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Nav1.1-overexpressing interneuron transplants restore brain rhythms and cognition in a mouse model of Alzheimer’s disease

Bibliographic

Year of Publication:
2019
Contact PI Name:
Jorge J. Palop
Contact PI Affiliation:
Department of Neurology, Gladstone Institute of Neurological Disease, San Francisco, California, USA
Co-Authors:
Magdalena Martinez-Losa, Tara E. Tracy, Keran Ma, Laure Verret, Alexandra Clemente-Perez, Abdullah S. Khan, Inma Cobos, Kaitlyn Ho, Li Gan, Lennart Mucke, Manuel Alvarez-Dolado
Primary Reference (PubMED ID):
Funding Source:
National Institute on Aging (NIA)
National Institute of Neurological Disorders and Stroke (NINDS)
National Center for Research Resources (NCRR)
Alzheimer's Association
Spanish Government
S.D. Bechtel Jr. Foundation
Instituto de Salud Carlos III
Study Goal and Principal Findings:

Inhibitory interneurons regulate the oscillatory rhythms and network synchrony that are required for cognitive functions and disrupted in Alzheimer's disease (AD). Network dysrhythmias in AD and multiple neuropsychiatric disorders are associated with hypofunction of Nav1.1, a voltage-gated sodium channel subunit predominantly expressed in interneurons. We show that Nav1.1-overexpressing, but not wild-type, interneuron transplants derived from the embryonic medial ganglionic eminence (MGE) enhance behavior-dependent gamma oscillatory activity, reduce network hypersynchrony, and improve cognitive functions in human amyloid precursor protein (hAPP)-transgenic mice, which simulate key aspects of AD. Increased Nav1.1 levels accelerated action potential kinetics of transplanted fast-spiking and non-fast-spiking interneurons. Nav1.1-deficient interneuron transplants were sufficient to cause behavioral abnormalities in wild-type mice. We conclude that the efficacy of interneuron transplantation and the function of transplanted cells in an AD-relevant context depend on their Nav1.1 levels. Disease-specific molecular optimization of cell transplants may be required to ensure therapeutic benefits in different conditions.

Bibliographic Notes:
Jorge Palop (Department of Neurology, Gladstone Institute of Neurological Disease, San Francisco, California, USA) and Manuel Alvarez-Dolado (Andalusian Center for Molecular Biology and Regenerative Medicine-CABIMER, CSIC, Seville, Spain) are corresponding authors on this paper.

Therapeutic Agent

Therapeutic Information:
Therapy Type:
Biologic - Cell-based
Therapeutic Agent:
MGE-Nav1.1
Therapeutic Target:
Voltage-Gated Sodium Channel Type 1 alpha Subunit (Nav1.1)

Animal Model

Model Information:
Species:
Mouse
Model Type:
APP
Strain/Genetic Background:
C57BL/6J

Experimental Design

Is the following information reported in the study?:
Power/Sample Size Calculation
Randomized into Groups
Blinded for Treatment
Blinded for Outcome Measures
Pharmacokinetic Measures
Pharmacodynamic Measures
Toxicology Measures
ADME Measures
Biomarkers
Dose
Formulation
Route of Delivery
Duration of Treatment
Frequency of Administration
Age of Animal at the Beginning of Treatment
Age of Animal at the End of Treatment
Sex as a Biological Variable
Study Balanced for Sex as a Biological Variable
Number of Premature Deaths
Number of Excluded Animals
Statistical Plan
Genetic Background
Inclusion/Exclusion Criteria Included
Conflict of Interest

Outcomes

Outcome Measured
Outcome Parameters
Behavioral
Morris Water Maze
Open Field Test
Y Maze
Contextual Fear Conditioning
Motor Function
Locomotor Activity
Histopathology
beta Amyloid Deposits
Immunochemistry
Green Fluorescent Protein (GFP)
Ionized Calcium Binding Adaptor Molecule 1 (Iba1)
Glial Fibrillary Acidic Protein (GFAP)
Parvalbumin
Somatostatin (SST)
Voltage-Gated Sodium Channel Type 1 alpha (Nav1.1)
Microscopy
Cell Count
Electrophysiology
Action Potential Amplitude
Action Potential Half-Width
Action Potential Threshold
Action Potentials
Fast Spiking Interneurons
Electroencephalogram (EEG)
Electroencephalogram (EEG) Spike Wave Discharge
Electroencephalogram (EEG) Frequency Power Spectrum Density
Gamma Oscillations
Resting Membrane Potential
Current-Voltage (I-V) Curve
Capacitance
Whole Cell Patch Clamp Recording