Intracellular communication from the mitochondria to the nucleus is achieved via the retrograde response. In budding yeast, the retrograde response, also known as the RTG pathway, is regulated positively by Rtg1, Rtg2, Rtg3 and Grr1 and negatively by Mks1, Lst8 and two 14-3-3 proteins, Bmh1/2. Activation of retrograde signaling leads to activation of Rtg1/3, two basic helix-loop-helix leucine zipper transcription factors. Rtg1/3 activation requires Rtg2, a cytoplasmic protein with an N-terminal adenosine triphosphate (ATP) binding domain belonging to the actin/Hsp70/sugar kinase superfamily. The critical regulatory step of the retrograde response is the interaction between Rtg2 and Mks1. Rtg2 binds to and inactivates Mks1, allowing for activation of Rtg1/3 and the RTG pathway. When the pathway is inactive, Mks1 has dissociated from Rtg2 and bound to Bmh1/2, preventing activation of Rtg1/3. What signals association or disassociation of Mks1 and Rtg2 is unknown. Here, we show that ATP at physiological concentrations dissociates Mks1 from Rtg2 in a highly cooperative fashion. We report that ATP-mediated dissociation of Mks1 from Rtg2 is conserved in two other fungal species, K. lactis and K. waltii. Activation of Rtg1/3 upregulates expression of genes encoding enzymes catalyzing the first three reactions of the Krebs cycle, which is coupled to ATP synthesis through oxidative phosphorylation. Therefore, we propose that the retrograde response is an ATP homeostasis pathway coupling ATP production with ATP-mediated repression of the retrograde response by releasing Mks1 from Rtg2.
Seo, A.Y.; Joseph, A.M.; Dutta, D.; Hwang, J.C.; Aris, J.P.; Leeuwenburgh, C. New insights into the role of mitochondria in aging: Mitochondrial dynamics and more. J. Cell. Sci. 2010, 123, 2533–2542, doi:10.1242/jcs.070490.
[4]
Wallace, D.C. A mitochondrial paradigm of metabolic and degenerative diseases, aging, and cancer: A dawn for evolutionary medicine. Annu. Rev. Genet. 2005, 39, 359–407, doi:10.1146/annurev.genet.39.110304.095751.
Biswas, G.; Anandatheerthavarada, H.K.; Zaidi, M.; Avadhani, N.G. Mitochondria to nucleus stress signaling: A distinctive mechanism of NFkappaB/Rel activation through calcineurin-mediated inactivation of IkappaBbeta. J. Cell. Biol. 2003, 161, 507–519, doi:10.1083/jcb.200211104.
[9]
Biswas, G.; Guha, M.; Avadhani, N.G. Mitochondria-to-nucleus stress signaling in mammalian cells: Nature of nuclear gene targets, transcription regulation, and induced resistance to apoptosis. Gene 2005, 354, 132–139, doi:10.1016/j.gene.2005.03.028.
[10]
Guha, M.; Fang, J.K.; Monks, R.; Birnbaum, M.J.; Avadhani, N.G. Activation of Akt is essential for the propagation of mitochondrial respiratory stress signaling and activation of the transcriptional coactivator heterogeneous ribonucleoprotein A2. Mol. Biol. Cell. 2010, 21, 3578–3589, doi:10.1091/mbc.E10-03-0192.
[11]
Guha, M.; Tang, W.; Sondheimer, N.; Avadhani, N.G. Role of calcineurin, hnRNPA2 and Akt in mitochondrial respiratory stress-mediated transcription activation of nuclear gene targets. Biochim. Biophys Acta 2010, 1797, 1055–1065, doi:10.1016/j.bbabio.2010.02.008.
[12]
Jazwinski, S.M.; Kriete, A. The yeast retrograde response as a model of intracellular signaling of mitochondrial dysfunction. Front. Physiol. 2012, 3, 139.
[13]
Dojcinovic, D.; Krosting, J.; Harris, A.J.; Wagner, D.J.; Rhoads, D.M. Identification of a region of the Arabidopsis AtAOX1a promoter necessary for mitochondrial retrograde regulation of expression. Plant. Mol. Biol. 2005, 58, 159–175, doi:10.1007/s11103-005-5390-1.
[14]
Scheckhuber, C.Q.; Houthoofd, K.; Weil, A.C.; Werner, A.; De Vreese, A.; Vanfleteren, J.R.; Osiewacz, H.D. Alternative oxidase dependent respiration leads to an increased mitochondrial content in two long-lived mutants of the aging model Podospora anserina. PLoS One 2011, 6, e16620.
Yang, J.; Zhang, M.; Yu, J. Mitochondrial retrograde regulation tuning fork in nuclear genes expressions of higher plants. J. Genet. Genomics 2008, 35, 65–71, doi:10.1016/S1673-8527(08)60010-7.
[17]
Traven, A.; Wong, J.M.; Xu, D.; Sopta, M.; Ingles, C.J. Interorganellar communication. Altered nuclear gene expression profiles in a yeast mitochondrial dna mutant. J. Biol. Chem. 2001, 276, 4020–4027.
