Deep-tissue high-sensitivity multimodal imaging and optogenetic manipulation enabled by biliverdin reductase knockout.

Kasatkina, Ludmila A; Ma, Chenshuo; Sheng, Huaxin; Lowerison, Matthew; Menozzi, Luca; Baloban, Mikhail; Tang, Yuqi; Xu, Yirui et al. · Nat Commun · 2025

basic_science · Level V

Where this comes from

Abstract

Performance of near-infrared probes and optogenetic tools derived from bacterial phytochromes is limited by availability of their biliverdin chromophore. To address this, we use a biliverdin reductase-A knock-out mouse model (Blvra<sup>-/-</sup>), which elevates endogenous biliverdin levels. We show that Blvra⁻/⁻ significantly enhances function of bacterial phytochrome-based systems. Light-controlled transcription using iLight optogenetic tool improves ~25-fold in Blvra<sup>-/-</sup> cells, compared to wild-type controls, and achieves ~100-fold activation in neurons. Light-induced insulin production in Blvra<sup>-/-</sup> mice reduces blood glucose by ~60% in diabetes model. To overcome depth limitations in imaging, we employ 3D photoacoustic, ultrasound, and two-photon fluorescence microscopy. This enables simultaneous photoacoustic imaging of DrBphP in neurons and super-resolution ultrasound localization microscopy of brain vasculature at depths of ~7 mm through intact scalp and skull. Two-photon microscopy achieves cellular resolution of miRFP720-expressing neurons at ~2.2 mm depth. Overall, Blvra<sup>-/-</sup> model represents powerful platform for improving efficacy of biliverdin-dependent tools for deep-tissue imaging and optogenetic manipulation.

Medical subject headings