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Abstract
Introduction: Aging is associated with sarcopenia, myocyte loss, and dysfunction. The problem is compounded as the adult heart lacks the regenerative capacity to self-repair. Serum response factor’s (SRF’s) dual activity is essential for cell replication and heart cell differentiation. SRF interacts with cofactors, such as NKX2-5 and GATA4, which give cardiac-specific gene activity, and ETS factors such as ELK1 drive cell replication. Recently, the mutant YAP-5SA of the Hippo pathway was implicated in cardiomyocyte proliferation and growth.
Aim: We hypothesized that disruption of interactions of SRF with NKX2-5 and GATA4 would lead to dedifferentiation of cardiomyocytes to a proliferative stem cell state and complement YAP-5SA to generate undifferentiated cardiomyocytes in a more primitive replicative state.
Methods and results: To weaken SRF interactions with NKX2-5 and GATA4, alanine scanning mutations were generated across the SRF N-terminus of the MADS-box. One SRF mutant, SRF153(A3), was tested along with the YAP-5SA mutant, as degradable synthetic modified mRNAs (mmRNAs), in rat primary cardiomyocytes. To measure cell replication, adult cardiomyocytes were pulsed with alpha-EdU and then DAPI stained, while gene activity was assayed by RNA sequencing. To measure chromatin remodeling, Transposon 5 was used in ATAC sequencing. We observed that single and triple alanine substitutions of mutants centering over SRF-Lys154 essentially blocked myocyte differentiation, and NKX2-5 and GATA4 failed to stabilize mutated SRF DNA binding. Instead, many stem cell factors including NANOG and OCT4 were induced. SRF153(A3) does not recognize SRF response elements per ATAC sequencing and consequently induces stem cell factors such as NANOG and OCT4, cardiomyocyte dedifferentiation, and cell cycle reentry. SRF153(A3) and YAP5SA mmRNA led to alpha-EDU incorporation in ~35% of the cardiomyocytes. DIAPH 3, a marker of the contractile ring during anaphase, appeared between and around replicated nuclei in three-month-old adult mouse cardiac myocytes. The combination of these synthetic mRNA increased nuclei replication with the expression of origin of replication genes, while genes associated with cardiomyocyte differentiation were down-regulated. ATAC sequencing revealed SRF153(A3) and YAP5SA mmRNA-induced chromatin remodeling of cell cycle, spindle, and growth factor genes by additive and synergistic activities.
Conclusion: SRF153(A3) synthetic mmRNA and the mutant YAP-5SA mmRNA induced cardiomyocyte dedifferentiation, to nuclear replication in adult cardiac myocytes. The combinatorial use of mmRNA encoding SRF153(A3) and YAP-5SA has the potential to become a powerful clinical strategy for treating human heart disease.
Keywords
Cardiac regeneration
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synthetic mRNA
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heart delivery
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serum response factor
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SRF153(A3)
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hippo pathway
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YAP
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Siyu Xiao, Rui Liang, Azeez B. Muili, Xuanye Cao, Stephen Navran, Robert J. Schwartz, Dinakar Iyer.
Mutant SRF and YAP synthetic modified mRNAs drive cardiomyocyte nuclear replication.
