Aug 2026· International Journal of Innovative Science and Research Technology· 0 citations· 5 references
TL;DR
The biological mechanisms regulating cellular senescence are summarized, its contrasting roles in cancer development are highlighted, emerging therapeutic approaches are discussed, and current challenges and future directions for translating senescence-based therapies into clinical oncology are outlined.
Abstract
Cellular senescence is a permanent state of growth arrest that develops when cells encounter various forms of
physiological or pathological stress. Although senescence initially functions as a protective mechanism by preventing the
proliferation of damaged cells, persistent senescent cells can alter the surrounding tissue environment through the release
of bioactive molecules collectively known as the senescence-associated secretory phenotype (SASP). These secretions may
promote chronic inflammation, tumor progression, metastasis, and resistance to anticancer therapy. Consequently, cellular
senescence has emerged as both a biological barrier to cancer and a promising therapeutic target. Recent advances have led
to the development of strategies that either induce senescence in malignant cells or selectively eliminate harmful senescent
cells using senolytic agents while suppressing detrimental SASP signaling through senomorphic therapies. In addition,
combining senescence-targeted interventions with chemotherapy, radiotherapy, immunotherapy, and molecularly targeted
therapies offers new opportunities to improve treatment efficacy and reduce disease recurrence. This review summarizes
the biological mechanisms regulating cellular senescence, highlights its contrasting roles in cancer development, discusses
emerging therapeutic approaches, and outlines current challenges and future directions for translating senescence-based
therapies into clinical oncology.
Overall, current data support a context-dependent role for persistent senescence in treatment resistance, but do not establish TIS as a universal or independent cause of therapeutic failure.
Recent progress in elucidating the relationship between senescence and disease progression is summarized and representative delivery strategies that demonstrate superior therapeutic potential are shown.
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