Aqueous Phase Separation as a Possible Route to Compartmentalization of Biological Molecules

被引:327
作者
Keating, Christine D. [1 ]
机构
[1] Penn State Univ, Dept Chem, University Pk, PA 16802 USA
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
GIANT LIPID VESICLES; 2-PHASE SYSTEMS; POLYMER ENCAPSULATION; MODEL PROTOCELL; CELLS; MICROCOMPARTMENTATION; PHOSPHOLIPIDS; COACERVATION; CURVATURE; CYTOPLASM;
D O I
10.1021/ar200294y
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
How could the incredible complexity of modem cells evolve from something simple enough to have appeared in a primordial soup? This enduring question has sparked the interest of researchers since Darwin first considered his theory of natural selection. Organic molecules, even potentially functional molecules including peptides and nucleotides, can be produced abiotically. Amphiphiles such as surfactants and lipids display remarkable self-assembly processes including the spontaneous formation of vesicles resembling the membranes of living cells. Nonetheless, numerous questions remain. Given the presumably dilute concentrations of macromolecules in the prebiotic pools where the earliest cells are thought to have appeared, how could the necessary components become concentrated and encapsulated within a semipermeable membrane? What would drive the further structural complexity that is a hallmark of modem living systems? The interior of modem cells is subdivided into microcompartments such as the nucleoid of bacteria or the organelles of eukaryotic cells. Even within what at first appears to be a single compartment, for example, the cytoplasm or nucleus, chemical composition is often nonuniform, containing gradients, macromolecular assemblies, and/or liquid droplets. What might the internal structure of intermediate evolutionary forms have looked like? The nonideal aqueous solution chemistry of macromolecules offers an attractive possible answer to these questions. Aqueous polymer solutions will form multiple coexisting thermodynamic phases under a variety of readily accessible conditions. In this Account, we describe aqueous phase separation as a model system for biological compartmentalization in both early and modem cells, with an emphasis on systems that have been encapsulated within a lipid bilayer. We begin with an Introduction to aqueous phase separation and discuss how this phenomenon can lead to microcompartmentalization and could facilitate biopolymer encapsulation by partitioning of solutes between the phases. We then describe primitive model cells based on phase separation inside lipid vesicles, which mimic several basic properties of biological cells: microcompartmentation, protein relocalization In response to stimulus, loss of symmetry, and asymmetric vesicle division. We observe these seemingly complex phenomena in the absence of genetic molecules, enzymes, or cellular machinery, and as a result these processes could provide dues to possible intermediates in the early evolution of cell-like assemblies.
引用
收藏
页码:2114 / 2124
页数:11
相关论文
共 51 条
[1]  
Albertsson P.A., 1986, PARTITION CELL PARTI
[2]   Complete Budding and Asymmetric Division of Primitive Model Cells To Produce Daughter Vesicles with Different Interior and Membrane Compositions [J].
Andes-Koback, Meghan ;
Keating, Christine D. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2011, 133 (24) :9545-9555
[3]   NEGATIVE STAINING OF PHOSPHOLIPIDS + THEIR STRUCTURAL MODIFICATION BY-SURFACE ACTIVE AGENTS AS OBSERVED IN ELECTRON MICROSCOPE [J].
BANGHAM, AD ;
HORNE, RW .
JOURNAL OF MOLECULAR BIOLOGY, 1964, 8 (05) :660-&
[4]   Imaging coexisting fluid domains in biomembrane models coupling curvature and line tension [J].
Baumgart, T ;
Hess, ST ;
Webb, WW .
NATURE, 2003, 425 (6960) :821-824
[5]   Germline P Granules Are Liquid Droplets That Localize by Controlled Dissolution/Condensation [J].
Brangwynne, Clifford P. ;
Eckmann, Christian R. ;
Courson, David S. ;
Rybarska, Agata ;
Hoege, Carsten ;
Gharakhani, Joebin ;
Juelicher, Frank ;
Hyman, Anthony A. .
SCIENCE, 2009, 324 (5935) :1729-1732
[6]   Positioning lipid membrane domains in giant vesicles by micro-organization of aqueous cytoplasm mimic [J].
Cans, Ann-Sofie ;
Andes-Koback, Meghan ;
Keating, Christine D. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2008, 130 (23) :7400-7406
[7]   RNA catalysis in model protocell vesicles [J].
Chen, IA ;
Salehi-Ashtiani, K ;
Szostak, JW .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2005, 127 (38) :13213-13219
[8]   Phase Behavior and Coacervation of Aqueous Poly(acrylic acid)-Poly(allylamine) Solutions [J].
Chollakup, Rungsima ;
Smitthipong, Wirasak ;
Eisenbach, Claus D. ;
Tirrell, Matthew .
MACROMOLECULES, 2010, 43 (05) :2518-2528
[9]  
Clark J. I., 2000, MICROCOMPARTMENTATIO, V192
[10]   Complex coacervation of proteins and anionic polysaccharides [J].
de Kruif, CG ;
Weinbreck, F ;
de Vries, R .
CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 2004, 9 (05) :340-349