The MOS4-associated complex subunit MAC5A maintains meristem development by regulating transcription elongation in Arabidopsis
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The precise coordination of co-transcriptional RNA processing with transcriptional elongation is essential for eukaryotic gene regulation, yet the machineries coupling these processes remain largely elusive. Here, we reveal a role for the spliceosome-associated MOS4-associated complex (MAC) in regulating plant development through the direct regulation of transcriptional elongation. We demonstrate that the MAC subunit MAC5A physically interacts with Elongator Protein 6 (ELP6), a core component of the transcriptional Elongator complex. Genetic analyses reveal that MAC5A and ELP6 function synergistically to regulate apical meristem activity. Importantly, the MAC5A-Elongator module is required for the efficient expression of the critical auxin efflux carrier PIN-FORMED1 (PIN1) by enhancing RNA Polymerase II (RNAPII) occupancy across the PIN1 locus. Furthermore, we show that this elongation-promoting function is not unique to MAC5A, as other core MAC components are similarly required for efficient transcription progression. Together, our findings uncover a splicing-elongation nexus where MAC5A likely acts as a molecular bridge between the spliceosome and the elongation polymerase. This functional coupling ensures the efficient transcription of key developmental regulators, providing a mechanistic framework for the coupling of RNA processing to transcription and suggesting a conserved principle of gene expression control across eukaryotes.
Significance
The RNA-binding protein MAC5A plays an essential role in RNA metabolism in eukaryotes. This study shows that MAC5A functions as a molecular adaptor connecting the MOS4-associated complex to the Elongator complex, thereby coordinating efficient transcription of the auxin transporter PIN1 to sustain auxin flow and meristem maintenance in Arabidopsis. This discovery establishes a new conceptual framework for co-transcriptional regulation in plant development and provides broad insights into the molecular control of growth across plant species.