Meniscus-Mediated Imaging of Soft Biological Membranes Using 200kN/m Ultra-Stiff 15MHz MEMS AFM Probes

Suyambulingam Subramanian1, Nicolas Mauran1, Ignacio Casuso2

  • 1LAAS, CNRS, University, Toulouse, France.

Insights

Ultra-stiff Atomic Force Microscopy (AFM) probes image delicate cell membranes in open air without damage. This breakthrough enables new nanoscale imaging of biological samples in ambient conditions.

Area of Science:

  • Nanoscale imaging
  • Biophysics
  • Microbiology

Background:

  • Viruses, bacteria, and fungi can survive on surfaces in ambient air.
  • Understanding their survival mechanisms requires nanoscale imaging, but air environments damage soft biological samples.
  • Traditional Atomic Force Microscopy (AFM) in air cannot resolve fragile membrane structures.

Purpose of the Study:

  • To demonstrate the use of ultra-stiff microelectromechanical (MEMS)-based AFM probes for non-damaging imaging of soft cell membranes in ambient air.
  • To investigate meniscus-mediated tip stabilization for biological imaging applications.

Main Methods:

  • Utilized ultra-stiff MEMS-based AFM probes (200 kN/m stiffness, 15 MHz resonance frequency).
  • Operated in a capillary-coupled regime with sub-ångström oscillation amplitude for meniscus-mediated tip stabilization.
  • Performed noncontact imaging of Halobacterium Sallinarium membranes at tip-sample separations of approximately 5 nm.

Main Results:

  • Achieved non-damaging imaging of soft cell membranes in ambient air.
  • Demonstrated successful application of meniscus-mediated tip stabilization for biological imaging.
  • Faithfully recovered membrane topography with approximately 5 nm thickness.

Conclusions:

  • Ultra-stiff AFM probes enable non-invasive nanoscale imaging of soft biological structures in air.
  • This technique overcomes limitations of traditional AFM in ambient environments.
  • Opens new avenues for studying microbial survival strategies and membrane properties in air.