Study of biological compatibility of fullerene C60 with oligopeptides using a comparative analysis of their spatial structures

被引:0
|
作者
Baranov, AA
Esipova, NG
机构
[1] NIIGRAFIT State Res Inst Graphite Based Struct Ma, Moscow 111524, Russia
[2] Russian Acad Sci, VA Engelhardt Mol Biol Inst, Moscow 117984, Russia
来源
BIOFIZIKA | 2000年 / 45卷 / 05期
关键词
mechanism of biocompatibility; globular polypeptides; fullerene clusters; spatial structure;
D O I
暂无
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
It was proposed to elucidate the mechanism of unique biological biocompatibility of carbon materials used for making endoprotheses for medicinal practice. For this purpose,a method of comparing the geometry of individual globular and fibrillar proteins and carbon structures (fullerenes) was advanced, and a comparative analysis of the spatial structure of fullerene C-60 and the amino acid sequences of 286 proteins was made. Based on a high degree of similarity in the positions of atoms of the polypeptide chains of proteins and peptides and the corresponding atoms of fullerene and of other structural parameters revealed by the comparison of the spatial structures using mathematical simulation, the phenomenon of biological compatibility was interpreted as an <<insertion>>, of fullerenes into the structure of protein molecules in place of structurally similar amino acid sequences, i.e., as a <<prosthetics>> at the molecular level. It is proposed that:fullerenes-can <<simulate>> structurally similar short peptides in biological processes. It was shown that noncarbon biogenic atoms play a large role in the formation of specific structure of protein molecules.
引用
收藏
页码:801 / 808
页数:8
相关论文
共 50 条
  • [21] Interceptor potential of C60 fullerene aqueous solution: a comparative analysis using the example of the antitumor antibiotic mitoxantrone
    Victoria A. Salo
    Anatoly S. Buchelnikov
    Maxim P. Evstigneev
    European Biophysics Journal, 2022, 51 : 297 - 307
  • [22] A calorimetric study of the dimerized phase of C60 fullerene
    A. V. Markin
    N. N. Smirnova
    A. G. Lyapin
    M. V. Kondrin
    Physics of the Solid State, 2006, 48 : 1016 - 1021
  • [23] Study of boron subphthalocyanine adducts with fullerene C60
    Rhoda, Hannah M.
    Kiprof, Paul
    Nemykin, Victor N.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2014, 248
  • [24] Hydrofluorination to C60 fullerene and its electronic structures in the gas phase using density functional theory study
    Kawabata, Hiroshi
    Tachikawa, Hiroto
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2019, 58 (12)
  • [25] Biological effects of fullerene C60 in mouse embryonic stem cells
    Nishimura, Tetsuji
    Kubota, Reiji
    Tahara, Maiko
    Nagaoka-Hamano, Megumi
    Shimizu, Kumiko
    Hirose, Akihiko
    Tokunaga, Hiroshi
    TOXICOLOGY LETTERS, 2006, 164 : S214 - S214
  • [26] Biological effects of fullerene (C60) exposed using liposome in HepG2 cells
    Nishimura, Tetsuji
    Shimizu, Kumiko
    Kubota, Reiji
    Tahara, Maiko
    Hirata-Koizumi, Mutsuko
    Hirose, Akihiko
    TOXICOLOGY LETTERS, 2008, 180 : S224 - S225
  • [27] Synthetic Methodologies and Structures of Metal-[C60]Fullerene Complexes
    Pradeep Mathur
    Ipe J. Mavunkal
    Shubhangi B. Umbarkar
    Journal of Cluster Science, 1998, 9 : 393 - 415
  • [28] Synthesis of C60 Fullerene-Silica Hybrid Nano Structures
    Siddharth V. Patwardhan
    Niloy Mukherjee
    Michael F. Durstock
    Long Y. Chiang
    Stephen J. Clarson
    Journal of Inorganic and Organometallic Polymers, 2002, 12 : 49 - 55
  • [29] Synthetic methodologies and structures of metal-[C60]fullerene complexes
    Mathur, P
    Mavunkal, IJ
    Umbarkar, SB
    JOURNAL OF CLUSTER SCIENCE, 1998, 9 (04) : 393 - 415
  • [30] Crystal structures of molecular complexes of fullerene C60 with tetraphenylsilane and tetraphenylgermane
    O. N. Suvorova
    V. V. Kutyreva
    G. K. Fukin
    E. V. Baranov
    A. I. Kirillov
    E. A. Shchupak
    Russian Chemical Bulletin, 2009, 58 : 1084 - 1087