Literature DB >> 25612908

Regulation of mitochondrial transport in neurons.

Mei-Yao Lin1, Zu-Hang Sheng2.   

Abstract

Mitochondria are cellular power plants that supply ATP to power various biological activities essential for neuronal growth, survival, and function. Due to unique morphological features, neurons face exceptional challenges to maintain ATP and Ca(2+) homeostasis. Neurons require specialized mechanisms distributing mitochondria to distal areas where energy and Ca(2+) buffering are in high demand, such as synapses and axonal branches. These distal compartments also undergo development- and activity-dependent remodeling, thereby altering mitochondrial trafficking and distribution. Mitochondria move bi-directionally, pause briefly, and move again, frequently changing direction. In mature neurons, only one-third of axonal mitochondria are motile. Stationary mitochondria serve as local energy sources and buffer intracellular Ca(2+). The balance between motile and stationary mitochondria responds quickly to changes in axonal and synaptic physiology. Furthermore, neurons are postmitotic cells surviving for the lifetime of the organism; thus, mitochondria need to be removed when they become aged or dysfunction. Mitochondria also alter their motility under stress conditions or when their integrity is impaired. Therefore, regulation of mitochondrial transport is essential to meet altered metabolic requirements and to remove aged and damaged mitochondria or replenish healthy ones to distal terminals. Defects in mitochondrial transport and altered distribution are implicated in the pathogenesis of several major neurological disorders. Thus, research into the mechanisms regulating mitochondrial motility is an important emerging frontier in neurobiology. This short review provides an updated overview on motor-adaptor machineries that drive and regulate mitochondrial transport and docking receptors that anchor axonal mitochondria in response to the changes in synaptic activity, metabolic requirement, and altered mitochondrial integrity. The review focuses on microtubule (MT)-based mitochondrial trafficking and anchoring. Additional insight from different perspectives can be found in other in-depth reviews. Published by Elsevier Inc.

Entities:  

Keywords:  Dynein motors; Kinesin motors; Mitochondrial docking; Mitochondrial transport; Mitophagy; Motile mitochondria; Stationary mitochondria; Synaptic activity; Syntaphilin

Mesh:

Substances:

Year:  2015        PMID: 25612908      PMCID: PMC4433773          DOI: 10.1016/j.yexcr.2015.01.004

Source DB:  PubMed          Journal:  Exp Cell Res        ISSN: 0014-4827            Impact factor:   3.905


  74 in total

Review 1.  Molecular motors in neurons: transport mechanisms and roles in brain function, development, and disease.

Authors:  Nobutaka Hirokawa; Shinsuke Niwa; Yosuke Tanaka
Journal:  Neuron       Date:  2010-11-18       Impact factor: 17.173

2.  Trafficking kinesin protein (TRAK)-mediated transport of mitochondria in axons of hippocampal neurons.

Authors:  Kieran Brickley; F Anne Stephenson
Journal:  J Biol Chem       Date:  2011-03-30       Impact factor: 5.157

3.  Parkin mediates proteasome-dependent protein degradation and rupture of the outer mitochondrial membrane.

Authors:  Saori R Yoshii; Chieko Kishi; Naotada Ishihara; Noboru Mizushima
Journal:  J Biol Chem       Date:  2011-03-18       Impact factor: 5.157

Review 4.  Mitochondrial transport in neurons: impact on synaptic homeostasis and neurodegeneration.

Authors:  Zu-Hang Sheng; Qian Cai
Journal:  Nat Rev Neurosci       Date:  2012-01-05       Impact factor: 34.870

5.  Human Miltons associate with mitochondria and induce microtubule-dependent remodeling of mitochondrial networks.

Authors:  Olga S Koutsopoulos; David Laine; Laura Osellame; Dmitriy M Chudakov; Robert G Parton; Ann E Frazier; Michael T Ryan
Journal:  Biochim Biophys Acta       Date:  2010-03-15

6.  KLP6: a newly identified kinesin that regulates the morphology and transport of mitochondria in neuronal cells.

Authors:  Kousuke Tanaka; Yoshimi Sugiura; Ryohei Ichishita; Katsuyoshi Mihara; Toshihiko Oka
Journal:  J Cell Sci       Date:  2011-06-21       Impact factor: 5.285

7.  Broad activation of the ubiquitin-proteasome system by Parkin is critical for mitophagy.

Authors:  Nickie C Chan; Anna M Salazar; Anh H Pham; Michael J Sweredoski; Natalie J Kolawa; Robert L J Graham; Sonja Hess; David C Chan
Journal:  Hum Mol Genet       Date:  2011-02-04       Impact factor: 6.150

