2606004463
  • Open Access
  • Review

Architecting Biomimetic Proton Channels in Membranes for Energy and Environment Applications

  • Min Jian 1,2,   
  • Guozhen Liu 1,   
  • Jun Gao 2,*,   
  • Gongping Liu 1,*,   
  • Wanqin Jin 1

Received: 08 Apr 2026 | Revised: 08 May 2026 | Accepted: 30 Jun 2026 | Published: 25 Aug 2026

Abstract

Biological proton channels enable rapid and perfectly selective proton transport through highly confined and functionalized structures. Inspired by these natural systems, this review first elucidates the fundamental transport mechanisms underlying biological proton channels (e.g., Hv1, M2), emphasizing the role of hydrogen bonding networks and the Grotthuss mechanism. We then focus on the architectural design of biomimetic proton channels within membrane environments, systematically summarizing the evolution of these channels from one dimensional to two dimensional and three dimensional building blocks. Particular attention is paid to how these nanostructures are integrated into membrane matrices to break the traditional trade-off between proton conductivity and selectivity. Furthermore, the review highlights the critical role of these biomimetic membranes in energy and environment applications, including energy conversion, osmotic energy harvesting, and waste acid recovery. Finally, we provide perspectives on the challenges of long term stability and large scale fabrication for the practical implementation of these bio-inspired membrane technologies.

References 

  • 1.

    Wang, J.; Zhou, H.; Li, S.; et al. Selective Ion Transport in Two-Dimensional Lamellar Nanochannel Membranes. Angew. Chem. Int. Ed. 2023, 62, e202218321.

  • 2.

    Zhang, H.; Li, X.; Hou, J.; et al. Angstrom-Scale Ion Channels towards Single-Ion Selectivity. Chem. Soc. Rev. 2022, 51, 2224–2254.

  • 3.

    Fu, Q.; Ma, Z.; Gao, J.; et al. Biomimetic Ion Channels with Subnanometer Sizes for Ion Sieving: A Mini-Review. Nanoscale 2025, 17, 9021–9039.

  • 4.

    Li, Q.; Zhou, K.; Zhu, B.; et al. Artificial Sodium Channels for Enhanced Osmotic Energy Harvesting. J. Am. Chem. Soc. 2023, 145, 28038–28048.

  • 5.

    Zhang, M.; Zhao, P.; Li, P.; et al. Designing Biomimic Two-Dimensional Ionic Transport Channels for Efficient Ion Sieving. ACS Nano 2021, 15, 5209–5220.

  • 6.

    Seema, S.; Thangesh, T.; Anuradha, R.; et al. Ageing Effect of Proton Exchange Membrane Nafion 117 in Different Solutions. Nanotechnol. Percept. 2024, 20, 1423–1430.

  • 7.

    Mao, X.; Zhang, L.; Xu, C.; et al. H2O-Induced Transformation of Superstructured MOFs into Self-Standing, Superprotonic Conducting Membranes for Hydrogen Fuel Cells. Adv. Funct. Mater. 2025, 35, 2507959.

  • 8.

    Nagle, J.F.; Tristram-Nagle, S. Hydrogen Bonded Chain Mechanisms for Proton Conduction and Proton Pumping. J. Membr. Biol. 1983, 74, 1–14.

  • 9.

    Nagle, J.F.; Morowitz, H.J. Molecular Mechanisms for Proton Transport in Membranes. Proc. Natl. Acad. Sci. USA 1978, 75, 298–302.

  • 10.

    Shimbo, K.; Brassard, D.L.; Lamb, R.A.; et al. Ion Selectivity and Activation of the M2 Ion Channel of Influenza Virus. Biophys. J. 1996, 70, 1335–1346.

  • 11.

    DeCoursey, T.E. Transcendent Aspects of Proton Channels. Annu. Rev. Physiol. 2024, 86, 357–377.

  • 12.

    Gutman, M.; Nachliel, E. The Dynamic Aspects of Proton Transfer Processes. Biochim. Biophys. Acta 1990, 1015, 391–414.

  • 13.

    de Grotthuss, C.J.T. Memoir on the Decomposition of Water and of the Bodies That It Holds in Solution by Means of Galvanic Electricity. Biochim. Biophys. Acta 2006, 1757, 871–875.

  • 14.

    Koch, H.P.; Kurokawa, T.; Okochi, Y.; et al. Multimeric Nature of Voltage-Gated Proton Channels. Proc. Natl. Acad. Sci. USA 2008, 105, 9111–9116.

  • 15.

    Tombola, F.; Ulbrich, M.H.; Isacoff, E.Y. The Voltage-Gated Proton Channel Hv1 Has Two Pores, Each Controlled by One Voltage Sensor. Neuron 2008, 58, 546–556.

  • 16.

    DeCoursey, T.E. Voltage-Gated Proton Channels and Other Proton Transfer Pathways. Physiol. Rev. 2003, 83, 475–579.

