QUANTITATIVE NANOMECHANICAL MAPPING OF MARINE DIATOM IN SEAWATER USING PEAK FORCE TAPPING ATOMIC FORCE MICROSCOPY

被引:69
|
作者
Pletikapic, Galja [1 ]
Berquand, Alexandre [2 ]
Misic Radic, Tea [1 ]
Svetlicic, Vesna [1 ]
机构
[1] Rudjer Boskovic Inst, Div Marine & Environm Res, POB 1016, Zagreb 10000, Croatia
[2] Bruker Nano GmbH, D-68165 Mannheim, Germany
关键词
atomic force microscopy; Cylindrotheca closterium; deformation; diatom cell wall; elasticity; marine diatom; nanomechanical properties; Peak Force Tapping atomic force microscopy; Young's modulus; ADHESIVE MUCILAGE; LIVING DIATOMS; LIVE DIATOM; CELL-WALL; SILICA; NANOSTRUCTURE; AFM; SURFACE;
D O I
10.1111/j.1529-8817.2011.01093.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
It is generally accepted that a diatom cell wall is characterized by a siliceous skeleton covered by an organic envelope essentially composed of polysaccharides and proteins. Understanding of how the organic component is associated with the silica structure provides an important insight into the biomineralization process and patterning on the cellular level. Using a novel atomic force microscopy (AFM) imaging technique (Peak Force Tapping), we characterized nanomechanical properties (elasticity and deformation) of a weakly silicified marine diatom Cylindrotheca closterium (Ehrenb.) Reimann et J. C. Lewin (strain CCNA1). The nanomechanical properties were measured over the entire cell surface in seawater at a resolution that was not achieved previously. The fibulae were the stiffest (200 MPa) and the least deformable (only 1 nm). Girdle band region appeared as a series of parallel stripes characterized by two sets of values of Youngs modulus and deformation: one for silica stripes (43.7 Mpa, 3.7 nm) and the other between the stripes (21.3 MPa, 13.4 nm). The valve region was complex with average values of Youngs modulus (29.8 MPa) and deformation (10.2 nm) with high standard deviations. After acid treatment, we identified 15 nm sized silica spheres in the valve region connecting raphe with the girdle bands. The silica spheres were neither fused together nor forming a nanopattern. A cell wall model is proposed with individual silica nanoparticles incorporated in an organic matrix. Such organization of girdle band and valve regions enables the high flexibility needed for movement and adaptation to different environments while maintaining the integrity of the cell.
引用
收藏
页码:174 / 185
页数:12
相关论文
共 50 条
  • [41] Exploring Nanomechanical Properties of Soot Particle Layers by Atomic Force Microscopy Nanoindentation
    De Falco, Gianluigi
    Carbone, Fiorenzo
    Commodo, Mario
    Minutolo, Patrizia
    D'Anna, Andrea
    APPLIED SCIENCES-BASEL, 2021, 11 (18):
  • [42] Visualization of Nanomechanical Properties of Polymer Composites Using Atomic Force Microscopy
    Liang, Xiaobin
    POLYMER JOURNAL, 2023, 55 (09) : 913 - 920
  • [43] Using atomic force microscopy to retrieve nanomechanical surface properties of materials
    Graca, S.
    Colaco, R.
    Vilar, R.
    ADVANCED MATERIALS FORUM III, PTS 1 AND 2, 2006, 514-516 : 1598 - 1602
  • [44] Nanomechanical measurements of polyethylene glycol hydrogels using atomic force microscopy
    Drira, Zouheir
    Yadavalli, Vamsi K.
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2013, 18 : 20 - 28
  • [45] Study of nanomechanical properties of biological membranes using atomic force microscopy
    Potaturkina-Nesterova N.I.
    Artamonova M.N.
    Kostishko B.B.
    Pchelintseva E.S.
    Nesterov A.S.
    Nanotechnologies in Russia, 2015, 10 (7-8): : 636 - 639
  • [46] On the use of peak-force tapping atomic force microscopy for quantification of the local elastic modulus in hardened cement paste
    Trtik, Pavel
    Kaufmann, Josef
    Volz, Udo
    CEMENT AND CONCRETE RESEARCH, 2012, 42 (01) : 215 - 221
  • [47] Fast, multi-frequency, and quantitative nanomechanical mapping of live cells using the atomic force microscope
    Cartagena-Rivera, Alexander X.
    Wang, Wen-Horng
    Geahlen, Robert L.
    Raman, Arvind
    SCIENTIFIC REPORTS, 2015, 5
  • [48] Influence of surface moieties on nanomechanical properties of gold nanoparticles using atomic force microscopy
    Kulkarni, Tanmay
    Mukhopadhyay, Debabrata
    Bhattacharya, Santanu
    APPLIED SURFACE SCIENCE, 2022, 591
  • [49] Robustness of attractors in tapping mode atomic force microscopy
    Chandrashekar, Abhilash
    Belardinelli, Pierpaolo
    Staufer, Urs
    Alijani, Farbod
    NONLINEAR DYNAMICS, 2019, 97 (02) : 1137 - 1158
  • [50] Nanomechanical characterization of hemp fiber with atomic force microscopy
    Chowdhury, Sowmik
    Wang, Xinnan
    Rahman, Md Atikur
    Ulven, Chad A.
    JOURNAL OF COMPOSITE MATERIALS, 2025, 59 (04) : 469 - 478