The molecular basis of chaperone-mediated interleukin 23 assembly control

Susanne Meier, Sina Bohnacker, Carolin J. Klose, Abraham Lopez, Christian A. Choe, Philipp W.N. Schmid, Nicolas Bloemeke, Florian Rührnößl, Martin Haslbeck, Julia Esser von Bieren, Michael Sattler, Po Ssu Huang, Matthias J. Feige

Research output: Contribution to journalArticlepeer-review

18 Scopus citations

Abstract

The functionality of most secreted proteins depends on their assembly into a defined quaternary structure. Despite this, it remains unclear how cells discriminate unassembled proteins en route to the native state from misfolded ones that need to be degraded. Here we show how chaperones can regulate and control assembly of heterodimeric proteins, using interleukin 23 (IL-23) as a model. We find that the IL-23 α-subunit remains partially unstructured until assembly with its β-subunit occurs and identify a major site of incomplete folding. Incomplete folding is recognized by different chaperones along the secretory pathway, realizing reliable assembly control by sequential checkpoints. Structural optimization of the chaperone recognition site allows it to bypass quality control checkpoints and provides a secretion-competent IL-23α subunit, which can still form functional heterodimeric IL-23. Thus, locally-restricted incomplete folding within single-domain proteins can be used to regulate and control their assembly.

Original languageEnglish
Article number4121
JournalNature Communications
Volume10
Issue number1
DOIs
StatePublished - 1 Dec 2019

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