Identification of a RAB32-LRMDA-Commander membrane trafficking complex reveals the molecular mechanism of human oculocutaneous albinism type 7

R Rebeka Butkovič (School of Biochemistry, Faculty of Health and Life Sciences, University of Bristol) M Michael D. Healy (Institute for Molecular Bioscience, The University of Queensland) C Cecilia de Heus A Alexander P. Walker W Wyatt Beyers K Kerrie E. McNally P Philip A. Lewis (Proteomics Facility, Faculty of Life Sciences, University of Bristol) K Kate J. Heesom (Proteomics Facility, Faculty of Life Sciences, University of Bristol) N Nalan Liv J Judith Klumperman (Center for Molecular Medicine—Cell Biology, University Medical Center Utrecht, University of Utrecht) S Santiago Di Pietro B Brett M. Collins (Institute for Molecular Bioscience, The University of Queensland) P Peter J. Cullen (School of Biochemistry, Faculty of Health and Life Sciences, University of Bristol)

Abstract

Abstract The endosomal Commander assembly associates with the sorting nexin-17 (SNX17) cargo adaptor to regulate cell surface recycling of internalised integral proteins including integrins and lipoprotein receptors. Here, we identify leucine rich melanocyte differentiation associated (LRMDA) as a Commander binding protein. We reveal that LRMDA and SNX17 share a common mechanism of Commander association, and that LRMDA simultaneously associates with Commander and active RAB32, establishing distinct RAB32-LRMDA-Commander and SNX17-Commander assemblies. Functional analysis in melanocytes reveals distinct roles for RAB32-LRMDA-Commander and SNX17-Commander in melanosome biogenesis. We reveal how LRMDA mutations, causative for oculocutaneous albinism type 7, a hypopigmentation disorder accompanied by poor visual acuity, uncouple RAB32 and Commander binding thereby establishing the mechanistic basis of this disease. Our discovery of this alternative Commander assembly highlights the plasticity of Commander function in human pigmentation and extends the Commander function beyond the SNX17-mediated regulation of cell surface proteome.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 02, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (13)

R

Rebeka Butkovič

School of Biochemistry, Faculty of Health and Life Sciences, University of Bristol

M

Michael D. Healy

Institute for Molecular Bioscience, The University of Queensland

C

Cecilia de Heus

A

Alexander P. Walker

W

Wyatt Beyers

K

Kerrie E. McNally

P

Philip A. Lewis

Proteomics Facility, Faculty of Life Sciences, University of Bristol

K

Kate J. Heesom

Proteomics Facility, Faculty of Life Sciences, University of Bristol

N

Nalan Liv

J

Judith Klumperman

Center for Molecular Medicine—Cell Biology, University Medical Center Utrecht, University of Utrecht

S

Santiago Di Pietro

B

Brett M. Collins

Institute for Molecular Bioscience, The University of Queensland

P

Peter J. Cullen

School of Biochemistry, Faculty of Health and Life Sciences, University of Bristol