Force spectroscopy reveals membrane fluctuations and surface adhesion of extracellular nanovesicles impact their elastic behavior
Abstract
The elastic properties of nanoscale extracellular vesicles (EVs) are believed to influence their cellular interactions, thus having a profound implication in intercellular communication. However, accurate quantification of their elastic modulus is challenging due to their nanoscale dimensions and their fluid-like lipid bilayer. We show that the previous attempts to develop atomic force microscopy-based protocol are flawed as they lack theoretical underpinning as well as ignore important contributions arising from the surface adhesion forces and membrane fluctuations. We develop a protocol comprising a theoretical framework, experimental technique, and statistical approach to accurately quantify the bending and elastic modulus of EVs. The method reveals that membrane fluctuations play a dominant role even for a single EV. The method is then applied to EVs derived from human embryonic kidney cells and their genetically engineered classes altering the tetraspanin expression. The data show a large spread; the area modulus is in the range of 4 to 19 mN/m and the bending modulus is in the range of 15 to 33 k B T , respectively. Surprisingly, data for a single EV, revealed by repeated measurements, also show a spread that is attributed to their compositionally heterogeneous fluid membrane and thermal effects. Our protocol uncovers the influence of membrane protein alterations on the elastic modulus of EVs.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (15)
Fredrik Stridfeldt
Department of Applied Physics
Vikash Pandey
Nordita, Kungliga Tekniska Högskolan Royal Institute of Technology and Stockholm University
Hanna Kylhammar
Department of Applied Physics
Moein Talebian Gevari
Department of Electrical Engineering
Prattakorn Metem
Division of Applied Electrochemistry
Vipin Agrawal
Nordita, Kungliga Tekniska Högskolan Royal Institute of Technology and Stockholm University
André Görgens
Department of Laboratory Medicine
Doste R. Mamand
Department of Laboratory Medicine
Jennifer Gilbert
Division of Chemical Biology
Lukas Palmgren
Division of Chemical Biology
Margaret N. Holme
Division of Chemical Biology
Oskar Gustafsson
Department of Laboratory Medicine
Samir El Andaloussi
Dhrubaditya Mitra
Nordita, Kungliga Tekniska Högskolan Royal Institute of Technology and Stockholm University
Apurba Dev
Department of Applied Physics