Deposition of 5-Methylcytosine on Enhancer RNAs Enables the Coactivator Function of PGC-1 alpha
CELL REPORTS
Authors: Aguilo, Francesca; Li, SiDe; Balasubramaniyan, Natarajan; Sancho, Ana; Benko, Sabina; Zhang, Fan; Vashisht, Ajay; Rengasamy, Madhumitha; Andino, Blanca; Chen, Chih-hung; Zhou, Felix; Qian, Chengmin; Zhou, Ming-Ming; Wohlschlegel, James A.; Zhang, Weijia; Suchy, Frederick J.; Walsh, Martin J.
Abstract
The Peroxisome proliferator-activated receptor-gamma coactivator 1 alpha (PGC-1 alpha) is a transcriptional co-activator that plays a central role in adapted metabolic responses. PGC-1 alpha is dynamically methylated and unmethylated at the residue K779 by the methyltransferase SET7/9 and the Lysine Specific Demethylase 1A (LSD1), respectively. Interactions of methylated PGC-1 alpha[K779me] with the Spt-AdaGcn5-acetyltransferase (SAGA) complex, the Mediator members MED1 and MED17, and the NOP2/Sun RNA methytransferase 7 (NSUN7) reinforce transcription, and are concomitant with the m(5)C mark on enhancer RNAs (eRNAs). Consistently, loss of Set7/9 and NSun7 in liver cell model systems resulted in depletion of the PGC-1 alpha target genes Pfkl, Sirt5, Idh3b, and Hmox2, which was accompanied by a decrease in the eRNAs levels associated with these loci. Enrichment of m(5)C within eRNA species coincides with metabolic stress of fasting in vivo. Collectively, these findings illustrate the complex epigenetic circuitry imposed by PGC-1 alpha at the eRNA level to fine-tune energy metabolism.
Evolutionary diversification of the BetaM interactome acquired through co-option of the ATP1B4 gene in placental mammals
SCIENTIFIC REPORTS
Authors: Korneenko, Tatyana V.; Pestov, Nikolay B.; Ahmad, Nisar; Okkelman, Irina A.; Dmitriev, Ruslan I.; Shakhparonov, Mikhail I.; Modyanov, Nikolai N.
Abstract
ATP1B4 genes represent a rare instance of orthologous vertebrate gene co-option that radically changed properties of the encoded BetaM proteins, which function as Na, K-ATPase subunits in lower vertebrates and birds. Eutherian BetaM has lost its ancestral function and became a muscle-specific resident of the inner nuclear membrane. Our earlier work implicated BetaM in regulation of gene expression through direct interaction with the transcriptional co-regulator SKIP. To gain insight into evolution of BetaM interactome we performed expanded screening of eutherian and avian cDNA libraries using yeast-two-hybrid and split-ubiquitin systems. The inventory of identified BetaM interactors includes lamina-associated protein LAP-1, myocyte nuclear envelope protein Syne1, BetaM itself, heme oxidases HMOX1 and HMOX2; transcription factor LZIP/CREB3, ERGIC3, PHF3, reticulocalbin-3, and beta-sarcoglycan. No new interactions were found for chicken BetaM and human Na, K-ATPase beta 1, beta 2 and beta 3 isoforms, indicating the uniqueness of eutherian BetaM interactome. Analysis of truncated forms of BetaM indicates that residues 72-98 adjacent to the membrane in nucleoplasmic domain are important for the interaction with SKIP. These findings demonstrate that evolutionary alterations in structural and functional properties of eutherian BetaM proteins are associated with the increase in its interactome complexity.