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Updated: Nov 15, 2025

Monitoring of Nanodrug Accumulation in Murine Breast Cancer Metastases
Published on: August 23, 2024
CD44 Targeted Nanomaterials for Treatment of Triple-Negative Breast Cancer
Ghazal Nabil1,2, Rami Alzhrani2,3, Hashem O Alsaab2,3
1Department of Pharmacology, Faculty of Veterinary Medicine, Cairo University, Giza 12211, Egypt.
Abstract:
Identified as the second leading cause of cancer-related deaths among American women after lung cancer, breast cancer of all types has been the focus of numerous research studies. Even though triple-negative breast cancer (TNBC) represents 15-20% of the number of breast cancer cases worldwide, its existing therapeutic options are fairly limited. Due to the pivotal role of the presence/absence of specific receptors to luminal A, luminal B, HER-2+, and TNBC in the molecular classification of breast cancer, the lack of these receptors has accounted for the aforementioned limitation. Thereupon, in an attempt to participate in the ongoing research endeavors to overcome such a limitation, the conducted study adopts a combination strategy as a therapeutic paradigm for TNBC, which has proven notable results with respect to both: improving patient outcomes and survivability rates. The study hinges upon an investigation of a promising NPs platform for CD44 mediated theranostic that can be combined with JAK/STAT inhibitors for the treatment of TNBC. The ability of momelotinib (MMB), which is a JAK/STAT inhibitor, to sensitize the TNBC to apoptosis inducer (CFM-4.16) has been evaluated in MDA-MB-231 and MDA-MB-468. MMB + CFM-4.16 combination with a combination index (CI) ≤0.5, has been selected for in vitro and in vivo studies. MMB has been combined with CD44 directed polymeric nanoparticles (PNPs) loaded with CFM-4.16, namely CD44-T-PNPs, which selectively delivered the payload to CD44 overexpressing TNBC with a significant decrease in cell viability associated with a high dose reduction index (DRI). The mechanism underlying their synergism is based on the simultaneous downregulation of P-STAT3 and the up-regulation of CARP-1, which has induced ROS-dependent apoptosis leading to caspase 3/7 elevation, cell shrinkage, DNA damage, and suppressed migration. CD44-T-PNPs showed a remarkable cellular internalization, demonstrated by uptake of a Rhodamine B dye in vitro and S0456 (NIR dye) in vivo. S0456 was conjugated to PNPs to form CD44-T-PNPs/S0456 that simultaneously delivered CFM-4.16 and S0456 parenterally with selective tumor targeting, prolonged circulation, minimized off-target distribution.
Insights
This study explores a novel combination therapy for triple-negative breast cancer (TNBC). A CD44-targeted nanoparticle delivery system combined with JAK/STAT inhibitors shows promise in improving patient outcomes and survivability rates.
Area of Science:
- Oncology
- Nanotechnology
- Pharmacology
Background:
- Triple-negative breast cancer (TNBC) lacks targeted therapies due to absent receptors, limiting treatment options.
- Existing treatments for TNBC have significant limitations, necessitating novel therapeutic strategies.
- TNBC is the second leading cause of cancer deaths in American women.
Purpose of the Study:
- To investigate a combination therapy for TNBC using a CD44-mediated theranostic nanoparticle (NP) platform.
- To evaluate the synergistic effects of momelotinib (MMB), a JAK/STAT inhibitor, and an apoptosis inducer (CFM-4.16) for TNBC treatment.
- To develop CD44-targeted polymeric nanoparticles (PNPs) loaded with CFM-4.16 for selective TNBC delivery.
Main Methods:
- Evaluated momelotinib (MMB) and CFM-4.16 combination in MDA-MB-231 and MDA-MB-468 cell lines.
- Developed CD44-targeted polymeric nanoparticles (PNPs) loaded with CFM-4.16 (CD44-T-PNPs).
- Investigated in vitro and in vivo efficacy, cellular internalization, and tumor targeting of CD44-T-PNPs.
Main Results:
- MMB and CFM-4.16 combination demonstrated significant synergy (Combination Index ≤0.5).
- CD44-T-PNPs selectively targeted CD44-overexpressing TNBC cells, reducing viability and increasing the dose reduction index.
- Synergism mechanism involves P-STAT3 downregulation, CARP-1 upregulation, ROS-dependent apoptosis, and suppressed migration.
- CD44-T-PNPs showed efficient in vitro and in vivo cellular internalization and tumor targeting.
Conclusions:
- The CD44-T-PNPs combined with MMB represent a promising theranostic platform for TNBC treatment.
- This combination strategy enhances apoptosis and reduces TNBC cell viability and migration.
- The targeted nanoparticle delivery system minimizes off-target effects and improves therapeutic outcomes.

