Measurement of the low-frequency charge noise of bacteria

被引:1
|
作者
Yang, Yichao
Gress, Hagen
Ekinci, Kamil L. [1 ]
机构
[1] Boston Univ, Dept Mech Engn, Div Mat Sci & Engn, Boston, MA 02215 USA
关键词
ESCHERICHIA-COLI; 1/F NOISE; ELECTRIC-FIELDS; ION CHANNELS; RESISTANCE; FLUCTUATIONS; DYNAMICS; STATE; CONDUCTIVITY; IMPEDANCE;
D O I
10.1103/PhysRevE.105.064413
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Bacteria meticulously regulate their intracellular ion concentrations and create ionic concentration gradients across the bacterial membrane. These ionic concentration gradients provide free energy for many cellular processes and are maintained by transmembrane transport. Given the physical dimensions of a bacterium and the stochasticity in transmembrane transport, intracellular ion concentrations and hence the charge state of a bacterium are bound to fluctuate. Here we investigate the charge noise of hundreds of nonmotile bacteria by combining electrical measurement techniques from condensed matter physics with microfluidics. In our experiments, bacteria in a microchannel generate charge density fluctuations in the embedding electrolyte due to random influx and efflux of ions. Detected as electrical resistance noise, these charge density fluctuations display a power spectral density proportional to 1/f(2) for frequencies 0.05 Hz <= f <= 1 Hz. Fits to a simple noise model suggest that the steady-state charge of a bacterium fluctuates by +/- 1.30 x 10(6)e (e approximate to 1.60 x 10(-19) C), indicating that bacterial ion homeostasis is highly dynamic and dominated by strong charge noise. The rms charge noise can then be used to estimate the fluctuations in the membrane potential; however, the estimates are unreliable due to our limited understanding of the intracellular concentration gradients.
引用
收藏
页数:20
相关论文
共 50 条
  • [31] LOW-FREQUENCY NOISE FIELDS
    CAREY, WM
    WAGSTAFF, RA
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1986, 80 (05): : 1523 - 1526
  • [32] LOW-FREQUENCY GROWTH NOISE
    PAPOULAR, M
    EUROPHYSICS LETTERS, 1986, 1 (05): : 215 - 220
  • [33] LOW-FREQUENCY NOISE THRESHOLDS
    YEOWART, NS
    BRYAN, ME
    TEMPEST, W
    JOURNAL OF SOUND AND VIBRATION, 1969, 9 (03) : 447 - &
  • [34] Measurement and study of low-frequency noise in TMR magnetic field sensor
    Cao Jiang-Wei
    Wang Rui
    Wang Ying
    Bai Jian-Min
    Wei Fu-Lin
    ACTA PHYSICA SINICA, 2016, 65 (05)
  • [35] MEASUREMENT OF COSMIC RADIO NOISE SPECTRUM NEAR LOW-FREQUENCY TURNOVER
    ALEXANDER, JK
    WEBER, RR
    STONE, RG
    ASTRONOMICAL JOURNAL, 1967, 72 (03): : 289 - +
  • [36] Measurement of low-frequency noise during CNC machining and its assessment
    Sinay, Juraj
    Balazikova, Michaela
    Dulebova, Martina
    Markulik, Stefan
    Kotianova, Zuzana
    MEASUREMENT, 2018, 119 : 190 - 195
  • [37] A review of design approaches for the implementation of low-frequency noise measurement systems
    Scandurra, G.
    Ciofi, C.
    Smulko, J.
    Wen, H.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2022, 93 (11):
  • [38] Development and characterzation of a low-frequency noise measurement system for optoelectronic devices
    Jankovec, Marko
    Topic, Marko
    INFORMACIJE MIDEM-JOURNAL OF MICROELECTRONICS ELECTRONIC COMPONENTS AND MATERIALS, 2007, 37 (02): : 80 - 86
  • [39] SINE-WAVE GENERATOR FOR AC MEASUREMENT OF LOW-FREQUENCY NOISE
    BEZRUKOV, SM
    KHAVRONIN, VP
    INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 1989, 32 (06) : 1335 - 1336
  • [40] Suppression of low-frequency charge noise in superconducting resonators by surface spin desorption
    S. E. de Graaf
    L. Faoro
    J. Burnett
    A. A. Adamyan
    A. Ya. Tzalenchuk
    S. E. Kubatkin
    T. Lindström
    A. V. Danilov
    Nature Communications, 9