Atomic Force Microscopy (AFM) has been used to image the morphology of developing neurons and their processes. Additionally, AFM can physically interact with the cell under investigation in numerous ways. Here we use the AFM to both three-dimensionally image the neuron and to inflict a nano/micro-puncture to its membrane. Thus, the same instrument used as a tool to precisely penetrate/cut the membrane at the nanoscale level is employed to image the morphological responses to damage. These first high resolution AFM images of living chick dorsal root ganglion cells and cells of sympathetic ganglion and their growing processes provide confirmation of familiar morphologies. The increased resolution of the AFM revealed these structures to be sig...
SummaryThe emerging field of ‘live cell nanoscopy’ has revolutionized the way biologists explore the...
Optical microscopy uses the interactions between light and materials to provide images of the micros...
Neurodegeneration has been recognized as the main cause for neuronal diseases. Much effort has been ...
Atomic force microscopy applications extend across a number of fields; however, limitations have red...
The atomic force microscope (AFM) was used to directly image hippocampal neurons and glia. Using che...
A cell\u27s form and function is determined to a great extent by its cellular membrane and the under...
This review highlights relevant issues about applications and improvements of atomic force microscop...
Background: To provide a fundamental understanding of the potential and use of atomic force microsco...
The research on the nervous system is potentially important in order to understand the origin of neu...
Direct imaging of morphological dynamics of live mammalian cells with nanometer resolution under phy...
During development of the nervous system the neuronal growth cone explores its local microenvironmen...
Dried, fixed uncoated neuron granule cells and their neurites have been imaged in air by an atomic f...
AbstractDetailed knowledge of mechanical parameters such as cell elasticity, stiffness of the growth...
We imaged uncoated neuron networks by an atomic force microscope in the repulsive regime of contact ...
Atomic force microscopy (AFM) was used to examine the morphology of live mammalian adherent and susp...
SummaryThe emerging field of ‘live cell nanoscopy’ has revolutionized the way biologists explore the...
Optical microscopy uses the interactions between light and materials to provide images of the micros...
Neurodegeneration has been recognized as the main cause for neuronal diseases. Much effort has been ...
Atomic force microscopy applications extend across a number of fields; however, limitations have red...
The atomic force microscope (AFM) was used to directly image hippocampal neurons and glia. Using che...
A cell\u27s form and function is determined to a great extent by its cellular membrane and the under...
This review highlights relevant issues about applications and improvements of atomic force microscop...
Background: To provide a fundamental understanding of the potential and use of atomic force microsco...
The research on the nervous system is potentially important in order to understand the origin of neu...
Direct imaging of morphological dynamics of live mammalian cells with nanometer resolution under phy...
During development of the nervous system the neuronal growth cone explores its local microenvironmen...
Dried, fixed uncoated neuron granule cells and their neurites have been imaged in air by an atomic f...
AbstractDetailed knowledge of mechanical parameters such as cell elasticity, stiffness of the growth...
We imaged uncoated neuron networks by an atomic force microscope in the repulsive regime of contact ...
Atomic force microscopy (AFM) was used to examine the morphology of live mammalian adherent and susp...
SummaryThe emerging field of ‘live cell nanoscopy’ has revolutionized the way biologists explore the...
Optical microscopy uses the interactions between light and materials to provide images of the micros...
Neurodegeneration has been recognized as the main cause for neuronal diseases. Much effort has been ...