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LMNB1 reduction is a potential therapeutic strategy in a mouse model of autosomal dominant leukodystrophy
Nathan Herdman, Kaveh Moradi, Bruce Nmezi, Anushe Munir, Krizchelle A. Magtoto, Fang Liu, Mara Sullivan, Xuemei Zeng, Thomas K. Karikari, Quasar S. Padiath
Nathan Herdman, Kaveh Moradi, Bruce Nmezi, Anushe Munir, Krizchelle A. Magtoto, Fang Liu, Mara Sullivan, Xuemei Zeng, Thomas K. Karikari, Quasar S. Padiath
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Research Article Genetics Neuroscience

LMNB1 reduction is a potential therapeutic strategy in a mouse model of autosomal dominant leukodystrophy

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Abstract

Autosomal dominant leukodystrophy (ADLD) is a fatal adult-onset CNS demyelinating disorder for which no treatment exists. The majority of ADLD cases are caused by duplications of the lamin B1 (LMNB1) gene, resulting in increased LMNB1 expression. While reducing LMNB1 levels represents a logical therapeutic strategy, its efficacy has not been previously demonstrated in any in vivo model. Mouse models with oligodendrocyte-specific human LMNB1 (hLMNB1) overexpression recapitulate salient features of ADLD. Using a modified version of this model, where hLMNB1 can be inducibly downregulated, we demonstrated that hLMNB1 reduction can prevent or substantially ameliorate disease progression. Therapeutic effects were maximized when hLMNB1 reduction was induced before expected symptom onset, resulting in improvements in behavioral, biochemical, histopathological, and survival measures relative to those of untreated animals. Reducing hLMNB1 levels after symptom onset led to improved survival but mixed results for other disease phenotypes. In addition, we identified potential biomarkers that track disease progression. Furthermore, we demonstrated that near-complete knockdown of murine LMNB1 expression in adulthood did not result in any overt CNS phenotype. Together, these results provide a proof of concept supporting LMNB1 reduction as a therapeutic strategy and offer a rationale for treatments aimed at lowering levels of this protein in ADLD.

Authors

Nathan Herdman, Kaveh Moradi, Bruce Nmezi, Anushe Munir, Krizchelle A. Magtoto, Fang Liu, Mara Sullivan, Xuemei Zeng, Thomas K. Karikari, Quasar S. Padiath

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Figure 8

Ubiquitous knockout of Lmnb1 in adult mice does not impair motor function, survival, or cortical neuron layering.

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Ubiquitous knockout of Lmnb1 in adult mice does not impair motor functio...
(A and B) Representative Western blot (A) and quantification (B) of forebrain and spinal cord lysates probed for endogenous murine LMNB1 and GAPDH. LMNB1 levels were normalized to GAPDH and further normalized to Lb1-flox. n = 3 per group. (C) Quantification of forebrain and spinal cord Lmnb1 mRNA expression. Lmnb1 levels were normalized to β-actin (Actb) and further normalized to Lb1-flox. n = 4 per group. (D) Rotarod performance at 10 months of age. n ≥ 10 per group. (E–G) Open-field analysis at 10 months of age comparing average ambulatory velocity (E), total distance traveled (F), and total movement time (G). n = 10 per group. (H) Body weight at 12 months of age. n = 8 per group. (I) Kaplan-Meier survival curves to 12 months of age. n = 8 per group. No significance by log-rank (Mantel-Cox) test (P > 0.9999). (J) Representative forebrain images taken at 12 months of age. (K) Representative cortical sections stained with a combination of NeuN, CUX1, DAPI, CTIP2, or LMNB1 antibodies. NeuN labels neurons, CUX1 labels layers II to upper IV, and CTIP2 labels lower IV to VI. Cortical neuron layers are labeled by roman numerals in Lb1-flox images. Scale bar: 50 μm. (L) Quantification of the percentage of NeuN+ cells that were also LMNB1+. n = 3 per group. Each point represents 1 independent field per mouse. Statistical tests: (B–H and L) Welch’s t test; (I) log-rank (Mantel-Cox) test. Data are shown as mean ± SEM. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001 nonsignificant comparisons are not shown.

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