ionic conductance
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Matter ◽  
2021 ◽  
Author(s):  
Fanfan Chen ◽  
Zonglin Gu ◽  
Chunxiao Zhao ◽  
Yuang Chen ◽  
Xiaowei Jiang ◽  
...  
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2020 ◽  
Vol 7 (16) ◽  
pp. 3535-3538
Author(s):  
Xudong Fu ◽  
Zhangxun Xia ◽  
Qingting Liu ◽  
Suli Wang ◽  
Gongquan Sun

2020 ◽  
Vol 152 (10) ◽  
Author(s):  
Maria A. Neginskaya ◽  
Jasiel O. Strubbe ◽  
Giuseppe F. Amodeo ◽  
Benjamin A. West ◽  
Shoshana Yakar ◽  
...  

Mitochondrial permeability transition (PT) is a phenomenon of stress-induced increase in nonspecific permeability of the mitochondrial inner membrane that leads to disruption of oxidative phosphorylation and cell death. Quantitative measurement of the membrane permeability increase during PT is critically important for understanding the PT’s impact on mitochondrial function. The elementary unit of PT is a PT pore (PTP), a single channel presumably formed by either ATP synthase or adenine nucleotide translocator (ANT). It is not known how many channels are open in a single mitochondrion during PT, which makes it difficult to quantitatively estimate the overall degree of membrane permeability. Here, we used wide-field microscopy to record mitochondrial swelling and quantitatively measure rates of single-mitochondrion volume increase during PT-induced high-amplitude swelling. PT was quantified by calculating the rates of water flux responsible for measured volume changes. The total water flux through the mitochondrial membrane of a single mitochondrion during PT was in the range of (2.5 ± 0.4) × 10−17 kg/s for swelling in 2 mM Ca2+ and (1.1 ± 0.2) × 10−17 kg/s for swelling in 200 µM Ca2+. Under these experimental conditions, a single PTP channel with ionic conductance of 1.5 nS could allow passage of water at the rate of 0.65 × 10−17 kg/s. Thus, we estimate the integral ionic conductance of the whole mitochondrion during PT to be 5.9 ± 0.9 nS for 2 mM concentration of Ca2+ and 2.6 ± 0.4 nS for 200 µM of Ca2+. The number of PTPs per mitochondrion ranged from one to nine. Due to the uncertainties in PTP structure and model parameters, PTP count results may be slightly underestimated. However, taking into account that each mitochondrion has ∼15,000 copies of ATP synthases and ANTs, our data imply that PTP activation is a rare event that occurs only in a small subpopulation of these proteins.


Author(s):  
Kherim Willems ◽  
Dino Ruić ◽  
Florian Lucas ◽  
Ujjal Barman ◽  
Johan Hofkens ◽  
...  

AbstractIn recent years, the protein nanopore cytolysin A (ClyA) has become a valuable tool for the detection, characterization and quantification of biomarkers, proteins and nucleic acids at the single-molecule level. Despite this extensive experimental utilization, a comprehensive computational study of ion and water transport through ClyA is currently lacking. Such a study yields a wealth of information on the electrolytic conditions inside the pore and on the scale the electrophoretic forces that drive molecular transport. To this end we have built a computationally efficient continuum model of ClyA which, together with an extended version of Poison-Nernst-Planck-Navier-Stokes (ePNP-NS) equations, faithfully reproduces its ionic conductance over a wide range of salt concentrations. These ePNP-NS equations aim to tackle the shortcomings of the traditional PNP-NS models by self-consistently taking into account the influence of both the ionic strength and the nanoscopic scale of the pore on all relevant electrolyte properties. In this study, we give both a detailed description of our ePNP-NS model and apply it to the ClyA nanopore. This enabled us to gain a deeper insight into the influence of ionic strength and applied voltage on the ionic conductance through ClyA and a plethora of quantities difficult to assess experimentally. The latter includes the cation and anion concentrations inside the pore, the shape of the electrostatic potential landscape and the magnitude of the electro-osmotic flow. Our work shows that continuum models of biological nanopores—if the appropriate corrections are applied—can make both qualitatively and quantitatively meaningful predictions that could be valuable tool to aid in both the design and interpretation of nanopore experiments.


2020 ◽  
Vol 56 (24) ◽  
pp. 3508-3511 ◽  
Author(s):  
Yujuan Qiao ◽  
Jiahao Lu ◽  
Wenjie Ma ◽  
Yifei Xue ◽  
Yanan Jiang ◽  
...  

A smart mixed-dimensional heterogeneous membrane is fabricated, through which the ionic conductance and rectification can be precisely and robustly modulated by visible light of 420 nm wavelength with different power intensities simultaneously.


2020 ◽  
Vol 22 (2) ◽  
pp. 437-445
Author(s):  
Iván Santamaría-Holek ◽  
Aldo Ledesma-Durán ◽  
S. I. Hernández ◽  
C. García-Alcántara ◽  
Andreu Andrio ◽  
...  

The change in entropic restrictions in a superprotonic transition controls the increase of the ionic conductance in ionic solids.


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