TY - JOUR
T1 - Ice-nucleating bacteria control the order and dynamics of interfacial water
AU - Pandey, Ravindra
AU - Usui, Kota
AU - Livingstone, Ruth A.
AU - Fischer, Sean A.
AU - Pfaendtner, Jim
AU - Backus, Ellen H.G.
AU - Nagata, Yuki
AU - Fröhlich-Nowoisky, Janine
AU - Schmüser, Lars
AU - Mauri, Sergio
AU - Scheel, Jan F.
AU - Knopf, Daniel A.
AU - Pöschl, Ulrich
AU - Bonn, Mischa
AU - Weidner, Tobias
N1 - Publisher Copyright:
© 2016 The Authors, some rights reserved.
PY - 2016/4
Y1 - 2016/4
N2 - Ice-nucleating organisms play important roles in the environment. With their ability to induce ice formation at temperatures just below the ice melting point, bacteria such as Pseudomonas syringae attack plants through frost damage using specialized ice-nucleating proteins. Besides the impact on agriculture and microbial ecology, airborne P. syringae can affect atmospheric glaciation processes, with consequences for cloud evolution, precipitation, and climate. Biogenic ice nucleation is also relevant for artificial snow production and for biomimetic materials for controlled interfacial freezing. We use interface-specific sum frequency generation (SFG) spectroscopy to show that hydrogen bonding at the water-bacteria contact imposes structural ordering on the adjacent water network. Experimental SFG data and molecular dynamics simulations demonstrate that iceactive sites within P. syringae feature unique hydrophilic-hydrophobic patterns to enhance ice nucleation. The freezing transition is further facilitated by the highly effective removal of latent heat from the nucleation site, as apparent from time-resolved SFG spectroscopy.
AB - Ice-nucleating organisms play important roles in the environment. With their ability to induce ice formation at temperatures just below the ice melting point, bacteria such as Pseudomonas syringae attack plants through frost damage using specialized ice-nucleating proteins. Besides the impact on agriculture and microbial ecology, airborne P. syringae can affect atmospheric glaciation processes, with consequences for cloud evolution, precipitation, and climate. Biogenic ice nucleation is also relevant for artificial snow production and for biomimetic materials for controlled interfacial freezing. We use interface-specific sum frequency generation (SFG) spectroscopy to show that hydrogen bonding at the water-bacteria contact imposes structural ordering on the adjacent water network. Experimental SFG data and molecular dynamics simulations demonstrate that iceactive sites within P. syringae feature unique hydrophilic-hydrophobic patterns to enhance ice nucleation. The freezing transition is further facilitated by the highly effective removal of latent heat from the nucleation site, as apparent from time-resolved SFG spectroscopy.
UR - https://www.scopus.com/pages/publications/84985935361
U2 - 10.1126/sciadv.1501630
DO - 10.1126/sciadv.1501630
M3 - Article
C2 - 27152346
AN - SCOPUS:84985935361
SN - 2375-2548
VL - 2
JO - Science Advances
JF - Science Advances
IS - 4
M1 - e1501630
ER -