Quick Navigation
Topics
Quantum Chemistry
Intracellular Proton Enrichment Drives Unified Dual-Cofactor Regeneration for Biohybrid CO(2) Fixation.
PubMed
Authors: Bian X, Qiu C, Yang B, Hou Y, Lei L, Li Z
Year
2026
Paper ID
75950
Status
Peer-reviewed
Abstract Read
~2 min
Abstract Words
199
Citations
N/A
Abstract
Photocatalytic biohybrid systems, which interface photosensitizers with whole-cell biocatalysts, represent a platform for sustainable solar-to-chemical CO conversion. However, their efficiency is fundamentally constrained by kinetic mismatch between sluggish transmembrane electron injection and uncoupled proton flux required for bioenergetic transduction. This uncoupling restricts the regeneration of adenosine triphosphate (ATP) and reduced nicotinamide adenine dinucleotide (NADH), the dual cofactors essential for driving carbon fixation pathways. Here, we introduce a proton enrichment strategy utilizing protonated manganese-doped carbon dots (HMnCDs) that function simultaneously as reversible proton buffers and photoelectron donors. HMnCDs localize to the periplasm of Cupriavidus necator H16, where their labile protons reinforce the transmembrane proton gradient driving ATP synthase. Concurrently, cytoplasmic HMnCDs facilitate proton-coupled electron transfer, accelerating NADH photoregeneration. The concerted management of proton and electron fluxes decouples ATP generation from respiratory NADH oxidation, creating a synergistic cofactor supply even under electron transport chain inhibition. Consequently, the biohybrid achieves light-driven autotrophic growth and poly(3-hydroxybutyrate) biosynthesis from CO, attaining a record quantum efficiency of 20.8%. Multi-omics analyses reveal global metabolic reprogramming, including upregulated carbon fixation pathways and adaptive modulation of energy homeostasis under the proton-enriched microenvironment. This work establishes proton enrichment as a generalizable design principle for coupling photochemistry with cellular bioenergetics.
Why This Paper Matters
- This paper contributes to the Quantum Chemistry research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- Photocatalytic biohybrid systems, which interface photosensitizers with whole-cell biocatalysts, represent a platform for sustainable solar-to-chemical CO conversion.
Paper Tools
Become a member to use research tools
Sign in to open papers, visit source links, share, cite, compare, copy DOI links, request category corrections, and build your reading list.
Publisher Share
Cite This Paper
Copy URL
Compare
Copy DOI Add to Reading List
Category Correction Request
Category Correction Request
Help us improve classification quality by proposing a better category. Every request is reviewed by an admin.
Sign in to submit a category correction request for this paper.
Log In to SubmitReferences & Citation Signals
Community Reactions
Quick sentiment from readers on this paper.
Score:
0
Likes: 0
Dislikes: 0
Sign in to react to this paper.
Discussion & Reviews (Moderated)
Average Rating: 0.0 / 5 (0 ratings)
No written reviews yet.