메뉴 건너뛰기




Volumn 8, Issue , 2013, Pages 4033-4042

Structural and biomechanical basis of mitochondrial movement in eukaryotic cells

Author keywords

Actin filaments; Adaptin; Microtubules; Mitochondrial movement; Motor proteins

Indexed keywords

ACTIN; ACTIN RELATED PROTEIN 2; ACTIN RELATED PROTEIN 3; ADAPTIN; ADAPTOR PROTEIN; DYNEIN ADENOSINE TRIPHOSPHATASE; KINESIN; MITOCHONDRIAL PROTEIN; MOLECULAR MOTOR; PARKIN; SYNTABULIN; UNCLASSIFIED DRUG;

EID: 84886671031     PISSN: 11769114     EISSN: 11782013     Source Type: Journal    
DOI: 10.2147/IJN.S52132     Document Type: Review
Times cited : (32)

References (61)
  • 1
    • 84862870271 scopus 로고    scopus 로고
    • The axonal transport of mitochondria
    • Saxton WM, Hollenbeck PJ. The axonal transport of mitochondria. J Cell Sci. 2012;125 Pt 9:2095-2104.
    • (2012) J Cell Sci , vol.125 , Issue.PART 9 , pp. 2095-2104
    • Saxton, W.M.1    Hollenbeck, P.J.2
  • 2
    • 33745601933 scopus 로고    scopus 로고
    • The relationship between mitochondrial shape and function and the cytoskeleton
    • Anesti V, Scorrano L. The relationship between mitochondrial shape and function and the cytoskeleton. Biochim Biophys Acta. 2006;1757: 692-699.
    • (2006) Biochim Biophys Acta , vol.1757 , pp. 692-699
    • Anesti, V.1    Scorrano, L.2
  • 3
    • 9444226972 scopus 로고    scopus 로고
    • Control of mitochondrial motility and distribution by the calcium signal: A homeostatic circuit
    • Yi M, Weaver D, Hajnoczky G. Control of mitochondrial motility and distribution by the calcium signal: a homeostatic circuit. J Cell Biol. 2004;167:661-672.
    • (2004) J Cell Biol , vol.167 , pp. 661-672
    • Yi, M.1    Weaver, D.2    Hajnoczky, G.3
  • 5
    • 85011606649 scopus 로고
    • Co-localization of particle transport with microtubules in cytoplasmic exudates of the siphonous green alga Bryopsis
    • Menzel D, Elsner-Menzel C. Co-localization of particle transport with microtubules in cytoplasmic exudates of the siphonous green alga Bryopsis. Bot Acta. 1989;102:241-248.
    • (1989) Bot Acta , vol.102 , pp. 241-248
    • Menzel, D.1    Elsner-Menzel, C.2
  • 6
    • 0032559260 scopus 로고    scopus 로고
    • Kinesin and dynein superfamily proteins and the mechanism of organelle transport
    • Hirokawa N. Kinesin and dynein superfamily proteins and the mechanism of organelle transport. Science. 1998;279:519-526.
    • (1998) Science , vol.279 , pp. 519-526
    • Hirokawa, N.1
  • 7
    • 0029048597 scopus 로고
    • Actin-dependent light-induced translocation of mitochondria and ER cisternae in the photoreceptor cells of the locust Schistocerca gregaria
    • Sturmer K, Baumann O, Walz B. Actin-dependent light-induced translocation of mitochondria and ER cisternae in the photoreceptor cells of the locust Schistocerca gregaria. J Cell Sci. 1995;108:2273-2283.
    • (1995) J Cell Sci , vol.108 , pp. 2273-2283
    • Sturmer, K.1    Baumann, O.2    Walz, B.3
  • 8
    • 0037933255 scopus 로고    scopus 로고
    • Mitochondrial movement and positioning in axons: The role of growth factor signaling
    • Chada SR, Hollenbeck PJ. Mitochondrial movement and positioning in axons: the role of growth factor signaling. J Exp Biol. 2003;206: 1985-1992.
    • (2003) J Exp Biol , vol.206 , pp. 1985-1992
    • Chada, S.R.1    Hollenbeck, P.J.2
  • 9
    • 37549030511 scopus 로고    scopus 로고
    • Mitochondria use actin filaments as rails for fast translocation in Arabidopsis and tobacco cells
    • Doniwa Y, Arimura S, Tsutsumi N. Mitochondria use actin filaments as rails for fast translocation in Arabidopsis and tobacco cells. Plant Biotechnol. 2007;24:441-447.
