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      Wallerian Degeneration Is Executed by an NMN-SARM1-Dependent Late Ca(2+) Influx but Only Modestly Influenced by Mitochondria.

      1 , 1 , 1 , 2
      Cell reports
      Elsevier BV

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          Abstract

          Axon injury leads to rapid depletion of NAD-biosynthetic enzyme NMNAT2 and high levels of its substrate, NMN. We proposed a key role for NMN in Wallerian degeneration but downstream events and their relationship to other mediators remain unclear. Here, we show, in vitro and in vivo, that axotomy leads to a late increase in intra-axonal Ca(2+), abolished by pharmacological or genetic reduction of NMN levels. NMN requires the pro-degenerative protein SARM1 to stimulate Ca(2+) influx and axon degeneration. While inhibition of NMN synthesis and SARM1 deletion block Ca(2+) rise and preserve axonal integrity, they fail to prevent early mitochondrial dynamic changes. Furthermore, depolarizing mitochondria does not alter the rate of Wallerian degeneration. These data reveal that NMN and SARM1 act in a common pathway culminating in intra-axonal Ca(2+) increase and fragmentation and dissociate mitochondrial dysfunctions from this pathway, elucidating which steps may be most effective as targets for therapy.

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          Author and article information

          Journal
          Cell Rep
          Cell reports
          Elsevier BV
          2211-1247
          Dec 22 2015
          : 13
          : 11
          Affiliations
          [1 ] School of Life Sciences, Medical School, University of Nottingham, NG7 2UH Nottingham, UK.
          [2 ] School of Life Sciences, Medical School, University of Nottingham, NG7 2UH Nottingham, UK. Electronic address: laura.conforti@nottingham.ac.uk.
          Article
          S2211-1247(15)01347-9
          10.1016/j.celrep.2015.11.032
          26686637
          bd3b705d-bf0b-4367-9d91-46136339c785
          History

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