Atomic force microscopy (AFM) is widely used to measure morphological and mechanical properties of biological materials at the nanoscale. AFM is able to visualize and measure these properties in different environmental conditions. However, these conditions can influence the results considerably, rendering their interpretation a matter of some subtlety. We demonstrate this by imaging ~10 nm diameter α-synuclein amyloid fibrils, focusing specifically on the structure of the C-terminal part of the protein monomers incorporated into fibrils. Despite these influences leading to variations in fibril heights, we have shown that by maintaining careful control of AFM settings we can quantitatively compare the morphological parameters of fibrils imag...
Amyloid fibrils play a crucial role in many human diseases and are found to function in a range of p...
We report on the use of three different atomic force spectroscopy modalities to determine the nanome...
We report on the use of three different atomic force spectroscopy modalities to determine the nanome...
Atomic force microscopy (AFM) is widely used to measure morphological and mechanical properties of b...
Item does not contain fulltextAtomic force microscopy (AFM) is widely used to measure morphological ...
Atomic force microscopy (AFM) is widely used to measure morphological and mechanical properties of b...
The aggregation of proteins into fibrillar structures called amyloid is a characteristic of many dis...
The aggregation of proteins into fibrillar structures called amyloid is a characteristic of many dis...
High resolution atomic force microscopy is a powerful tool to characterize nanoscale morphological f...
We have used atomic force microscopy (AFM) to image wild-type and disease-related mutant α-synuclein...
High resolution atomic force microscopy is a powerful tool to characterize nanoscale morphological f...
AbstractHigh resolution atomic force microscopy is a powerful tool to characterize nanoscale morphol...
We have used atomic force microscopy (AFM) to image wild-type and disease-related mutant α-synuclein...
We have used atomic force microscopy (AFM) to image wild-type and disease-related mutant α-synuclein...
<div><p>Amyloid fibrils play a crucial role in many human diseases and are found to function in a ra...
Amyloid fibrils play a crucial role in many human diseases and are found to function in a range of p...
We report on the use of three different atomic force spectroscopy modalities to determine the nanome...
We report on the use of three different atomic force spectroscopy modalities to determine the nanome...
Atomic force microscopy (AFM) is widely used to measure morphological and mechanical properties of b...
Item does not contain fulltextAtomic force microscopy (AFM) is widely used to measure morphological ...
Atomic force microscopy (AFM) is widely used to measure morphological and mechanical properties of b...
The aggregation of proteins into fibrillar structures called amyloid is a characteristic of many dis...
The aggregation of proteins into fibrillar structures called amyloid is a characteristic of many dis...
High resolution atomic force microscopy is a powerful tool to characterize nanoscale morphological f...
We have used atomic force microscopy (AFM) to image wild-type and disease-related mutant α-synuclein...
High resolution atomic force microscopy is a powerful tool to characterize nanoscale morphological f...
AbstractHigh resolution atomic force microscopy is a powerful tool to characterize nanoscale morphol...
We have used atomic force microscopy (AFM) to image wild-type and disease-related mutant α-synuclein...
We have used atomic force microscopy (AFM) to image wild-type and disease-related mutant α-synuclein...
<div><p>Amyloid fibrils play a crucial role in many human diseases and are found to function in a ra...
Amyloid fibrils play a crucial role in many human diseases and are found to function in a range of p...
We report on the use of three different atomic force spectroscopy modalities to determine the nanome...
We report on the use of three different atomic force spectroscopy modalities to determine the nanome...