Autoimmune rheumatic diseases are still treated predominantly through broad or targeted suppression of inflammatory pathways, yet durable restoration of self-tolerance remains a central unmet therapeutic goal. This narrative review examines restoration of immune tolerance as an emerging translational framework in rheumatology, integrating checkpoint agonism, antigen-specific immunotherapy, regulatory cell-based strategies, and immune-reset approaches within a unified therapeutic perspective. Rather than treating these strategies as isolated innovations, the review evaluates how each attempts to restore, reinforce, or reconfigure immune restraint at distinct biological levels, spanning inhibitory receptor signaling, antigen-selective non-responsiveness, dominant regulatory control, and deeper reconfiguration of pathogenic immune architecture. Their relevance is considered across rheumatoid arthritis, systemic lupus erythematosus, Sjögren’s disease, and systemic sclerosis, with emphasis on mechanistic rationale, translational maturity, disease-specific therapeutic fit, biomarkers, therapeutic timing, and major barriers to clinical implementation. Collectively, these approaches suggest a shift in rheumatology from repeated control of inflammatory consequences toward more selective and potentially durable recalibration of autoreactive immunity. Although the field remains biologically and clinically immature, restoration of immune tolerance is emerging as an important organizing principle for the development of more precise and potentially disease-modifying therapies in autoimmune rheumatic disease.
Ola A. Al-Ewaidat, Moawiah M. Naffaa· Rheumato· 0 citations
Tumor heterogeneity and cellular plasticity are major drivers of therapeutic failure across many cancer types. While precision oncology has largely focused on static genomic alterations, growing evidence indicates that tumors behave as dynamic biological systems that continuously adapt during treatment. Tumor cell populations can transition between distinct functional states under therapeutic pressure, including transient drug-tolerant phenotypes that may precede stabilization of genetically or epigenetically resistant clones. These transitions are shaped by mechanisms such as epigenetic reprogramming, stress-response signaling, metabolic rewiring, and microenvironmental interactions. This review synthesizes findings from tumor plasticity, drug-tolerant persister biology, therapy-induced vulnerabilities, clonal evolution, and adaptive therapy to examine how temporal tumor dynamics influence treatment response. Emerging evidence suggests that some tumors may pass through short-lived phases of cellular instability during therapy in which molecular dependencies, stress-response programs, or adaptive survival states are altered before resistance becomes genetically or epigenetically stabilized. However, such transition states should be considered therapeutically actionable only when linked to functional evidence of altered drug sensitivity, pathway dependence, immune susceptibility, or clinical response. Advances in single-cell transcriptomics, epigenomic profiling, serial circulating tumor deoxyribonucleic acid (ctDNA)/cfDNA analysis, multi-omics integration, and dynamic imaging are enabling longitudinal monitoring of tumor state transitions and may facilitate identification of transient biological states preceding stable resistance. Integrating temporal tumor biology with therapeutic sequencing strategies, adaptive treatment schedules, and biomarker-guided monitoring may therefore help test whether specific adaptive states can be therapeutically exploited and may refine precision oncology approaches.
Ola A. Al-Ewaidat, Moawiah M. Naffaa· Exploration of Targeted Anti...· 0 citations
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