Kalavacherla Tejaswi, Buschmann Sabine, Schleker E Sabine M, Michel Hartmut, Reinhart Christoph
Department of Molecular Membrane Biology, Max Planck Institute of Biophysics, Max-von-Laue-Strasse 3, D-60438, Frankfurt am Main, Germany.
Department of Molecular Membrane Biology, Max Planck Institute of Biophysics, Max-von-Laue-Strasse 3, D-60438, Frankfurt am Main, Germany.
Protein Expr Purif. 2023 Apr;204:106230. doi: 10.1016/j.pep.2023.106230. Epub 2023 Jan 8.
Membrane proteins play an essential role in all living organisms. Although there have been numerous efforts in the past to elucidate the structure and function of eukaryotic primary active transporters, knowledge about the majority of these membrane proteins is still minimal. This is often due to their low availability and complex handling. In this study, we homologously expressed three ATP-dependent transport proteins, STE6-2p, NEO1-p, and YPK9-p, in Pichia pastoris and subsequently optimized the solubilization and purification processes. Sequential use of different mild detergents and utilization of hydrophilic matrices in the purification procedure allowed us to obtain all three transporters monodisperse and in high purity, enabling initial structural analysis by cryo-electron microscopy. Using the respective substrates, we determined the specific activity of all target proteins using an ATPase assay. This study opens the door to further functional and structural studies of this pharmacologically important class of membrane proteins.
膜蛋白在所有生物中都起着至关重要的作用。尽管过去人们为阐明真核生物初级主动转运蛋白的结构和功能付出了诸多努力,但对于大多数此类膜蛋白的了解仍然很少。这通常是由于它们的可获得性低且处理复杂。在本研究中,我们在毕赤酵母中同源表达了三种ATP依赖性转运蛋白STE6-2p、NEO1-p和YPK9-p,随后优化了溶解和纯化过程。在纯化过程中依次使用不同的温和去污剂并利用亲水性基质,使我们能够获得所有三种单分散且高纯度的转运蛋白,从而能够通过冷冻电子显微镜进行初步结构分析。使用各自的底物,我们通过ATP酶测定法测定了所有目标蛋白的比活性。这项研究为这类具有药理学重要性的膜蛋白的进一步功能和结构研究打开了大门。