Feasibility and therapeutical potential of local intracerebral encapsulated cell biodelivery of BDNF to AppNL−G−F knock-in Alzheimer mice
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Published:2023-08-18
Issue:1
Volume:15
Page:
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ISSN:1758-9193
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Container-title:Alzheimer's Research & Therapy
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language:en
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Short-container-title:Alz Res Therapy
Author:
Tambaro Simone,Mitra Sumonto,Gera Ruchi,Linderoth Bengt,Wahlberg Lars U.,Darreh-Shori Taher,Behbahani Homira,Nilsson Per,Eriksdotter Maria
Abstract
Abstract
Background
Alzheimer’s disease (AD) is an age-related disease characterized by altered cognition, neuroinflammation, and neurodegeneration against which there is presently no effective cure. Brain-derived neurotrophic factor (BDNF) is a key neurotrophin involved in the learning and memory process, with a crucial role in synaptic plasticity and neuronal survival. Several findings support that a reduced BDNF expression in the human brain is associated with AD pathogenesis. BDNF has been proposed as a potential therapy for AD, but BDNF has low brain penetration. In this study, we used an innovative encapsulated cell biodelivery (ECB) device, containing genetically modified cells capable of releasing BDNF and characterized its feasibility and therapeutic effects in the novel App knock-in AD mouse model (AppNL−G−F).
Methods
ECB’s containing human ARPE-19 cells genetically modified to release BDNF (ECB-BDNF devices) were stereotactically implanted bilaterally into hippocampus of 3-month-old AppNL−G−F mice. The stability of BDNF release and its effect on AD pathology were evaluated after 1, 2-, and 4-months post-implantation by immunohistochemical and biochemical analyses. Exploratory and memory performance using elevated plus maze (EPM) and Y-maze test were performed in the 4-months treatment group. Immunological reaction towards ECB-BDNF devices were studied under ex vivo and in vivo settings.
Results
The surgery and the ECB-BDNF implants were well tolerated without any signs of unwanted side effects or weight loss. ECB-BDNF devices did not induce host-mediated immune response under ex vivo set-up but showed reduced immune cell attachment when explanted 4-months post-implantation. Elevated BDNF staining around ECB-BDNF device proximity was detected after 1, 2, and 4 months treatment, but the retrieved devices showed variable BDNF release. A reduction of amyloid-β (Aβ) plaque deposition was observed around ECB-BDNF device proximity after 2-months of BDNF delivery.
Conclusions
The result of this study supports the use of ECB device as a promising drug-delivery approach to locally administer BBB-impermeable factors for treating neurodegenerative conditions like AD. Optimization of the mouse-sized devices to reduce variability of BDNF release is needed to employ the ECB platform in future pre-clinical research and therapy development studies.
Funder
Karolinska Institutet Research Fund Loo and Hans Osterman Foundation Foundation for Geriatric Diseases at Karolinska Institutet Gamla Tjänarinnor Stohnes Stiftelse Åhléns foundation Demensfonden Ake Weiberg Foundation Olle Engkvist Foundation Magnus Bergvall foundation ALF Medicine Stockholm Hållsten Research Foundation Torsten Söderbergs Stiftelse Sonja Leikrans donation Alzheimerfonden Hjärnfonden Vetenskapsrådet Swedish Brain Foundation Familjen Erling-Perssons Stiftelse Karolinska Institute
Publisher
Springer Science and Business Media LLC
Subject
Cognitive Neuroscience,Neurology (clinical),Neurology
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