Self-organized optical device driven by motor proteins

被引:43
|
作者
Aoyama, Susumu [1 ]
Shimoike, Masahiko [1 ]
Hiratsuka, Yuichi [1 ]
机构
[1] Japan Adv Inst Sci & Technol, Sch Mat Sci, Nomi, Ishikawa 9231292, Japan
基金
日本科学技术振兴机构; 日本学术振兴会;
关键词
bioengineering; microdevice; molecular robotics; KINESIN MOLECULAR MOTORS; BIDIRECTIONAL TRANSPORT; MICROTUBULES; DYNEIN; MELANOPHORES; POLARITY; MOTILITY; TRACKS;
D O I
10.1073/pnas.1306281110
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Protein molecules produce diverse functions according to their combination and arrangement as is evident in a living cell. Therefore, they have a great potential for application in future devices. However, it is currently very difficult to construct systems in which a large number of different protein molecules work cooperatively. As an approach to this challenge, we arranged protein molecules in artificial microstructures and assembled an optical device inspired by a molecular system of a fish melanophore. We prepared arrays of cell-like microchambers, each of which contained a scaffold of microtubule seeds at the center. By polymerizing tubulin from the fixed microtubule seeds, we obtained radially arranged microtubules in the chambers. We subsequently prepared pigment granules associated with dynein motors and attached them to the radial microtubule arrays, which made a melanophore-like system. When ATP was added to the system, the color patterns of the chamber successfully changed, due to active transportation of pigments. Furthermore, as an application of the system, image formation on the array of the optical units was performed. This study demonstrates that a properly designed microstructure facilitates arrangement and self-organization of molecules and enables assembly of functional molecular systems.
引用
收藏
页码:16408 / 16413
页数:6
相关论文
共 50 条
  • [41] Self-organized settlements
    Daffertshofer, A
    Haken, H
    Portugali, J
    [J]. ENVIRONMENT AND PLANNING B-PLANNING & DESIGN, 2001, 28 (01): : 89 - 102
  • [42] SELF-ORGANIZED CRITICALITY
    MALINETSKII, GG
    MITIN, NA
    [J]. ZHURNAL FIZICHESKOI KHIMII, 1995, 69 (08): : 1513 - 1518
  • [43] Self-organized origami
    Mahadevan, L
    Rica, S
    [J]. SCIENCE, 2005, 307 (5716) : 1740 - 1740
  • [44] An Optical Device Driven by Motor Protein
    Aoyama, Susumu
    Shimoike, Masahiko
    Hiratsuka, Yuichi
    [J]. BIOPHYSICAL JOURNAL, 2012, 102 (03) : 717A - 717A
  • [45] Self-organized ceramic
    不详
    [J]. ADVANCED MATERIALS, 2000, 12 (15) : 1095 - 1095
  • [46] High-density self-organized quantum dots with improved size uniformity for optical device applications
    Okada, Y
    Akahane, K
    Kawabe, M
    [J]. SEMICONDUCTOR LASERS AND APPLICATIONS, 2002, 4913 : 78 - 82
  • [47] Self-organized criticality
    Turcotte, DL
    [J]. REPORTS ON PROGRESS IN PHYSICS, 1999, 62 (10) : 1377 - 1429
  • [48] SELF-ORGANIZED CRITICALITY
    BAK, P
    TANG, C
    WIESENFELD, K
    [J]. PHYSICAL REVIEW A, 1988, 38 (01): : 364 - 374
  • [49] Optical intensity-driven reversible photonic bandgaps in self-organized helical superstructures with handedness inversion
    Sun, Jian
    Yu, Li
    Wang, Ling
    Li, Chenyue
    Yang, Zhou
    He, Wanli
    Zhang, Cuihong
    Zhang, Lanying
    Xiao, Jiumei
    Yuan, Xiao
    Li, Fasheng
    Yang, Huai
    [J]. JOURNAL OF MATERIALS CHEMISTRY C, 2017, 5 (15) : 3678 - 3683
  • [50] Self-Organized Device-to-Device Communications as a non-Cooperative Quitting Game
    Driouech, Safaa
    Sabir, Essaid
    Tembine, Hamidou
    [J]. 2017 INTERNATIONAL CONFERENCE ON WIRELESS NETWORKS AND MOBILE COMMUNICATIONS (WINCOM), 2017, : 155 - 162