    • (2007) Plant Biotechnol , vol.24 , pp. 441-447
    • Doniwa, Y.1    Arimura, S.2    Tsutsumi, N.3
  • 10
    • 67650099504 scopus 로고    scopus 로고
    • Actin turnover is required for myosin-dependent mitochondrial movements in Arabidopsis root hairs
    • Zheng M, Beck M, Müller J, et al. Actin turnover is required for myosin-dependent mitochondrial movements in Arabidopsis root hairs. PLoS One. 2009;4:e5961.
    • (2009) PLoS One , vol.4
    • Zheng, M.1    Beck, M.2    Müller, J.3
  • 11
    • 33847184274 scopus 로고    scopus 로고
    • Microtubule- and actin filament-dependent motors are distributed on pollen tube mitochondria and contribute differently to their movement
    • Romagnoli S, Cai G, Faleri C, Yokota E, Shimmen T, Cresti M. Microtubule- and actin filament-dependent motors are distributed on pollen tube mitochondria and contribute differently to their movement. Plant Cell Physiol. 2007;48:345-361.
    • (2007) Plant Cell Physiol , vol.48 , pp. 345-361
    • Romagnoli, S.1    Cai, G.2    Faleri, C.3    Yokota, E.4    Shimmen, T.5    Cresti, M.6
  • 12
    • 26944432407 scopus 로고    scopus 로고
    • Directionality of F-actin cables changes during the fission yeast cell cycle
    • Kamasaki T, Arai R, Osumi M, Mabuchi I. Directionality of F-actin cables changes during the fission yeast cell cycle. Nat Cell Biol. 2005; 7:916-917.
    • (2005) Nat Cell Biol , vol.7 , pp. 916-917
    • Kamasaki, T.1    Arai, R.2    Osumi, M.3    Mabuchi, I.4
  • 13
    • 0033895234 scopus 로고    scopus 로고
    • Molecular mechanisms controlling actin filament dynamics in nonmuscle cells
    • Pollard TD, Blanchoin L, Mullins RD. Molecular mechanisms controlling actin filament dynamics in nonmuscle cells. Annu Rev Biophys Biomol Struct. 2000;29:545-576.
    • (2000) Annu Rev Biophys Biomol Struct , vol.29 , pp. 545-576
    • Pollard, T.D.1    Blanchoin, L.2    Mullins, R.D.3
  • 14
    • 60849130414 scopus 로고    scopus 로고
    • Actin filament dynamics are dominated by rapid growth and severing activity in the Arabidopsis cortical array
    • Staiger CJ, Sheahan MB, Khurana P, Wang X, McCurdy DW. Actin filament dynamics are dominated by rapid growth and severing activity in the Arabidopsis cortical array. J Cell Biol. 2009;184:269-280.
    • (2009) J Cell Biol , vol.184 , pp. 269-280
    • Staiger, C.J.1    Sheahan, M.B.2    Khurana, P.3    Wang, X.4    McCurdy, D.W.5
  • 15
    • 9244263050 scopus 로고    scopus 로고
    • Live cell imaging of mitochondrial movement along actin cables in budding yeast
    • Fehrenbacher KL, Yang HC, Gay AC, Huckaba TM, Pon LA. Live cell imaging of mitochondrial movement along actin cables in budding yeast. Curr Biol. 2004;14:1996-2004.
    • (2004) Curr Biol , vol.14 , pp. 1996-2004
    • Fehrenbacher, K.L.1    Yang, H.C.2    Gay, A.C.3    Huckaba, T.M.4    Pon, L.A.5
  • 16
    • 0033934232 scopus 로고    scopus 로고
    • Divide and multiply: Organelle partitioning in yeast
    • Catlett NL, Weisman LS. Divide and multiply: organelle partitioning in yeast. Curr Opin Cell Biol. 2000;12:509-516.
    • (2000) Curr Opin Cell Biol , vol.12 , pp. 509-516
    • Catlett, N.L.1    Weisman, L.S.2
  • 17
    • 0037451174 scopus 로고    scopus 로고
    • Polarized growth and organelle segregation in yeast: The tracks, motors, and receptors
    • Bretscher A. Polarized growth and organelle segregation in yeast: the tracks, motors, and receptors. J Cell Biol. 2003;160:811-816.
