Protein Charge Neutralization is the Proximate Driver Dynamically Tuning a Nanoscale Bragg Reflector
preprint
OA: closed
CC-BY-NC-ND-4.0
⤵ 1 in-corpus citation
Abstract
Reflectin is a cationic, block copolymeric protein that mediates the dynamic fine-tuning of color and brightness of light reflected from nanostructured Bragg reflectors in iridocyte skin cells of squids. In vivo, neuronally activated phosphorylation of reflectin triggers its assembly, driving osmotic dehydration of the membrane-bounded Bragg lamellae containing the protein to simultaneously shrink the lamellar thickness and spacing while increasing its refractive index contrast, thus tuning the wavelength and increasing the brightness of reflectance. In vitro, we show that reduction in repulsive net charge of the purified, recombinant reflectin – either (for the first time) by generalized anionic screening with salt, or by pH titration - drives a finely tuned, precisely calibrated increase in size of the resulting multimeric assemblies. The calculated effects of phosphorylation in vivo are consistent with these effects observed in vitro. X-ray scattering analyses confirm the sphericity, size and low polydispersity of the assemblies. Precise proportionality between assembly size and charge-neutralization is enabled by the demonstrated rapid dynamic arrest of multimer growth. The resulting stability of reflectin assemblies with time ensures reciprocally precise control of the particle number concentration, thereby encoding a precise calibration between the extent of neuronal signaling, osmotic pressure, and the resulting optical changes. The results presented here strongly suggest that it is charge neutralization, rather than any change in aromatic content, that is the proximate driver of assembly, fine-tuning a colligative property-based nanostructured biological machine. A physical mechanism is proposed.
My notes (saved in your browser only)
Citation neighborhood (sparse)
Too few in-corpus citations on either side for a chart; here are the lists.
Cited by (1)
References (32)
- doi:10.1016/j.cub.2007.03.034 via crossref
- doi:10.1098/rsif.2009.0299 via crossref
- doi:10.1016/j.biomaterials.2009.10.038 via crossref
- doi:10.1073/pnas.1217260110 via crossref
- doi:10.1098/rsif.2013.0386 via crossref
- doi:10.1242/jeb.090415 via crossref
- doi:10.1016/j.cub.2017.07.061 via crossref
- doi:10.1074/jbc.m115.686014 via crossref
- doi:10.1063/1.4985758 via crossref
- doi:10.1038/s41598-019-41638-8 via crossref
- doi:10.1074/jbc.m115.638254 via crossref
- doi:10.1126/science.1091288 via crossref
- doi:10.1016/j.cocis.2019.01.016 via crossref
- doi:10.1002/polb.23204 via crossref
- doi:10.1002/adma.201301472 via crossref
- doi:10.1002/adma.201601666 via crossref
- doi:10.1039/c5tc00125k via crossref
- doi:10.1021/acs.chemmater.6b01532 via crossref
- doi:10.1063/1.4997199 via crossref
- doi:10.1021/acsami.5b08717 via crossref
- doi:10.1038/nchem.1960 via crossref
- doi:10.1039/c6ra05405f via crossref
- doi:10.1021/acs.chemmater.6b00336 via crossref
- doi:10.1021/jacs.9b10892 via crossref
- doi:10.1021/acs.chemrev.6b00228 via crossref
- doi:10.1038/s41557-018-0196-3 via crossref
- doi:10.1021/acs.accounts.5b00350 via crossref
- doi:10.1038/ncomms8134 via crossref
- doi:10.1074/jbc.m111.250928 via crossref
- doi:10.1126/science.aav7897 via crossref
- doi:10.1107/s0021889812004037 via crossref
- doi:10.1107/s0021889809002222 via crossref
Cited by (1)
Source provenance
- crossref
- last seen: 2026-06-19T06:35:14.400532+00:00
- europepmc
- last seen: 2026-05-19T01:45:01.086888+00:00
- unpaywall
- last seen: 2026-05-22T02:00:06.705733+00:00
License: CC-BY-NC-ND-4.0