[18]
Liu, Z.; Butow, R.A. A transcriptional switch in the expression of yeast tricarboxylic acid cycle genes in response to a reduction or loss of respiratory function. Mol. Cell. Biol. 1999, 19, 6720–6728.
[19]
Moye-Rowley, W.S. Retrograde regulation of multidrug resistance in Saccharomyces cerevisiae. Gene 2005, 354, 15–21, doi:10.1016/j.gene.2005.03.019.
[20]
McCammon, M.T.; Epstein, C.B.; Przybyla-Zawislak, B.; McAlister-Henn, L.; Butow, R.A. Global transcription analysis of Krebs tricarboxylic acid cycle mutants reveals an alternating pattern of gene expression and effects on hypoxic and oxidative genes. Mol. Biol. Cell. 2003, 14, 958–972, doi:10.1091/mbc.E02-07-0422.
[21]
Woo, D.K.; Poyton, R.O. The absence of a mitochondrial genome in rho0 yeast cells extends lifespan independently of retrograde regulation. Exp. Gerontology 2009, 44, 390–397, doi:10.1016/j.exger.2009.03.001.
[22]
Miceli, M.V.; Jiang, J.C.; Tiwari, A.; Rodriguez-Quinones, J.F.; Jazwinski, S.M. Loss of mitochondrial membrane potential triggers the retrograde response extending yeast replicative lifespan. Front. Genet. 2011, 2, 102.
[23]
Liao, X.; Butow, R.A. RTG1 and RTG2: two yeast genes required for a novel path of communication from mitochondria to the nucleus. Cell 1993, 72, 61–71, doi:10.1016/0092-8674(93)90050-Z.
Jia, Y.; Rothermel, B.; Thornton, J.; Butow, R.A. A basic helix-loop-helix-leucine zipper transcription complex in yeast functions in a signaling pathway from mitochondria to the nucleus. Mol. Cell. Biol. 1997, 17, 1110–1117.
[26]
Sekito, T.; Thornton, J.; Butow, R.A. Mitochondria-to-nuclear signaling is regulated by the subcellular localization of the transcription factors Rtg1p and Rtg3p. Mol. Biol. Cell. 2000, 11, 2103–2115.
[27]
Dilova, I.; Powers, T. Accounting for strain-specific differences during RTG target gene regulation in Saccharomyces cerevisiae. FEMS Yeast Res. 2006, 6, 112–119, doi:10.1111/j.1567-1364.2005.00008.x.
[28]
Liu, Z.; Sekito, T.; Spirek, M.; Thornton, J.; Butow, R.A. Retrograde signaling is regulated by the dynamic interaction between Rtg2p and Mks1p. Mol. Cell. 2003, 12, 401–411, doi:10.1016/S1097-2765(03)00285-5.
[29]
Koonin, E.V. Yeast protein controlling inter-organelle communication is related to bacterial phosphatases containing the Hsp 70-type ATP-binding domain. Trends Biochem. Sci. 1994, 19, 156–157, doi:10.1016/0968-0004(94)90275-5.
[30]
Bork, P.; Sander, C.; Valencia, A. An ATPase domain common to prokaryotic cell cycle proteins, sugar kinases, actin, and hsp70 heat shock proteins. Proc. Natl. Acad. Sci USA 1992, 89, 7290–7294, doi:10.1073/pnas.89.16.7290.
[31]
Ruiz-Roig, C.; Noriega, N.; Duch, A.; Posas, F.; de Nadal, E. The Hog1 SAPK controls the Rtg1/Rtg3 transcriptional complex activity by multiple regulatory mechanisms. Mol. Biol. Cell. 2012, 23, 4286–4296, doi:10.1091/mbc.E12-04-0289.
[32]
Dilova, I.; Aronova, S.; Chen, J.C.; Powers, T. Tor signaling and nutrient-based signals converge on Mks1p phosphorylation to regulate expression of Rtg1.Rtg3p-dependent target genes. J. Biol. Chem. 2004, 279, 46527–46535.
[33]
Dilova, I.; Chen, C.Y.; Powers, T. Mks1 in concert with TOR signaling negatively regulates RTG target gene expression in S. cerevisiae. Curr. Biol. 2002, 12, 389–395, doi:10.1016/S0960-9822(02)00677-2.
[34]
Komeili, A.; Wedaman, K.P.; O'Shea, E.K.; Powers, T. Mechanism of metabolic control. Target of rapamycin signaling links nitrogen quality to the activity of the Rtg1 and Rtg3 transcription factors. J. Cell. Biol. 2000, 151, 863–878, doi:10.1083/jcb.151.4.863.
[35]
Sekito, T.; Liu, Z.; Thornton, J.; Butow, R.A. RTG-dependent mitochondria-to-nucleus signaling is regulated by MKS1 and is linked to formation of yeast prion [URE3]. Mol. Biol. Cell. 2002, 13, 795–804, doi:10.1091/mbc.01-09-0473.
