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Iduronate-2-sulfatase transport vehicle rescues behavioral and skeletal phenotypes in a mouse model of Hunter syndrome
Annie Arguello, René Meisner, Elliot R. Thomsen, Hoang N. Nguyen, Ritesh Ravi, Jeffrey Simms, Iris Lo, Jessica Speckart, Julia Holtzman, Thomas M. Gill, Darren Chan, Yuhsiang Cheng, Chi-Lu Chiu, Jason C. Dugas, Meng Fang, Isabel A. Lopez, Hilda Solanoy, Buyankhishig Tsogtbaatar, Yuda Zhu, Akhil Bhalla, Kirk R. Henne, Anastasia G. Henry, Anthony Delucchi, Simona Costanzo, Jeffrey M. Harris, Dolores Diaz, Kimberly Scearce-Levie, Pascal E. Sanchez
Annie Arguello, René Meisner, Elliot R. Thomsen, Hoang N. Nguyen, Ritesh Ravi, Jeffrey Simms, Iris Lo, Jessica Speckart, Julia Holtzman, Thomas M. Gill, Darren Chan, Yuhsiang Cheng, Chi-Lu Chiu, Jason C. Dugas, Meng Fang, Isabel A. Lopez, Hilda Solanoy, Buyankhishig Tsogtbaatar, Yuda Zhu, Akhil Bhalla, Kirk R. Henne, Anastasia G. Henry, Anthony Delucchi, Simona Costanzo, Jeffrey M. Harris, Dolores Diaz, Kimberly Scearce-Levie, Pascal E. Sanchez
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Research Article Neuroscience Therapeutics

Iduronate-2-sulfatase transport vehicle rescues behavioral and skeletal phenotypes in a mouse model of Hunter syndrome

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Abstract

Mucopolysaccharidosis type II (MPS II) is a lysosomal storage disorder caused by deficiency of the iduronate-2-sulfatase (IDS) enzyme, resulting in cellular accumulation of glycosaminoglycans (GAGs) throughout the body. Treatment of MPS II remains a considerable challenge as current enzyme replacement therapies do not adequately control many aspects of the disease, including skeletal and neurological manifestations. We developed an IDS transport vehicle (ETV:IDS) that is engineered to bind to the transferrin receptor; this design facilitates receptor-mediated transcytosis of IDS across the blood-brain barrier and improves its distribution into the brain while maintaining distribution to peripheral tissues. Here we show that chronic systemic administration of ETV:IDS in a mouse model of MPS II reduced levels of peripheral and central nervous system GAGs, microgliosis, and neurofilament light chain, a biomarker of neuronal injury. Additionally, ETV:IDS rescued auricular and skeletal abnormalities when introduced in adult MPS II mice. These effects were accompanied by improvements in several neurobehavioral domains, including motor skills, sensorimotor gating, and learning and memory. Together, these results highlight the therapeutic potential of ETV:IDS for treating peripheral and central abnormalities in MPS II. DNL310, an investigational ETV:IDS molecule, is currently in clinical trials as a potential treatment for patients with MPS II.

Authors

Annie Arguello, René Meisner, Elliot R. Thomsen, Hoang N. Nguyen, Ritesh Ravi, Jeffrey Simms, Iris Lo, Jessica Speckart, Julia Holtzman, Thomas M. Gill, Darren Chan, Yuhsiang Cheng, Chi-Lu Chiu, Jason C. Dugas, Meng Fang, Isabel A. Lopez, Hilda Solanoy, Buyankhishig Tsogtbaatar, Yuda Zhu, Akhil Bhalla, Kirk R. Henne, Anastasia G. Henry, Anthony Delucchi, Simona Costanzo, Jeffrey M. Harris, Dolores Diaz, Kimberly Scearce-Levie, Pascal E. Sanchez

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Figure 2

ETV:IDS normalizes neurobehavioral deficits in Ids-KO TfRmu/hu mice.

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ETV:IDS normalizes neurobehavioral deficits in Ids-KO TfRmu/hu mice.
Veh...
Vehicle-treated TfRmu/hu (n = 22; black), vehicle-treated Ids-KO TfRmu/hu mice (n = 20; gray), and ETV:IDS-treated Ids-KO TfRmu/hu mice (n = 19; orange) underwent a battery of behavioral tests from week 11 to week 15 of dosing. (A) The proportion of mice that successfully completed the running trials at each treadmill speed was assessed: Fisher’s exact or χ2 test. (B) The latency to descend the pole was averaged across 3 trials: linear mixed effects model. (C) The level of pre-pulse inhibition of startle was assessed for each pre-pulse intensity: linear model. (D) The whole-body startle response (N) was assessed for each acoustic stimulus: linear mixed effects model. (E) In the active place avoidance assay (APA), mice were trained to avoid an unmarked aversive zone (orange) where a mild foot shock was presented upon entrance in the zone. The number of entrances in the aversive zone were measured during each phase of testing: linear mixed effects model to assess treatment effect in Ids-KO TfRmu/hu mice. (F and G) The entrances in the aversive zone were graphed for the third and reinstatement trials: Wilcoxon’s rank sum test. (H) The classification of performance in the APA was based on the number of entrances in the aversive zone during the reinstatement trial; poor (>1), good (1), top (0): Fisher’s exact test. (I) Hind paw withdrawal was measured in the hot plate test: Wilcoxon’s rank sum test, not significant. (J) Visual function was assessed by evaluating an animal’s preference toward the shallow versus the deep zones in the visual cliff test: χ2 test, not significant. All graphs display mean ± SEM except A and H. Comparison of vehicle-treated TfRmu/hu mice and Ids-KO TfRmu/hu mice, or as indicated by brackets; *P < 0.05, **P < 0.01, ***P < 0.001, and ****P < 0.0001.

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