Bridging nonliving and living matter

被引:151
作者
Rasmussen, S
Chen, LH
Nilsson, M
Abe, S
机构
[1] Los Alamos Natl Lab, Los Alamos, NM 87545 USA
[2] Santa Fe Inst, Santa Fe, NM 87506 USA
[3] Argonne Natl Lab, Biosci Div, Argonne, IL 60439 USA
关键词
proto-cells; origins of life; nanotechnology; supermolecular chemistry; self-assembly; physical chemistry; photochemistry; multiscale simulation; evolution; artificial chemistry;
D O I
10.1162/106454603322392479
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Assembling non-biological materials (geomaterials) into a proto-organism constitutes a bridge between nonliving and living matter. In this article we 2 present a simple step-by-step route to assemble a proto-organism. Many pictures have been proposed to describe this transition within the origins-of-life and artificial life communities, and more recently alternative pictures have been emerging from advances in nanoscience and biotechnology. The proposed proto-organism lends itself to both traditions and defines a new picture based on a simple idea: Given a set of required functionalities, minimize the physicochemical structures that support these functionalities, and make sure that all Structures self-assemble and Mutually enhance each other's existence. The result is the first concrete, rational design of a simple physicochemical system that integrates the key functionalities in a thermodynamically favorable manner as a lipid aggregate integrates proto-genes and a proto-metabolisin. Under external pumping of free energy, the metabolic processes produce the required building blocks, and only specific gene sequences enhance the metabolic kinetics sufficiently for the whole system to survive. We propose an experimental implementation of the proto-organism with a discussion of our experimental results, together with relevant results produced by other experimental groups, and we specify what is still missing experimentally. Identifying the missing steps is just as important as providing the road map for the transition. We derive the kinetic and thermodynamic conditions of each of the proto-organism subsystems together with relevant theoretical and computational results about these subsystems. We present and discuss detailed 3D simulations of the lipid aggregation processes. From the reaction kinetics we derive analytical aggregate size distributions, and derive key properties of the metabolic efficiency and stability. Thermodynamics and kinetics of the ligation directed self-replication of the proto-genes is discussed, and we summarize the full life cycle of the proto-organism by comparing size, replication time, and energy with the biomass efficiency of contemporary unicells. Finally, we also compare our proto-organism picture with existing origins-of-life and protocell pictures. By assembling one possible bridge between nonliving and living matter we hope to provide a piece in the ancient puzzle about who we are and where we come from.
引用
收藏
页码:269 / 316
页数:48
相关论文
共 108 条
[1]   Molecular tennis - Flat smashes and wicked cuts [J].
Alexander, AJ ;
Zare, RN .
ACCOUNTS OF CHEMICAL RESEARCH, 2000, 33 (04) :199-205
[2]  
[Anonymous], 1999, BIOL PROKARYOTES, DOI DOI 10.1002/9781444313314.CH10
[3]   Self-assembled vesicles of monocarboxylic acids and alcohols: conditions for stability and for the encapsulation of biopolymers [J].
Apel, CL ;
Deamer, DW ;
Mautner, MN .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2002, 1559 (01) :1-9
[4]   AUTOCATALYTIC SELF-REPLICATING MICELLES AS MODELS FOR PREBIOTIC STRUCTURES [J].
BACHMANN, PA ;
LUISI, PL ;
LANG, J .
NATURE, 1992, 357 (6373) :57-59
[5]   NANOMETRE-SIZED DIAMONDS ARE MORE STABLE THAN GRAPHITE [J].
BADZIAG, P ;
VERWOERD, WS ;
ELLIS, WP ;
GREINER, NR .
NATURE, 1990, 343 (6255) :244-245
[6]  
BAGLEY RJ, 1992, ARTIF LIFE, V2, P93
[7]   Protecting groups that can be removed through photochemical electron transfer: Mechanistic and product studies on photosensitized release of carboxylates from phenacyl esters [J].
Banerjee, A ;
Falvey, DE .
JOURNAL OF ORGANIC CHEMISTRY, 1997, 62 (18) :6245-6251
[8]   Open problems in artificial life [J].
Bedau, MA ;
McCaskill, JS ;
Packard, NH ;
Rasmussen, S ;
Adami, C ;
Green, DG ;
Ikegami, T ;
Kaneko, K ;
Ray, TS .
ARTIFICIAL LIFE, 2000, 6 (04) :363-376
[9]   Liposome-assisted selective polycondensation of α-amino acids and peptides [J].
Blocher, M ;
Liu, DJ ;
Walde, P ;
Luisi, PL .
MACROMOLECULES, 1999, 32 (21) :7332-7334
[10]  
BOERLIJST M, 1991, SFI, V10