The Journal of Cardiovascular Aging, 2022, 2(3): 29 DOI:10.20517/jca.2022.17
| [1] |
Porrello ER,Simpson E.Transient regenerative potential of the neonatal mouse heart.Science2011;331:1078-80 PMCID:PMC3099478
|
| [2] |
Foglia MJ.Building and re-building the heart by cardiomyocyte proliferation.Development2016;143:729-740 PMCID:PMC4813344
|
| [3] |
Ocampo A,Martinez-Redondo P.In vivo amelioration of age-associated hallmarks by partial reprogramming.Cell2016;167:1719-33 PMCID:PMC5679279
|
| [4] |
Chen Y,Schoger E.Reversible reprogramming of cardiomyocytes to a fetal state drives heart regeneration in mice.Science2021;373:1537-40
|
| [5] |
Treisman R.Ternary complex factors: growth factor regulated transcriptional activators.Curr Opin Genet Dev1994;4:96-101
|
| [6] |
Miano JM.Serum response factor: toggling between disparate programs of gene expression.J Mol Cell Cardiol2003;35:577-93
|
| [7] |
Pellegrini L,Richmond TJ.Structure of serum response factor core bound to DNA.Nature1995;376:490-8
|
| [8] |
Chen CY.Recruitment of the tinman homolog Nkx-2.5 by serum response factor activates cardiac alpha-actin gene transcription.Mol Cell Biol1996;16:6372-84 PMCID:PMC231639
|
| [9] |
Sepulveda JL,Iyer D,Schwartz RJ.Combinatorial expression of GATA4, Nkx2-5, and serum response factor directs early cardiac gene activity.J Biol Chem2002;277:25775-82
|
| [10] |
Niu Z,Conway SJ.Serum response factor orchestrates nascent sarcomerogenesis and silences the biomineralization gene program in the heart.Proc Natl Acad Sci2008;105:17824-9 PMCID:PMC2584699
|
| [11] |
Janknecht R.Elk-1 protein domains required for direct and SRF-assisted DNA-binding.Nuclei Acids Res1992;20:3317-24 PMCID:PMC312483
|
| [12] |
Murai K.Interaction of serum response factor (SRF) with the Elk-1 B box inhibits RhoA-actin signaling to SRF and potentiates transcriptional activation by Elk-1.Mol Cell Biol2002;22:7083-92 PMCID:PMC139817
|
| [13] |
Wang DZ,Hockemeyer D.Potentiation of serum response factor activity by a family of myocardin-related transcription factors.Proc Natl Acad Sci U S A2002;99:14855-60 PMCID:PMC137508
|
| [14] |
Chang DF,Iyer D.Cysteine-rich LIM-only proteins CRP1 and CRP2 are potent smooth muscle differentiation cofactors.Dev Cell2003;4:107-18
|
| [15] |
Vartiainen MK,Larijani B.Nuclear actin regulates dynamic subcellular localization and activity of the SRF cofactor MAL.Scienc2007;316:1749-52
|
| [16] |
Lockman K,Medlin MD,Taylor JM.Sphingosine 1-phosphate stimulates smooth muscle cell differentiation and proliferation by activating separate serum response factor co-factors.J Biol Chem2004;279:42422-30
|
| [17] |
Miralles F,Zaromytidou AI.Actin dynamics control SRF activity by regulation of its coactivator MAL.Cell2003;113:329-42
|
| [18] |
Yu OM,Brown JH.Myocardin-related transcription factor A and yes-associated protein exert dual control in G protein-coupled receptor- and rhoa-mediated transcriptional regulation and cell proliferation.Mol Cell Biol2015;36:39-49 PMCID:PMC4702594
|
| [19] |
Zaromytidou AI,Treisman R.MAL and ternary complex factor use different mechanisms to contact a common surface on the serum response factor DNA-binding domain.Mol Cell Bio2006;26:413448 PMCID:PMC1489092
|
| [20] |
Gupta M,Davis FJ,Schwartz RJ.Physical interaction between the MADS box of serum response factor and the TEA/ATTS DNA-binding domain of transcription enhancer factor-1.J Biol Chem2001;276:10413-22
|
| [21] |
MacLellan WR,Schwartz RJ.Transforming growth factor-beta response elements of the skeletal alpha-actin gene. Combinatorial action of serum response factor, YY1, and the SV40 enhancer-binding protein, TEF-1.J Biol Chem1994;269:16754-60
|
| [22] |
Xiao Y,Wang J.Hippo/Yap signaling in cardiac development and regeneration.Curr Treat Options Cardiovasc Med2016;18:38
|
| [23] |
Del Re DP,Nakano N.Yes-associated protein isoform 1 (Yap1) promotes cardiomyocyte survival and growth to protect against myocardial ischemic injury.J Biol Chem2013;288:3977-88 PMCID:PMC3567650
|
| [24] |
Zhao B,Li W.Inactivation of YAP oncoprotein by the Hippo pathway is involved in cell contact inhibition and tissue growth control.Genes Dev2007;21:2747-61 PMCID:PMC2045129
|
| [25] |
Foster CT,Treisman R.Mutual dependence of the MRTF-SRF and YAP-TEAD pathways in cancer-associated fibroblasts is indirect and mediated by cytoskeletal dynamics.Genes Dev2017;31:2361-75 PMCID:PMC5795783
|
| [26] |
Bray NL,Melsted P.Near-optimal probabilistic RNA-seq quantification.Nat Biotechnol2016;34:5257
|
| [27] |
Love MI,Anders S.Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2.Genome Biol2014;15:550 PMCID:PMC4302049
|
| [28] |
Subramanian A,Mootha VK.Gene set enrichment analysis: a knowledge-based approach for interpreting genome-wide expression profiles.Proc Natl Acad Sci U S A2005;102:15545-50 PMCID:PMC1239896
|
| [29] |
Wu T,Xu S.ClusterProfiler 4.0: a universal enrichment tool for interpreting omics data.Innovation (Camb)2021;2:100141 PMCID:PMC8454663
|
| [30] |
Kolde R.Pheatmap: pretty heatmaps - R package version. Available from: https://rdrr.io/cran/pheatmap/ [Last accessed on 16 May 2022]
|
| [31] |
National Research Council (US) Committee for the Update of the Guide for the Care and Use of Laboratory Animals. Guide for the care and use of laboratory animals. 8th edition. Washington (DC): National Academies Press (US); 2011.
