Abstract
Understanding how membrane proteins insert into and fold within cell membranes is critical for explaining the molecular basis of many diseases. It also underpins advances in biotechnology, including the development of therapies for protein misfolding disorders and improved methods for producing membrane proteins at high yield. In cells, nearly all α-helical membrane proteins are synthesized and inserted cotranslationally, folding sequentially as they emerge from the ribosome. This process occurs under spatial constraints imposed by the translational machinery and in membranes with complex physicochemical properties. These processes are vastly different from classical in vitro refolding studies of full-length purified proteins, highlighting a critical need to alter our experimental approach to understand de novo membrane protein folding. The mechanisms driving membrane protein folding remain elusive, largely due to the limited availability of approaches that can probe these processes both in real-time and in their native context. Here, we discuss recent progress in uncovering how membrane proteins fold during synthesis and insertion, and highlight how established and emerging biophysical and structural tools are beginning to resolve cotranslational events with greater mechanistic detail than has been previously possible. Together, these advances are reshaping our understanding of membrane protein biogenesis far beyond traditional refolding models.
| Original language | English |
|---|---|
| Pages (from-to) | 7303–7337 |
| Number of pages | 35 |
| Journal | Chemical Reviews |
| Volume | 126 |
| Issue number | 12 |
| Early online date | 18 May 2026 |
| DOIs | |
| Publication status | Published - 24 Jun 2026 |
Bibliographical note
Copyright © 2026 The Authors. Published by American Chemical Society. This publication is licensed under CC-BY 4.0.Funding
ZB and GP are supported by the Aston Institute for Membrane Excellence (AIME), which is funded by UKRI’s Research England as part of their Expanding Excellence in England (E3) fund. PJB is supported by a Wellcome Trust Investigator Award (214259/Z/18/Z) and a BBSRC Pioneer Award (BB/Y512849/1). ECJ and KP are supported by a King’s College London studentship, and a Biophysics Across Scales (BiPAS) CDT studentship, respectively. The authors are grateful to Dr Naomi Pollock of Aston University for her valuable feedback on this article.
| Funders | Funder number |
|---|---|
| Aston Institute for Membrane Excellence | |
| King's College London | |
| Research England | |
| UK Research and Innovation | |
| Wellcome Trust | 214259/Z/18/Z |
| Biotechnology and Biological Sciences Research Council | BB/Y512849/1 |
Keywords
- Animals
- Humans
- Membrane Proteins/chemistry
- Protein Conformation, alpha-Helical
- Protein Folding
- Ribosomes/metabolism
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