ArticleProceedings of the National Academy of Sciences of the United States of America2020
Structure, self-assembly, and properties of a truncated reflectin variant.
Article in Proceedings of the National Academy of Sciences of the United States of America, 2020. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
What it found
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Who cites it
10 citing papers in PubMed.
- Unconventional Non-rodent Models in Neurological Research: Exploring New Paths to Translational Insights.Journal of molecular neuroscience : MN · 2025Review
- Design and Characterization of DNA-Driven Condensates: Regulating Topology, Mechanical Properties, and Immunorecognition.ACS applied materials & interfaces · 2025Article
- Cephalopod proteins for bioinspired and sustainable biomaterials design.Materials today. Bio · 2025Review
- A colloidal model for the equilibrium assembly and liquid-liquid phase separation of the reflectin A1 protein.Biophysical journal · 2024Article
- Protein Charge Neutralization Is the Proximate Driver Dynamically Tuning Reflectin Assembly.International journal of molecular sciences · 2024Article
- Article
- Hierarchical self-assembly of a reflectin-derived peptide.Frontiers in chemistry · 2023Article
- A Mini-Review on Reflectins, from Biochemical Properties to Bio-Inspired Applications.International journal of molecular sciences · 2022Review
- At the Intersection of Natural Structural Coloration and Bioengineering.Biomimetics (Basel, Switzerland) · 2022Review
- Peptide-Protein Interactions: From Drug Design to Supramolecular Biomaterials.Molecules (Basel, Switzerland) · 2021Review
Corrections and comments
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Authors and funding
27 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Naturally occurring and recombinant protein-based materials are frequently employed for the study of fundamental biological processes and are often leveraged for applications in areas as diverse as electronics, optics, bioengineering, medicine, and even fashion. Within this context, unique structural proteins known as reflectins have recently attracted substantial attention due to their key roles in the fascinating color-changing capabilities of cephalopods and their technological potential as biophotonic and bioelectronic materials. However, progress toward understanding reflectins has been hindered by their atypical aromatic and charged residue-enriched sequences, extreme sensitivities to subtle changes in environmental conditions, and well-known propensities for aggregation. Herein, we elucidate the structure of a reflectin variant at the molecular level, demonstrate a straightforward mechanical agitation-based methodology for controlling this variant's hierarchical assembly, and establish a direct correlation between the protein's structural characteristics and intrinsic optical properties. Altogether, our findings address multiple challenges associated with the development of reflectins as materials, furnish molecular-level insight into the mechanistic underpinnings of cephalopod skin cells' color-changing functionalities, and may inform new research directions across biochemistry, cellular biology, bioengineering, and optics.
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Registered trials
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