SLC35D3 delivery from megakaryocyte early endosomes is required for platelet dense granule biogenesis and is differentially defective in Hermansky-Pudlak syndrome models

Author:

Meng Ronghua12,Wang Yuhuan3,Yao Yu3,Zhang Zhe4,Harper Dawn C.12,Heijnen Harry F. G.5,Sitaram Anand12,Li Wei4,Raposo Graça67,Weiss Mitchell J.3,Poncz Mortimer3,Marks Michael S.12

Affiliation:

1. Departments of Pathology and Laboratory Medicine and

2. Physiology, University of Pennsylvania, Philadelphia, PA;

3. Department of Pediatrics, Children's Hospital of Philadelphia, Philadelphia, PA;

4. State Key Laboratory of Molecular Developmental Biology, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing, China;

5. Laboratory of Clinical Chemistry and Haematology and Cell Microscopy Center, University Medical Center Utrecht, Utrecht, The Netherlands;

6. Centre de Recherche and Cell and Tissue Imaging Facility, Instiut Curie, Paris, France; and

7. Structure and Membrane Compartments, Centre National de la Recherche Scientifique, Unité Mixte de Recherche, Paris, France

Abstract

AbstractPlatelet dense granules are members of a family of tissue-specific, lysosome-related organelles that also includes melanosomes in melanocytes. Contents released from dense granules after platelet activation promote coagulation and hemostasis, and dense granule defects such as those seen in Hermansky-Pudlak syndrome (HPS) cause excessive bleeding, but little is known about how dense granules form in megakaryocytes (MKs). In the present study, we used SLC35D3, mutation of which causes a dense granule defect in mice, to show that early endosomes play a direct role in dense granule biogenesis. We show that SLC35D3 expression is up-regulated during mouse MK differentiation and is enriched in platelets. Using immunofluorescence and immunoelectron microscopy and subcellular fractionation in megakaryocytoid cells, we show that epitope-tagged and endogenous SLC35D3 localize predominantly to early endosomes but not to dense granule precursors. Nevertheless, SLC35D3 is depleted in mouse platelets from 2 of 3 HPS models and, when expressed ectopically in melanocytes, SLC35D3 localizes to melanosomes in a manner requiring a HPS-associated protein complex that functions from early endosomal transport intermediates. We conclude that SLC35D3 is either delivered to nascent dense granules from contiguous early endosomes as MKs mature or functions in dense granule biogenesis directly from early endosomes, suggesting that dense granules originate from early endosomes in MKs.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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