[36]
Tate, J.J.; Cox, K.H.; Rai, R.; Cooper, T.G. Mks1p is required for negative regulation of retrograde gene expression in Saccharomyces cerevisiae but does not affect nitrogen catabolite repression-sensitive gene expression. J. Biol. Chem. 2002, 277, 20477–20482.
[37]
Ferreira Junior, J.R.; Spirek, M.; Liu, Z.; Butow, R.A. Interaction between Rtg2p and Mks1p in the regulation of the RTG pathway of Saccharomyces cerevisiae. Gene 2005, 354, 2–8, doi:10.1016/j.gene.2005.03.048.
[38]
Liu, Z.; Spirek, M.; Thornton, J.; Butow, R.A. A novel degron-mediated degradation of the RTG pathway regulator, Mks1p, by SCFGrr1. Mol. Biol. Cell. 2005, 16, 4893–4904, doi:10.1091/mbc.E05-06-0516.
[39]
Chen, E.J.; Kaiser, C.A. LST8 negatively regulates amino acid biosynthesis as a component of the TOR pathway. J. Cell. Biol. 2003, 161, 333–347, doi:10.1083/jcb.200210141.
[40]
Chen, E.J.; Kaiser, C.A. Amino acids regulate the intracellular trafficking of the general amino acid permease of Saccharomycescerevisiae. Proc. Natl. Acad. Sci. USA 2002, 99, 14837–14842, doi:10.1073/pnas.232591899.
[41]
Liu, Z.; Sekito, T.; Epstein, C.B.; Butow, R.A. RTG-dependent mitochondria to nucleus signaling is negatively regulated by the seven WD-repeat protein Lst8p. Embo. J. 2001, 20, 7209–7219, doi:10.1093/emboj/20.24.7209.
[42]
Breitkreutz, A.; Choi, H.; Sharom, J.R.; Boucher, L.; Neduva, V.; Larsen, B.; Lin, Z.Y.; Breitkreutz, B.J.; Stark, C.; Liu, G.; Ahn, J.; Dewar-Darch, D.; Reguly, T.; Tang, X.; Almeida, R.; Qin, Z.S.; Pawson, T.; Gingras, A.C.; Nesvizhskii, A.I.; Tyers, M. A global protein kinase and phosphatase interaction network in yeast. Science 2010, 328, 1043–1046, doi:10.1126/science.1176495.
[43]
Amberg, D.C.; Burke, D.J.; Strathern, J.N. Methods in Yeast Genetics: A Cold Spring Harbor Laboratory Course Manual; Cold Spring Harbor Laboratory: New York, NY, USA, 2005.
[44]
Yaffe, M.P.; Schatz, G. Two nuclear mutations that block mitochondrial protein import in yeast. Proc. Natl. Acad. Sci. USA 1984, 81, 4819–4823, doi:10.1073/pnas.81.15.4819.
[45]
Paulus, B.F.; Bryant, F.R. Time-dependent inhibition of recA protein-catalyzed ATP hydrolysis by ATPgammaS: Evidence for a rate-determining isomerization of the recA-ssDNA complex. Biochemistry 1997, 36, 7832–7838, doi:10.1021/bi970576+.
[46]
Yu, X.; Egelman, E.H. Direct visualization of dynamics and co-operative conformational changes within RecA filaments that appear to be associated with the hydrolysis of adenosine 5'-O-(3-thiotriphosphate). J. Mol. Biol. 1992, 225, 193–216, doi:10.1016/0022-2836(92)91036-O.
[47]
Larsson, C.; Nilsson, A.; Blomberg, A.; Gustafsson, L. Glycolytic flux is conditionally correlated with ATP concentration in Saccharomyces cerevisiae: A chemostat study under carbon- or nitrogen-limiting conditions. J. Bacteriol. 1997, 179, 7243–7250.
[48]
Sauer, U.; Schlattner, U. Inverse metabolic engineering with phosphagen kinase systems improves the cellular energy state. Metab. Eng. 2004, 6, 220–228, doi:10.1016/j.ymben.2003.11.004.
Hardie, D.G. AMP-activated protein kinase: An energy sensor that regulates all aspects of cell function. Genes Dev. 2011, 25, 1895–1908, doi:10.1101/gad.17420111.
[51]
Carling, D.; Thornton, C.; Woods, A.; Sanders, M.J. AMP-activated protein kinase: New regulation, new roles? Biochem. J. 2012, 445, 11–27, doi:10.1042/BJ20120546.
[52]
Schuller, H.J. Transcriptional control of nonfermentative metabolism in the yeast Saccharomyces cerevisiae. Curr. Genet. 2003, 43, 139–160.
[53]
Zaman, S.; Lippman, S.I.; Zhao, X.; Broach, J.R. How Saccharomyces responds to nutrients. Annu. Rev. Genet. 2008, 42, 27–81, doi:10.1146/annurev.genet.41.110306.130206.