MFRP is a molecular hub that organizes the apical membrane of RPE cells by engaging in interactions with specific proteins and lipids

A Aleksander Tworak (Department of Ophthalmology, Gavin Herbert Eye Institute, University of California) R Roman Smidak (Department of Ophthalmology, Gavin Herbert Eye Institute, University of California) C Carolline Rodrigues Menezes S Samuel W. Du S Susie Suh (Department of Ophthalmology, Gavin Herbert Eye Institute, University of California) E Elliot H. Choi (Department of Ophthalmology, Gavin Herbert Eye Institute, University of California) S Sanae S. Imanishi (Department of Ophthalmology, and Stark Neurosciences Research Institute, Indiana University School of Medicine) Z Zhiqian Dong (Gavin Herbert Eye Institute—Robert M. Brunson Center for Translational Vision Research, Department of Ophthalmology and Visual Sciences, University of California Irvine) D Dominik Lewandowski (Department of Ophthalmology, Gavin Herbert Eye Institute, University of California) K Kristen E. Fong (Department of Ophthalmology, Gavin Herbert Eye Institute, University of California) G Gabriela Grigorean (Proteomics Core Facility, Genome Center, University of California) A Antonio F. M. Pinto (Multi-Omics Core, The Scripps Research Institute) Q Qianlan Xu D Dorota Skowronska-Krawczyk S Seth Blackshaw Y Yoshikazu Imanishi (Department of Ophthalmology, and Stark Neurosciences Research Institute, Indiana University School of Medicine) K Krzysztof Palczewski

Abstract

Membrane frizzled-related protein (MFRP), present in the retinal pigment epithelium (RPE), is an integral membrane protein essential for ocular development and the normal physiology of the retina. Mutations in MFRP are associated with autosomal recessive nonsyndromic nanophthalmos, leading to severe hyperopia and early-onset retinitis pigmentosa. While several preclinical gene-augmentation and gene-editing trials hold promise for future therapies aimed at stopping degeneration and restoring retinal function, the molecular mechanisms involved in MFRP biology are still not well understood. Here, we studied the biochemical properties of MFRP and the molecular consequences of its loss of function in the retinal degeneration 6 (rd6) mouse model. Using transcriptomic and lipidomic approaches, we observed that accumulation of docosahexaenoic acid (DHA) constitutes a primary defect in the MFRP-deficient RPE. In biochemical assays, we showed that MFRP undergoes extensive glycosylation, and it preferentially binds lipids of several classes, including phosphatidylserine and phosphatidylinositol-4-phosphate; as well as binding to several transmembrane proteins, notably adiponectin receptor 1 (ADIPOR1) and inward rectifier potassium channel 13 (KCNJ13). Moreover, MFRP determines the subcellular localization of ADIPOR1 and KCNJ13 in the RPE in vivo. This feature is altered by MFRP deficiency and can be restored by gene-therapy approaches. Overall, our observations suggest that MFRP constitutes an important interaction hub within the apical membrane of RPE cells, coordinating protein trafficking and subcellular localization within the RPE, and lipid homeostasis within the entire retina.

Article Details

Volume / Issue Vol. 122, Issue 16
Published April 22, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (17)

A

Aleksander Tworak

Department of Ophthalmology, Gavin Herbert Eye Institute, University of California

R

Roman Smidak

Department of Ophthalmology, Gavin Herbert Eye Institute, University of California

C

Carolline Rodrigues Menezes

S

Samuel W. Du

S

Susie Suh

Department of Ophthalmology, Gavin Herbert Eye Institute, University of California

E

Elliot H. Choi

Department of Ophthalmology, Gavin Herbert Eye Institute, University of California

S

Sanae S. Imanishi

Department of Ophthalmology, and Stark Neurosciences Research Institute, Indiana University School of Medicine

Z

Zhiqian Dong

Gavin Herbert Eye Institute—Robert M. Brunson Center for Translational Vision Research, Department of Ophthalmology and Visual Sciences, University of California Irvine

D

Dominik Lewandowski

Department of Ophthalmology, Gavin Herbert Eye Institute, University of California

K

Kristen E. Fong

Department of Ophthalmology, Gavin Herbert Eye Institute, University of California

G

Gabriela Grigorean

Proteomics Core Facility, Genome Center, University of California

A

Antonio F. M. Pinto

Multi-Omics Core, The Scripps Research Institute

Q

Qianlan Xu

D

Dorota Skowronska-Krawczyk

S

Seth Blackshaw

Y

Yoshikazu Imanishi

Department of Ophthalmology, and Stark Neurosciences Research Institute, Indiana University School of Medicine

K

Krzysztof Palczewski