  • 17.

    Musset, B.; Smith, S.M.E.; Rajan, S.; et al. Aspartate 112 Is the Selectivity Filter of the Human Voltage-Gated Proton Channel. Nature 2011, 480, 273–277.

  • 18.

    Shen, Y.; Luo, Y.; Liao, P.; et al. Role of the Voltage-Gated Proton Channel Hv1 in Nervous Systems. Neurosci. Bull. 2023, 39, 1157–1172.

  • 19.

    DeCoursey, T.E. Voltage-Gated Proton Channels: Molecular Biology, Physiology, and Pathophysiology of the Hv Family. Physiol. Rev. 2013, 93, 599–652.

  • 20.

    Pinto, L.H.; Dieckmann, G.R.; Gandhi, C.S.; et al. A Functionally Defined Model for the M2 Proton Channel of Influenza A Virus Suggests a Mechanism for Its Ion Selectivity. Proc. Natl. Acad. Sci. USA 1997, 94, 11301–11306.

  • 21.

    Stouffer, A.L.; Acharya, R.; Salom, D.; et al. Structural Basis for the Function and Inhibition of an Influenza Virus Proton Channel. Nature 2008, 451, 596–599.

  • 22.

    Hu, F.; Luo, W.; Hong, M. Mechanisms of Proton Conduction and Gating in Influenza M2 Proton Channels from Solid-State NMR. Science 2010, 330, 505–508.

  • 23.

    Cady, S.D.; Schmidt-Rohr, K.; Wang, J.; et al. Structure of the Amantadine Binding Site of Influenza M2 Proton Channels in Lipid Bilayers. Nature 2010, 463, 689–692.

  • 24.

    Liang, R.; Swanson, J.M.J.; Madsen, J.J.; et al. Acid Activation Mechanism of the Influenza A M2 Proton Channel. Proc. Natl. Acad. Sci. USA 2016, 113, E6955–E6964.

  • 25.

    Mould, J.A.; Drury, J.E.; Frings, S.M.; et al. Permeation and Activation of the M2 Ion Channel of Influenza A Virus. J. Biol. Chem. 2000, 275, 31038–31050.

  • 26.

    Schnell, J.R.; Chou, J.J. Structure and Mechanism of the M2 Proton Channel of Influenza A Virus. Nature 2008, 451, 591–595.

  • 27.

    Vijayvergiya, V.; Wilson, R.; Chorak, A.; et al. Proton Conductance of Influenza Virus M2 Protein in Planar Lipid Bilayers. Biophys. J. 2004, 87, 1697–1704.

  • 28.

    Jeong, B.-S.; Dyer, R.B. Proton Transport Mechanism of M2 Proton Channel Studied by Laser-Induced pH Jump. J. Am. Chem. Soc. 2017, 139, 6621–6628.

  • 29.

    Thomaston, J.L.; Polizzi, N.F.; Konstantinidi, A.; et al. Inhibitors of the M2 Proton Channel Engage and Disrupt Transmembrane Networks of Hydrogen-Bonded Waters. J. Am. Chem. Soc. 2018, 140, 15219–15226.

  • 30.

    Weiss, A.; Sakai, N.; Ghebremariam, B.; et al. Rigid Rod-Shaped Polyols: Functional Nonpeptide Models for Transmembrane Proton Channels. J. Am. Chem. Soc. 1997, 119, 12142–12149.

  • 31.

    Sakai, N.; Mareda, J.; Matile, S. Rigid-Rod Molecules in Bio-Membrane Models: From Hydrogen-Bonded Chains to Synthetic Multifunctional Pores. Acc. Chem. Res. 2005, 38, 79–87.

  • 32.

    Si, W.; Chen, L.; Hu, X.-B.; et al. Selective Artificial Transmembrane Channels for Protons by Formation of Water Wires. Angew. Chem. Int. Ed. 2011, 50, 12564–12568.

  • 33.

    Yan, Z.-J.; Wang, D.; Ye, Z.; et al. Artificial Aquaporin That Restores Wound Healing of Impaired Cells. J. Am. Chem. Soc. 2020, 142, 15638–15643.

  • 34.

    Shen, J.; Ye, R.; Liu, Z.; et al. Hybrid Pyridine-Pyridone Foldamer Channels as M2-like Artificial Proton Channels. Angew. Chem. Int. Ed. 2022, 61, e202200259.

  • 35.

    Shen, J.; Fan, J.; Ye, R.; et al. Polypyridine-Based Helical Amide Foldamer Channels: Rapid Transport of Water and Protons with High Ion Rejection. Angew. Chem. Int. Ed. 2020, 59, 13328–13334.

  • 36.

    Censor, S.; Martin, J.; Silberbush, O.; et al. Long-Range Proton Channels Constructed via Hierarchical Peptide Self-Assembly. Adv. Mater. 2024, 36, 2409248.

  • 37.

