MAGNOSTICS aimed at developing biomimetic platform for the targeted delivery of siRNA against ABCB1 gene and anti-cancer drug to achieve a multi-modal thernaostics for triple negative breast cancer (TNBC). Metastatic TNBCs are aggressive tumors with poor prognosis contributing to about 15 % of all the breast cancers with high mortality rates. Characterized by the absence of estrogen, progesterone, and human epidermal growth factor 2 receptors, endocrine and targeted therapies are ineffective. Thus, chemotherapy is still the cornerstone for TNBC treatment. However, chemotherapy is strongly impeded by non-specificity and efflux/drug resistance, which lead to recurrence and relapse. In metastatic cases, 90% of therapy failure is attributed to chemoresistance. ATP-binding cassette (ABC) transporters are one of the strong reasons leading to drug efflux and thus chemoresistance. Suppressing the expression of ABCB1 gene with a small-interfering RNA (siRNA) can inhibit drug efflux. A combined treatment approach addressing drug efflux with superior synergistic effect is required for the improved management of TNBCs. Through MAGNOSTICS, we aimed to develop multimodal biomimetic nanoplatform to address non-specificity and ABCB1-mediated chemoresistance in TNBC. Thus, the objectives of MAGNOSTICS were to synthesize and characterize biomimetic magnetic iron-oxide nanoparticles (MNPs) loaded with the anticancer drug, doxorubicin (Dox) and siRNA against ABCB1 gene with a coating of cancer cell membrane (CM) obtained from a drug-resistant TNBC cell line. Through MAGNOSTICS, the biomimetic nanoparticles (NPs) were found to be biocompatible, demonstrated efficient uptake by cancer cells, and displayed immune escape capability. Importantly, these biomimetic NPs showed excellent gene silencing and retention of dox. Furthermore, with the magnetic hyperthermia, the NPs demonstrated enhanced siRNA release and as MRI contrast agents.