Literature DB >> 13679431

Response of mitochondrial traffic to axon determination and differential branch growth.

Gordon Ruthel1, Peter J Hollenbeck.   

Abstract

Mitochondria are concentrated in regions of the neuron where the demand for mitochondrial function is high, such as nodes of Ranvier, synapses, and active growth cones. Does mitochondrial transport respond to changes in neuronal energy consumption and architecture, or does it precede and perhaps predict them? We have used axon determination, elongation, and alternating branch growth in hippocampal neurons to analyze the cellular cues that control mitochondrial traffic. During the stage 2-3 transition, when one minor process becomes the axon and accelerates its growth, mitochondria do not uniformly cluster at the base of the prospective axon. There is increased entry of mitochondria into the nascent axon, but this does not require accumulation near the axon. After axonal elongation is under way, the mitochondrial density of the minor processes decreases. Axonal towing experiments showed that elongation alone does not result in transport of mitochondria into the axon; thus, cytoplasmic flow cannot explain the entry of mitochondria into growing axons. Analysis of mitochondrial transport during alternating growth of axonal branches showed that mitochondrial traffic responds to changes in growth through regulation of entry into, but not exit from, branches. Branch-towing experiments showed that this response is not caused by axonal elongation alone, nor does it require an active growth cone. We propose that mitochondrial traffic in axons responds to changes in axonal outgrowth, and that the mechanism by which sorting at branch points occurs is different from the mechanism responsible for concentrating mitochondria at the growth cone.

Mesh:

Year:  2003        PMID: 13679431      PMCID: PMC6740379     

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  67 in total

Review 1.  The axonal transport of mitochondria.

Authors:  Peter J Hollenbeck; William M Saxton
Journal:  J Cell Sci       Date:  2005-12-01       Impact factor: 5.285

Review 2.  Mitochondrial regulation of neuronal plasticity.

Authors:  Mark P Mattson
Journal:  Neurochem Res       Date:  2006-10-06       Impact factor: 3.996

3.  Mitochondrial membrane potential in axons increases with local nerve growth factor or semaphorin signaling.

Authors:  Jessica Verburg; Peter J Hollenbeck
Journal:  J Neurosci       Date:  2008-08-13       Impact factor: 6.167

Review 4.  The axonal transport of mitochondria.

Authors:  William M Saxton; Peter J Hollenbeck
Journal:  J Cell Sci       Date:  2012-05-22       Impact factor: 5.285

Review 5.  Regulation of axonal mitochondrial transport and its impact on synaptic transmission.

Authors:  Qian Cai; Matthew L Davis; Zu-Hang Sheng
Journal:  Neurosci Res       Date:  2011-02-23       Impact factor: 3.304

6.  Bidirectional actin transport is influenced by microtubule and actin stability.

Authors:  Joshua Chetta; James M Love; Brian G Bober; Sameer B Shah
Journal:  Cell Mol Life Sci       Date:  2015-06-05       Impact factor: 9.261

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

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Journal:  Am J Hum Genet       Date:  2016-09-22       Impact factor: 11.025

8.  Mitochondrial biogenesis in the axons of vertebrate peripheral neurons.

Authors:  Mandana Amiri; Peter J Hollenbeck
Journal:  Dev Neurobiol       Date:  2008-09-15       Impact factor: 3.964

Review 9.  Mitochondria and neuroplasticity.

Authors:  Aiwu Cheng; Yan Hou; Mark P Mattson
Journal:  ASN Neuro       Date:  2010-10-04       Impact factor: 4.146

10.  The neurogenic basic helix-loop-helix transcription factor NeuroD6 concomitantly increases mitochondrial mass and regulates cytoskeletal organization in the early stages of neuronal differentiation.

Authors:  Kristin Kathleen Baxter; Martine Uittenbogaard; Jeongae Yoon; Anne Chiaramello
Journal:  ASN Neuro       Date:  2009-09-16       Impact factor: 4.146

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