pH-dependent interactions of coacervate-forming histidine-rich peptide with model lipid membranes
Peptide-based liquid droplets (coacervates) produced by spontaneous liquid-liquid phase separation (LLPS), have emerged as a promising class of drug delivery systems due to their high entrapping efficiency and the simplicity of their formulation. However, the detailed mechanisms governing their inte...
| Published in: | Frontiers in Soft Matter |
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| Main Authors: | , , , , , , , , , , , |
| Format: | Article |
| Language: | English |
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Frontiers Media S.A.
2024-01-01
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| Online Access: | https://www.frontiersin.org/articles/10.3389/frsfm.2023.1339496/full |
| _version_ | 1849901431526522880 |
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| author | Sushanth Gudlur Filipe Viana Ferreira Javier Shu Ming Ting Carmen Domene Syed Maricar Anton P. Le Brun Nageshwar Yepuri Michael Moir Robert Russell Tamim Darwish Ali Miserez Ali Miserez Marité Cárdenas Marité Cárdenas Marité Cárdenas Marité Cárdenas |
| author_facet | Sushanth Gudlur Filipe Viana Ferreira Javier Shu Ming Ting Carmen Domene Syed Maricar Anton P. Le Brun Nageshwar Yepuri Michael Moir Robert Russell Tamim Darwish Ali Miserez Ali Miserez Marité Cárdenas Marité Cárdenas Marité Cárdenas Marité Cárdenas |
| author_sort | Sushanth Gudlur |
| collection | DOAJ |
| container_title | Frontiers in Soft Matter |
| description | Peptide-based liquid droplets (coacervates) produced by spontaneous liquid-liquid phase separation (LLPS), have emerged as a promising class of drug delivery systems due to their high entrapping efficiency and the simplicity of their formulation. However, the detailed mechanisms governing their interaction with cell membranes and cellular uptake remain poorly understood. In this study, we investigated the interactions of peptide coacervates composed of HBpep—peptide derived from the histidine-rich beak proteins (HBPs) of the Humboldt squid—with model cellular membranes in the form of supported lipid bilayers (SLBs). We employed quartz crystal microbalance with dissipation monitoring (QCM-D), neutron reflectometry (NR) and atomistic molecular dynamics (MD) simulations to reveal the nature of these interactions in the absence of fluorescent labels or tags. HBpep forms small oligomers at pH 6 whereas it forms µm-sized coacervates at physiological pH. Our findings reveal that both HBpep oligomers and HBpep-coacervates adsorb onto SLBs at pH 6 and 7.4, respectively. At pH 6, when the peptide carries a net positive charge, HBpep oligomers insert into the SLB, facilitated by the peptide’s interactions with the charged lipids and cholesterol. Importantly, however, HBpep coacervate adsorption at physiological pH, when it is largely uncharged, is fully reversible, suggesting no significant lipid bilayer rearrangement. HBpep coacervates, previously identified as efficient drug delivery vehicles, do not interact with the lipid membrane in the same manner as traditional cationic drug delivery systems or cell-penetrating peptides. Based on our findings, HBpep coacervates at physiological pH cannot cross the cell membrane by a simple passive mechanism and are thus likely to adopt a non-canonical cell entry pathway. |
| format | Article |
| id | doaj-art-e7f747c19c1e4446a35d005be56c212d |
| institution | Directory of Open Access Journals |
| issn | 2813-0499 |
| language | English |
| publishDate | 2024-01-01 |
| publisher | Frontiers Media S.A. |
| record_format | Article |
| spelling | doaj-art-e7f747c19c1e4446a35d005be56c212d2025-08-20T00:59:16ZengFrontiers Media S.A.Frontiers in Soft Matter2813-04992024-01-01310.3389/frsfm.2023.13394961339496pH-dependent interactions of coacervate-forming histidine-rich peptide with model lipid membranesSushanth Gudlur0Filipe Viana Ferreira1Javier Shu Ming Ting2Carmen Domene3Syed Maricar4Anton P. Le Brun5Nageshwar Yepuri6Michael Moir7Robert Russell8Tamim Darwish9Ali Miserez10Ali Miserez11Marité Cárdenas12Marité Cárdenas13Marité Cárdenas14Marité Cárdenas15Biological and Biomimetic Materials Laboratory (BBML), Center for Sustainable Materials (SusMat), School of Materials Science and Engineering, Nanyang Technological University (NTU), Singapore, SingaporeBiological and Biomimetic Materials Laboratory (BBML), Center for Sustainable Materials (SusMat), School of Materials Science and Engineering, Nanyang Technological University (NTU), Singapore, SingaporeSchool of Biological Sciences, Nanyang Technological University (NTU), Singapore, SingaporeDepartment of Chemistry, University of Bath, Claverton Down, Bath, United KingdomBiological and Biomimetic Materials Laboratory (BBML), Center for Sustainable Materials (SusMat), School