Trnka Jan, Elkalaf Moustafa, Anděl Michal
Laboratory for Metabolism and Bioenergetics, Third Faculty of Medicine, Charles University, Prague, Czech Republic; Centre for Research on Diabetes, Metabolism and Nutrition, Third Faculty of Medicine, Charles University, Prague, Czech Republic.
Centre for Research on Diabetes, Metabolism and Nutrition, Third Faculty of Medicine, Charles University, Prague, Czech Republic.
PLoS One. 2015 Apr 30;10(4):e0121837. doi: 10.1371/journal.pone.0121837. eCollection 2015.
The lipophilic positively charged moiety of triphenylphosphonium (TPP+) has been used to target a range of biologically active compounds including antioxidants, spin-traps and other probes into mitochondria. The moiety itself, while often considered biologically inert, appears to influence mitochondrial metabolism.
METHODOLOGY/PRINCIPAL FINDINGS: We used the Seahorse XF flux analyzer to measure the effect of a range of alkylTPP+ on cellular respiration and further analyzed their effect on mitochondrial membrane potential and the activity of respiratory complexes. We found that the ability of alkylTPP+ to inhibit the respiratory chain and decrease the mitochondrial membrane potential increases with the length of the alkyl chain suggesting that hydrophobicity is an important determinant of toxicity.
CONCLUSIONS/SIGNIFICANCE: More hydrophobic TPP+ derivatives can be expected to have a negative impact on mitochondrial membrane potential and respiratory chain activity in addition to the effect of the biologically active moiety attached to them. Using shorter linker chains or adding hydrophilic functional groups may provide a means to decrease this negative effect.
三苯基鏻(TPP+)的亲脂性带正电荷部分已被用于将一系列生物活性化合物(包括抗氧化剂、自旋捕捉剂和其他探针)靶向输送到线粒体中。该部分本身虽然通常被认为是生物惰性的,但似乎会影响线粒体代谢。
方法/主要发现:我们使用海马XF通量分析仪来测量一系列烷基TPP+对细胞呼吸的影响,并进一步分析它们对线粒体膜电位和呼吸复合体活性的影响。我们发现,烷基TPP+抑制呼吸链和降低线粒体膜电位的能力随着烷基链长度的增加而增强,这表明疏水性是毒性的一个重要决定因素。
结论/意义:除了连接在其上的生物活性部分的作用外,可以预期更多疏水性的TPP+衍生物会对线粒体膜电位和呼吸链活性产生负面影响。使用较短的连接链或添加亲水性官能团可能提供一种减少这种负面影响的方法。