    • (2003) J Cell Biol , vol.160 , pp. 811-816
    • Bretscher, A.1
  • 19
    • 35948978460 scopus 로고    scopus 로고
    • Moving mitochondria: Establishing distribution of an essential organelle
    • Frederick RL, Shaw JM. Moving mitochondria: establishing distribution of an essential organelle. Traffic. 2007;8:1668-1675.
    • (2007) Traffic , vol.8 , pp. 1668-1675
    • Frederick, R.L.1    Shaw, J.M.2
  • 20
    • 84880657411 scopus 로고    scopus 로고
    • The yeast cell cortical protein Num1 integrates mitochondrial dynamics into cellular architecture
    • Klecker T, Scholz D, Förtsch J, Westermann B. The yeast cell cortical protein Num1 integrates mitochondrial dynamics into cellular architecture. J Cell Sci. 2013;126 Pt 13:2924-2930.
    • (2013) J Cell Sci , vol.126 , Issue.PART 13 , pp. 2924-2930
    • Klecker, T.1    Scholz, D.2    Förtsch, J.3    Westermann, B.4
  • 21
    • 0029078227 scopus 로고
    • Actin-dependent mitochondrial motility in mitotic yeast and cell-free system identification of a motor activity on the mitochondrial surface
    • Simon VR, Swayne TC, Pon LA. Actin-dependent mitochondrial motility in mitotic yeast and cell-free system identification of a motor activity on the mitochondrial surface. J Cell Biol. 1995;130:345-354.
    • (1995) J Cell Biol , vol.130 , pp. 345-354
    • Simon, V.R.1    Swayne, T.C.2    Pon, L.A.3
  • 22
    • 0030854830 scopus 로고    scopus 로고
    • Mitochondrial inheritance cell cycle and actin cable dependence of polarized mitochondrial movements in Saccharomyces cerevisiae
    • Simon VR, Karmon SL, Pon LA. Mitochondrial inheritance cell cycle and actin cable dependence of polarized mitochondrial movements in Saccharomyces cerevisiae. Cell Motil Cytoskeleton. 1997;37: 199-210.
    • (1997) Cell Motil Cytoskeleton , vol.37 , pp. 199-210
    • Simon, V.R.1    Karmon, S.L.2    Pon, L.A.3
  • 23
    • 0035853076 scopus 로고    scopus 로고
    • Arp2/3 complex and actin dynamics are required for actin-based mitochondrial motility in yeast
    • Boldogh IR, Yang HC, Nowakowski WD, et al. Arp2/3 complex and actin dynamics are required for actin-based mitochondrial motility in yeast. Proc Natl Acad Sci U S A. 2001;98:3162-3167.
    • (2001) Proc Natl Acad Sci U S A , vol.98 , pp. 3162-3167
    • Boldogh, I.R.1    Yang, H.C.2    Nowakowski, W.D.3
  • 24
    • 4344703533 scopus 로고    scopus 로고
    • Type V myosin (Myo2p) and a Rab-like G-protein (Ypt11p) are required for retention of newly inherited mitochondria in yeast cells during division
    • Boldogh IR, Ramcharan SL, Yang HC, Pon LA. type V myosin (Myo2p) and a Rab-like G-protein (Ypt11p) are required for retention of newly inherited mitochondria in yeast cells during division. Mol Biol Cell. 2004;15:3994-4002.
    • (2004) Mol Biol Cell , vol.15 , pp. 3994-4002
    • Boldogh, I.R.1    Ramcharan, S.L.2    Yang, H.C.3    Pon, L.A.4
  • 25
    • 80052577157 scopus 로고    scopus 로고
    • The myosin-related motor protein Myo2 is an essential mediator of bud-directed mitochondrial movement in yeast
    • Förtsch J, Hummel E, Krist M, Westermann B. The myosin-related motor protein Myo2 is an essential mediator of bud-directed mitochondrial movement in yeast. J Cell Biol. 2011;194:473-488.
