Department of Chemistry & Nanoscience Center, University of Copenhagen, Copenhagen, Denmark.
Novo Nordisk Foundation Center for Protein Research, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen, Denmark.
Commun Biol. 2023 Feb 15;6(1):178. doi: 10.1038/s42003-022-04386-6.
Insulin formulations with diverse oligomerization states are the hallmark of interventions for the treatment of diabetes. Here using single-molecule recordings we firstly reveal that insulin oligomerization can operate via monomeric additions and secondly quantify the existence, abundance and kinetic characterization of diverse insulin assembly and disassembly pathways involving addition of monomeric, dimeric or tetrameric insulin species. We propose and experimentally validate a model where the insulin self-assembly pathway is rerouted, favoring monomeric or oligomeric assembly, by solution concentration, additives and formulations. Combining our practically complete kinetic characterization with rate simulations, we calculate the abundance of each oligomeric species from nM to mM offering mechanistic insights and the relative abundance of all oligomeric forms at concentrations relevant both for secreted and administrated insulin. These reveal a high abundance of all oligomers and a significant fraction of hexamer resulting in practically halved bioavailable monomer concentration. In addition to providing fundamental new insights, the results and toolbox presented here can be universally applied, contributing to the development of optimal insulin formulations and the deciphering of oligomerization mechanisms for additional proteins.
具有不同聚集态的胰岛素制剂是治疗糖尿病干预措施的标志。在这里,我们首次使用单分子记录揭示了胰岛素的聚集可以通过单体的添加来进行,其次定量存在、丰度和涉及单体、二聚体或四聚体胰岛素物种添加的不同胰岛素组装和拆卸途径的动力学特征。我们提出并通过实验验证了一个模型,其中胰岛素自组装途径通过溶液浓度、添加剂和制剂被重新引导,有利于单体或寡聚体的组装。将我们的实际完整动力学特征与速率模拟相结合,我们从纳摩尔到毫摩尔计算每个寡聚体物种的丰度,提供了机制见解和在与分泌和施用胰岛素相关的浓度下所有寡聚形式的相对丰度。这揭示了所有寡聚体的高丰度和六聚体的显著部分,导致生物可利用单体浓度实际上减半。除了提供新的基本见解外,这里呈现的结果和工具包还可以普遍应用,有助于开发最佳的胰岛素制剂和解析其他蛋白质的聚集机制。