A protonic biotransducer controlling mitochondrial ATP synthesis.
Z Zhang1, H Kashiwagi2, S Kimura2
1Graduate School of Information, Production and Systems, Waseda University, Kitakyushu, Fukuoka, 808-0135, Japan.
Scientific Reports
|July 14, 2018
Summary
Researchers developed a proton (H+) biotransducer to control pH in mitochondria. This device successfully modulated ATP synthesis, offering new ways to interface electronics with biological systems.
Area of Science:
- Biophysics
- Bioelectronics
- Biotechnology
Background:
- Protons (H+) are crucial for biological processes like mitochondrial ATP synthesis and neuron cell function.
- Bioprotonic devices enable engineered interactions with biochemical processes by interfacing with H+ concentration (pH).
Purpose of the Study:
- To develop a novel H+ biotransducer for modulating pH within a mitochondrial matrix.
- To investigate the control of H+ flow between a conductive polymer and solution for pH manipulation.
Main Methods:
- Fabrication of an H+ biotransducer using sulfonated polyaniline.
- Controlling H+ flow between the conductive polymer and an aqueous solution to alter mitochondrial matrix pH.
- Monitoring and modulating the rate of ATP synthesis in isolated mitochondria.
Main Results:
- Successfully developed an H+ biotransducer capable of changing mitochondrial matrix pH.
- Demonstrated the ability to modulate the rate of ATP synthesis by altering solution pH.
- Established a functional interface between electronic devices and biological materials for pH control.
Conclusions:
- The H+ biotransducer offers a new method for monitoring and controlling pH-dependent biological functions.
- This technology bridges the gap between electronic devices and biological systems for advanced bioengineering applications.
- The developed biotransducer has potential applications in understanding and manipulating cellular energy production and signaling pathways.
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