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Jesus Faustino Ramos, R. J.

Publications and source records attributed to Jesus Faustino Ramos, R. J..

2 recordsLinked to original sources

Loss of riboflavin biosynthesis leads to accumulation of select aromatic amino acids and loss of infectivity in Mycobacterium tuberculosis

Riboflavin biosynthesis is required for in vitro survival of the human pathogen Mycobacterium tuberculosis (Mtb). However, despite the lack of a known transporter, growth can be rescued by exogenous riboflavin. The riboflavin biosynthesis pathway is also predicted essential in vivo, but whether riboflavin levels available in the host can support survival has not been directly tested. Here we constructed a set of inducible CRISPR interference (CRISPRi) knockdown and targeted gene deletion strains for known riboflavin biosynthesis genes (ribA2, ribG, ribH, ribC) as tools to characterize riboflavin requirements, uptake, and metabolite changes and to assess in vivo essentiality. We found that riboflavin, but not flavin adenine dinucleotide or flavin mononucleotide, rescued auxotrophy for all strains tested. Further, riboflavin uptake did not show strong evidence of being dependent on active or facilitated transport, supporting the mechanism of passive diffusion. Targeted metabolite profiling after removal of riboflavin from growth medium confirmed reduced riboflavin levels. While other riboflavin intermediates were not detected, significant accumulation of aromatic amino acids (Phe, Tyr) was observed across all assayed strains, as well as alteration in a vitamin B9 metabolite. Selecting the ribC knockout as a representative strain, we found that riboflavin depletion had a bacteriostatic effect as late as 3 weeks after removal. Unexpectedly, {Delta}ribC lacked infectivity in an aerosol mouse infection, suggesting that the potential to scavenge riboflavin from the host is not sufficient to survive in vivo. Overall, our results show that altered metabolism upon loss of riboflavin biosynthesis leads to compromised Mtb infectivity. IMPORTANCETuberculosis remains one of the worlds most deadly infectious diseases, underscoring the need to explore new drug targets. Riboflavin (vitamin B2) biosynthesis has emerged as a promising target because Mycobacterium tuberculosis (Mtb) depends on this pathway for survival. The riboflavin pathway also produces metabolites that modulate host mucosal-associated invariant T (MAIT) cell activity, towards understanding potential strategies for host-directed therapies. Here we found that disrupting riboflavin biosynthesis led to not only compromised survival, but also widespread changes to metabolism and loss of the ability to establish infection in an animal model. These findings improve our understanding of how Mtb adapts to metabolic stress, with implications for developing drugs that target riboflavin biosynthesis and for alterations in host immunity to be explored in future studies.

microbiology↗

MEK-dependent bioenergetic demand drives terminal CD8+ T cell exhaustion

Loss of mitochondrial function contributes to CD8+ T cell dysfunction during persistent antigen encounter. How chronic antigen leads to this metabolic dysfunction remains unclear. Here, we show that TCR-dependent mitochondrial NADH accumulation drives production of ROS, ultimately leading to mitochondrial dysfunction. Among TCR-dependent proximal signaling components, MEK inhibition uniquely reduced nutrient uptake and mitochondrial NADH accumulation while increasing proliferation. As a result, MEK inhibition during chronic TCR stimulation reduced terminal T cell exhaustion. Mechanistically, we found that chronic MEK activation in T cells drove ATP demand by increasing global protein synthesis rates in vitro and in vivo. MEK inhibition reversed chronic TCR stimulation-driven increases in RNA polymerase II CTD phosphorylation, reducing transcription rates at effector- and terminal-exhaustion associated genes while maintaining transcription of memory-associated genes. These findings establish MEK-dependent metabolic demand as a driver of T cell exhaustion and elucidate the role of MEK inhibition in enhancing immunotherapy efficacy.

immunology↗