EYA4 promotes cellular senescence by enhancing P21 transcription through interaction with SIX2

Xiaolin Li , Pingsu Mao , Dandan Chen , Lin Li , Hehua Fang , Junjiu Huang , Haiying Liu

Advanced Biotechnology ›› 2026, Vol. 4 ›› Issue (2) : 17

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Advanced Biotechnology ›› 2026, Vol. 4 ›› Issue (2) :17 DOI: 10.1007/s44307-026-00109-8
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EYA4 promotes cellular senescence by enhancing P21 transcription through interaction with SIX2
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Abstract

During the aging process, the expression levels of numerous genes undergo significant changes, some of which in turn regulate the progression of aging. In this study, we identified the expression of EYA4 is upregulated during aging and demonstrated its critical role in modulating cellular senescence. Knockdown of EYA4 significantly delays both replicative and stress-induced cellular senescence. Mechanistic investigations showed that EYA4 interacts with the transcription factor SIX2 to promote the expression of p21, a key molecule in the senescence-signaling pathway, which accelerates cellular senescence. Interestingly, EYA4 possesses both transcriptional activation and phosphatase activities, yet experiments using phosphatase-deficient mutants revealed that its ability to enhance p21 expression is independent of its phosphatase activity. Further analysis demonstrated that the EYA4-SIX2-mediated regulation of p21 expression is p53-dependent, as the absence of p53 abolished this regulatory effect. In conclusion, our findings uncover a novel role of the EYA4-SIX2 complex in promoting cellular senescence through the transcriptional activation of p21. Targeting EYA4 may represent a promising strategy for delaying the aging process.

Keywords

EYA4 / SIX2 / P21 / Cellular senescence / P53

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Xiaolin Li, Pingsu Mao, Dandan Chen, Lin Li, Hehua Fang, Junjiu Huang, Haiying Liu. EYA4 promotes cellular senescence by enhancing P21 transcription through interaction with SIX2. Advanced Biotechnology, 2026, 4(2): 17 DOI:10.1007/s44307-026-00109-8

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References

[1]

Abbas T, Dutta A. P21 in cancer: intricate networks and multiple activities. Nat Rev Cancer, 2009, 9(6): 400-414

[2]

Creed TM, Baldeosingh R, Eberly CL, Schlee CS, Kim M, Cutler JA, et al. The PAX-SIX-EYA-DACH network modulates GATA-FOG function in fly hematopoiesis and human erythropoiesis. 2020;147(1). https://doi.org/10.1242/dev.177022.

[3]

de la Peña Avalos B, Tropée R, Duijf PHG, Dray E. EYA4 promotes breast cancer progression and metastasis through its role in replication stress avoidance. Mol Cancer, 2023, 22(1): 158

[4]

Demaria M, Ohtani N, Youssef SA, Rodier F, Toussaint W, Mitchell JR, Campisi J. An essential role for senescent cells in optimal wound healing through secretion of PDGF-AA. Dev Cell, 2014, 31(6): 722-733

[5]

el-Deiry WS, Tokino T, Velculescu VE, Levy DB, Parsons R, Trent JM, Lin D, Mercer WE, Kinzler KW, Vogelstein B. Waf1, a potential mediator of p53 tumor suppression. Cell, 1993, 75(4): 817-825

[6]

el-Deiry WS, Harper JW, O'Connor PM, Velculescu VE, Canman CE, Jackman J, et al. . WAF1/CIP1 is induced in p53-mediated G1 arrest and apoptosis. Cancer Res, 1994, 54(5): 1169-1174

[7]

Engeland K. Cell cycle regulation: p53–p21-RB signaling. Cell Death Differ, 2022, 29(5): 946-960

[8]

Farhan M, Wang H, Gaur U, Little PJ, Xu J, Zheng W. FOXO signaling pathways as therapeutic targets in cancer. Int J Biol Sci, 2017, 13(7): 815-827

[9]

Fischer M. Census and evaluation of p53 target genes. Oncogene, 2017, 36(28): 3943-3956

[10]

Galanos P, Vougas K, Walter D, Polyzos A, Maya-Mendoza A, Haagensen EJ, Gorgoulis VG. Chronic p53-independent p21 expression causes genomic instability by deregulating replication licensing. Nat Cell Biol, 2016, 18(7): 777-789

[11]

Gorgoulis V, Adams PD, Alimonti A, Bennett DC, Bischof O, Bishop C, Demaria M. Cellular senescence: defining a path forward. Cell, 2019, 179(4): 813-827

[12]

