Author
Listed:
- Wenhui Zhang
(Huazhong Agricultural University)
- Yanke Chen
(Huazhong Agricultural University)
- Zeyuan Guan
(Huazhong Agricultural University)
- Yong Wang
(Zhejiang University)
- Meng Tang
(Huazhong Agricultural University)
- Zhangmeng Du
(Huazhong Agricultural University)
- Jie Zhang
(Huazhong Agricultural University)
- Meng Cheng
(Huazhong Agricultural University)
- Jiaqi Zuo
(Huazhong Agricultural University)
- Yan Liu
(Huazhong Agricultural University)
- Qiang Wang
(Huazhong Agricultural University)
- Yanjun Liu
(Huazhong Agricultural University)
- Delin Zhang
(Huazhong Agricultural University)
- Ping Yin
(Huazhong Agricultural University)
- Ling Ma
(Huazhong Agricultural University)
- Zhu Liu
(Huazhong Agricultural University
Chinese Academy of Agricultural Sciences)
Abstract
XPR1 is the sole protein known to transport inorganic phosphate (Pi) out of cells, a function conserved across species from yeast to mammals. Human XPR1 variants lead to cerebral calcium-phosphate deposition and primary familial brain calcification (PFBC), a hereditary neurodegenerative disorder. Here, we present the cryo-EM structure of human XPR1 in both its Pi-unbound and various Pi-bound states. XPR1 features 10 transmembrane α-helices forming an ion channel-like structure, with multiple Pi recognition sites along the channel. Pathogenic mutations in two arginine residues, which line the translocation channel, disrupt Pi transport. Molecular dynamics simulations reveal that Pi ion undergoes a stepwise transition through the sequential recognition sites during the transport process. Together with functional analyses, our results suggest that this sequential arrangement allows XPR1 to facilitate Pi ion passage via a “relay” process, and they establish a framework for the interpretation of disease-related mutations and for the development of future therapeutics.
Suggested Citation
Wenhui Zhang & Yanke Chen & Zeyuan Guan & Yong Wang & Meng Tang & Zhangmeng Du & Jie Zhang & Meng Cheng & Jiaqi Zuo & Yan Liu & Qiang Wang & Yanjun Liu & Delin Zhang & Ping Yin & Ling Ma & Zhu Liu, 2025.
"Structural insights into the mechanism of phosphate recognition and transport by XPR1,"
Nature Communications, Nature, vol. 16(1), pages 1-10, December.
Handle:
RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-024-55471-9
DOI: 10.1038/s41467-024-55471-9
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