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Albihlal, W.

Publications and source records attributed to Albihlal, W..

2 recordsLinked to original sources

The yeast phosphofructokinase β-subunit has ATP-dependent RNA unwinding activity and modulates cell cycle progression

Phosphofructokinase (PFK) is a rate-limiting glycolytic enzyme that also possesses an unexplored RNA binding activity. Here, we show that the - and {beta}-subunits of yeast PFK, encoded by PFK1 and PFK2, respectively, bind hundreds of mRNAs in cells, including ones coding for proteins involved in regulation of mitotic cell cycle. Pkf2p directly binds in a Mg-ATP-dependent manner to short GA-, UC-, AU- and U-rich motifs overrepresented in its mRNA targets. Strikingly, Pfk2p displays directional 5 - 3 double-stranded RNA unwinding activity not seen with Pfk1p. Furthermore, Pfk2p dynamically associates with ribosomes and promotes translation of cell cycle genes. Consequently, pfk2{Delta}, but not pfk1{Delta}, mutant cells show severely delayed G1/S phase transition which is independent of the enzymes glycolytic activity. Our results uncovered a hidden function for the Pfk2 subunit as a translational activator of mitotic cell cycle gene transcripts possibly through energy-dependent RNA unwinding activity.

molecular biology↗

The yeast RNA methylation complex consists of conserved yet reconfigured components with m6A-dependent and independent roles

N6-methyladenosine (m6A), the most abundant mRNA modification, is deposited in mammals/insects/plants by m6A methyltransferase complexes (MTC) comprising a catalytic subunit and at least five additional proteins. The yeast MTC is critical for meiosis and was known to comprise three proteins, of which two were conserved. We uncover three novel MTC components (Kar4/Ygl036w-Vir1/Dyn2). All MTC subunits, except for Dyn2, are essential for m6A deposition and have corresponding mammalian MTC orthologs. Unlike the mammalian bipartite MTC, the yeast MTC is unipartite, yet multifunctional. The mRNA interacting module, comprising Ime4, Mum2, Vir1, and Kar4, exerts the MTCs m6A-independent function, while Slz1 enables the MTC catalytic function in m6A deposition. Both functions are critical for meiotic progression. Kar4 also has a mechanistically separate role from the MTC during mating. The yeast MTC constituents play distinguishable m6A-dependent, MTC-dependent and MTC-independent functions, highlighting their complexity and paving the path towards dissecting multi-layered MTC functions in mammals.

molecular biology↗