    • (2011) J Cell Biol , vol.194 , pp. 473-488
    • Förtsch, J.1    Hummel, E.2    Krist, M.3    Westermann, B.4
  • 26
    • 42049089309 scopus 로고    scopus 로고
    • The class V myosin motor protein, Myo2, plays a major role in mitochondrial motility in Saccharomyces cerevisiae
    • Altmann K, Frank M, Neumann D, Jakobs S, Westermann B. The class V myosin motor protein, Myo2, plays a major role in mitochondrial motility in Saccharomyces cerevisiae. J Cell Biol. 2008;181: 119-130.
    • (2008) J Cell Biol , vol.181 , pp. 119-130
    • Altmann, K.1    Frank, M.2    Neumann, D.3    Jakobs, S.4    Westermann, B.5
  • 27
    • 3342969453 scopus 로고    scopus 로고
    • Mmr1p is a mitochondrial factor for Myo2p-dependent inheritance of mitochondria in the budding yeast
    • Itoh T, Toh E A, Matsui Y. Mmr1p is a mitochondrial factor for Myo2p-dependent inheritance of mitochondria in the budding yeast. EMBO J. 2004;23:2520-2530.
    • (2004) EMBO J , vol.23 , pp. 2520-2530
    • Itoh, T.1    Toh, E.A.2    Matsui, Y.3
  • 28
    • 84865075701 scopus 로고    scopus 로고
    • Overlap of cargo binding sites on myosin V coordinates the inheritance of diverse cargoes
    • Eves PT, Jin Y, Brunner M, Weisman LS. Overlap of cargo binding sites on myosin V coordinates the inheritance of diverse cargoes. J Cell Biol. 2012;198:69-85.
    • (2012) J Cell Biol , vol.198 , pp. 69-85
    • Eves, P.T.1    Jin, Y.2    Brunner, M.3    Weisman, L.S.4
  • 29
    • 0037154230 scopus 로고    scopus 로고
    • Actin cable dynamics in budding yeast
    • Yang HC, Pon LA. Actin cable dynamics in budding yeast. Proc Natl Acad Sci U S A. 2002;99:751-756.
    • (2002) Proc Natl Acad Sci U S A , vol.99 , pp. 751-756
    • Yang, H.C.1    Pon, L.A.2
  • 30
    • 23644435760 scopus 로고    scopus 로고
    • Mitochondrial movement and inheritance in budding yeast
    • Boldogh IR, Fehrenbacher KL, Yang HC, Pon LA. Mitochondrial movement and inheritance in budding yeast. Gene. 2005;354: 28-36.
    • (2005) Gene , vol.354 , pp. 28-36
    • Boldogh, I.R.1    Fehrenbacher, K.L.2    Yang, H.C.3    Pon, L.A.4
  • 31
    • 8444244830 scopus 로고    scopus 로고
    • Live cell imaging of the assembly, disassembly, and actin cable-dependent movement of endosomes and actin patches in the budding yeast, Saccharomyces cerevisiae
    • Huckaba TM, Gay AC, Pantalena LF, Yang HC, Pon LA. Live cell imaging of the assembly, disassembly, and actin cable-dependent movement of endosomes and actin patches in the budding yeast, Saccharomyces cerevisiae. J Cell Biol. 2004;167:519-530.
    • (2004) J Cell Biol , vol.167 , pp. 519-530
    • Huckaba, T.M.1    Gay, A.C.2    Pantalena, L.F.3    Yang, H.C.4    Pon, L.A.5
  • 32
    • 0344827286 scopus 로고    scopus 로고
    • A pathway for association of receptors, adaptors, and actin during endocytic internalization
    • Kaksonen M, Sun Y, Drubin DG. A pathway for association of receptors, adaptors, and actin during endocytic internalization. Cell. 2003;115: 475-487.
    • (2003) Cell , vol.115 , pp. 475-487
    • Kaksonen, M.1    Sun, Y.2    Drubin, D.G.3
  • 33
    • 40849102944 scopus 로고    scopus 로고
    • Multiple pathways influence mitochondrial inheritance in budding yeast
    • Frederick RL, Okamoto K, Shaw JM. Multiple pathways influence mitochondrial inheritance in budding yeast. Genetics. 2008;178:825-837.
    • (2008) Genetics , vol.178 , pp. 825-837
    • Frederick, R.L.1    Okamoto, K.2    Shaw, J.M.3
  • 34
    • 84871821848 scopus 로고
    • The meaning of mitochondrial movement to a neuron's life
    • Lovas JR, Wang X. The meaning of mitochondrial movement to a neuron's life. Biochim Biophys Acta. 2013;1833:184-194.
