Ishii Noriyuki
Biomedical Research Institute, Department of Life Science and Biotechnology, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba Central-6, 1-1-1 Higashi Tsukuba Ibaraki, 305-8566, Tsukuba, Japan.
Subcell Biochem. 2017;83:483-504. doi: 10.1007/978-3-319-46503-6_17.
Chaperonin is categorized as a molecular chaperone and mediates the formation of the native conformation of proteins by first preventing folding during synthesis or membrane translocation and subsequently by mediating the step-wise ATP-dependent release that result in proper folding. In the GroEL-GroES complex, a single heptameric GroEL ring binds one GroES ring in the presence of ATP/ADP, in this vein, the double ring GroEL tetradecamer is present in two distinct types of GroEL-GroES complexes: asymmetric 1:1 "bullet"-shaped GroEL:GroES and symmetric 1:2 "football" (American football)-shaped GroEL:GroES. There have been debates as to which complex is critical to the productive protein folding mediated by the GroEL-GroES complex, and how GroES coordinates with GroEL in the chaperonin reaction cycle in association with regulation by adenine nucleotides and through the interplay of substrate proteins. A lot of knowledge on chaperonins has been accumulating as if expanding as ripples spread around the GroEL-GroES from Escherichia coli. In this article, an overview is presented on GroEL and the GroEL-GroES complex, with emphasis on their morphological variations, and some potential applications to the fabrication of nanocomposites using GroEL as a nano-block. In parallel, a guideline is presented that supports the recognition that the E. coli and its GroEL-GroES complex do not always receive in standard literature because the biochemical features of chaperonins derived from others special, such as mammals, are not always the same as those confirmed using GroEL-GroES derived from E. coli.
伴侣蛋白被归类为分子伴侣,它通过首先在蛋白质合成或膜转运过程中阻止折叠,随后介导逐步的ATP依赖释放来促进蛋白质天然构象的形成,从而实现正确折叠。在GroEL - GroES复合物中,在ATP/ADP存在的情况下,单个七聚体GroEL环结合一个GroES环。因此,双环GroEL十四聚体存在于两种不同类型的GroEL - GroES复合物中:不对称的1:1“子弹”形GroEL:GroES和对称的1:2“橄榄球”(美式橄榄球)形GroEL:GroES。关于哪种复合物对GroEL - GroES复合物介导的有效蛋白质折叠至关重要,以及在伴侣蛋白反应循环中GroES如何与GroEL协同作用,同时受腺嘌呤核苷酸调节以及底物蛋白的相互作用,一直存在争议。关于伴侣蛋白的许多知识不断积累,就好像从大肠杆菌的GroEL - GroES向外扩散的涟漪一样不断扩展。本文对GroEL和GroEL - GroES复合物进行了概述,重点介绍了它们的形态变化,以及一些将GroEL用作纳米块制造纳米复合材料的潜在应用。同时,还给出了一个指导方针,以支持人们认识到大肠杆菌及其GroEL - GroES复合物在标准文献中并不总是被提及,因为源自其他物种(如哺乳动物)的伴侣蛋白的生化特性并不总是与使用源自大肠杆菌的GroEL - GroES所证实的特性相同。