    Tunuguntla, R.H.; Allen, F.I.; Kim, K.; et al. Ultrafast Proton Transport in Sub-1-nm Diameter Carbon Nanotube Porins. Nat. Nanotechnol. 2016, 11, 639–644.

  • 38.

    Li, Q.; Zhao, Y.; Zhou, B.; et al. Covalent Organic Framework Interlayer Spacings as Perfectly Selective Artificial Proton Channels. Angew. Chem. Int. Ed. 2024, 63, e202402094.

  • 39.

    Shi, B.; Pang, X.; Li, S.; et al. Short Hydrogen-Bond Network Confined on COF Surfaces Enables Ultrahigh Proton Conductivity. Nat. Commun. 2022, 13, 6666.

  • 40.

    Jian, M.; Ding, X.; Li, Q.; et al. Artificial Proton Channel Membrane with Self-Amplified Selectivity for Simultaneous Waste Acid Recovery and Power Generation. ACS Nano 2025, 19, 16405–16414.

  • 41.

    Qian, Y.; Wu, S.; Qiu, X.; et al. A Bioinspired Free-Standing 2D Crown-Ether-Based Polyimine Membrane for Selective Proton Transport. Angew. Chem. Int. Ed. 2023, 62, e202300167.

  • 42.

    Lei, D.; Wang, Y.; Zhang, Q.; et al. High-Performance Solid-State Proton Gating Membranes Based on Two-Dimensional Hydrogen-Bonded Organic Framework Composites. Nat. Commun. 2025, 16, 754.

  • 43.

    Sun, S.; Zhang, Y.; Wang, M.; et al. Design and Fabrication of Metal-Organic Framework UiO-66 Membranes for Advanced Separation. Sustain. Eng. Novit 2026, 2, 3.

  • 44.

    Su, Y.; Shi, Y.; Jin, L.; et al. Unlocking the Potential of MOFs for Waste Plastic Resource Utilization and Microplastic Pollution Control. Sustain. Eng. Novit 2026, 2, 4.

  • 45.

    Li, X.; Zhang, H.; Hou, J.; et al. Sulfonated Sub-1-nm Metal-Organic Framework Channels with Ultrahigh Proton Selectivity. J. Am. Chem. Soc. 2020, 142, 9827–9833.

  • 46.

    Lu, J.; Xu, H.; Yu, H.; et al. Ultrafast Rectifying Counter-Directional Transport of Proton and Metal Ions in Metal-Organic Framework–Based Nanochannels. Sci. Adv. 2022, 8, eabl5070.

  • 47.

    Li, Y.-L.; Lu, J.-F.; Yin, Q.; et al. Constructing Biomimetic Channels in Hydrogen-Bonded Organic Framework via Post-Synthesis for Enhanced Proton Conductivity. Angew. Chem. Int. Ed. 2025, 64, e202504396.

  • 48.

    Yang, J.; Xu, H.; Li, J.; et al. Oxygen- and Proton-Transporting Open Framework Ionomer for Medium-Temperature Fuel Cells. Science 2024, 385, 1115–1120.

  • 49.

    Chen, G.; Zhu, H.; Liu, G.; et al. Confinement Effects and Manipulation Strategies of Nanocomposite Membranes towards Molecular Separation. Angew. Chem. Int. Ed. 2025, 64, e202418649.

  • 50.

    Jiang, W.; Ding, X.; Huang, Z.; et al. Bioinspired Chloride-Assisted Protein Channels: Enhancing Proton Transport for Sustainable Energy Harvesting from Acidic Wastewater. J. Am. Chem. Soc. 2025, 147, 12604–12613.

  • 51.

    Chen, C.; Yang, G.; Liu, D.; et al. Aramid Nanofiber Membranes for Energy Harvesting from Proton Gradients. Adv. Funct. Mater. 2022, 32, 2102080.

  • 52.

    Hou, Q.; Dai, Y.; Zhang, X.; et al. Commercial Nafion Membranes for Harvesting Osmotic Energy from Proton Gradients That Exceed the Commercial Goal of 5.0 W/m2. ACS Nano 2024, 18, 12580–12587.

  • 53.

    Mogg, L.; Hao, G.-P.; Geim, A.K.; et al. Atomically Thin Micas as Proton-Conducting Membranes. Nat. Nanotechnol. 2019, 14, 962–966.

  • 54.

    Wu, S.; Meng, Q.-W.; Liu, M.; et al. Guanidinium-Based Covalent Organic Framework Membrane for Single-Acid Recovery. Sci. Adv. 2023, 9, eadh0207.

Share this article:
How to Cite
Jian, M.; Liu, G.; Gao, J.; Liu, G.; Jin, W. Architecting Biomimetic Proton Channels in Membranes for Energy and Environment Applications. Sustainable Engineering Novit 2026, 2 (3), 2. https://doi.org/10.53941/sen.2026.100013.
RIS
BibTex
Copyright & License
article copyright Image
Copyright (c) 2026 by the authors.