Next, we endeavored to identify the mechanism by which CDK5 facilitated G6PD activation. As mentioned above, G6PD expression remained unchanged at both the transcriptional and translational levels after CDK5 interruption (Fig. S2A–S2D,
Fig. 2J). Thus, we hypothesized that CDK5 might induce post-translational modification (PTM) of G6PD, which could be able to modulate its catalytic activity
27. As expected, the phosphorylation level of G6PD was tightly influenced by CDK5 (
Fig. 4A). These data illustrated the essential role of CDK5 in regulating G6PD phosphorylation. To provide further validation, we performed an
in vitro kinase assay as previously reported
28. As shown in
Fig. 4B, G6PD phosphorylation was elevated in the presence of CDK5/P35 complex, notably abrogated by the administration of CDK5 inhibitors or G6PD inhibitors. Moreover, silencing CDK5 kinase activity
via D144N mutation (a catalytically inactive mutant)
29 failed to mediate G6PD phosphorylation (Supporting Information Fig. S4). Next, we determined to validate the amino acid residue that was potentially phosphorylated by CDK5. To our knowledge, CDK5 is known to be a proline-directed protein kinase that mediates phosphorylation on serine or threonine residues in substrates, specifically within the consensus motif S/TPXH/K/R
13. By using a group-based prediction system
30, a comprehensive tool for predicting phosphorylation sites, two threonine residues followed by proline, Thr-91, and Thr-466, were identified as potential phosphorylation targets (
Fig. 4C). For further exploration, threonine residues Thr-91 and Thr-466 were mutated to Ala to generate the T91A and T466A mutations, respectively, transfected them into MDA-MB-231 cells. The exogenous wild-type G6PD protein or mutated G6PD protein was isolated
via co-immunoprecipitation and was furtherly analyzed by immunoblotting with P-Thr-Pro-101 mAb (CST, #9391), a mouse monoclonal antibody explicitly targeting phospho-threonine, not serine, only when followed by proline
31. As a result, the T91A mutation completely abolished CDK5-mediated phosphorylation of G6PD. In contrast, the T466A mutation had little effect (
Fig. 4D). For further validation, we performed an
in vitro kinase assay coupled with HPLC–MS/MS analysis as described before
28. As shown in Supporting Information Fig. S5, G6PD was exclusively phosphorylated at the T91 site. Although T466 has been reported to be phosphorylated by ASKa in Arabidopsis
32, it might have little contribution to CDK5-mediated G6PD phosphorylation in BC cells. Moreover, overexpression of CDK5 failed to enhance G6PD phosphorylation after T91A mutation (
Fig. 4D). These results suggest that Thr-91 is crucial for CDK5-induced phosphorylation of G6PD. To further substantiate the findings described above, we generated a mouse polyclonal antibody against a recombinant peptide fragment of G6PD with phosphorylation at Thr-91 (98.8% protein identify, the peptide was synthesized by GenScript). The polyclonal antibody was evaluated through ELISA and immunoblotting (
Fig. 4E, Supporting Information Fig. S6A and S6B). We observed that wide-type G6PD and mutated G6PD-T91E could be stained using the generated antibody, indicating that G6PD-T91E mutation exhibited the same conformation compared with phosphorylated G6PD-WT as described before
33. By employing the generated polyclonal antibody, we found that phosphorylation of G6PD at Thr-91 was promoted after CDK5 overexpression and suppressed by Rosc treatment (
Fig. 4E). These results show that Thr-91 is a potential target site for CDK5-mediated G6PD phosphorylation.