|
| [32] |
Schratt G,Berger J,Heidenreich O.Serum response factor is crucial for actin cytoskeletal organization and focal adhesion assembly in embryonic stem cells.J Cell Biol2002;156:737-50 PMCID:PMC2174087
|
| [33] |
Pires DEV.MCSM-NA: predicting the effects of mutations on protein-nucleic acids interactions.Nucleic Acids Res2017;45:W241-W246 PMCID:PMC5570212
|
| [34] |
Petronczki M,Kraut N.Polo-like kinase 1 triggers the initiation of cytokinesis in human cells by promoting recruitment of the RhoGEF Ect2 to the central spindle.Dev Cell2007;12:713-25
|
| [35] |
Zhang S,Zhou K.Knockdown of anillin actin binding protein blocks cytokinesis in hepatocytes and reduces liver tumor development in mice without affecting regeneration.Gastroenterology2018;154:1421-34 PMCID:PMC5880685
|
| [36] |
Walczak CE.Mechanisms of mitotic spindle assembly and function.Int Rev Cytol2008;265:111-58
|
| [37] |
Rentschler S,Lu J.Myocardial notch signaling reprograms cardiomyocytes to a conduction-like phenotype.Circulation2012;126:1058-66 PMCID:PMC3607542
|
| [38] |
Pandur P,Eisenberg LM.Wnt-11 activation of a non-canonical Wnt signalling pathway is required for cardiogenesis.Nature2002;418:636-41
|
| [39] |
Cohen ED,Wang Z,Morrisey EE.Wnt5a and Wnt11 are essential for second heart field progenitor development.Development2012;139:1931-40 PMCID:PMC3347685
|
| [40] |
Leonard WJ.Role of Jak kinases and STATs in cytokine signal transduction.Int J Hematol2001;73:271-7
|
| [41] |
Xin M,Sutherland LB.Regulation of insulin-like growth factor signaling by Yap governs cardiomyocyte proliferation and embryonic heart size.Sci Signal2011;4:ra70 PMCID:PMC3440872
|
| [42] |
Aix E,Flores I.Telomeres and telomerase in heart regeneration.Differentiation2018;100:26-30
|
| [43] |
Henslee G,Liu P.Identification and characterization of novel ACD variants: modulation of TPP1 protein level offsets the impact of germline loss-of-function variants on telomere length.Cold Spring Harb Mol Case Stud2021;7:a005454 PMCID:PMC7903889
|
| [44] |
Madrid A, Rode L, Nordestgaard BG, Bojesen SE. Short telomere length and Ischemic heart disease: observational and genetic studies in 290 022 individuals.Clin Chem2016;62:1140-9
|
| [45] |
Zhang JM.Alternative lengthening of telomeres:from molecular mechanisms to therapeutic outlooks.Cell Biosci2020;10:30 PMCID:PMC7063710
|
| [46] |
Ma L,Schwartz RJ.Bmp2 is essential for cardiac cushion epithelial-mesenchymal transition and myocardial patterning.Development2005;132:5601-11
|
| [47] |
Ilagan R,Brown D.Fgf8 is required for anterior heart field development.Development2006;133:2435-45
|
| [48] |
Wilson JS,Castor D,Blasco MA.Localization-dependent and -independent roles of SLX4 in regulating telomeres.Cell Rep2013;4:853-60 PMCID:PMC3969258
|
| [49] |
Lian I,Okazawa H.The role of YAP transcription coactivator in regulating stem cell self-renewal and differentiation.Genes Dev2010;24:1106-18 PMCID:PMC2878649
|