Replication stress (RS) represents a major vulnerability of cancer cells treated with nucleoside analogs and related antimetabolites; however, tumors frequently acquire tolerance mechanisms that permit survival despite persistent DNA lesions. This review examines molecular determinants of RS tolerance, focusing on human T-cell leukemia virus type 1 (HTLV-1)-mediated adult T-cell leukemia/lymphoma (ATL) as a model of virus-mediated rewiring of DNA damage responses. Chain-terminating nucleoside analogs generate aberrant replication intermediates, including blocked 3’ DNA termini, mis-incorporated bases, and stalled replication forks. In ATL, viral oncoproteins suppress key components of replication stress response pathways, notably tyrosyl-DNA phosphodiesterase 1 (TDP1) and mismatch repair (MMR), thereby creating exploitable repair deficiencies. Consistent with this vulnerability, ATL cells exhibit marked sensitivity to replication stress–inducing agents such as irinotecan (CPT-11) and the chain-terminating nucleoside analog abacavir. Recent CRISPR-based functional genomics studies further identify Schlafen 11 (SLFN11) as an independent and dominant regulator of RS sensitivity. SLFN11 determines the fate of stressed replication forks independently of lesion processing, acting as an execution factor that converts otherwise tolerable RS into irreversible replication arrest. We conclude by discussing therapeutic strategies that exploit RS tolerance defects in ATL, including biomarker-guided nucleoside analog therapy, and rational combination approaches targeting compensatory RS pathways.
It is demonstrated that SLF2 and SMC5 dysfunction drives premature HSC aging, bone marrow failure, and predisposition to MDS, revealing Atelis Syndrome as a previously unrecognized IBMFS.
Sho Shibata, K. Chonabayashi, Hirofumi Nakamura et al.· Leukemia· 0 citations
These findings suggest the safety and potential efficacy of allogeneic iPSC-PLTs in humans, and are reported the world’s first clinical evaluation of an allogeneic iPSC-PLT product.
Kazumasa Takao, Yoshihiro Kumagae, J. Kanda et al.· Stem Cells Translational Med...· 0 citations
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