scholarly journals Correlating topography and elastic properties of Elastin-Like Polypeptide scaffolds probed at the nanoscale: Intermodulation Atomic Force Microscopy experiments and Molecular Dynamic simulations

Author(s):  
Sebastiano Trusso ◽  
Samantha Firman ◽  
Janani Balasubramanian ◽  
Mohammad Hassan Khatami ◽  
Hendrick deHaan ◽  
...  

The synthesis and property characterization of soft biomaterials has taken precedence in recent years. Although bulk physical-chemical properties are well known for these bio-materials, nanoscale properties still need to be probed and evaluated to fine tune the bio-compatibility (structural as well as functional) with natural tissues for regenerative medicine, prosthetics and other biological applications. In this study, we focus on a popular soft biomaterial, ELastin-like polypeptide (ELP) which has been prepared under different pH conditions. We explore the topographical features of the ELP at the nanoscale using Atomic Force Microscopy (AFM). Additionally, we employ a non linear mode of AFM called Intermodulation-AFM (ImAFM) to correlate the elastic properties (Young's modulus) of ELP probed at the nanoscale with the topographical features which gives us a deep insight into the mechanical properties offered by ELP when the structural features are altered by change in the ELP synthesis conditions. The noteworthy point is that we measure theses properties at a spatial resolution of 0.9 nm. Finally, we explain the change in the structural features of ELP with varying pH through atomistic Molecular Dynamics Simulations. We follow the interaction mechanisms of the amino acid sequences and crosslinkers with proteins as they form the backbone and sidechain of the ELP at different pH.

Nanoscale ◽  
2018 ◽  
Vol 10 (27) ◽  
pp. 13022-13027 ◽  
Author(s):  
Basant Chitara ◽  
Assaf Ya'akobovitz

The present study highlights the elastic properties of suspended GaS, GaSe and GaTe nanosheets using atomic force microscopy. GaS exhibited the highest Young's modulus (∼173 GPa) among these nanosheets. These materials can withstand maximal stresses of up to 8 GPa and a maximal strain of 7% before breaking, making them suitable for stretchable electronic and optomechanical devices.


2018 ◽  
Vol 20 (48) ◽  
pp. 30492-30501 ◽  
Author(s):  
Zhengqing Zhang ◽  
Seol Ryu ◽  
Yoonho Ahn ◽  
Joonkyung Jang

The molecular features of the hydration layers probed by a nanoscale tip were uncovered by using molecular dynamic simulations.


2002 ◽  
Vol 3 (2-3) ◽  
pp. 161-161
Author(s):  
X. Wang ◽  
H. Hirling ◽  
R. Marsault ◽  
B. Huni ◽  
G. Dietler ◽  
...  

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