Neurofibromin 1 mutations impair the function of human induced pluripotent stem cell-derived microglia

Author:

Kuhrt Leonard D.123ORCID,Motta Edyta14,Elmadany Nirmeen156,Weidling Hannah13,Fritsche-Guenther Raphaela7,Efe Ibrahim E.13,Cobb Olivia8,Chatterjee Jit8,Boggs Lucy G.8,Schnauß Marina1,Diecke Sebastian2,Semtner Marcus19,Anastasaki Corina8ORCID,Gutmann David H.8ORCID,Kettenmann Helmut110ORCID

Affiliation:

1. Max-Delbrück-Center for Molecular Medicine in the Helmholtz Association 1 Cellular Neurosciences , , 13125 Berlin , Germany

2. Technology Platform Pluripotent Stem Cells, Max-Delbrück-Center for Molecular Medicine in the Helmholtz Association 2 , 13125 Berlin , Germany

3. Charité – Universitätsmedizin Berlin 3 , Berlin , Germany

4. University Medical Center Schleswig-Holstein 4 Department of Neurosurgery , , 24105 Kiel , Germany

5. German Cancer Consortium (DKTK), Clinical Cooperation Unit (CCU), Neuroimmunology and Brain Tumor Immunology, German Cancer Research Center (DKFZ) 5 , 69120 Heidelberg , Germany

6. Medical Faculty Mannheim (MCTN), University of Heidelberg 6 Department of Neurology , , 68167 Mannheim , Germany

7. Berlin Institute of Health (BIH) at Charité – Universitätsmedizin Berlin, BIH Metabolomics Platform 7 , 13353 Berlin , Germany

8. Washington University School of Medicine 8 Department of Neurology , , St. Louis, MO 63110 , USA

9. Klinik für Augenheilkunde, Charité – Universitätsmedizin Berlin 9 , 13353 Berlin , Germany

10. Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences 10 , Shenzhen , China, 518000

Abstract

ABSTRACT Neurofibromatosis type 1 (NF1) is an autosomal dominant condition caused by germline mutations in the neurofibromin 1 (NF1) gene. Children with NF1 are prone to the development of multiple nervous system abnormalities, including autism and brain tumors, which could reflect the effect of NF1 mutation on microglia function. Using heterozygous Nf1-mutant mice, we previously demonstrated that impaired purinergic signaling underlies deficits in microglia process extension and phagocytosis in situ. To determine whether these abnormalities are also observed in human microglia in the setting of NF1, we leveraged an engineered isogenic series of human induced pluripotent stem cells to generate human microglia-like (hiMGL) cells heterozygous for three different NF1 gene mutations found in patients with NF1. Whereas all NF1-mutant and isogenic control hiMGL cells expressed classical microglia markers and exhibited similar transcriptomes and cytokine/chemokine release profiles, only NF1-mutant hiMGL cells had defects in P2X receptor activation, phagocytosis and motility. Taken together, these findings indicate that heterozygous NF1 mutations impair a subset of the functional properties of human microglia, which could contribute to the neurological abnormalities seen in children with NF1.

Funder

NeuroCure Exzellenzcluster

National Institutes of Health

Berlin Institute of Health

Einstein Stiftung Berlin

Shenzhen Key Laboratory of Neuroimmunomodulation for Neurological Diseases

Max Delbrück Center Berlin

Publisher

The Company of Biologists

Subject

General Biochemistry, Genetics and Molecular Biology,Immunology and Microbiology (miscellaneous),Medicine (miscellaneous),Neuroscience (miscellaneous)

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