Positive and negative chemotaxis of enzyme-coated liposome motors

被引:177
作者
Somasundar, Ambika [1 ]
Ghosh, Subhadip [2 ]
Mohajerani, Farzad [1 ]
Massenburg, Lynnicia N. [3 ]
Yang, Tinglu [2 ]
Cremer, Paul S. [2 ]
Velegol, Darrell [1 ]
Sen, Ayusman [2 ]
机构
[1] Penn State Univ, Dept Chem Engn, University Pk, PA 16802 USA
[2] Penn State Univ, Dept Chem, University Pk, PA 16802 USA
[3] Penn State Univ, Dept Biochem & Mol Biol, University Pk, PA 16802 USA
基金
美国国家科学基金会;
关键词
CONCENTRATION GRADIENTS; HOFMEISTER SERIES; VESICLES; BEHAVIOR; PROTEINS; ANIONS; MACROMOLECULES; MIGRATION; TRANSPORT; MOVEMENT;
D O I
10.1038/s41565-019-0578-8
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The ability of cells or cell components to move in response to chemical signals is critical for the survival of living systems. This motion arises from harnessing free energy from enzymatic catalysis. Artificial model protocells derived from phospholipids and other amphiphiles have been made and their enzymatic-driven motion has been observed. However, control of directionality based on chemical cues (chemotaxis) has been difficult to achieve. Here we show both positive or negative chemotaxis of liposomal protocells. The protocells move autonomously by interacting with concentration gradients of either substrates or products in enzyme catalysis, or Hofmeister salts. We hypothesize that the propulsion mechanism is based on the interplay between enzyme-catalysis-induced positive chemotaxis and solute-phospholipid-based negative chemotaxis. Controlling the extent and direction of chemotaxis holds considerable potential for designing cell mimics and delivery vehicles that can reconfigure their motion in response to environmental conditions.
引用
收藏
页码:1129 / +
页数:7
相关论文
共 52 条
[1]   Phoresis and Enhanced Diffusion Compete in Enzyme Chemotaxis [J].
Agudo-Canalejo, Jaime ;
Illien, Pierre ;
Golestanian, Ramin .
NANO LETTERS, 2018, 18 (04) :2711-2717
[2]   Preparation of giant liposomes in physiological conditions and their characterization under an optical microscope [J].
Akashi, K ;
Miyata, H ;
Itoh, H ;
Kinosita, K .
BIOPHYSICAL JOURNAL, 1996, 71 (06) :3242-3250
[3]   TRANSPORT MECHANISMS OF BIOLOGICAL COLLOIDS [J].
ANDERSON, JL .
ANNALS OF THE NEW YORK ACADEMY OF SCIENCES, 1986, 469 :166-177
[4]   MOVEMENT OF A SEMIPERMEABLE VESICLE THROUGH AN OSMOTIC GRADIENT [J].
ANDERSON, JL .
PHYSICS OF FLUIDS, 1983, 26 (10) :2871-2879
[5]   How Hofmeister ion interactions affect protein stability [J].
Baldwin, RL .
BIOPHYSICAL JOURNAL, 1996, 71 (04) :2056-2063
[6]   Chemotactic Behavior of Catalytic Motors in Microfluidic Channels [J].
Baraban, Larysa ;
Harazim, Stefan M. ;
Sanchez, Samuel ;
Schmidt, Oliver G. .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2013, 52 (21) :5552-5556
[7]   Influence of anions and cations on the dipole potential of phosphatidylcholine vesicles:: A basis for the Hofmeister effect [J].
Clarke, RJ ;
Lüpfert, C .
BIOPHYSICAL JOURNAL, 1999, 76 (05) :2614-2624
[8]   THE HOFMEISTER EFFECT AND THE BEHAVIOR OF WATER AT INTERFACES [J].
COLLINS, KD ;
WASHABAUGH, MW .
QUARTERLY REVIEWS OF BIOPHYSICS, 1985, 18 (04) :323-422
[9]   Micromotors Powered by Enzyme Catalysis [J].
Dey, Krishna K. ;
Zhao, Xi ;
Tansi, Benjamin M. ;
Mendez-Ortiz, Wilfredo J. ;
Cordova-Figueroa, Ubaldo M. ;
Golestanian, Ramin ;
Sen, Ayusman .
NANO LETTERS, 2015, 15 (12) :8311-8315
[10]   Chemotactic Separation of Enzymes [J].
Dey, Krishna Kanti ;
Das, Sambeeta ;
Poyton, Matthew F. ;
Sengupta, Samudra ;
Butler, Peter J. ;
Cremer, Paul S. ;
Sen, Ayusman .
ACS NANO, 2014, 8 (12) :11941-11949