Impaired Skeletal Development by Disruption of Presenilin-1 in Pigs and Generation of Novel Pig Models for Alzheimer’s Disease

Author:

Uh Kyungjun1,Monarch Kaylynn2,Reese Emily D.2,Rodriguez Katherine2,Yoon Junchul2,Spate Lee D.2,Samuel Melissa S.23,Koh Sehwon4,Chen Paula R.5,Jarome Timothy J.67,Allen Timothy A.89,Prather Randall S.23,Lee Kiho23

Affiliation:

1. Futuristic Animal Resource & Research Center (FARRC), Korea Research Institute of Bioscience and Biotechnology (KRIBB), Chungcheongbuk-do, Republic of Korea

2. Division of Animal Sciences, University of Missouri, Columbia, MO, USA

3. National Swine Resource and Research Center, University of Missouri, Columbia, MO, USA

4. Department of Veterinary Medicine and Surgery, University of Missouri, Columbia, MO, USA

5. United States Department of Agriculture-Agricultural Research Service, Plant Genetics Research Unit, Columbia, MO, USA

6. School of Neuroscience, Virginia Polytechnic Institute and State University, Blacksburg, VA, USA

7. School of Animal Sciences, Virginia Polytechnic Institute and State University, Blacksburg, VA, USA

8. Cognitive Neuroscience Program, Department of Psychology, Florida International University, Miami, FL, USA

9. Department of Environmental & Occupational Health, Robert Stempel College of Public Health, Florida International University, Miami, FL, USA

Abstract

Background: Presenilin 1 (PSEN1) is one of the genes linked to the prevalence of early onset Alzheimer’s disease. In mice, inactivation of Psen1 leads to developmental defects, including vertebral malformation and neural development. However, little is known about the role of PSEN1 during the development in other species. Objective: To investigate the role of PSEN1 in vertebral development and the pathogenic mechanism of neurodegeneration using a pig model. Methods: CRISPR/Cas9 system was used to generate pigs with different mutations flanking exon 9 of PSEN1, including those with a deleted exon 9 (Δexon9). Vertebral malformations in PSEN1 mutant pigs were examined by X-ray, micro-CT and micro-MRI. Neuronal cells from the brains of PSEN1 mutant pigs were analyzed by immunoflourescence, followed by image analysis including morphometric evaluation via image J and 3D reconstruction. Results: Pigs with a PSEN1 null mutation (Δexon9-12) died shortly after birth and had significant axial skeletal defects, whereas pigs carrying at least one Δexon9 allele developed normally and remained healthy. Effects of the null mutation on abnormal skeletal development were also observed in fetuses at day 40 of gestation. Abnormal distribution of astrocytes and microglia in the brain was detected in two PSEN1 mutant pigs examined compared to age-matched control pigs. The founder pigs were bred to establish and age PSEN1ΔE9/+ pigs to study their relevance to clinical Alzheimer’s diseases. Conclusions: PSEN1 has a critical role for normal vertebral development and PSEN1 mutant pigs serves as novel resources to study Alzheimer’s disease.

Publisher

IOS Press

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