Mechanics of mitochondrial motility in neurons

被引:53
作者
Barnhart, Erin L. [1 ]
机构
[1] Stanford Univ, Sch Med, Dept Neurobiol, Lab Thomas Clandinin, Fairchild Bldg,D217,299 Campus Dr West, Stanford, CA 94305 USA
关键词
ACTIVITY-DEPENDENT REGULATION; AXONAL-TRANSPORT; ENDOPLASMIC-RETICULUM; DENDRITIC SPINES; PROTEIN; MIRO; PHOSPHORYLATION; DYNAMICS; MICROTUBULES; MOTORS;
D O I
10.1016/j.ceb.2016.02.022
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
A properly organized, healthy mitochondrial network is critical for preserving neuronal form and function. Large, elaborately branched neuronal morphologies, energetic demands that fluctuate in time and space, and long neuronal lifespans make the distribution of mitochondria in neurons a particularly complex problem. Moreover, mitochondrial networks are dynamic systems in which mitochondria grow, divide and fuse, move along cytoskeletal filaments, and are degraded in an active fashion. Although the molecular mechanisms that govern mitochondrial motility, in particular, are increasingly well-characterized, the manner in which these mechanisms are coordinated to give rise to the global mitochondrial distribution in neurons is less well understood. Here I review several molecular mechanisms for mitochondrial motility in the context of a general mechanical framework. In this framework, molecular pathways that control mitochondrial movement can be reduced to their effects on the balance of forces that act on mitochondria, driving and opposing movement.
引用
收藏
页码:90 / 99
页数:10
相关论文
共 97 条
  • [21] Local synthesis of nuclear-encoded mitochondrial proteins in the presynaptic nerve terminal
    Gioio, AE
    Eyman, M
    Zhang, HS
    Lavina, ZS
    Giuditta, A
    Kaplan, BB
    [J]. JOURNAL OF NEUROSCIENCE RESEARCH, 2001, 64 (05) : 447 - 453
  • [22] Role of Mitochondrial Ca2+ in the Regulation of Cellular Energetics
    Glancy, Brian
    Balaban, Robert S.
    [J]. BIOCHEMISTRY, 2012, 51 (14) : 2959 - 2973
  • [23] Axonal transport of mitochondria requires milton to recruit kinesin heavy chain and is light chain independent
    Glater, Elizabeth E.
    Megeath, Laura J.
    Stowers, R. Steven
    Schwarz, Thomas L.
    [J]. JOURNAL OF CELL BIOLOGY, 2006, 173 (04) : 545 - 557
  • [24] GROSS NJ, 1969, J BIOL CHEM, V244, P1552
  • [25] Cargo transport: Two motors are sometimes better than one
    Gross, Steven P.
    Vershinin, Michael
    Shubeita, George T.
    [J]. CURRENT BIOLOGY, 2007, 17 (12) : R478 - R486
  • [26] The GTPase dMiro is required for axonal transport of mitochondria to Drosophila synapses
    Guo, XF
    Macleod, GT
    Wellington, A
    Hu, F
    Panchumarthi, S
    Schoenfield, M
    Marin, L
    Charlton, MP
    Atwood, HL
    Zinsmaier, KE
    [J]. NEURON, 2005, 47 (03) : 379 - 393
  • [27] Oxidative Phosphorylation, Not Glycolysis, Powers Presynaptic and Postsynaptic Mechanisms Underlying Brain Information Processing
    Hall, Catherine N.
    Klein-Fluegge, Miriam C.
    Howarth, Clare
    Attwell, David
    [J]. JOURNAL OF NEUROSCIENCE, 2012, 32 (26) : 8940 - 8951
  • [28] Walking to work: roles for class V myosins as cargo transporters
    Hammer, John A., III
    Sellers, James R.
    [J]. NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2012, 13 (01) : 13 - 26
  • [29] Posttranslational Modifications of Tubulin and the Polarized Transport of Kinesin-1 in Neurons
    Hammond, Jennetta W.
    Huang, Chun-Fang
    Kaech, Stefanie
    Jacobson, Catherine
    Banker, Gary
    Verhey, Kristen J.
    [J]. MOLECULAR BIOLOGY OF THE CELL, 2010, 21 (04) : 572 - 583
  • [30] Synaptic Energy Use and Supply
    Harris, Julia J.
    Jolivet, Renaud
    Attwell, David
    [J]. NEURON, 2012, 75 (05) : 762 - 777