We performed coarse-grained molecular dynamics simulations in order to understand the mechanism of membrane poration by shock wave induced nanobubble collapse. Pressure profiles obtained from the simulations show that the shock wave initially hits the membrane and is followed by a nanojet produced by the nanobubble collapse. While in the absence of the nanobubble, the shock wave with an impulse of up to 18 mPa s does not create a pore in the membrane, in the presence of a nanobubble even a smaller impulse leads to the poration of the membrane. Two-dimensional pressure maps depicting the pressure distributed over the lateral area of the membrane reveal the differences between these two cases. In the absence of a nanobubble, shock pressure is...
Hydrophilic pores are formed in peptide free lipid bilayers under mechanical stress. It has been pro...
The collapse of a nano-bubble near a solid wall is addressed here exploiting a phase field model rec...
Mechanical perturbations are ubiquitous in living cells, and many biological functions are dependent...
In this study, we report on a series of molecular dynamics simulations that were used to examine the...
Synergistic applications of an electric field combined with nanojet-based mechanical pressure, have ...
Use of shock waves to temporarily increase the permeability of the cell membrane is a promising appr...
Use of shock waves to temporarily increase the permeability of the cell membrane is a promising appr...
2013-03-04The shock-induced collapse of nanobubbles in water is investigated using molecular dynamic...
The plasma membrane is the boundary of the cell that separates the outside world from its interior. ...
Abstract. Ultrasound contrast agents (UCAs), are capable of enhancing non-invasive cytoplasmic molec...
Ultrasound has emerged as a promising means to effect controlled delivery of therapeutic agents thro...
AbstractThe collapse of a nano-bubble near a solid wall is addressed here exploiting a phase field m...
Biological membranes play a pivotal role in almost all cellular phenomena as highly versatile physio...
AbstractThe structural change of a phospholipid bilayer in water under the action of a shock wave is...
科研費報告書収録論文(課題番号:17300168/研究代表者:小玉哲也/マイクロ気泡と超音波を用いた高効率型分子導入法の開発とがん治療法への応用)730, AIP Conference Proceed...
Hydrophilic pores are formed in peptide free lipid bilayers under mechanical stress. It has been pro...
The collapse of a nano-bubble near a solid wall is addressed here exploiting a phase field model rec...
Mechanical perturbations are ubiquitous in living cells, and many biological functions are dependent...
In this study, we report on a series of molecular dynamics simulations that were used to examine the...
Synergistic applications of an electric field combined with nanojet-based mechanical pressure, have ...
Use of shock waves to temporarily increase the permeability of the cell membrane is a promising appr...
Use of shock waves to temporarily increase the permeability of the cell membrane is a promising appr...
2013-03-04The shock-induced collapse of nanobubbles in water is investigated using molecular dynamic...
The plasma membrane is the boundary of the cell that separates the outside world from its interior. ...
Abstract. Ultrasound contrast agents (UCAs), are capable of enhancing non-invasive cytoplasmic molec...
Ultrasound has emerged as a promising means to effect controlled delivery of therapeutic agents thro...
AbstractThe collapse of a nano-bubble near a solid wall is addressed here exploiting a phase field m...
Biological membranes play a pivotal role in almost all cellular phenomena as highly versatile physio...
AbstractThe structural change of a phospholipid bilayer in water under the action of a shock wave is...
科研費報告書収録論文(課題番号:17300168/研究代表者:小玉哲也/マイクロ気泡と超音波を用いた高効率型分子導入法の開発とがん治療法への応用)730, AIP Conference Proceed...
Hydrophilic pores are formed in peptide free lipid bilayers under mechanical stress. It has been pro...
The collapse of a nano-bubble near a solid wall is addressed here exploiting a phase field model rec...
Mechanical perturbations are ubiquitous in living cells, and many biological functions are dependent...