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Single molecule force spectroscopy reveals the context dependent folding pathway of the C-terminal fragment of Top7

Top7 is a de novo designed protein with atomic level accuracy and shows a folded structure not found in nature. Previous studies showed that the folding of Top7 is not cooperative and involves various folding intermediate states. In addition, various fragments of Top7 were found to fold on their own...

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Autores principales: Li, Jiayu, Chen, Guojun, Guo, Yabin, Wang, Han, Li, Hongbin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179357/
https://www.ncbi.nlm.nih.gov/pubmed/34164053
http://dx.doi.org/10.1039/d0sc06344d
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author Li, Jiayu
Chen, Guojun
Guo, Yabin
Wang, Han
Li, Hongbin
author_facet Li, Jiayu
Chen, Guojun
Guo, Yabin
Wang, Han
Li, Hongbin
author_sort Li, Jiayu
collection PubMed
description Top7 is a de novo designed protein with atomic level accuracy and shows a folded structure not found in nature. Previous studies showed that the folding of Top7 is not cooperative and involves various folding intermediate states. In addition, various fragments of Top7 were found to fold on their own in isolation. These features displayed by Top7 are distinct from those of naturally occurring proteins of a similar size and suggest a rough folding energy landscape. However, it remains unknown if and how the intra-polypeptide chain interactions among the neighboring sequences of Top7 affect the folding of these Top7 fragments. Here we used single-molecule optical tweezers to investigate the folding–unfolding pathways of full length Top7 as well as its C-terminal fragment (CFr) in different sequence environments. Our results showed that the mechanical folding of Top7 involves an intermediate state that likely involves non-native interactions/structure. More importantly, we found that the folding of CFr is entirely dependent upon its sequence context in which it is located. When in isolation, CFr indeed folds into a cooperative structure showing near-equilibrium unfolding–folding transitions at ∼6.5 pN in OT experiments. However, CFr loses its autonomous cooperative folding ability and displays a folding pathway that is dependent on its interactions with its neighboring sequence/structure. This context-dependent folding dynamics and pathway of CFr are distinct from those of naturally occurring proteins and highlight the critical importance of intra-chain interactions in shaping the overall energy landscape and the folding pathway of Top7. These new insights may have important implications on the de novo design of proteins.
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spelling pubmed-81793572021-06-22 Single molecule force spectroscopy reveals the context dependent folding pathway of the C-terminal fragment of Top7 Li, Jiayu Chen, Guojun Guo, Yabin Wang, Han Li, Hongbin Chem Sci Chemistry Top7 is a de novo designed protein with atomic level accuracy and shows a folded structure not found in nature. Previous studies showed that the folding of Top7 is not cooperative and involves various folding intermediate states. In addition, various fragments of Top7 were found to fold on their own in isolation. These features displayed by Top7 are distinct from those of naturally occurring proteins of a similar size and suggest a rough folding energy landscape. However, it remains unknown if and how the intra-polypeptide chain interactions among the neighboring sequences of Top7 affect the folding of these Top7 fragments. Here we used single-molecule optical tweezers to investigate the folding–unfolding pathways of full length Top7 as well as its C-terminal fragment (CFr) in different sequence environments. Our results showed that the mechanical folding of Top7 involves an intermediate state that likely involves non-native interactions/structure. More importantly, we found that the folding of CFr is entirely dependent upon its sequence context in which it is located. When in isolation, CFr indeed folds into a cooperative structure showing near-equilibrium unfolding–folding transitions at ∼6.5 pN in OT experiments. However, CFr loses its autonomous cooperative folding ability and displays a folding pathway that is dependent on its interactions with its neighboring sequence/structure. This context-dependent folding dynamics and pathway of CFr are distinct from those of naturally occurring proteins and highlight the critical importance of intra-chain interactions in shaping the overall energy landscape and the folding pathway of Top7. These new insights may have important implications on the de novo design of proteins. The Royal Society of Chemistry 2020-12-23 /pmc/articles/PMC8179357/ /pubmed/34164053 http://dx.doi.org/10.1039/d0sc06344d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Li, Jiayu
Chen, Guojun
Guo, Yabin
Wang, Han
Li, Hongbin
Single molecule force spectroscopy reveals the context dependent folding pathway of the C-terminal fragment of Top7
title Single molecule force spectroscopy reveals the context dependent folding pathway of the C-terminal fragment of Top7
title_full Single molecule force spectroscopy reveals the context dependent folding pathway of the C-terminal fragment of Top7
title_fullStr Single molecule force spectroscopy reveals the context dependent folding pathway of the C-terminal fragment of Top7
title_full_unstemmed Single molecule force spectroscopy reveals the context dependent folding pathway of the C-terminal fragment of Top7
title_short Single molecule force spectroscopy reveals the context dependent folding pathway of the C-terminal fragment of Top7
title_sort single molecule force spectroscopy reveals the context dependent folding pathway of the c-terminal fragment of top7
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179357/
https://www.ncbi.nlm.nih.gov/pubmed/34164053
http://dx.doi.org/10.1039/d0sc06344d
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