Graña X, Garriga J, Mayol X. Role of the retinoblastoma protein family, pRB, p107 and p130 in the negative control of cell growth. Oncogene, 1998, 17(25): 3365-3383

[13]

Guo X, Keyes WM, Papazoglu C, Zuber J, Li W, Lowe SW, Mills AA. TAp63 induces senescence and suppresses tumorigenesis in vivo. Nat Cell Biol, 2009, 11(12): 1451-1457

[14]

Hirose T, Galvin BD, Horvitz HR. Six and Eya promote apoptosis through direct transcriptional activation of the proapoptotic BH3-only gene egl-1 in Caenorhabditis elegans. Proc Natl Acad Sci U S A, 2010, 107(35): 15479-15484

[15]

Ikeda K, Watanabe Y, Ohto H, Kawakami K. Molecular interaction and synergistic activation of a promoter by Six, Eya, and Dach proteins mediated through CREB binding protein. Mol Cell Biol, 2002, 22(19): 6759-6766

[16]

Kastenhuber ER, Lowe SW. Putting p53 in Context. Cell, 2017, 170(6): 1062-1078

[17]

Kennedy BK, Berger SL, Brunet A, Campisi J, Cuervo AM, Epel ES, et al. Geroscience: linking aging to chronic disease. Cell. 2014;159(4):709–713. https://doi.org/10.1016/j.cell.2014.10.039.

[18]

Kern SE, Kinzler KW, Bruskin A, Jarosz D, Friedman P, Prives C, Vogelstein B. Identification of p53 as a sequence-specific DNA-binding protein. Science, 1991, 252(5013): 1708-1711

[19]

Khosla S, Farr JN. The role of cellular senescence in ageing and endocrine disease. Nat Rev Endocrinol, 2020, 16(5): 263-275

[20]

Li X, Oghi KA, Zhang J, Krones A, Bush KT, Glass CK, Rosenfeld MG. Eya protein phosphatase activity regulates Six1-Dach-Eya transcriptional effects in mammalian organogenesis. Nature. 2003;426(6964):247–254. https://doi.org/10.1038/nature02083.

[21]

Mo SJ, Liu X, Hao XY, Chen W, Zhang KS, Cai JP, et al. EYA4 functions as tumor suppressor gene and prognostic marker in pancreatic ductal adenocarcinoma through β-catenin/ID2 pathway. Cancer Lett. 2016;380(2):403–412. https://doi.org/10.1016/j.canlet.2016.06.021.

[22]

Mo SJ, Hou X, Hao XY, Cai JP, Liu X, Chen W, Mo S-J, Hao X-Y, Cai J-P, Chen D, Yin X-Y, Yin XY. EYA4 inhibits hepatocellular carcinoma growth and invasion by suppressing NF-κB-dependent RAP1 transactivation. Cancer Commun, 2018, 38(1): 9

[23]

Muñoz-Espín D, Cañamero M, Maraver A, Gómez-López G, Contreras J, Murillo-Cuesta S, et al. Programmed cell senescence during mammalian embryonic development. Cell. 2013;155(5):1104–1118. https://doi.org/10.1016/j.cell.2013.10.019.

[24]

Narasimha AM, Kaulich M, Shapiro GS, Choi YJ, Sicinski P, Dowdy SF. Cyclin D activates the Rb tumor suppressor by mono-phosphorylation. Elife, 2014,

[25]

Nelson CB, Rogers S, Roychoudhury K, Tan YS, Atkinson CJ, Sobinoff AP. The eyes absent family members EYA4 and EYA1 promote PLK1 activation and successful mitosis through tyrosine dephosphorylation. Nat Commun, 2024, 15(1): 1385

[26]

Ohto H, Kamada S, Tago K, Tominaga SI, Ozaki H, Sato S, Kawakami K. Cooperation of six and eya in activation of their target genes through nuclear translocation of Eya. Mol Cell Biol, 1999, 19(10): 6815-6824

[27]

Okabe Y, Sano T, Nagata S. Regulation of the innate immune response by threonine-phosphatase of Eyes absent. Nature, 2009, 460(7254): 520-524

[28]

Ou HL, Schumacher B. DNA damage responses and p53 in the aging process. Blood, 2018, 131(5): 488-495

[29]

Patrick AN, Cabrera JH, Smith AL, Chen XS, Ford HL, Zhao R. Structure-function analyses of the human SIX1-EYA2 complex reveal insights into metastasis and BOR syndrome. Nat Struct Mol Biol, 2013, 20(4): 447-453

[30]

