Evidence of excited-state lifetime enhancement in dimyristoyl-phosphocholine nanodiscs by ultraviolet absorption spectroscopy
Abstract
Ultraviolet absorption spectroscopy is an analytical tool that is commonly utilized to determine protein concentrations, primarily due to characteristic absorption of tryptophan and tyrosine at 280 nm. Accurate concentration determination is essential to the accuracy of many biophysical techniques, and ultraviolet absorption provides a convenient and rapid method to assess protein concentration. However, the widespread usage of this method assumes that ultraviolet absorption is the same for individual amino acids in aqueous solution (where the molar extinction coefficient was measured) as for the amino acid in the conformational environment of the protein of interest. We demonstrate that additional considerations may be necessary for the membrane scaffold protein in dimyristoyl-phosphocholine nanodiscs through ultraviolet absorption spectroscopy of nanodiscs, liposomes, the membrane scaffold protein, and a mixture of liposomes and the non-nanodisc-associated protein. The aromatic amino acids of the membrane scaffold protein absorb significantly less light at 280 nm when associated with lipids in a lipoprotein assembly, which we plausibly attribute to an enhancement of chromophore excited-state lifetimes due to reduced intramolecular motion in the nanodisc. We caution that using the molar absorptivity of the membrane scaffold protein alone to determine nanodisc concentrations may not yield accurate results. Instead, the molar absorptivity of each nanodisc formulation should be explored independently to account for the unique conformational environment of each nanodisc.
Additional Information
© 2023 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license. The authors gratefully acknowledge Ms. Kiersten D. Lenz, Dr. K. L. Kelvin Lee, and Mr. G. Stephen Kocheril for helpful discussions. This work was funded by the Laboratory Directed Research and Development Program of Los Alamos National Laboratory (Grant Nos. 20200300ER and 20220108ER). This work was performed at the Los Alamos National Laboratory, which is operated by Triad National Security, LLC, for the National Nuclear Security Administration of the U.S. Department of Energy (Contract No. 89233218CNA000001). The views expressed in this article are those of the authors and do not reflect the official policy or position of the U.S. Government. Author Contributions: P.A.K. designed the experiments. P.A.K. and M.I.H. performed the experiments and drafted the manuscript. J.K.S. provided resources and acquired funding. All authors have revised, edited, and approved of the final version of the manuscript. Philip A. Kocheril: Conceptualization (lead); Formal analysis (lead); Investigation (equal); Methodology (lead); Visualization (lead); Writing – original draft (lead). Miranda I. Hiller: Formal analysis (supporting); Investigation (equal); Methodology (supporting); Visualization (supporting); Writing – original draft (supporting). Jessica Z. Kubicek-Sutherland: Funding acquisition (lead); Project administration (lead); Resources (lead); Writing – review & editing (lead). DATA AVAILABILITY. The data that support the findings of this study are openly available in Figshare at http://doi.org/10.6084/m9.figshare.19896574. The authors have no conflicts of interest to declare.Attached Files
Published - 015124_1_online.pdf
Supplemental Material - download.zip
Files
015124_1_online.pdf
Additional details
Identifiers
- Eprint ID
- 119391
- Resolver ID
- CaltechAUTHORS:20230221-18908700.27
Related works
- Describes
- 10.6084/m9.figshare.19896574 (DOI)
Funding
- Los Alamos National Laboratory
- 20200300ER
- Los Alamos National Laboratory
- 20220108ER
- Department of Energy (DOE)
- 89233218CNA000001
Dates
- Created
-
2023-04-25Created from EPrint's datestamp field
- Updated
-
2023-04-25Created from EPrint's last_modified field