Interactive computational and experimental approaches improve the sensitivity of periplasmic binding protein-based nicotine biosensors for measurements in biofluids

Author:

Haloi Nandan1,Huang Shan2,Nichols Aaron L2,Fine Eve J2,Friesenhahn Nicholas J3ORCID,Marotta Christopher B3,Dougherty Dennis A3,Lindahl Erik14,Howard Rebecca J4,Mayo Stephen L2ORCID,Lester Henry A2ORCID

Affiliation:

1. KTH Royal Institute of Technology Department of Applied Physics, Science for Life Laboratory, , Stockholm 10044, Sweden

2. California Institute of Technology Division of Biology and Biological Engineering, , Pasadena, CA 91125, USA

3. California Institute of Technology Division of Chemistry and Chemical Engineering, , Pasadena, CA 91125, USA

4. Stockholm University Department of Biochemistry and Biophysics, Science for Life Laboratory, , Stockholm 10691, Sweden

Abstract

Abstract We developed fluorescent protein sensors for nicotine with improved sensitivity. For iNicSnFR12 at pH 7.4, the proportionality constant for ∆F/F0vs [nicotine] (δ-slope, 2.7 μM−1) is 6.1-fold higher than the previously reported iNicSnFR3a. The activated state of iNicSnFR12 has a fluorescence quantum yield of at least 0.6. We measured similar dose-response relations for the nicotine-induced absorbance increase and fluorescence increase, suggesting that the absorbance increase leads to the fluorescence increase via the previously described nicotine-induced conformational change, the ‘candle snuffer’ mechanism. Molecular dynamics (MD) simulations identified a binding pose for nicotine, previously indeterminate from experimental data. MD simulations also showed that Helix 4 of the periplasmic binding protein (PBP) domain appears tilted in iNicSnFR12 relative to iNicSnFR3a, likely altering allosteric network(s) that link the ligand binding site to the fluorophore. In thermal melt experiments, nicotine stabilized the PBP of the tested iNicSnFR variants. iNicSnFR12 resolved nicotine in diluted mouse and human serum at 100 nM, the peak [nicotine] that occurs during smoking or vaping, and possibly at the decreasing levels during intervals between sessions. NicSnFR12 was also partially activated by unidentified endogenous ligand(s) in biofluids. Improved iNicSnFR12 variants could become the molecular sensors in continuous nicotine monitors for animal and human biofluids.

Funder

Swedish e-Science Research Centre (SeRC), and the BioExcel Center of Excellence

Knut and Alice Wallenberg Foundation, the Swedish Research Council

Marie Sklodowska-Curie Postdoctoral Fellowship

Swedish National Infrastructure for Computing

Karolina through EuroHPC

California Tobacco-Related Disease Research Program

National Institute of General Medical Sciences

National Institute on Drug Abuse

California TRDRP

Publisher

Oxford University Press (OUP)

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