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Chunhui Cai

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Open access Aug 2026

Cascading damage to Candida albicans cells through thioredoxin reductase loss

Candida albicans is the most common invasive human fungal pathogen. We show that C. albicans thioredoxin reductase, Trr1, is an attractive antifungal target: it is essential at human body temperature, and fungal and human thioredoxin reductases are structurally divergent, predicting high selectivity of fungal-targeted inhibitors. TRR1 depletion directly impairs oxidative damage repair, but also triggers cascading disruption of stress signaling and metabolic adaptation. Impaired oxidative stress endurance and consequent amphotericin hypersensitivity are anticipated effects of TRR1 depletion. We unexpectedly find it also sensitizes Candida to cell wall stress and to a first-line echinocandin antifungal agent. TRR1-depleted cells have decreased cell wall glucan content. Driven by demand for NADPH reducing equivalents, these cells increase glucose-6-phosphate flux into the pentose phosphate pathway (PPP) as evinced by sharply elevated activity of the PPP’s first, rate-limiting enzyme. Since UDP-glucose—the substrate for cell wall glucan biosynthesis—is also derived from glucose-6-phosphate, we propose that metabolic pathway competition for this shared intermediate between NADPH production and cell wall glucan biosynthesis underlies the cell wall weakness of TRR1-depleted cells. Decreased activity of a key UDP-glucose biosynthetic enzyme supports this mechanism. Trr1 loss of function further drives feed-forward damage cycles: it accelerates respiration which increases reactive oxygen species, reduces gluconeogenesis which further limits glucose-6-phosphate availability, and suppresses oxidative- and cell wall stress signaling pathways. Our findings support Trr1 inhibition as a promising approach to improved treatment of C. albicans infections.

Wanjun Qi, Udita Roy, Chunhui Cai et al. · 0 citations
Open access Aug 2026

Development of a human iPSC and patient phenotyping resource for preclinical investigations of neurodevelopmental disorders.

In this manuscript, we report the development of a comprehensive resource designed to harness the transformative potential of patient-derived induced pluripotent stem cells (iPSCs) to advance the study of neurodevelopmental disorders (NDDs). Using CRISPR-Cas-mediated genome editing, the Human Neuron Core generated a repository comprising 29 isogenic iPSC pairs, two sex-matched parental control iPSC pairs, and one unmatched patient line representing six monogenic NDDs: Tuberous Sclerosis Complex, PTEN Hamartoma Tumor Syndrome, KCNQ2 Developmental and Epileptic Encephalopathy, FOXG1 Syndrome, Phelan-McDermid Syndrome, and SETBP1 Haploinsufficiency Disorder. In parallel, detailed clinical phenotyping data were collected to enable comparison of cellular phenotypes with clinical severity in future studies. This integrated collection of genetically defined iPSC lines and associated clinical data provides a powerful platform for investigating disease mechanisms and advancing iPSC-based drug discovery for NDDs.

Cidi Chen, Wardiya Afshar-Saber, I. Iglesias et al. · 0 citations