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Biology subjects

Lu, G.-M.

Publications and source records attributed to Lu, G.-M..

3 recordsLinked to original sources

Structural basis of human PRPS2 filaments

PRPP synthase (PRPS) transfers the pyrophosphate groups from ATP to ribose-5-phosphate to produce 5-phosphate ribose-1-pyrophosphate (PRPP), a key intermediate in the biosynthesis of several metabolites including nucleotides, dinucleotides and some amino acids. There are three PRPS isoforms encoded in human genome. While hPRPS1 and hPRPS2 are expressed in most tissues, hPRPS3 is exclusively expressed in testis. Although hPRPS1 and hPRPS2 share 95% sequence identity, hPRPS2 has been shown to be less sensitive to allosteric inhibition and specifically upregulated in certain cancers in the translational level. Recent studies demonstrate that PRPS can form a subcellular compartment termed the cytoophidium in multiple organisms across prokaryotes and eukaryotes. Forming the cytoophidium is considered as a distinctive mechanism involving the polymerization of the protein. In order to investigate the function and molecular mechanism of hPRPS2 polymerization, we solve the polymer structure of hPRPS2 at 3.08[A] resolution using cryo-Electron Microscopy (cryo-EM). hPRPS2 hexamers stack into polymers in the conditions with the allosteric/competitive inhibitor ADP. The binding modes of ADP at the canonical allosteric site and at the catalytic active site are clearly determined. A point mutation disrupting the inter-hexamer interaction prevents hPRPS2 polymerization and results in significantly reduced catalytic activity. Our findings suggest that the regulation of hPRPS2 polymer is distinct from E. coli PRPS polymer and provide new insights to the regulation of hPRPS2 with structural basis.

biochemistry↗

Allosteric inhibition of PRPS is moderated by filamentous polymerization

Phosphoribosyl pyrophosphate (PRPP) is an important intermediate for the biosynthesis of purine and pyrimidine nucleotides, histidine, tryptophan, and cofactors NAD and NADP. Abnormal regulation of PRPP synthase (PRPS) has been associated with human disorders including Arts syndrome, retinal dystrophy and gouty arthritis. Recent studies have revealed that PRPS can form filamentous cytoophidia in prokaryotes and eukaryotes. Here we resolve two distinct filament structures of E. coli PRPS at near-atomic resolution under Cryo-EM. Formation of two types of filaments is controlled by the binding of different ligands. While the type A filament attenuates the allosteric inhibition of PRPS by ADP, the type B filament enhances the inhibition. In addition, a novel conformation of the regulatory flexible loop of PRPS was found occupying the ATP binding site. AMP/ADP bound at a noncanonical allosteric site interacts with the regulatory flexible loop and facilitates the binding of ATP. Our findings not only reveal molecular mechanisms of the regulation of PRPS with structural basis, but also suggest a distinctive bidirectional regulatory system for PRPP production via PRPS polymerization.

biochemistry↗

Structural basis of dynamic P5CS filaments

The bifunctional enzyme {Delta}1-pyrroline-5-carboxylate synthase (P5CS) is central to the synthesis of proline and ornithine. Pathogenic mutations in P5CS gene (ALDH18A1) lead to neurocutaneous syndrome and skin relaxation connective tissue disease in humans, and P5CS deficiency seriously damages the ability to resist adversity in plants, which has an essential role in agriculture and human health. Recently, P5CS has been demonstrated forming the cytoophidium in vivo and filaments in vitro. However, the underlying mechanism for the function of P5CS filamentation and catalyze the synthesis of P5C is hardly accessible without structural basis. Here, we have succeeded in determining the full-length structures of Drosophila P5CS filament in three states at resolution from 3.1 to 4.3 [A] under cryo-electron microscopy, we observed the distinct ligand-binding states and conformational changes for GK and GPR domain separately. These structures show the distinctive spiral filament is assembled by P5CS tetramers and stabilized by multiple interfaces. Point mutations that deplete such interactions disturb P5CS filamentation and greatly reduce the activity. Our findings reveal a previously undescribed mechanism that filamentation is crucial for the coordination between GK and GPR domains, and provide insights into structural basis for catalysis function of P5CS filament.

biochemistry↗