8.  Autophagosomes initiate distally and mature during transport toward the cell soma in primary neurons.

Authors:  Sandra Maday; Karen E Wallace; Erika L F Holzbaur
Journal:  J Cell Biol       Date:  2012-02-13       Impact factor: 10.539

9.  Parkinson's disease-associated kinase PINK1 regulates Miro protein level and axonal transport of mitochondria.

Authors:  Song Liu; Tomoyo Sawada; Seongsoo Lee; Wendou Yu; George Silverio; Philomena Alapatt; Ivan Millan; Alice Shen; William Saxton; Tomoko Kanao; Ryosuke Takahashi; Nobutaka Hattori; Yuzuru Imai; Bingwei Lu
Journal:  PLoS Genet       Date:  2012-03-01       Impact factor: 5.917

Review 10.  Control of mitochondrial transport and localization in neurons.

Authors:  Andrew F MacAskill; Josef T Kittler
Journal:  Trends Cell Biol       Date:  2009-12-16       Impact factor: 20.808

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  75 in total

Review 1.  Mitochondrial dynamics in neuronal injury, development and plasticity.

Authors:  Kyle H Flippo; Stefan Strack
Journal:  J Cell Sci       Date:  2017-02-02       Impact factor: 5.285

Review 2.  Connecting mitochondrial dynamics and life-or-death events via Bcl-2 family proteins.

Authors:  Abdel Aouacheria; Stephen Baghdiguian; Heather M Lamb; Jason D Huska; Fernando J Pineda; J Marie Hardwick
Journal:  Neurochem Int       Date:  2017-04-28       Impact factor: 3.921

Review 3.  Postmortem studies on mitochondria in schizophrenia.

Authors:  Rosalinda C Roberts
Journal:  Schizophr Res       Date:  2017-02-09       Impact factor: 4.939

Review 4.  Mitochondrial function in hypoxic ischemic injury and influence of aging.

Authors:  P Benson Ham; Raghavan Raju
Journal:  Prog Neurobiol       Date:  2016-06-16       Impact factor: 11.685

5.  Mitochondria Localize to Injured Axons to Support Regeneration.

Authors:  Sung Min Han; Huma S Baig; Marc Hammarlund
Journal:  Neuron       Date:  2016-12-21       Impact factor: 17.173

Review 6.  The role of mitochondria in axon development and regeneration.

Authors:  George M Smith; Gianluca Gallo
Journal:  Dev Neurobiol       Date:  2017-10-24       Impact factor: 3.964

Review 7.  Pathophysiology of Conversion to Symptomatic Leber Hereditary Optic Neuropathy and Therapeutic Implications: a Review.

Authors:  Alvaro J Mejia-Vergara; Nicolas Seleme; Alfredo A Sadun; Rustum Karanjia
Journal:  Curr Neurol Neurosci Rep       Date:  2020-04-15       Impact factor: 5.081

Review 8.  A Mitocentric View of Alzheimer's Disease.

Authors:  Hao Hu; Chen-Chen Tan; Lan Tan; Jin-Tai Yu
Journal:  Mol Neurobiol       Date:  2016-10-01       Impact factor: 5.590

9.  Biallelic TBCD Mutations Cause Early-Onset Neurodegenerative Encephalopathy.

Authors:  Noriko Miyake; Ryoko Fukai; Chihiro Ohba; Takahiro Chihara; Masayuki Miura; Hiroshi Shimizu; Akiyoshi Kakita; Eri Imagawa; Masaaki Shiina; Kazuhiro Ogata; Jiu Okuno-Yuguchi; Noboru Fueki; Yoshifumi Ogiso; Hiroshi Suzumura; Yoshiyuki Watabe; George Imataka; Huey Yin Leong; Aviva Fattal-Valevski; Uri Kramer; Satoko Miyatake; Mitsuhiro Kato; Nobuhiko Okamoto; Yoshinori Sato; Satomi Mitsuhashi; Ichizo Nishino; Naofumi Kaneko; Akira Nishiyama; Tomohiko Tamura; Takeshi Mizuguchi; Mitsuko Nakashima; Fumiaki Tanaka; Hirotomo Saitsu; Naomichi Matsumoto
Journal:  Am J Hum Genet       Date:  2016-09-22       Impact factor: 11.025

Review 10.  Does PGC1α/FNDC5/BDNF Elicit the Beneficial Effects of Exercise on Neurodegenerative Disorders?

Authors:  Mohammad Jodeiri Farshbaf; Kamran Ghaedi; Timothy L Megraw; Jennifer Curtiss; Mahsa Shirani Faradonbeh; Pooneh Vaziri; Mohammad Hossein Nasr-Esfahani
Journal:  Neuromolecular Med       Date:  2015-11-26       Impact factor: 3.843

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