Transferrin receptor 1-mediated iron uptake regulates bone mass in mice via osteoclast mitochondria and cytoskeleton

Author:

Das Bhaba K1ORCID,Wang Lei23,Fujiwara Toshifumi34,Zhou Jian5,Aykin-Burns Nukhet6ORCID,Krager Kimberly J6,Lan Renny7,Mackintosh Samuel G8,Edmondson Ricky8,Jennings Michael L9,Wang Xiaofang10,Feng Jian Q10,Barrientos Tomasa11,Gogoi Jyoti1,Kannan Aarthi112,Gao Ling112,Xing Weirong13,Mohan Subburaman13ORCID,Zhao Haibo139ORCID

Affiliation:

1. Southern California Institute for Research and Education

2. Department of Orthopedics, The Third People’s Hospital of Hefei, Third Clinical College, Anhui Medical University

3. Center for Osteoporosis and Metabolic Bone Diseases, Division of Endocrinology, Department of Internal Medicine, University of Arkansas for Medical Sciences

4. Department of Orthopedic Surgery, Kyushu University Hospital

5. Department of Orthopedics, First Affiliated Hospital, Anhui Medical University

6. Division of Radiation Health, Department of Pharmaceutical Sciences, University of Arkansas for Medical Sciences

7. Department of Pediatrics, University of Arkansas for Medical Sciences

8. Department of Biochemistry and Molecular Biology, University of Arkansas for Medical Sciences

9. Department of Physiology and Cell Biology, University of Arkansas for Medical Sciences

10. Department of Biomedical Sciences, Texas A&M University

11. Department of Orthopedics, Duke University

12. Division of Dermatology, Department of medicine, Long Beach VA Healthcare System

13. Musculoskeletal Disease Center, VA Loma Linda Healthcare System

Abstract

Increased intracellular iron spurs mitochondrial biogenesis and respiration to satisfy high-energy demand during osteoclast differentiation and bone-resorbing activities. Transferrin receptor 1 (Tfr1) mediates cellular iron uptake through endocytosis of iron-loaded transferrin, and its expression increases during osteoclast differentiation. Nonetheless, the precise functions of Tfr1 and Tfr1-mediated iron uptake in osteoclast biology and skeletal homeostasis remain incompletely understood. To investigate the role of Tfr1 in osteoclast lineage cells in vivo and in vitro, we crossed Tfrc (encoding Tfr1)-floxed mice with Lyz2 (LysM)-Cre and Cathepsin K (Ctsk)-Cre mice to generate Tfrc conditional knockout mice in myeloid osteoclast precursors (Tfr1ΔLysM) or differentiated osteoclasts (Tfr1ΔCtsk), respectively. Skeletal phenotyping by µCT and histology unveiled a significant increase in trabecular bone mass with normal osteoclast number in long bones of 10-week-old young and 6-month-old adult female but not male Tfr1ΔLysM mice. Although high trabecular bone volume in long bones was observed in both male and female Tfr1ΔCtsk mice, this phenotype was more pronounced in female knockout mice. Consistent with this gender-dependent phenomena, estrogen deficiency induced by ovariectomy decreased trabecular bone mass in Tfr1ΔLysM mice. Mechanistically, disruption of Tfr1 expression attenuated mitochondrial metabolism and cytoskeletal organization in mature osteoclasts in vitro by attenuating mitochondrial respiration and activation of the Src-Rac1-WAVE regulatory complex axis, respectively, leading to decreased bone resorption with little impact on osteoclast differentiation. These results indicate that Tfr1-mediated iron uptake is specifically required for osteoclast function and is indispensable for bone remodeling in a gender-dependent manner.

Funder

American Cancer Society

National Institutes of Health

US Department of Veterans Affairs

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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