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Determining Optimal Combination Regimens for Patients with Multiple Myeloma

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arxiv 2211.09280 v1 pith:JUG3F44M submitted 2022-11-17 math.OC

Determining Optimal Combination Regimens for Patients with Multiple Myeloma

classification math.OC
keywords multiplepatientscombinationmyelomatherapiesdiseasemodeloptimal
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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While many novel therapies have been approved in recent years for treating patients with multiple myeloma, there is still no established curative regimen, especially for patients with high risk disease. In this work, we use a mathematical modeling approach to determine combination therapy regimens that maximize healthy lifespan for patients with multiple myeloma. We start with a model of ordinary differential equations for the underlying disease and immune dynamics, which was presented and analyzed previously. We add the effects of three therapies to the model: pomalidomide, dexamethasone, and elotuzumab. We consider multiple approaches to optimizing combinations of these therapies. We find that optimal control combined with approximation outperforms other methods, in that they can quickly produce a combination regimen that is clinically-feasible and near-optimal. Implications of this work can be used to optimize doses and advance the scheduling of drugs.

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