of Materials Science and Engineering, Nanyang Technological University (NTU), Singapore, SingaporeAustralian Centre for Neutron Scattering, Australian Nuclear Science and Technology Organisation (ANSTO), Lucas Heights, NSW, AustraliaNational Deuteration Facility (NDF), Australian Nuclear Science and Technology Organisation (ANSTO), Lucas Heights, NSW, AustraliaNational Deuteration Facility (NDF), Australian Nuclear Science and Technology Organisation (ANSTO), Lucas Heights, NSW, AustraliaNational Deuteration Facility (NDF), Australian Nuclear Science and Technology Organisation (ANSTO), Lucas Heights, NSW, AustraliaNational Deuteration Facility (NDF), Australian Nuclear Science and Technology Organisation (ANSTO), Lucas Heights, NSW, AustraliaBiological and Biomimetic Materials Laboratory (BBML), Center for Sustainable Materials (SusMat), School of Materials Science and Engineering, Nanyang Technological University (NTU), Singapore, SingaporeSchool of Biological Sciences, Nanyang Technological University (NTU), Singapore, SingaporeSchool of Biological Sciences, Nanyang Technological University (NTU), Singapore, SingaporeDepartment of Biomedical Sciences, Biofilm Research Center for Biointerfaces, Malmö University, Malmö, SwedenInstituto Biofisika (CSIC, UPV/EHU), Fundación Biofísica Bizkaia/Biofisika Bizkaia Fundazioa (FBB), Leioa, SpainIkerbasque, Basque Foundation for Science, Bilbao, SpainPeptide-based liquid droplets (coacervates) produced by spontaneous liquid-liquid phase separation (LLPS), have emerged as a promising class of drug delivery systems due to their high entrapping efficiency and the simplicity of their formulation. However, the detailed mechanisms governing their interaction with cell membranes and cellular uptake remain poorly understood. In this study, we investigated the interactions of peptide coacervates composed of HBpep—peptide derived from the histidine-rich beak proteins (HBPs) of the Humboldt squid—with model cellular membranes in the form of supported lipid bilayers (SLBs). We employed quartz crystal microbalance with dissipation monitoring (QCM-D), neutron reflectometry (NR) and atomistic molecular dynamics (MD) simulations to reveal the nature of these interactions in the absence of fluorescent labels or tags. HBpep forms small oligomers at pH 6 whereas it forms µm-sized coacervates at physiological pH. Our findings reveal that both HBpep oligomers and HBpep-coacervates adsorb onto SLBs at pH 6 and 7.4, respectively. At pH 6, when the peptide carries a net positive charge, HBpep oligomers insert into the SLB, facilitated by the peptide’s interactions with the charged lipids and cholesterol. Importantly, however, HBpep coacervate adsorption at physiological pH, when it is largely uncharged, is fully reversible, suggesting no significant lipid bilayer rearrangement. HBpep coacervates, previously identified as efficient drug delivery vehicles, do not interact with the lipid membrane in the same manner as traditional cationic drug delivery systems or cell-penetrating peptides. Based on our findings, HBpep coacervates at physiological pH cannot cross the cell membrane by a simple passive mechanism and are thus likely to adopt a non-canonical cell entry pathway.https://www.frontiersin.org/articles/10.3389/frsfm.2023.1339496/fullLLPSpeptide coacervatesneutron reflectivitymembrane interactionmodel membranemolecular dynamic simulations |
| spellingShingle | Sushanth Gudlur Filipe Viana Ferreira Javier Shu Ming Ting Carmen Domene Syed Maricar Anton P. Le Brun Nageshwar Yepuri Michael Moir Robert Russell Tamim Darwish Ali Miserez Ali Miserez Marité Cárdenas Marité Cárdenas Marité Cárdenas Marité Cárdenas pH-dependent interactions of coacervate-forming histidine-rich peptide with model lipid membranes LLPS peptide coacervates neutron reflectivity membrane interaction model membrane molecular dynamic simulations |
| title | pH-dependent interactions of coacervate-forming histidine-rich peptide with model lipid membranes |
| title_full | pH-dependent interactions of coacervate-forming histidine-rich peptide with model lipid membranes |
| title_fullStr | pH-dependent interactions of coacervate-forming histidine-rich peptide with model lipid membranes |
| title_full_unstemmed | pH-dependent interactions of coacervate-forming histidine-rich peptide with model lipid membranes |
| title_short | pH-dependent interactions of coacervate-forming histidine-rich peptide with model lipid membranes |
| title_sort | ph dependent interactions of coacervate forming histidine rich peptide with model lipid membranes |
| topic | LLPS peptide coacervates neutron reflectivity membrane interaction model membrane molecular dynamic simulations |
| url | https://www.frontiersin.org/articles/10.3389/frsfm.2023.1339496/full |
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