4.4 Article

An extensive allelic series of Drosophila kae1 mutants reveals diverse and tissue-specific requirements for t6A biogenesis

期刊

RNA
卷 21, 期 12, 页码 2103-2118

出版社

COLD SPRING HARBOR LAB PRESS, PUBLICATIONS DEPT
DOI: 10.1261/rna.053934.115

关键词

Drosophila; Kae1; N-6-threonylcarbamoyladenosine; t6A

资金

  1. NASA award [NNX15AB42G]
  2. Howard and Vicki Palefsky Fellowship
  3. Singapore National Research Foundation under its Singapore-MIT Alliance for Research and Technology
  4. National Institute of Environmental Health Science [ES017010, ES022858, ES002109]
  5. National Science Foundation [MCB-1412379]
  6. Deutsche Forschungsgemeinschaft
  7. Burroughs Wellcome Foundation
  8. National Institutes of Health [R01-GM083300]
  9. National Institute of Neurological Disorders and Stroke [R01-NS083833]
  10. Memorial Sloan-Kettering Core grant [P30-CA008748]
  11. [NSF-1121817]
  12. [P01-GM088297]
  13. NASA [NNX15AB42G, 809133] Funding Source: Federal RePORTER

向作者/读者索取更多资源

N-6-threonylcarbamoyl-adenosine (t6A) is one of the few RNA modifications that is universally present in life. This modification occurs at high frequency at position 37 of most tRNAs that decode ANN codons, and stabilizes cognate anticodon codon interactions. Nearly all genetic studies of the t6A pathway have focused on single-celled organisms. In this study, we report the isolation of an extensive allelic series in the Drosophila ortholog of the core t6A biosynthesis factor Kae1. kae1 hemizygous larvae exhibit decreases in t6A that correlate with allele strength; however, we still detect substantial t6A-modified tRNAs even during the extended larval phase of null alleles. Nevertheless, complementation of Drosophila Kae1 and other t6A factors in corresponding yeast null mutants demonstrates that these metazoan genes execute t6A synthesis. Turning to the biological consequences of t6A loss, we characterize prominent 1 melanotic masses and show that they are associated with lymph gland overgrowth and ectopic generation of lamellocytes. On the other hand, kae1 mutants exhibit other phenotypes that reflect insufficient tissue growth. Interestingly, whole-tissue and clonal analyses show that strongly mitotic tissues such as imaginal discs are exquisitely sensitive to loss of kae1, whereas nonproliferating tissues are less affected. Indeed, despite overt requirements of t6A for growth of many tissues, certain strong kae1 alleles achieve and sustain enlarged body size during their extended larval phase. Our studies highlight tissue-specific requirements of the t6A pathway in a metazoan context and provide insights into the diverse biological roles of this fundamental RNA modification during animal development and disease.

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