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Updated: Aug 15, 2026

Purification of the Cystic Fibrosis Transmembrane Conductance Regulator Protein Expressed in Saccharomyces cerevisiae
Published on: May 10, 2014
Biogenesis of CFTR and other polytopic membrane proteins: new roles for the ribosome-translocon complex
1Division of Molecular Medicine, Oregon Health and Sciences University, Portland, OR 97239, USA.
Abstract:
Polytopic protein biogenesis represents a critical, yet poorly understood area of modern biology with important implications for human disease. Inherited mutations in a growing array of membrane proteins frequently lead to improper folding and/or trafficking. The cystic fibrosis transmembrane conductance regulator (CFTR) is a primary example in which point mutations disrupt CFTR folding and lead to rapid degradation in the endoplasmic reticulum (ER). It has been difficult, however, to discern the mechanistic principles of such disorders, in part, because membrane protein folding takes place coincident with translation and within a highly specialized environment formed by the ribosome, Sec61 translocon, and the ER membrane. This ribosome-translocon complex (RTC) coordinates the synthesis, folding, orientation and integration of transmembrane segments across and into the ER membrane. At the same time, RTC function is controlled by specific sequence determinants within the nascent polypeptide. Recent studies of CFTR and other native membrane proteins have begun to define novel variations in translocation pathways and to elucidate the specific steps that establish complex topology. This article will attempt to reconcile advances in our understanding of protein biogenesis with emerging models of RTC function. In particular, it will emphasize how information within the nascent polypeptide is interpreted by and in turn controls RTC dynamics to generate the broad structural and functional diversity observed for naturally occurring membrane proteins.
Insights
Polytopic protein biogenesis, crucial for human health, involves complex membrane protein folding. Understanding the ribosome-translocon complex (RTC) reveals how nascent polypeptide sequences control protein insertion and topology.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Polytopic protein biogenesis is vital but poorly understood, impacting human diseases.
- Mutations in membrane proteins like CFTR cause misfolding and degradation.
- Membrane protein folding occurs during translation within the ribosome-translocon complex (RTC) in the ER.
Purpose of the Study:
- To reconcile advances in protein biogenesis with RTC function models.
- To elucidate how nascent polypeptide sequences dictate RTC dynamics.
- To understand the generation of membrane protein structural diversity.
Main Methods:
- Analysis of recent studies on CFTR and other native membrane proteins.
- Investigating novel translocation pathways and topological establishment.
- Focusing on the interplay between nascent polypeptide information and RTC function.
Main Results:
- Emerging models define variations in membrane protein translocation pathways.
- Specific sequence determinants within nascent polypeptides control RTC function.
- RTC dynamics are modulated by polypeptide information, influencing protein topology.
Conclusions:
- The RTC coordinates synthesis, folding, and integration of membrane proteins.
- Nascent polypeptide sequence interpretation by the RTC is key to protein biogenesis.
- Understanding RTC function is critical for deciphering membrane protein disorders.
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