Cytoplasmic inositol hexakisphosphate production is sufficient for mediating the Gle1-mRNA export pathway
Aimee L Miller1, Mythili Suntharalingam, Sylvia L Johnson
1Department of Cell and Developmental Biology, Vanderbilt University Medical Center, Nashville, Tennessee 37232-8240, USA.
Abstract:
Production of inositol hexakisphosphate (IP6) by Ipk1, the inositol-1,3,4,5,6-pentakisphosphate 2-kinase, is required for Gle1-mediated mRNA export in Saccharomyces cerevisiae cells. To examine the network of interactions that require IP6 production, an analysis of fitness defects was conducted in mutants harboring both an ipk1 null allele and a mutant allele in genes encoding nucleoporins or transport factors. Enhanced lethality was observed with a specific subset of mutants, including nup42, nup116, nup159, dbp5, and gle2, all of which had been previously connected to Gle1 function. Complementation of the nup116Deltaipk1Delta and nup42Deltaipk1Delta double mutants did not require the Phe-Gly repeat domains in the respective nucleoporins, suggesting that IP6 was acting subsequent to heterogeneous nuclear ribonucleoprotein targeting to the nuclear pore complex. With Nup42 and Nup159 localized exclusively to the nuclear pore complex cytoplasmic side, we speculated that IP6 may regulate a cytoplasmic step in mRNA export. To test this prediction, the spatial requirements for the production of IP6 were investigated. Restriction of Ipk1 to the cytoplasm did not block IP6 production. Moreover, coincident sequestering of both Ipk1 and Mss4 (an enzyme required for phosphatidylinositol 4,5-bisphosphate production) to the cytoplasm also did not block IP6 production. Given that the kinase required for inositol 1,3,4,5,6-pentakisphosphate production (Ipk2) is localized in the nucleus, these results indicated that soluble inositides were diffusing between the nucleus and the cytoplasm. Additionally, the cytoplasmic production of IP6 by plasma membrane-anchored Ipk1 rescued a gle1-2 ipk1-4 synthetic lethal mutant. Thus, cytoplasmic IP6 production is sufficient for mediating the Gle1-mRNA export pathway.
Insights
Inositol hexakisphosphate (IP6) production by Ipk1 is crucial for mRNA export. Cytoplasmic IP6 production is sufficient to mediate the Gle1-mRNA export pathway, even when Ipk1 is restricted to the cytoplasm.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Inositol hexakisphosphate (IP6) is essential for mRNA export mediated by Gle1 in Saccharomyces cerevisiae.
- The precise role and localization of IP6 production in this pathway remain incompletely understood.
Purpose of the Study:
- To investigate the network of interactions dependent on IP6 production for mRNA export.
- To determine the spatial requirements for IP6 production and its sufficiency in mediating the Gle1-mRNA export pathway.
Main Methods:
- Analysis of fitness defects in yeast mutants with combined ipk1 null alleles and mutations in nucleoporin or transport factor genes.
- Investigating the spatial requirements for IP6 production by manipulating the localization of Ipk1 and Mss4.
- Assessing the rescue of synthetic lethal mutants by cytoplasmic IP6 production.
Main Results:
- Double mutants (ipk1 with nup42, nup116, nup159, dbp5, or gle2) exhibited enhanced lethality, indicating functional interactions.
- IP6 production was not blocked when Ipk1 was restricted to the cytoplasm, suggesting diffusion of soluble inositides.
- Cytoplasmic production of IP6 by plasma membrane-anchored Ipk1 successfully rescued a gle1-2 ipk1-4 synthetic lethal mutant.
Conclusions:
- IP6 acts downstream of heterogeneous nuclear ribonucleoprotein targeting to the nuclear pore complex.
- Soluble inositides, including IP6 precursors, can diffuse between the nucleus and cytoplasm.
- Cytoplasmic IP6 production is sufficient to mediate the Gle1-mediated mRNA export pathway.
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