    • (1833) Biochim Biophys Acta , vol.2013 , pp. 184-194
    • Lovas, J.R.1    Wang, X.2
  • 35
    • 84862244535 scopus 로고    scopus 로고
    • Microdevice platform for visualizing mitochondrial transport in aligned dopaminergic axons
    • Lu X, Kim-Han JS, O'Malley KL, Sakiyama-Elbert SE. Microdevice platform for visualizing mitochondrial transport in aligned dopaminergic axons. J Neurosci Methods. 2012;209:35-39.
    • (2012) J Neurosci Methods , vol.209 , pp. 35-39
    • Lu, X.1    Kim-Han, J.S.2    O'Malley, K.L.3    Sakiyama-Elbert, S.E.4
  • 36
    • 81055140895 scopus 로고    scopus 로고
    • PINK1 and Parkin target Miro for phosphorylation and degradation to arrest mitochondrial motility
    • Wang XN, Winter D, Ashrafi G, et al. PINK1 and Parkin target Miro for phosphorylation and degradation to arrest mitochondrial motility. Cell. 2011;147:893-906.
    • (2011) Cell , vol.147 , pp. 893-906
    • Wang, X.N.1    Winter, D.2    Ashrafi, G.3
  • 37
    • 33748090058 scopus 로고    scopus 로고
    • Mitochondrial clustering at the vertebrate neuromuscular junction during presynaptic differentiation
    • Peno HB, Lee CW. Mitochondrial clustering at the vertebrate neuromuscular junction during presynaptic differentiation. J Neurobiol. 2006;66:522-536.
    • (2006) J Neurobiol , vol.66 , pp. 522-536
    • Peno, H.B.1    Lee, C.W.2
  • 38
    • 6344228431 scopus 로고    scopus 로고
    • Kinesin superfamily proteins and their various functions and dynamics
    • Hirokawa N, Takemura R. Kinesin superfamily proteins and their various functions and dynamics. Exp Cell Res. 2004;301:50-59.
    • (2004) Exp Cell Res , vol.301 , pp. 50-59
    • Hirokawa, N.1    Takemura, R.2
  • 39
    • 79959909717 scopus 로고    scopus 로고
    • Vimentin intermediate filaments modulate the motility of mitochondria
    • Nekrasova OE, Mendez MG, Chernoivanenko IS, et al. Vimentin intermediate filaments modulate the motility of mitochondria. Mol Biol Cell. 2011;22:2282-2289.
    • (2011) Mol Biol Cell , vol.22 , pp. 2282-2289
    • Nekrasova, O.E.1    Mendez, M.G.2    Chernoivanenko, I.S.3
  • 41
    • 28444496758 scopus 로고    scopus 로고
    • APLIP1, a kinesin-binding JNK scaffold protein, influences bidirectional transport of vesicles and retrograde transport of mitochondria in Drosophila axons
    • Horiuchi D, Barkus RV, Pilling AD, Gassman A, Saxton WM. APLIP1, a kinesin-binding JNK scaffold protein, influences bidirectional transport of vesicles and retrograde transport of mitochondria in Drosophila axons. Curr Biol. 2005;15:2137-2141.
    • (2005) Curr Biol , vol.15 , pp. 2137-2141
    • Horiuchi, D.1    Barkus, R.V.2    Pilling, A.D.3    Gassman, A.4    Saxton, W.M.5
  • 42
    • 0038603918 scopus 로고    scopus 로고
    • A scaffold protein JIP-1b enhances amyloid precursor protein phosphorylation by JNK and its association with kinesin light chain
    • Inomata H, Nakamura Y, Hayakawa A, et al. A scaffold protein JIP-1b enhances amyloid precursor protein phosphorylation by JNK and its association with kinesin light chain. J Biol Chem. 2003;278: 22946-22955.
    • (2003) J Biol Chem , vol.278 , pp. 22946-22955
    • Inomata, H.1    Nakamura, Y.2    Hayakawa, A.3
  • 43
    • 0141532147 scopus 로고    scopus 로고
    • Amyloid beta protein precursor (AbetaPP), but not AbetaPP-like protein 2, is bridged to the kinesin light chain by the scaffold protein JNK-interacting protein 1
    • Matsuda S, Matsuda Y, D'Adamio L. Amyloid beta protein precursor (AbetaPP), but not AbetaPP-like protein 2, is bridged to the kinesin light chain by the scaffold protein JNK-interacting protein 1. J Biol Chem. 2003;278:38601-38606.
