Newman Laura E, Zhou Cheng-jing, Mudigonda Samatha, Mattheyses Alexa L, Paradies Eleonora, Marobbio Carlo Marya Thomas, Kahn Richard A
Department of Biochemistry, Emory University School of Medicine, Atlanta, Georgia, United States of America.
Department of Pediatrics, Emory University School of Medicine, Atlanta, Georgia, United States of America.
PLoS One. 2014 Jun 9;9(6):e99270. doi: 10.1371/journal.pone.0099270. eCollection 2014.
ARF-like 2 (ARL2) is a member of the ARF family and RAS superfamily of regulatory GTPases, predicted to be present in the last eukaryotic common ancestor, and essential in a number of model genetic systems. Though best studied as a regulator of tubulin folding, we previously demonstrated that ARL2 partially localizes to mitochondria. Here, we show that ARL2 is essential to a number of mitochondrial functions, including mitochondrial morphology, motility, and maintenance of ATP levels. We compare phenotypes resulting from ARL2 depletion and expression of dominant negative mutants and use these to demonstrate that the mitochondrial roles of ARL2 are distinct from its roles in tubulin folding. Testing of current models for ARL2 actions at mitochondria failed to support them. Rather, we found that knockdown of the ARL2 GTPase activating protein (GAP) ELMOD2 phenocopies two of three phenotypes of ARL2 siRNA, making it a likely effector for these actions. These results add new layers of complexity to ARL2 signaling, highlighting the need to deconvolve these different cell functions. We hypothesize that ARL2 plays essential roles inside mitochondria along with other cellular functions, at least in part to provide coupling of regulation between these essential cell processes.
ADP核糖基化因子样蛋白2(ARL2)是ARF家族和RAS超家族中调节性GTP酶的成员,预计存在于最后的真核生物共同祖先中,并且在许多模式遗传系统中至关重要。尽管ARL2作为微管蛋白折叠的调节因子得到了最为深入的研究,但我们之前证明它部分定位于线粒体。在这里,我们表明ARL2对许多线粒体功能至关重要,包括线粒体形态、运动性以及ATP水平的维持。我们比较了ARL2缺失和显性负性突变体表达所产生的表型,并利用这些结果证明ARL2在线粒体中的作用与其在微管蛋白折叠中的作用不同。对目前关于ARL2在线粒体中作用的模型进行测试未能支持这些模型。相反,我们发现敲低ARL2 GTP酶激活蛋白(GAP)ELMOD2可模拟ARL2 siRNA三种表型中的两种,这使其成为这些作用的可能效应器。这些结果为ARL2信号传导增添了新的复杂性层次,凸显了解析这些不同细胞功能的必要性。我们假设ARL2在线粒体内以及其他细胞功能中发挥着重要作用,至少部分是为了在这些基本细胞过程之间提供调节的耦合。