Cellular senescence is an irreversible cell cycle arrest caused by various stressors that damage cells. Over time, senescent cells accumulate and contribute to the progression of multiple age-related degenerative diseases. It is believed that these cells accumulate partly due to their ability to evade programmed cell death through the development and activation of survival and antiapoptotic resistance mechanisms; however, many aspects of how these survival mechanisms develop and activate are still unknown. By analyzing transcriptomic signature profiles generated by the LINCS L1000 project and using network-based methods, we identified various genes that could represent new senescence-related survival mechanisms. Additionally, employing the same methodology, we identified over 600 molecules with potential senolytic activity. Experimental validation of our computational findings confirmed the senolytic activity of Fluorouracil, whose activity would be mediated by a multitarget mechanism, revealing that its targets AURKA, EGFR, IRS1, SMAD4, and KRAS are new senescent cell antiapoptotic pathways (SCAPs). The development of these pathways could depend on the stimulus that induces cellular senescence. The SCAP development and activation mechanisms proposed in this work offer new insights into how senescent cells survive. Identifying new antiapoptotic resistance targets and drugs with potential senolytic activity paves the way for developing new pharmacological therapies to eliminate senescent cells selectively.
Transcriptomic signatures and network-based methods uncover new senescent cell anti-apoptotic pathways and senolytics.
转录组特征和基于网络的方法揭示了新的衰老细胞抗凋亡通路和衰老细胞清除剂
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作者:Olascoaga Samael, Konigsberg Mina, Espinal-EnrÃquez Jesús, Tovar Hugo, Matadamas-MartÃnez Félix, Pérez-Villanueva Jaime, López-Diazguerrero Norma Edith
| 期刊: | FEBS Journal | 影响因子: | 4.200 |
| 时间: | 2025 | 起止号: | 2025 Apr;292(8):1950-1971 |
| doi: | 10.1111/febs.17402 | 研究方向: | 细胞生物学 |
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