contributing to the pathogenesis of BTHS. This in turn, identifies cytosolic translation as a potential therapeutic target for the treatment of this disease.
心磷脂(CL)可优化多种线粒体过程,包括氧化磷酸化(OXPHOS)。为了正常发挥功能,CL需要不饱和,这需要酰基转移酶塔法兹蛋白(TAZ)。TAZ基因的功能丧失突变是导致Barth综合征(BTHS)的原因,BTHS是一种罕见的X连锁心肌病,可能是由于氧化磷酸化能力下降所致。在此我们表明,无论是使用放线菌酮进行化学抑制还是通过特定基因突变对胞质蛋白合成进行部分抑制,均可在酵母BTHS模型(Δ)中完全恢复生物合成及氧化磷酸化系统的活性。有趣的是,CL的缺陷并未得到抑制,这表明它们并非酵母Δ中氧化磷酸化缺陷的主要原因。皮摩尔范围内的低浓度放线菌酮对TAZ缺陷的HeLa细胞有益,良好的增殖能力恢复证明了这一点。这些发现表明,CL重塑缺陷细胞维持蛋白质稳态的能力下降可能是导致BTHS发病机制的一个重要因素。反过来,这将胞质翻译确定为治疗该疾病的潜在治疗靶点。