Excited-State Dynamics of a CRABPII-Based Microbial Rhodopsin Mimic

Gaoshang Li1, Jiajia Meng1, Shuang Yu2

  • 1Center for Quantum Technology Research, Key Laboratory of Advanced Optoelectronic Quantum Architecture and Measurements (MOE), School of Physics, Beijing Institute of Technology, Beijing 100081, China.

Insights

This study investigates a CRABPII-based mimic of microbial rhodopsin. While showing similar photoreaction patterns, the mimic exhibits slower isomerization and unusual dynamics compared to natural rhodopsins.

Area of Science:

  • Biochemistry and biophysics
  • Photochemistry
  • Molecular dynamics

Background:

  • Microbial rhodopsins are crucial photoreceptors with broad applications.
  • Current transmembrane rhodopsins pose challenges for mechanistic studies and applications.
  • CRABPII-based mimics offer a stable and synthesizable alternative for studying rhodopsin function.

Purpose of the Study:

  • To investigate the excited-state dynamics of the CRABPII-based mimic M1-L121E.
  • To compare the photoreaction mechanism of the mimic with natural microbial rhodopsins.
  • To elucidate the similarities and differences in excited-state dynamics and photoreaction pathways.

Main Methods:

  • Transient absorption spectroscopy was employed to measure excited-state dynamics.
  • The study analyzed the photoreaction processes in both protonated Schiff base (PSB) and unprotonated Schiff base (USB) states.
  • Comparative analysis of isomerization times between the mimic and native microbial rhodopsins was performed.

Main Results:

  • The M1-L121E mimic exists in both protonated Schiff base (PSB) and unprotonated Schiff base (USB) states at pH 8.
  • Photoreaction from 13-cis, syn (13C) to all-trans, anti (AT) is faster than the inverse in both states.
  • PSB state photoreaction is faster than USB; mimic shows general PSB isomerization similarity to native rhodopsins but with slower rates and unusual USB dynamics.

Conclusions:

  • The CRABPII-based mimic M1-L121E shares some photoreaction characteristics with microbial rhodopsins.
  • Significant differences in isomerization rates and USB photoreaction dynamics were observed.
  • Understanding these distinctions is key to refining microbial rhodopsin mimics for future applications.