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9VKY

Cryo-EM structure of SULTR-like phosphate distribution transporter

Summary for 9VKY
Entry DOI10.2210/pdb9vky/pdb
EMDB information65146
DescriptorOs06g0143700 protein (1 entity in total)
Functional Keywordsphosphate distribution transporter, sultr-like, homodimer, transport protein
Biological sourceOryza sativa Japonica Group (Japanese rice)
Total number of polymer chains2
Total formula weight144108.36
Authors
Liu, Y.,Zhang, J.,He, H.,Liu, Z. (deposition date: 2025-06-24, release date: 2026-06-10, Last modification date: 2026-07-01)
Primary citationHe, H.,Liu, Y.,Zhang, J.,Zheng, X.,Jiang, L.,Du, Z.,Zuo, J.,Cao, S.,Peng, X.,Zheng, Z.,Li, K.,Shen, C.,Chen, Y.,Yin, P.,Wang, C.,Xiong, L.,Dong, F.,Liu, Z.
Structural and dynamic insights into SPDT for phosphorus allocation in rice.
Sci China Life Sci, 2026
Cited by
PubMed Abstract: Phosphorus is essential for plants, absorbed as inorganic phosphate (Pi) and distributed via specialized transporters. The SULTR-like phosphorus distribution transporter (SPDT) preferentially allocates phosphorus to developing grains-an energetically costly process that can potentially be attenuated without affecting crop yield and germination, positioning SPDT as a prime target for sustainable agriculture. Here, we report cryo-EM structures of rice SPDT in Pi-bound and apo states, uncovering an elevator-type transport mechanism. The transmembrane region segregates into a mobile Pi-binding core domain and a stationary gate domain. Pi coordination involves specific residues within the core domain, followed by an electropositive vestibule that extends from the binding pocket to the cytoplasm. Integrative structural and smFRET analyses demonstrate a dynamic mechanism regulating the transporter's conformational equilibrium. In this mechanism, the transporter's intracellular STAS domain acts as a bidirectional conformation-switch: (i) membrane-proximal binding stabilizes the inward-facing state via interactions with the core/gate domains, while (ii) dissociation enables reset to the outward-facing state. This dynamic coupling elucidates the regulatory mechanism of the STAS domain, highlighting its universally conserved function across the SulP, SULTR, and SLC26 families. Our findings provide a mechanistic blueprint for engineering phosphorus allocation in crops to enhance nutrient-use efficiency.
PubMed: 42295638
DOI: 10.1007/s11427-026-3403-5
PDB entries with the same primary citation
Experimental method
ELECTRON MICROSCOPY (2.67 Å)
Structure validation

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