    • (2003) J Biol Chem , vol.278 , pp. 38601-38606
    • Matsuda, S.1    Matsuda, Y.2    D'Adamio, L.3
  • 44
    • 33646768127 scopus 로고    scopus 로고
    • Axonal transport of mitochondria requires Milton to recruit kinesin heavy chain and is light chain independent
    • Glater EE, Megeath LJ, Stowers RS, Schwarz TL. Axonal transport of mitochondria requires Milton to recruit kinesin heavy chain and is light chain independent. J Cell Biol. 2006;173:545-557.
    • (2006) J Cell Biol , vol.173 , pp. 545-557
    • Glater, E.E.1    Megeath, L.J.2    Stowers, R.S.3    Schwarz, T.L.4
  • 45
    • 33646759268 scopus 로고    scopus 로고
    • Kinesin-1 and dynein are the primary motors for fast transport of mitochondria in Drosophila motor axons
    • Pilling AD, Horiuchi D, Lively CM, Saxton WM. Kinesin-1 and dynein are the primary motors for fast transport of mitochondria in Drosophila motor axons. Mol Biol Cell. 2006;17:2057-2068.
    • (2006) Mol Biol Cell , vol.17 , pp. 2057-2068
    • Pilling, A.D.1    Horiuchi, D.2    Lively, C.M.3    Saxton, W.M.4
  • 46
    • 28444456051 scopus 로고    scopus 로고
    • Building complexity: An in vitro study of cytoplasmic dynein with in vivo implications
    • Mallik R, Petrov D, Lex SA, King SJ, Gross SP. Building complexity: an in vitro study of cytoplasmic dynein with in vivo implications. Curr Biol. 2005;15:2075-2085.
    • (2005) Curr Biol , vol.15 , pp. 2075-2085
    • Mallik, R.1    Petrov, D.2    Lex, S.A.3    King, S.J.4    Gross, S.P.5
  • 48
    • 0842269066 scopus 로고    scopus 로고
    • Myosin-dependent transport in neurons
    • Bridgman PC. Myosin-dependent transport in neurons. J Neurobiol. 2004;58:164-174.
    • (2004) J Neurobiol , vol.58 , pp. 164-174
    • Bridgman, P.C.1
  • 49
    • 0002185678 scopus 로고    scopus 로고
    • The pattern and mechanism of mitochondrial transport in axons
    • Hollenbeck PJ. The pattern and mechanism of mitochondrial transport in axons. Front Biosci. 1996;10:d91-d102.
    • (1996) Front Biosci , vol.10
    • Hollenbeck, P.J.1
  • 50
    • 71649106914 scopus 로고    scopus 로고
    • Motors: Unleashing mitochondria
    • Margaret A, Titus MA. Motors: unleashing mitochondria. Curr Biol. 2009;19:R1076-R1078.
    • (2009) Curr Biol , vol.19
    • Margaret, A.1    Titus, M.A.2
  • 51
    • 71649086757 scopus 로고    scopus 로고
    • Human Myo19 is a novel myosin that associates with mitochondria
    • Quintero OA, Divito MM, Adikes RC, et al. Human Myo19 is a novel myosin that associates with mitochondria. Curr Biol. 2009;19: 2008-2013.
    • (2009) Curr Biol , vol.19 , pp. 2008-2013
    • Quintero, O.A.1    Divito, M.M.2    Adikes, R.C.3
  • 52
    • 79955479720 scopus 로고    scopus 로고
    • Regulation of axonal mitochondrial transport and its impact on synaptic transmission
    • Cai Q, Davis ML, Sheng ZH. Regulation of axonal mitochondrial transport and its impact on synaptic transmission. Neurosci Res. 2011;70: 9-15.
    • (2011) Neurosci Res , vol.70 , pp. 9-15
    • Cai, Q.1    Davis, M.L.2    Sheng, Z.H.3
  • 53
    • 34447130225 scopus 로고    scopus 로고
    • Syntabulin-kinesin-1 family member 5B-mediated axonal transport contributes to activity-dependent presynaptic assembly
    • Cai Q, Pan PY, Sheng ZH. Syntabulin-kinesin-1 family member 5B-mediated axonal transport contributes to activity-dependent presynaptic assembly. J Neurosci. 2007;27:7284-7296.
