Production of disulfide-stabilized transmembrane peptide complexes for structural studies.

JOVE-JOURNAL OF VISUALIZED EXPERIMENTS(2013)

引用 6|浏览15
暂无评分
摘要
Physical interactions among the lipid-embedded alpha-helical domains of membrane proteins play a crucial role in folding and assembly of membrane protein complexes and in dynamic processes such as transmembrane (TM) signaling and regulation of cell-surface protein levels. Understanding the structural features driving the association of particular sequences requires sophisticated biophysical and biochemical analyses of TM peptide complexes. However, the extreme hydrophobicity of TM domains makes them very difficult to manipulate using standard peptide chemistry techniques, and production of suitable study material often proves prohibitively challenging. Identifying conditions under which peptides can adopt stable helical conformations and form complexes spontaneously adds a further level of difficulty. Here we present a procedure for the production of homo-or hetero-dimeric TM peptide complexes from materials that are expressed in E. coli, thus allowing incorporation of stable isotope labels for nuclear magnetic resonance (NMR) or non-natural amino acids for other applications relatively inexpensively. The key innovation in this method is that TM complexes are produced and purified as covalently associated (disulfide-crosslinked) assemblies that can form stable, stoichiometric and homogeneous structures when reconstituted into detergent, lipid or other membrane-mimetic materials. We also present carefully optimized procedures for expression and purification that are equally applicable whether producing single TM domains or crosslinked complexes and provide advice for adapting these methods to new TM sequences.
更多
查看译文
关键词
Biochemistry,Issue 73,Structural Biology,Chemistry,Chemical Engineering,Biophysics,Genetics,Molecular Biology,Membrane Proteins,Proteins,Molecular Structure,transmembrane domain,peptide chemistry,membrane protein structure,immune receptors,reversed-phase HPLC,HPLC,peptides,lipids,protein,cloning,TFA Elution,CNBr Digestion,NMR,expression,cell culture
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要