Atomic force microscopy (AFM) can probe single living cells and single native membrane proteins in natural fluid environments with label-free high spatial resolution. It has thus become an important tool for cellular and molecular biology that significantly complements traditional biochemical and biophysical techniques such as optical and electron microscopy and X-ray crystallography. Imaging surface topography is the primary application of AFM in the life sciences. Since the early 1990s, researchers have used AFM to investigate morphological features of living cells and native membrane proteins with impressive results. Steady improvements in AFM techniques for imaging soft biological samples have greatly expanded its applications. Based on...
The advent of atomic force microscopy (AFM) provides a powerful tool for investigating the behaviors...
Single-cell analysis has been considered as a promising way to uncover the underlying mechanisms gui...
Direct imaging of morphological dynamics of live mammalian cells with nanometer resolution under phy...
Atomic force microscopy (AFM) can probe single living cells and single native membrane proteins in n...
Atomic force microscopy (AFM) can probe single living cells and single native membrane proteins in n...
Over the last two decades, Atomic Force Microscopy (AFM) has emerged as the tool of choice to image ...
Due to the lack of adequate tools for observation, native molecular behaviors at the nanoscale have ...
Atomic force microscopy (AFM) is becoming an increasingly important tool-of-the-trade in the life sc...
Here we discuss the experimental approaches that have allowed high resolution atomic force microscop...
Imaging the nanoscale distribution of specific chemical and biological sites on live cells is an imp...
Here we discuss the experimental approaches that have allowed high resolution atomic force microscop...
Fundamental biological processes such as cell-cell communication, signal transduction, molecular tra...
With the invention of the Atomic Force Microscope (AFM) in 1986 and the subsequent developments in l...
To introduce this special issue of the Journal of Molecular Recognition dedicated to the application...
A crucial challenge in cell biology is to understand how cell surface-associated molecules are organ...
The advent of atomic force microscopy (AFM) provides a powerful tool for investigating the behaviors...
Single-cell analysis has been considered as a promising way to uncover the underlying mechanisms gui...
Direct imaging of morphological dynamics of live mammalian cells with nanometer resolution under phy...
Atomic force microscopy (AFM) can probe single living cells and single native membrane proteins in n...
Atomic force microscopy (AFM) can probe single living cells and single native membrane proteins in n...
Over the last two decades, Atomic Force Microscopy (AFM) has emerged as the tool of choice to image ...
Due to the lack of adequate tools for observation, native molecular behaviors at the nanoscale have ...
Atomic force microscopy (AFM) is becoming an increasingly important tool-of-the-trade in the life sc...
Here we discuss the experimental approaches that have allowed high resolution atomic force microscop...
Imaging the nanoscale distribution of specific chemical and biological sites on live cells is an imp...
Here we discuss the experimental approaches that have allowed high resolution atomic force microscop...
Fundamental biological processes such as cell-cell communication, signal transduction, molecular tra...
With the invention of the Atomic Force Microscope (AFM) in 1986 and the subsequent developments in l...
To introduce this special issue of the Journal of Molecular Recognition dedicated to the application...
A crucial challenge in cell biology is to understand how cell surface-associated molecules are organ...
The advent of atomic force microscopy (AFM) provides a powerful tool for investigating the behaviors...
Single-cell analysis has been considered as a promising way to uncover the underlying mechanisms gui...
Direct imaging of morphological dynamics of live mammalian cells with nanometer resolution under phy...