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PELEN, N. N.

Publications and source records attributed to PELEN, N. N..

2 recordsLinked to original sources

Saddle-Node Bifurcation in Macrophage Proliferation Determines Atherosclerotic Plaque Stability

Atherosclerotic plaques are fatty deposits in arterial walls and a major cause of heart attacks and strokes. Macrophage proliferation triggers plaque growth and instability, but the specific conditions that convert stable plaques into unstable ones remain unclear. To provide insight into the conditions for this transition, we apply bifurcation analysis to the lipid-structured atherosclerosis model proposed by Chambers et al. (Bull Math Biol 86(8):104, 2024).{ We demonstrate that, in the asymptotic regime where macrophage levels become large ($M \to \infty$), the model exhibits an asymptotic fast-slow structure that does not hold outside this limit. Within this asymptotic regime, we reduce the full system onto a slow invariant manifold, providing a simplified yet accurate description of the dynamics near the critical proliferation-emigration threshold.} We prove, via centre manifold theory, that the positive steady state loses stability through a transcritical bifurcation at infinity at the critical proliferation-emigration threshold $\rho_c=1+\gamma$. The analysis reveals that the positive equilibrium branch approaches and exchanges stability with a boundary equilibrium at infinity, providing a rigorous dynamical explanation for the transition that was identified but left unexplored in the original study. Complementing this analytical contribution, we conduct a global sensitivity analysis using Partial Rank Correlation Coefficients (PRCC), identifying macrophage proliferation, emigration, and efferocytosis as the dominant regulators of plaque dynamics. Targeted parameter investigations near $\rho_c$ reveal a regulatory decoupling between macrophage accumulation and necrotic core growth, providing new biological insight into the behaviour of the model near the critical proliferation-emigration threshold.

physiology↗

A Mechanistic Model of Oncolytic Virus-CAR T Therapy Identifies Memory-Dependent Control of Solid Tumors

Chimeric antigen receptor (CAR) T-cell therapy can induce durable remissions in hematologic malignancies, yet its efficacy in solid tumors remains limited by antigen heterogeneity, an immunosuppressive tumor microenvironment, and poor T-cell persistence. Oncolytic viruses (OVs) provide a complementary therapeutic strategy by directly lysing tumor cells and reshaping local immune responses. Motivated by emerging evidence that OVs can also induce dual-specific, memory-like CAR T cells, we develop a unified mathematical framework that integrates these interacting modalities. The model distinguishes antigen-positive and antigen-negative tumor populations, tracks key viral and immune compartments, and incorporates OV-mediated microenvironmental activation alongside CAR T-cell stimulation. This baseline formulation provides a platform for assessing whether additional mechanisms--such as OV-induced CAR T-cell memory--are necessary for durable tumor control. Sensitivity analysis of the memory-free system using partial rank correlation coefficients (PRCCs) identifies four dominant drivers of therapeutic outcome: antigen-negative tumor dynamics, viral kinetics, CAR T-cell cytotoxic effectiveness, and PD-1/PD-L1-mediated T-cell exhaustion. While these mechanisms can generate strong early responses, they are insufficient to prevent late relapse driven by antigen-negative tumor regrowth. Introducing a reduced memory variable to represent OV-driven CAR T recall fundamentally alters this behavior: enhanced memory induction and CAR T responsiveness sustain effector T-cell levels and enable long-term control of antigen-negative tumor populations. Together, these results highlight OV-induced CAR T-cell memory as a critical determinant of durable therapeutic efficacy in solid tumors.

cancer biology↗