Deficiency in the endocytic adaptor proteins PHETA1/2 impair renal and craniofacial development

Author:

Ates Kristin M.12,Wang Tong13,Moreland Trevor3,Veeranan-Karmegam Rajalakshmi4,Ma Manxiu12ORCID,Jeter Chelsi3,Anand Priya5ORCID,Wenzel Wolfgang5,Kim Hyung-Goo6,Wolfe Lynne A.7ORCID,Stephen Joshi A.8ORCID,Adams David R.7,Markello Thomas7ORCID,Tifft Cynthia J.7ORCID,Settlage Robert8,Gahl William A.79ORCID,Gonsalvez Graydon B.4ORCID,Malicdan May Christine79ORCID,Flanagan-Steet Heather3ORCID,Pan Y. Albert121011ORCID

Affiliation:

1. Department of Neuroscience and Regenerative Medicine, Medical College of Georgia, Augusta University, Augusta, GA 30912, USA

2. Center for Neurobiology Research, Fralin Biomedical Research Institute at Virginia Tech Carilion, Virginia Tech, Roanoke, VA 24016, USA

3. JC Self Research Institute, Greenwood Genetic Center, Greenwood, SC 29646, USA

4. Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, Augusta, GA 30912, USA

5. Institute of Nanotechnology, Karlsruhe Institute of Technology, Karlsruhe, Germany

6. Neurological Disorder Research Center, Qatar Biomedical Research Institute, Hamad Bin Khalifa University, Doha, Qatar

7. Medical Genetics Branch, National Human Genome Research Institute, National Institutes of Health, Bethesda, Maryland 20892, USA

8. Advanced Research Computing Unit, Division of Information Technology, Virginia Tech, Blacksburg, VA 24060, USA

9. National Institutes of Health Undiagnosed Diseases Program, National Institutes of Health, Bethesda, Maryland 20892, USA

10. Department of Biomedical Sciences and Pathobiology, Virginia-Maryland College of Veterinary Medicine, Virginia Tech, Blacksburg, VA 24060, USA

11. Department of Psychiatry and Behavioral Medicine, Virginia Tech Carilion School of Medicine, Roanoke, VA, USA

Abstract

A critical barrier in the treatment of endosomal and lysosomal diseases is the lack of understanding of the in vivo functions of the putative causative genes. We addressed this by investigating a key pair of endocytic adaptor proteins, PH domain containing endocytic trafficking adaptor 1 and 2 (PHETA1/2, also known as FAM109A/B, Ses1/2, IPIP27A/B), which interact with the protein product of OCRL, the causative gene for Lowe syndrome. Here we conducted the first study of PHETA1/2 in vivo, utilizing the zebrafish system. We found that impairment of both zebrafish orthologs, pheta1 and pheta2, disrupted endocytosis and ciliogenesis in renal tissues. In addition, pheta1/2 mutant animals exhibited reduced jaw size and delayed chondrocyte differentiation, indicating a role in craniofacial development. Deficiency of pheta1/2 resulted in dysregulation of cathepsin K, which led to an increased abundance of type II collagen in craniofacial cartilages, a marker of immature cartilage extracellular matrix. Cathepsin K inhibition rescued the craniofacial phenotypes in the pheta1/2 double mutants. The abnormal renal and craniofacial phenotypes in the pheta1/2 mutant animals were consistent with the clinical presentations of a patient with a de novo arginine (R) to cysteine (C) variant (R6C) of PHETA1. Expressing the patient-specific variant in zebrafish exacerbated craniofacial deficits, suggesting that the R6C allele acts in a dominant-negative manner. Together, these results provide insights into the in vivo roles of PHETA1/2 and suggest that the R6C variant is contributory to the pathogenesis of disease in the patient.

Funder

Center for Scientific Review

Center for Innovative Technology

Publisher

The Company of Biologists

Subject

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

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