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HDAC6 inhibition alleviates mitochondrial trafficking in models of Charcot-Marie-Tooth disease type 2A
Lydia H. Jestice, Larissa Butler, Rebecca A. Lea, Kathryn I. Adamson, Jonas Van Lent, Stuart L. Johnson, Hollie Weedon, Eldriena D’Silva, Gabriele Gelezauskaite, Bob Asselbergh, Eloise Brown, Owen Laing, Christopher J. Price, Dylan Stavish, Anestis Tsakiridis, Mark O. Collins, Vincent Timmerman, Kurt J. De Vos, Alison E. Twelvetrees, Andrew J. Grierson, Ivana Barbaric
Lydia H. Jestice, Larissa Butler, Rebecca A. Lea, Kathryn I. Adamson, Jonas Van Lent, Stuart L. Johnson, Hollie Weedon, Eldriena D’Silva, Gabriele Gelezauskaite, Bob Asselbergh, Eloise Brown, Owen Laing, Christopher J. Price, Dylan Stavish, Anestis Tsakiridis, Mark O. Collins, Vincent Timmerman, Kurt J. De Vos, Alison E. Twelvetrees, Andrew J. Grierson, Ivana Barbaric
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Research Article Cell biology Neuroscience

HDAC6 inhibition alleviates mitochondrial trafficking in models of Charcot-Marie-Tooth disease type 2A

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Abstract

Charcot-Marie-Tooth disease (CMT) is a group of inherited progressive conditions affecting distal motor and sensory neurons, leading to muscle weakness, pain, and loss of sensation in limbs. CMT type 2A (CMT2A) is the most common form of axonal CMT and is associated with a more severe clinical manifestation. However, there are no treatments currently available. To investigate disease mechanisms and facilitate treatment discovery, we developed an in vitro model for CMT2A by introducing the patient-specific MFN2R94Q/+ variant into human embryonic stem cells (hESCs). Isogenic variant and wild-type hESCs differentiated into spinal motor neurons with similar efficiency and gave rise to functional motor neurons in vitro. However, MFN2R94Q/+ spinal motor neurons displayed impaired mitochondrial trafficking, resulting in altered distribution of mitochondria in axons. Unbiased quantitative proteomic profiling of the endogenous MFN2 interactome revealed dose-dependent remodelling by the R94Q variant across 412 proteins, highlighting candidate mechanisms in disease pathology. Importantly, we showed that mitochondrial trafficking defects could be alleviated by treatment with an HDAC6 inhibitor. Chemical inhibition of HDAC6 also rescued the motor phenotype in a zebrafish CMT2A model. Taken together, our study reveals a variant-specific insight into CMT2A disease mechanisms and confirms HDAC6 as a promising target for further therapeutic development.

Authors

Lydia H. Jestice, Larissa Butler, Rebecca A. Lea, Kathryn I. Adamson, Jonas Van Lent, Stuart L. Johnson, Hollie Weedon, Eldriena D’Silva, Gabriele Gelezauskaite, Bob Asselbergh, Eloise Brown, Owen Laing, Christopher J. Price, Dylan Stavish, Anestis Tsakiridis, Mark O. Collins, Vincent Timmerman, Kurt J. De Vos, Alison E. Twelvetrees, Andrew J. Grierson, Ivana Barbaric

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Figure 2

Generation of limb-innervating motor neurons from isogenic MFN2R94Q/+ and MFN2+/+ hESC clones.

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Generation of limb-innervating motor neurons from isogenic MFN2R94Q/+ an...
(A) Schematic depicting the differentiation protocol for the generation of spinal motor neurons from hESCs. Blue line depicts the 3D portion of the differentiation and the orange line the 2D portion. Scale bars: 100 μm. (B) Immunofluorescent analysis of motor neuron marker expression on day 34 of differentiation. Scale bars: 100 μm. (C) Quantification of immunocytochemistry for motor neuron markers (CHAT, MNX1 [HB9], FOXP1, and ISL1) on day 34 of differentiation. (D) Gene expression profiling by qPCR for day 34 differentiated cells, demonstrating further expression of relevant motor neuron markers (ISL1, MNX1 [HB9], and OLIG2), columnar markers (LHX1, PHOX2B), and HOX markers (HOXB6). Data shown as the mean ± SEM of 3 biological repeats. Statistical significance was calculated with the Wilcoxon rank-sum test. NS, not significant (P > 0.05). (E) Average steady-state current-voltage (I-V) curves for IK from all WT1 (black), Het1 (red), and WT2 (blue) neurons measured towards the end of the protocol shown in Supplemental Figure 5B. (F) Average peak I-V curves for INa from all WT1 (black), Het1 (red), and WT2 (blue) neurons measured at the peak of the inward currents shown in Supplemental Figure 5C, to isolate INa. (G) Resting membrane potentials of WT1 (black), Het1 (red), and WT2 (blue) neurons measured in current clamp at 0 pA (from Supplemental Figure 5A).

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