Laboratory for Molecular Design of Pharmaceutics, Faculty of Pharmaceutical Sciences, Hokkaido University, Sapporo, Japan.
Laboratory for Molecular Design of Pharmaceutics, Faculty of Pharmaceutical Sciences, Hokkaido University, Sapporo, Japan.
Biomaterials. 2017 Aug;136:56-66. doi: 10.1016/j.biomaterials.2017.05.016. Epub 2017 May 10.
Mitochondria have their own gene expression system that is independent of the nuclear system, and control cellular functions in cooperation with the nucleus. While a number of useful technologies for achieving nuclear transgene expression have been reported, only a few have focused on mitochondria. In this study, we validated the utility of an artificial mitochondrial DNA vector with a virus promoter on mitochondrial transgene expression. We designed and constructed pCMV-mtLuc (CGG) that contains a CMV promotor derived from Cytomegalovirus and an artificial mitochondrial genome with a NanoLuc (Nluc) luciferase gene that records adjustments to the mitochondrial codon system. Nluc luciferase activity measurements showed that the pCMV-mtLuc (CGG) efficiently produced the Nluc luciferase protein in human HeLa cells. Moreover, we optimized the mitochondrial transfection of pCMV-mtLuc (CGG) using a MITO-Porter system, a liposome-based carrier for mitochondrial delivery via membrane fusion. As a result, we found that transfection of pCMV-mtLuc (CGG) by MITO-Porter modified with the KALA peptide (cationic amphipathic cell-penetrating peptide) showed a high mitochondrial transgene expression. The developed mitochondrial transgene expression system represents a potentially useful tool for the fields of nanoscience and nanotechnology for controlling the intracellular microenvironment via the regulation of mitochondrial function and promises to open additional innovative research fields of study.
线粒体具有独立于核系统的自身基因表达系统,并与核系统合作控制细胞功能。虽然已经报道了许多用于实现核转基因表达的有用技术,但只有少数技术专注于线粒体。在这项研究中,我们验证了带有病毒启动子的人工线粒体 DNA 载体在线粒体转基因表达中的实用性。我们设计并构建了 pCMV-mtLuc(CGG),它包含来自巨细胞病毒的 CMV 启动子和一个带有 NanoLuc(Nluc)荧光素酶基因的人工线粒体基因组,该基因记录了对线粒体密码子系统的调整。Nluc 荧光素酶活性测量表明,pCMV-mtLuc(CGG)在人 HeLa 细胞中有效地产生了 Nluc 荧光素酶蛋白。此外,我们使用基于脂质体的 MITO-Porter 系统优化了 pCMV-mtLuc(CGG)的线粒体转染,该系统通过膜融合用于线粒体递送至细胞。结果发现,经 KALA 肽(阳离子两亲性细胞穿透肽)修饰的 MITO-Porter 转染 pCMV-mtLuc(CGG)显示出高的线粒体转基因表达。所开发的线粒体转基因表达系统代表了纳米科学和纳米技术领域的一种潜在有用的工具,可通过调节线粒体功能来控制细胞内微环境,并有望开辟其他创新的研究领域。