胰岛素
胰岛素受体
价
受体
胰岛素受体底物
纳米团簇
DNA折纸
纳米结构
内科学
糖尿病
IRS2
GRB10型
细胞生物学
内分泌学
化学
生物
材料科学
生物物理学
纳米技术
生物化学
医学
胰岛素抵抗
哲学
语言学
作者
Joel Spratt,José M. Dias,Christina Kolonelou,Georges Kiriako,Enya Engström,Ekaterina Petrova,Christos Karampelias,Igor Červenka,Natali Papanicolaou,Antonio Lentini,Björn Reinius,Olov Andersson,Elena Ambrosetti,Jorge L. Ruas,Ana I. Teixeira
标识
DOI:10.1038/s41565-023-01507-y
摘要
Insulin binds the insulin receptor (IR) and regulates anabolic processes in target tissues. Impaired IR signalling is associated with multiple diseases, including diabetes, cancer and neurodegenerative disorders. IRs have been reported to form nanoclusters at the cell membrane in several cell types, even in the absence of insulin binding. Here we exploit the nanoscale spatial organization of the IR to achieve controlled multivalent receptor activation. To control insulin nanoscale spatial organization and valency, we developed rod-like insulin-DNA origami nanostructures carrying different numbers of insulin molecules with defined spacings. Increasing the insulin valency per nanostructure markedly extended the residence time of insulin-DNA origami nanostructures at the receptors. Both insulin valency and spacing affected the levels of IR activation in adipocytes. Moreover, the multivalent insulin design associated with the highest levels of IR activation also induced insulin-mediated transcriptional responses more effectively than the corresponding monovalent insulin nanostructures. In an in vivo zebrafish model of diabetes, treatment with multivalent-but not monovalent-insulin nanostructures elicited a reduction in glucose levels. Our results show that the control of insulin multivalency and spatial organization with nanoscale precision modulates the IR responses, independent of the insulin concentration. Therefore, we propose insulin nanoscale organization as a design parameter in developing new insulin therapies.
科研通智能强力驱动
Strongly Powered by AbleSci AI