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磁性纳米颗粒:一种改良的线粒体分离方法。

Magnetic nanoparticles: an improved method for mitochondrial isolation.

机构信息

Department of General Surgery, The Second Affiliated Hospital of Dalian Medical University, Dalian, Liaoning 116027, PR China.

出版信息

Mol Med Rep. 2012 May;5(5):1271-6. doi: 10.3892/mmr.2012.806. Epub 2012 Feb 23.

Abstract

The ultrastructure, function, and physical and chemical properties of mitochondria have become important issues in scientific research. Current mitochondrial isolation methods mainly rely on the physical and chemical properties of mitochondria. Our team presents a fast and reliable new isolation method based on magnetic nanoparticles binding with monoamine oxidase-A (MAO-A) expressed in the mitochondria. MAO-A is expressed in the outer membrane of human mitochondria and is localized on the cytoplasmic side of the membrane, which makes it possible to isolate the mitochondria effectively, using a magnetic field. As shown in the present study, in comparison with differential centrifugation and density gradient centrifugation, the yield of mitochondria isolated by magnetic nanoparticle binding is higher, with greater mitochondrial purity and activity. The entire process, from cell harvesting to final isolation of the mitochondria, takes approximately 1 h. Magnetic nanoparticles provide a simple, practical approach for mitochondrial isolation.

摘要

线粒体的超微结构、功能以及理化性质已成为科学研究的重要问题。目前的线粒体分离方法主要依赖于线粒体的物理化学性质。我们的团队提出了一种基于磁性纳米颗粒与在线粒体中表达的单胺氧化酶-A(MAO-A)结合的快速可靠的新分离方法。MAO-A 在线粒体的外膜中表达,位于膜的细胞质侧,这使得使用磁场有效地分离线粒体成为可能。如本研究所示,与差速离心和密度梯度离心相比,通过磁性纳米颗粒结合分离得到的线粒体的产量更高,线粒体的纯度和活性更高。从细胞收获到最终线粒体分离的整个过程大约需要 1 小时。磁性纳米颗粒为线粒体分离提供了一种简单实用的方法。

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