open access publication

Article, 2024

Unveiling PET Hydrolase Surface Dynamics through Fluorescence Microscopy

ChemBioChem, ISSN 1439-7633, 1439-4227, Volume 25, 5, Page e202300661, 10.1002/cbic.202300661

Contributors

Rennison, Andrew Philip 0000-0003-4818-2483 [1] Nousi, Aimilia 0000-0001-5208-294X [1] Westh, Peter 0000-0002-6185-0637 (Corresponding author) [1] Marie, Rodolphe M 0000-0002-8338-1990 (Corresponding author) [1] Møller, Marie Sofie 0000-0001-9017-3367 (Corresponding author) [1]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

PET hydrolases are an emerging class of enzymes that are being heavily researched for their use in bioprocessing polyethylene terephthalate (PET). While work has been done in studying the binding of PET oligomers to the active site of these enzymes, the dynamics of PET hydrolases binding to a bulk PET surface is an unexplored area. Here, methods were developed for total internal reflection fluorescence (TIRF) microscopy and fluorescence recovery after photobleaching (FRAP) microscopy to study the adsorption and desorption dynamics of these proteins onto a PET surface. TIRF microscopy was employed to measure both on and off rates of two of the most commonly studied PET hydrolases, PHL7 and LCC, on a PET surface. It was found that these proteins have a much slower off rates on the order of 10-3  s-1 , comparable to non-productive binding in enzymes such as cellulose. In combination with FRAP microscopy, a dynamic model is proposed in which adsorption and desorption dominates over lateral diffusion over the surface. The results of this study could have implications for the future engineering of PET hydrolases, either to target them to a PET surface or to modulate interaction with their substrate.

Keywords

FRAP, FRAP microscopy, LCC, PET hydrolases, PET oligomers, TIRF, TIRF microscopy, active site, adsorption, area, binding, cellulose, combination, desorption, desorption dynamics, diffusion, dynamic model, dynamics, engineering, enzyme, fluorescence, fluorescence microscopy, fluorescence recovery, hydrolase, interaction, lateral diffusion, method, microscopy, model, modulate interactions, oligomers, photobleaching, polyethylene terephthalate, polyethylene terephthalate surfaces, protein, rate, recovery, results, sites, study, substrate, surface, surface dynamics, terephthalate

Funders

  • Danish Agency for Science and Higher Education
  • Novo Nordisk Foundation

Data Provider: Digital Science