PH-dependent cell–cell interactions in the green alga Chara

被引:0
|
作者
Alexey Eremin
Alexander A. Bulychev
Christopher Kluge
Jeremy Harbinson
Ilse Foissner
机构
[1] Otto von Guericke University of Magdeburg,Institute of Physics
[2] Moscow State University,Department of Biophysics, Faculty of Biology
[3] University of Wageningen,Department of Plant Sciences
[4] University of Salzburg,Department of Biosciences
来源
Protoplasma | 2019年 / 256卷
关键词
Characean internodal cells; Charasomes; Kinetics of alkaline band formation; Mitochondria; Mutual interactions; pH banding pattern; Photosynthetic activity Y(II);
D O I
暂无
中图分类号
学科分类号
摘要
Characean internodal cells develop alternating patterns of acid and alkaline zones along their surface in order to facilitate uptake of carbon required for photosynthesis. In this study, we used a pH-indicating membrane dye, 4-heptadecylumbiliferone, to study the kinetics of alkaline band formation and decomposition. The differences in growth/decay kinetics suggested that growth occurred as an active, autocatalytic process, whereas decomposition was due to diffusion. We further investigated mutual interactions between internodal cells and found that their alignment parallel to each other induced matching of the pH banding patterns, which was mirrored by chloroplast activity. In non-aligned cells, the lowered photosynthetic activity was noted upon a rise of the external pH, suggesting that the matching of pH bands was due to a local elevation of membrane conductance by the high pH of the alkaline zones of neighboured cells. Finally, we show that the altered pH banding pattern caused the reorganization of the cortical cytoplasm. Complex plasma membrane elaborations (charasomes) were degraded via endocytosis, and mitochondria were moved away from the cortex when a previously acid region became alkaline and vice versa. Our data show that characean internodal cells react flexibly to environmental cues, including those originating from neighboured cells.
引用
收藏
页码:1737 / 1751
页数:14
相关论文
共 50 条
  • [31] A "Smart" 129Xe NMR Biosensor for pH-Dependent Cell Labeling
    Riggle, Brittany A.
    Wang, Yanfei
    Dmochowski, Ivan J.
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2015, 137 (16) : 5542 - 5548
  • [32] CELL-SHAPE TRANSFORMATIONS AND PH-DEPENDENT VESICULATION OF HUMAN-ERYTHROCYTES
    GROS, M
    VRHOVEC, S
    BRUMEN, M
    SVETINA, S
    ZEKS, B
    PERIODICUM BIOLOGORUM, 1987, 89 (04) : 283 - 285
  • [33] Simulation of pH-dependent unfolding and target-inhibitor interactions
    Bashford, Donald
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 249
  • [34] pH-Dependent Interactions of Apolipophorin-III with a Lipid Disk
    Peng, Yunhui
    Kelle, Rudolfs
    Little, Chandler
    Michonova, Ekaterina
    Kornev, Kostantin G.
    Alexov, Emil
    JOURNAL OF COMPUTATIONAL BIOPHYSICS AND CHEMISTRY, 2021, 20 (02): : 153 - 164
  • [35] pH-dependent and dynamic interactions of cystatin C with heparan sulfate
    Xiaoxiao Zhang
    Xinyue Liu
    Guowei Su
    Miaomiao Li
    Jian Liu
    Chunyu Wang
    Ding Xu
    Communications Biology, 4
  • [36] pH-dependent conformational properties of saposins and their interactions with phospholipid membranes
    Vaccaro, AM
    Ciaffoni, F
    Tatti, M
    Salvioli, R
    Barca, A
    Tognozzi, D
    Scerch, C
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (51) : 30576 - 30580
  • [37] PH-DEPENDENT PROTON ABSORPTION IN CHYMOTRYPSIN . SMALL MOLECULE INTERACTIONS
    WEDLER, FC
    BENDER, ML
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1969, 91 (14) : 3894 - &
  • [38] pH-Dependent Interactions between Keggin Heteropolyanions in Dilute Solutions
    Antonio, Mark R.
    Bera, Mrinal K.
    EUROPEAN JOURNAL OF INORGANIC CHEMISTRY, 2019, (3-4) : 367 - 373
  • [39] pH-dependent and dynamic interactions of cystatin C with heparan sulfate
    Zhang, Xiaoxiao
    Liu, Xinyue
    Su, Guowei
    Li, Miaomiao
    Liu, Jian
    Wang, Chunyu
    Xu, Ding
    COMMUNICATIONS BIOLOGY, 2021, 4 (01)
  • [40] pH-Dependent HEWL-AuNPs Interactions: Optical Study
    Molkova, Elena A.
    Pustovoy, Vladimir I.
    Stepanova, Evgenia V.
    Gorudko, Irina V.
    Astashev, Maxim E.
    Simakin, Alexander V.
    Sarimov, Ruslan M.
    Gudkov, Sergey V.
    MOLECULES, 2024, 29 (01):