Cargando…
The N-terminal autoinhibitory module of the A1 domain in von Willebrand factor stabilizes the mechanosensor catch bond
The von Willebrand factor (VWF), by interacting with the circulatory system and platelets, harnesses hemodynamic forces to form hemostatic plugs or occlusive thrombi. The autoinhibitory modules (AIMs) flanking the VWF-A1 domain were found to contribute to its biomechanical activation. However, how A...
Autores principales: | , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
RSC
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9175105/ https://www.ncbi.nlm.nih.gov/pubmed/35755187 http://dx.doi.org/10.1039/d2cb00010e |
_version_ | 1784722384586014720 |
---|---|
author | Zhao, Yunduo Charles Wang, Haoqing Wang, Yao Lou, Jizhong Ju, Lining Arnold |
author_facet | Zhao, Yunduo Charles Wang, Haoqing Wang, Yao Lou, Jizhong Ju, Lining Arnold |
author_sort | Zhao, Yunduo Charles |
collection | PubMed |
description | The von Willebrand factor (VWF), by interacting with the circulatory system and platelets, harnesses hemodynamic forces to form hemostatic plugs or occlusive thrombi. The autoinhibitory modules (AIMs) flanking the VWF-A1 domain were found to contribute to its biomechanical activation. However, how AIM sequences regulate the VWF-A1 binding behavior is controversial and incompletely understood as their structures are currently unsolvable by crystallography. To address this, we first performed molecular dynamics simulations to predict the N-terminal AIM (N-AIM; residues Q1238–E1260) structure. Excitingly, we found that N-AIM could cooperate with C-AIM to form a joint Rotini-like structure, thereby partially autoinhibiting the VWF-A1–GPIbα interaction. Furthermore, we used biomembrane force probe (BFP) assays to experimentally demonstrate that the VWF-A1 containing long N-AIM sequence (1238-A1) exhibited catch-bond behavior as the force first decelerated (catch) and then accelerated (slip) the dissociation. Conversely, VWF-A1 with short N-AIM (1261-A1) displayed bi-variable behaviors with either catch (1261(H)-A1) or slip bonds (1261(L)-A1). Notably, such bi-variable transition happened at low temperatures or high pH levels, whereas Q1238–E1260 stabilized the 1238-A1 catch bond regardless of the environmental factors. The physiological study was complemented by platelet perfusion assays using microfluidics. Taken together, these studies provide new mechanobiology on how N-AIM serves as a mechano-regulator of VWF activity, which inspires future VWF-A1 dependent antithrombotic approaches. |
format | Online Article Text |
id | pubmed-9175105 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | RSC |
record_format | MEDLINE/PubMed |
spelling | pubmed-91751052022-06-23 The N-terminal autoinhibitory module of the A1 domain in von Willebrand factor stabilizes the mechanosensor catch bond Zhao, Yunduo Charles Wang, Haoqing Wang, Yao Lou, Jizhong Ju, Lining Arnold RSC Chem Biol Chemistry The von Willebrand factor (VWF), by interacting with the circulatory system and platelets, harnesses hemodynamic forces to form hemostatic plugs or occlusive thrombi. The autoinhibitory modules (AIMs) flanking the VWF-A1 domain were found to contribute to its biomechanical activation. However, how AIM sequences regulate the VWF-A1 binding behavior is controversial and incompletely understood as their structures are currently unsolvable by crystallography. To address this, we first performed molecular dynamics simulations to predict the N-terminal AIM (N-AIM; residues Q1238–E1260) structure. Excitingly, we found that N-AIM could cooperate with C-AIM to form a joint Rotini-like structure, thereby partially autoinhibiting the VWF-A1–GPIbα interaction. Furthermore, we used biomembrane force probe (BFP) assays to experimentally demonstrate that the VWF-A1 containing long N-AIM sequence (1238-A1) exhibited catch-bond behavior as the force first decelerated (catch) and then accelerated (slip) the dissociation. Conversely, VWF-A1 with short N-AIM (1261-A1) displayed bi-variable behaviors with either catch (1261(H)-A1) or slip bonds (1261(L)-A1). Notably, such bi-variable transition happened at low temperatures or high pH levels, whereas Q1238–E1260 stabilized the 1238-A1 catch bond regardless of the environmental factors. The physiological study was complemented by platelet perfusion assays using microfluidics. Taken together, these studies provide new mechanobiology on how N-AIM serves as a mechano-regulator of VWF activity, which inspires future VWF-A1 dependent antithrombotic approaches. RSC 2022-04-07 /pmc/articles/PMC9175105/ /pubmed/35755187 http://dx.doi.org/10.1039/d2cb00010e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/ |
spellingShingle | Chemistry Zhao, Yunduo Charles Wang, Haoqing Wang, Yao Lou, Jizhong Ju, Lining Arnold The N-terminal autoinhibitory module of the A1 domain in von Willebrand factor stabilizes the mechanosensor catch bond |
title | The N-terminal autoinhibitory module of the A1 domain in von Willebrand factor stabilizes the mechanosensor catch bond |
title_full | The N-terminal autoinhibitory module of the A1 domain in von Willebrand factor stabilizes the mechanosensor catch bond |
title_fullStr | The N-terminal autoinhibitory module of the A1 domain in von Willebrand factor stabilizes the mechanosensor catch bond |
title_full_unstemmed | The N-terminal autoinhibitory module of the A1 domain in von Willebrand factor stabilizes the mechanosensor catch bond |
title_short | The N-terminal autoinhibitory module of the A1 domain in von Willebrand factor stabilizes the mechanosensor catch bond |
title_sort | n-terminal autoinhibitory module of the a1 domain in von willebrand factor stabilizes the mechanosensor catch bond |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9175105/ https://www.ncbi.nlm.nih.gov/pubmed/35755187 http://dx.doi.org/10.1039/d2cb00010e |
work_keys_str_mv | AT zhaoyunduocharles thenterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond AT wanghaoqing thenterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond AT wangyao thenterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond AT loujizhong thenterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond AT juliningarnold thenterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond AT zhaoyunduocharles nterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond AT wanghaoqing nterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond AT wangyao nterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond AT loujizhong nterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond AT juliningarnold nterminalautoinhibitorymoduleofthea1domaininvonwillebrandfactorstabilizesthemechanosensorcatchbond |