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bioRxiv · 10.1101/777102

Mating-type specific divergent RPL22 paralogs are essential, differentially regulated, and control aspects of sexual reproduction in Cryptococcus neoformans

Abstract

The MAT locus of Cryptococcus neoformans has a bipolar organization characterized by an unusually large structure, spanning over 100 kb. MAT genes have been characterized by functional genetics as being involved in sexual reproduction and virulence. However, classical gene replacement failed to achieve mutants for five MAT genes (RPL22, RPO41, MYO2, PRT1, RPL39), indicating that they are likely essential. In the present study, targeted gene replacement was performed in a diploid strain for both the and a alleles of the ribosomal genes RPL22 and RPL39. Mendelian analysis of the progeny confirmed that both RPL22 and RPL39 are essential for viability. Ectopic integration of the RPL22 allele of opposite MAT identity in the heterozygous RPL22a/rpl22{Delta} or RPL22/rpl22a{Delta} mutant strains failed to complement their essential phenotype. Evidence suggests that this is due to differential expression of the RPL22 genes, and an RNAi-dependent mechanism that contributes to control RPL22a expression. Furthermore, via CRISPR/Cas9 technology the RPL22 alleles were exchanged in haploid MAT and MATa strains of C. neoformans. These RPL22 exchange strains displayed morphological and genetic defects during bilateral mating. These results contribute to elucidate functions of C. neoformans essential mating type genes that may constitute a type of imprinting system to promote inheritance of nuclei of both mating types.

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BibTeXRIS

Ianiri, G., Fang, Y., Dahlmann, T. A., Janbon, G., Kück, U., Heitman, J.. 2019-09-23. Mating-type specific divergent RPL22 paralogs are essential, differentially regulated, and control aspects of sexual reproduction in Cryptococcus neoformans. https://doi.org/10.1101/777102

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