Abstract Rationale Pneumocystis pneumonia (PJP) remains a major opportunistic infection in immunocompromised hosts, with limited therapeutic options. Previous studies identified a conserved cysteine residue (C353) in Pneumocystisphosphoglucomutase (PGM), analogous to that found in other pathogenic fungi but absent in mammalian PGMs, suggesting an exploitable antifungal target. We aimed to define the functional significance and therapeutic potential of targeting Pneumocystis PGM. Methods Full-length P. jirovecii and P. murina PGM cDNAs were cloned into S. cerevisiae pgm2Δ yeast (deficient in PGM activity) using the pYES2.1 TOPO vector for heterologous expression. Recombinant yeast lysates were tested for PGM activity in the presence of the thiol-reactive inhibitor ISFP10 (0-200 μM). Parallel assays were performed using recombinant human PGM lacking C353. Yeast growth inhibition in these strains in the presence of ISFP10 was also measured over 72 hours. For in vitro and ex vivo assays, P. murina organisms were treated with ISFP10, and viability was quantified via qPCR of the mitochondrial 16S ribosomal copy number. Precision-cut lung slice (PCLS) ex vivo cultures from a murine PCP model and in vivo CD4-depleted mice were used to assess ISFP10 efficacy and toxicity. Results Both P. jirovecii and P. murina PGMs showed potent, dose-dependent inhibition of enzymatic activity by ISFP10 up to 12.5 μM, with no inhibition of human PGM at concentrations up to 200 μM. Yeast complementation assays confirmed that ISFP10 significantly reduced the growth of pgm2Δ yeast expressing Pneumocystis spp. PGM. In vitro incubation of P. murina with ISFP10 resulted in significant reductions in organismal 16S mitochondrial copy number, comparable to pentamidine. In ex vivo PCLS models, ISFP10 decreased P. murina burden without affecting uninfected tissue viability. In vivo, ISFP10 administration for seven days significantly reduced fungal burden in CD4-depleted mice with an acceptable safety profile. Conclusions These findings demonstrate that Pneumocystis PGM activity depends on a conserved cysteine residue that is selectively targetable by ISFP10. Pharmacologic inhibition of PGM impairs P. murina viability in vitro, ex vivo, and in vivo with minimal host toxicity. Collectively, these data establish PGM as a promising, fungus-specific antifungal target and support the further development of small-molecule inhibitors targeting Pneumocystis PGM. This abstract is funded by: NIH R01 HL-62150, R21 AI-181542
Limper et al. (Fri,) studied this question.