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Lorenz, M. C.

Publications and source records attributed to Lorenz, M. C..

2 recordsLinked to original sources

Characterization of tRNA ligase function in pathogenic fungi and trypanosomes reveals the ligase domain as a promising drug target

The majority of eukaryotes encode some intron-containing pre-tRNAs. Splicing of these pre-tRNAs requires a dedicated tRNA splicing machinery. The fungal and trypanosome tRNA ligase, Trl1, and the human RNA ligase, RTCB, catalyze an essential step in tRNA splicing. However, Trl1 and RTCB are nonhomologous and biochemically and structurally distinct from each other. Therefore, Trl1 could serve as a broad-spectrum antifungal and anti-trypanosomal target. While the functions and requirements of the three catalytic Trl1 domains have been extensively characterized in the model yeast Saccharomyces cerevisiae, the roles of Trl1 orthologs in pathogenic fungi remain unexplored. Here, we validate Trl1 as one of the few promising novel drug targets for the development of antifungal therapeutics. Functional analyses of the three Trl1 domains show that only the "sealing" domain is essential for growth and viability in Candida albicans and Aspergillus fumigatus. In contrast, the two "healing" domains are dispensable in these pathogenic fungi, suggesting the presence of redundant healing enzymes, unlike in S. cerevisiae. These findings indicate that only the sealing domain is a good drug target. Our analysis also shows that the Mucor enzyme, which only contains the sealing domain, is essential. Using a Caenorhabditis elegans infection model of C. albicans, we further demonstrated that inhibiting Trl1 expression protects worms during an established infection. In contrast to these fungal pathogens, we show that all three domains of Trl1 are essential in Trypanosoma brucei. Our findings show that the essentiality of the Trl1 sealing is conserved in important human pathogens and provides an impetus for future drug development. SIGNIFICANCEFungal infections are an important cause of human disease and death and difficult to treat and there is an urgent need to develop additional drugs. Based on studies in yeast, one promising target for antifungal drug development is the tRNA splicing pathway. Human tRNA ligase is fundamentally distinct from the fungal one. To investigate the possibility of developing tRNA ligase-targeting drugs, we investigated the function of the catalytic domains of fungal tRNA ligase in different fungal pathogens. Surprisingly, only the first domain is essential in these pathogens and yeast is not a good model fungus. In contrast, all three domains of Trypanosome tRNA ligase are essential. These findings provide an impetus for future drug development.

molecular biology↗

Forward genetic screen in zebrafish identifies new fungal regulators that limit host-protective Candida-innate immune interaction

Candida is one of the most frequent causes of bloodstream infections, and our first line of defense against these invasive infections is the innate immune system. The early immune response is critical in controlling C. albicans infection, but C. albicans has several strategies to evade host immune attack. Phagocytosis of C. albicans blocks hyphal growth, limiting host damage and virulence, but how C. albicans limits early recruitment and phagocytosis in vertebrate infection is poorly understood. To study innate immune evasion by intravital imaging, we utilized the transparent larval zebrafish infection model to screen 131 C. albicans mutants for altered virulence and phagocyte response. Infections with each of seven hypovirulent mutants led to altered phagocyte recruitment and/or phagocytosis, falling into four categories. Of particular interest among these is NMD5, a predicted {beta}-importin and newly-identified virulence factor. The nmd5{Delta}/{Delta} mutant fails to limit phagocytosis and its virulence defects are eliminated when phagocyte activity is compromised, suggesting that its role in virulence is limited to immune evasion. These quantitative intravital imaging experiments are the first to document altered Candida-phagocyte interactions for several additional mutants, and clearly distinguish recruitment from phagocytic uptake, suggesting that Candida modulates both events. This initial large-scale screen of individual C. albicans mutants in a vertebrate, coupled with high-resolution imaging of Candida-phagocyte interactions, provides a more nuanced view of how diverse mutations can lead to more effective phagocytosis, a key immune process which blocks germination and drives anti-fungal immunity. ImportanceCandida albicans is part of the human microbial community and is a dangerous opportunistic pathogen, able to prevent its elimination by the host immune system. Although Candida avoids immune attack through several strategies, we still understand little about how it regulates when immune phagocytes get recruited to the infection site and when they engulf fungal cells. We tested over 130 selected Candida mutants for their ability to cause lethal infection and found several avirulent mutants which provoked altered innate immune responses, resulting in lower overall inflammation and greater host survival. Of particular interest is NMD5, which acts to limit fungal phagocytosis and is predicted to regulate the activity of stress-associated transcription factors. Our high-content screening was enabled by modeling Candida infection in transparent vertebrate zebrafish larva. Our findings help us understand how Candida survives immune attack during commensal and pathogenic growth, and may eventually inform new strategies for controlling disease.

microbiology↗