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April 27, 2026Nature Communications0 citationsOpen Access

Engineered conductive pili enable high-efficiency photosynthetic electron extraction in biophotovoltaics

HWHaowei WangYZYanping ZhangYLYin Li

Key Points

  • This research aims to improve electron extraction efficiency from photosynthetic microorganisms in biophotovoltaics by creating better interfaces using engineered conductive pili.
  • Engineered a genetically encoded gold-binding peptide to attach gold nanoparticles onto Synechocystis sp. PCC 6803 pili.
  • Created a conductive interface to enhance electron transfer between photosynthetic electron transport chains and electrodes.
  • Assessed photocurrent density and material efficiency during experiments.
  • Achieved a four-fold increase in photocurrent density with minimal gold usage.
  • Demonstrated that gold nanoparticles can be transferred from inactivated to fresh cells, indicating potential for long-term stability.
  • Showed improvements in interfacial charge transfer and increased biofilm density.

Abstract

Abstract The efficient extraction of electrons from photosynthetic microorganisms remains a critical challenge in living biophotovoltaics (BPV). While nanomaterials can facilitate electron transport, their stochastic adsorption leads to inefficient material-wasteful interfaces. Here, we demonstrate a controllable approach to direct the targeted assembly of gold nanoparticles (AuNPs) onto the type IV pili of Synechocystis sp. PCC 6803 by using a genetically encoded gold-binding peptide. This approach creates a spatially precise conductive nano-bio interface on the cell envelope that serves as a dedicated electron conduit between photosynthetic electron transport chains (PETCs) and electrodes. This nano-bio interface enhances electron transfer through synergistic improvements in interfacial charge transfer and biofilm density, ultimately yielding a four-fold increase in photocurrent density, while using two orders of magnitude less gold than non-targeted strategies. Moreover, the AuNPs can be transferred from inactivated to fresh cells, indicating a potential pathway for long-term stability. This work establishes a generalizable strategy for the rational design of conductive interfaces on living cells, with implications for biophotovoltaics, microbial electrosynthesis, and next-generation biohybrid devices.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69eefdd1fede9185760d4971https://doi.org/10.1038/s41467-026-72407-7
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