Structure and Function of Dynein's Non-Catalytic Subunits

被引:2
|
作者
Rao, Lu [1 ]
Gennerich, Arne [1 ]
机构
[1] Albert Einstein Coll Med, Dept Biochem, Bronx, NY 10461 USA
关键词
cytoplasmic dynein-1; cytoplasmic dynein-2; axonemal dynein; intermediate chain; light intermediate chain; light chain; molecular motors; microtubules; MICROTUBULE-BINDING DOMAIN; RETROGRADE INTRAFLAGELLAR TRANSPORT; HUMAN CYTOPLASMIC DYNEIN; INTERMEDIATE CHAIN 1; LIGHT-CHAIN; MITOTIC SPINDLE; CRYSTAL-STRUCTURE; HEAVY-CHAIN; COILED-COIL; IFT-A;
D O I
10.3390/cells13040330
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Dynein, an ancient microtubule-based motor protein, performs diverse cellular functions in nearly all eukaryotic cells, with the exception of land plants. It has evolved into three subfamilies-cytoplasmic dynein-1, cytoplasmic dynein-2, and axonemal dyneins-each differentiated by their cellular functions. These megadalton complexes consist of multiple subunits, with the heavy chain being the largest subunit that generates motion and force along microtubules by converting the chemical energy of ATP hydrolysis into mechanical work. Beyond this catalytic core, the functionality of dynein is significantly enhanced by numerous non-catalytic subunits. These subunits are integral to the complex, contributing to its stability, regulating its enzymatic activities, targeting it to specific cellular locations, and mediating its interactions with other cofactors. The diversity of non-catalytic subunits expands dynein's cellular roles, enabling it to perform critical tasks despite the conservation of its heavy chains. In this review, we discuss recent findings and insights regarding these non-catalytic subunits.
引用
收藏
页数:31
相关论文
共 50 条
  • [21] Model for predicting catalytic and non-catalytic liquefaction of coal
    Yan, YG
    Ren, ZW
    Li, TC
    FUEL PROCESSING TECHNOLOGY, 1997, 50 (2-3) : 215 - 224
  • [22] Flame dynamics in catalytic and non-catalytic mesoscale microreactors
    Pizza, Gianmarco
    Mantzaras, John
    Frouzakis, Christos E.
    CATALYSIS TODAY, 2010, 155 (1-2) : 123 - 130
  • [23] Non-catalytic hydrodesulfurization and hydrodemetallization of residua
    Ramirez, Sergio
    Ancheyta, Jorge
    Centeno, Guillermo
    Marroquin, Gustavo
    FUEL, 2011, 90 (12) : 3571 - 3576
  • [24] NON-CATALYTIC HYDRATION OF BITUMINOUS COAL
    WIEN, H
    SCHLUPP, KF
    LANGHOFF, J
    WOLOWSKI, E
    ERDOL & KOHLE ERDGAS PETROCHEMIE, 1977, 30 (01): : 39 - 39
  • [25] NON-CATALYTIC HYDROGENATION OF AUSTRALIAN COALS
    CUDMORE, JF
    FUEL PROCESSING TECHNOLOGY, 1978, 1 (03) : 227 - 241
  • [26] The moonlighting function of pyruvate carboxylase resides in the non-catalytic end of the TIM barrel
    Huberts, Daphne H. E. W.
    Venselaar, Hanka
    Vriend, Gert
    Veenhuis, Marten
    van der Klei, Ida J.
    BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR CELL RESEARCH, 2010, 1803 (09): : 1038 - 1042
  • [27] CATALYTIC AND NON-CATALYTIC PYROLYSIS OF BIOLOGICALLY TREATED MANURE
    Fernandez-Lopez, Maria
    Parascanu, Maria Magdalena
    Lopez-Gonzalez, Diego
    Soreanu, Gabriela
    Avalos-Ramirez, Antonio
    Sanchez, Paula
    Valverde, Jose Luiz
    Sanchez-Silva, Luz
    ENVIRONMENTAL ENGINEERING AND MANAGEMENT JOURNAL, 2015, 14 (02): : 349 - 355
  • [28] Catalytic and non-catalytic amidation of carboxylic acid substrates
    Keyvan Pedrood
    Saeed Bahadorikhalili
    Vahid Lotfi
    Bagher Larijani
    Mohammad Mahdavi
    Molecular Diversity, 2022, 26 : 1311 - 1344
  • [29] Study of the non-catalytic and catalytic oxidative destruction of VOCs
    Lazar, Liliana
    Koeser, Heinz
    Balasanian, Ion
    Bandrabur, Florin
    ENVIRONMENTAL ENGINEERING AND MANAGEMENT JOURNAL, 2007, 6 (05): : 441 - 449
  • [30] Kinetics of catalytic and non-catalytic pyrolysis of Nerium Oleander
    Subramanian, Sindhu
    Ragula, Udaya Bhaskar Reddy
    FUEL, 2020, 280 (280)