    • (2007) J Neurosci , vol.27 , pp. 7284-7296
    • Cai, Q.1    Pan, P.Y.2    Sheng, Z.H.3
  • 54
    • 24944534881 scopus 로고    scopus 로고
    • Syntabulin-mediated anterograde transport of mitochondria along neuronal processes
    • Cai Q, Gerwin C, Sheng ZH. Syntabulin-mediated anterograde transport of mitochondria along neuronal processes. J Cell Biol. 2005; 170:959-969.
    • (2005) J Cell Biol , vol.170 , pp. 959-969
    • Cai, Q.1    Gerwin, C.2    Sheng, Z.H.3
  • 55
    • 67649813213 scopus 로고    scopus 로고
    • Mitochondrial transport and docking in axons
    • Cai Q, Sheng ZH. Mitochondrial transport and docking in axons. Exp Neurol. 2009;218:257-267.
    • (2009) Exp Neurol , vol.218 , pp. 257-267
    • Cai, Q.1    Sheng, Z.H.2
  • 56
    • 58549119743 scopus 로고    scopus 로고
    • Bidirectional Ca2+-dependent control of mitochondrial dynamics by the Miro GTPase
    • Saotome M, Safiulina D, Szabadkai G, et al. Bidirectional Ca2+-dependent control of mitochondrial dynamics by the Miro GTPase. Proc Natl Acad Sci U S A. 2008;105:20728-20733.
    • (2008) Proc Natl Acad Sci U S A , vol.105 , pp. 20728-20733
    • Saotome, M.1    Safiulina, D.2    Szabadkai, G.3
  • 57
    • 64549112144 scopus 로고    scopus 로고
    • Pink1 forms a multiprotein complex with Miro and Milton, linking Pink1 function to mitochondrial trafficking
    • Weihofen A, Thomas KJ, Ostaszewski BL, Cookson MR, Selkoe DJ. Pink1 forms a multiprotein complex with Miro and Milton, linking Pink1 function to mitochondrial trafficking. Biochemistry. 2009;48: 2045-2052.
    • (2009) Biochemistry , vol.48 , pp. 2045-2052
    • Weihofen, A.1    Thomas, K.J.2    Ostaszewski, B.L.3    Cookson, M.R.4    Selkoe, D.J.5
  • 58
    • 77950547934 scopus 로고    scopus 로고
    • The speed of mitochondrial movement is regulated by the cytoskeleton and myosin in Picea wilsonii pollen tubes
    • Zheng M, Wang Q, Teng Y, et al. The speed of mitochondrial movement is regulated by the cytoskeleton and myosin in Picea wilsonii pollen tubes. Planta. 2010;231:779-791.
    • (2010) Planta , vol.231 , pp. 779-791
    • Zheng, M.1    Wang, Q.2    Teng, Y.3
  • 59
    • 0015453689 scopus 로고
    • Protoplasmic streaming, cytochalasin B, and growth of the pollen tube
    • Mascarenhas JP, Lafountain J. Protoplasmic streaming, cytochalasin B, and growth of the pollen tube. Tissue Cell. 1972;4:11-14.
    • (1972) Tissue Cell , vol.4 , pp. 11-14
    • Mascarenhas, J.P.1    Lafountain, J.2
  • 60
    • 0001795674 scopus 로고
    • Cytochalasin-induced ultrastructural alterations in Nicotiana pollen tubes
    • Lancelle SA, Hepler PK. Cytochalasin-induced ultrastructural alterations in Nicotiana pollen tubes. Protoplasma. 1988;2:65-75.
    • (1988) Protoplasma , vol.2 , pp. 65-75
    • Lancelle, S.A.1    Hepler, P.K.2
  • 61
    • 12444316123 scopus 로고    scopus 로고
    • Microfilaments and microtubules control the shape, motility, and subcellular distribution of cortical mitochondria in characean internodal cells
    • Foissner I. Microfilaments and microtubules control the shape, motility, and subcellular distribution of cortical mitochondria in characean internodal cells. Protoplasma. 2004;224:145-157.
    • (2004) Protoplasma , vol.224 , pp. 145-157
    • Foissner, I.1


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.