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Validation of Dual-Action Chemo-Radio-Labeled Nanocarriers with High Efficacy against Triple-Negative Breast Cancer
Shaista Ilyas1, Sabri E M Sahnoun2, Annika Szymura1
1Institute of Inorganic Chemistry, University of Cologne, Greinstr. 6, 50939 Cologne, Germany.
Abstract:
Identification and selectivity of molecular targets with prolonged action for difficult-to-target cancer such as triple-negative breast cancer (TNBC) represent a persisting challenge in the precision delivery of therapeutics. In the quest to target undruggable sites, this study validates the bioavailability of polydopamine-sealed mesoporous silica nanocarriers (PDA-mSiO2) for in vivo drug delivery to TNBC. For controlled transport and release, the chemotherapeutic drug doxorubicin was encapsulated in mSiO2 nanocarriers coated with a PDA layer serving as a stimuli-responsive gatekeeper or seal. For unifying targeting and treatment modalities, these nanocarriers were covalently conjugated to a macrocyclic chelator (DOTA) and folate (FA-mSiO2.) that enabled incorporation of radionuclides and identification of FR Alpha (FolRα) receptors present on TNBC cells. The robust chemical design of FA- and DOTA-functionalized PDA-coated mSiO2 nanocarriers constitutes mild reaction conditions to avoid the loss of surface-bound molecules. The radiolabeling studies with the theranostic pair 68Ga and 177Lu showed quantitative trends for radiochemical efficacy and purity. Nanocarriers equipped with both radiolabels and affinity ligands were optimally stable when incubated with human serum for up to 120 h (177Lu), demonstrating hydrophilicity with a partition coefficient (log P) of -3.29 ± 0.08. Specifically, when incubated with TNBC cells, the cells received significant FA-mSiO2 carriers, demonstrating efficient carrier internalization and time-dependent uptake. Moreover, in vivo results visualize the retention of drug-filled carriers at the tumor sites for a long time, which holds promise for therapeutic studies. This research work demonstrates for the first time the successful dual conjugation of nanocarriers through the colocation of radionuclides and anticancer drugs that is promising for both live molecular imaging and enhanced therapeutic effect for TNBC.
Insights
This study developed novel polydopamine-sealed nanocarriers for targeted drug delivery in triple-negative breast cancer (TNBC). These nanocarriers successfully delivered chemotherapy and imaging agents, showing promise for enhanced cancer therapy and imaging.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Targeting difficult-to-treat cancers like triple-negative breast cancer (TNBC) requires advanced therapeutic delivery systems.
- Developing molecular targets with prolonged action is crucial for effective precision medicine in oncology.
Purpose of the Study:
- To validate the in vivo bioavailability and efficacy of polydopamine-sealed mesoporous silica nanocarriers (PDA-mSiO2) for drug delivery to TNBC.
- To create a dual-functional nanocarrier system for simultaneous molecular imaging and therapeutic treatment of TNBC.
Main Methods:
- Encapsulation of doxorubicin within mesoporous silica nanocarriers (mSiO2) coated with polydopamine (PDA) for controlled release.
- Covalent conjugation of macrocyclic chelator (DOTA) and folate (FA) to PDA-mSiO2 for radionuclide incorporation and FR Alpha receptor targeting.
- Radiolabeling with 68Ga and 177Lu, stability studies in human serum, and in vitro/in vivo evaluation of nanocarrier uptake and retention in TNBC models.
Main Results:
- The functionalized PDA-mSiO2 nanocarriers demonstrated high radiochemical efficacy and purity with 68Ga and 177Lu.
- Nanocarriers exhibited excellent stability in human serum and efficient internalization by TNBC cells.
- In vivo studies confirmed prolonged retention of drug-filled nanocarriers at tumor sites, indicating successful targeted delivery.
Conclusions:
- The developed FA- and DOTA-functionalized PDA-coated mSiO2 nanocarriers are a promising platform for theranostic applications in TNBC.
- This dual conjugation approach enables simultaneous live molecular imaging and enhanced therapeutic effects, addressing a key challenge in TNBC treatment.
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