Pignoni F, Hu B, Zavitz KH, Xiao J, Garrity PA, Zipursky SL. The eye-specification proteins So and Eya form a complex and regulate multiple steps in Drosophila eye development. Cell, 1997, 91(7): 881-891

[31]

Rayapureddi JP, Kattamuri C, Steinmetz BD, Frankfort BJ, Ostrin EJ, Mardon G, Hegde RS. Eyes absent represents a class of protein tyrosine phosphatases. Nature, 2003, 426(6964): 295-298

[32]

Roger L, Tomas F, Gire V. Mechanisms and regulation of cellular senescence. Int J Mol Sci, 2021,

[33]

Scanlan R-L, Pease L, O’Keefe H, Martinez-Guimera A, Rasmussen L, Wordsworth J, Shanley D. Systematic transcriptomic analysis and temporal modelling of human fibroblast senescence. Front Aging, 2024,

[34]

Serrano M, Lin AW, McCurrach ME, Beach D, Lowe SW. Oncogenic ras provokes premature cell senescence associated with accumulation of p53 and p16INK4a. Cell, 1997, 88(5): 593-602

[35]

Sherr CJ, Roberts JM. Inhibitors of mammalian G1 cyclin-dependent kinases. Genes Dev, 1995, 9(10): 1149-1163

[36]

Stein GH, Drullinger LF, Soulard A, Dulić V. Differential roles for cyclin-dependent kinase inhibitors p21 and p16 in the mechanisms of senescence and differentiation in human fibroblasts. Mol Cell Biol, 1999, 19(3): 2109-2117

[37]

Stevaux O, Dyson NJ. A revised picture of the E2F transcriptional network and RB function. Curr Opin Cell Biol, 2002, 14(6): 684-691

[38]

Storer M, Mas A, Robert-Moreno A, Pecoraro M, Ortells MC, Di Giacomo V, Keyes WM. Senescence is a developmental mechanism that contributes to embryonic growth and patterning. Cell, 2013, 155(5): 1119-1130

[39]

Sturmlechner I, Durik M, Sieben CJ, Baker DJ, van Deursen JM. Cellular senescence in renal ageing and disease. Nat Rev Nephrol, 2017, 13(2): 77-89

[40]

The Genotype-Tissue Expression (GTEx) project. Nat Genet. 2013;45(6):580–585. https://doi.org/10.1038/ng.2653.

[41]

Tootle TL, Silver SJ, Davies EL, Newman V, Latek RR, Mills IA, Rebay I. The transcription factor Eyes absent is a protein tyrosine phosphatase. Nature, 2003, 426(6964): 299-302

[42]

Torres G, Salladay-Perez IA, Dhingra A, Covarrubias AJ. Genetic origins, regulators, and biomarkers of cellular senescence. Trends Genet, 2024, 40(12): 1018-1031

[43]

Wang B, Wang L, Gasek NS, Zhou Y, Kim T, Guo C, Xu M. An inducible p21-Cre mouse model to monitor and manipulate p21-highly-expressing senescent cells in vivo. Nat Aging, 2021, 1(10): 962-973

[44]

Xu PX, Cheng J, Epstein JA, Maas RL. Mouse Eya genes are expressed during limb tendon development and encode a transcriptional activation function. Proc Natl Acad Sci U S A, 1997, 94(22): 11974-11979

[45]

Xu PX, Adams J, Peters H, Brown MC, Heaney S, Maas R. Eya1-deficient mice lack ears and kidneys and show abnormal apoptosis of organ primordia. Nat Genet, 1999, 23(1): 113-117

[46]

Xue W, Zender L, Miething C, Dickins RA, Hernando E, Krizhanovsky V, Lowe SW. Senescence and tumour clearance is triggered by p53 restoration in murine liver carcinomas. Nature, 2007, 445(7128): 656-660

[47]

Yan J, Chen S, Yi Z, Zhao R, Zhu J, Ding S, Wu J. The role of p21 in cellular senescence and aging-related diseases. Mol Cells, 2024, 47(11): 100113

[48]

Zhu XX, Li JH, Cai JP, Hou X, Huang CS, Huang XT, Zhu X-X, Li J-H, Cai J-P, Huang C-S, Huang X-T, Wang J-Q, Li S-J, Xu Q-C, Yin X-Y, Yin XY. EYA4 inhibits hepatocellular carcinoma by repressing MYCBP by dephosphorylating β-catenin at Ser552. Cancer Sci, 2019, 110(10): 3110-3121

Funding

National Key R&D Program of China(2025YFA1309504)

National Natural Science Foundation of China(82171549)

Basic and Applied Basic Research Foundation of Guangdong Province(2024A1515012984)

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