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Bioengineered Carboxymethylcellulose-Peptide Hybrid Nanozyme Cascade for Targeted Intracellular
Alexandra A P Mansur1, Sandhra M Carvalho1, Luiz Carlos A Oliveira2
1Center of Nanoscience, Nanotechnology, and Innovation-CeNano2I, Department of Metallurgical and Materials Engineering, Engineering School, Federal University of Minas Gerais (UFMG), Av. Antônio Carlos, 6627, Belo Horizonte 31270-901, MG, Brazil.
Abstract:
Glioblastoma remains the most lethal form of brain cancer, where hybrid nanomaterials biofunctionalized with polysaccharide peptides offer disruptive strategies relying on passive/active targeting and multimodal therapy for killing cancer cells. Thus, in this research, we report for the first time the rational design and synthesis of novel hybrid colloidal nanostructures composed of gold nanoparticles stabilized by trisodium citrate (AuNP@TSC) as the oxidase-like nanozyme, coupled with cobalt-doped superparamagnetic iron oxide nanoparticles stabilized by carboxymethylcellulose ligands (Co-MION@CMC) as the peroxidase-like nanozyme. They formed inorganic-inorganic dual-nanozyme systems functionalized by a carboxymethylcellulose biopolymer organic shell, which can trigger a biocatalytic cascade reaction in the cancer tumor microenvironment for the combination of magnetothermal-chemodynamic therapy. These nanoassemblies were produced through a green aqueous process under mild conditions and chemically biofunctionalized with integrin-targeting peptide (iRDG), creating bioengineered nanocarriers. The results demonstrated that the oxidase-like nanozyme (AuNP) was produced with a crystalline face-centered cubic nanostructure, spherical morphology (diameter = 16 ± 3 nm), zeta potential (ZP) of -50 ± 5 mV, and hydrodynamic diameter (DH) of 15 ± 1 nm. The peroxide-like nanostructure (POD, Co-MION@CMC) contained an inorganic crystalline core of magnetite and had a uniform spherical shape (2R = 7 ± 1 nm) which, summed to the contribution of the CMC shell, rendered a hydrodynamic diameter of 45 ± 4 nm and a negative surface charge (ZP = -41 ± 5 mV). Upon coupling both nanozymes, water-dispersible colloidal supramolecular vesicle-like organic-inorganic nanostructures were produced (AuNP//Co-MION@CMC, ZP = -45 ± 4 mV and DH = 28 ± 3 nm). They confirmed dual-nanozyme cascade biocatalytic activity targeted by polymer-peptide conjugates (AuNP//Co-MION@CMC_iRGD, ZP = -29 ± 3 mV and DH = 60 ± 4 nm) to kill brain cancer cells (i.e., bioenergy "starvation" by glucose deprivation and oxidative stress through reactive oxygen species generation), which was boosted by the magneto-hyperthermotherapy effect when submitted to the alternating magnetic field (i.e., induced local thermal stress by "nanoheaters"). This groundwork offers a wide avenue of opportunities to develop innovative theranostic nanoplatforms with multiple integrated functionalities for fighting cancer and reducing the harsh side effects of conventional chemotherapy.
Insights
This study introduces novel dual-nanozyme nanostructures for glioblastoma treatment, combining targeted therapies to kill cancer cells effectively. These bioengineered nanocarriers offer a promising approach to combat brain cancer with reduced side effects.
Area of Science:
- Nanotechnology
- Biomedical Engineering
- Materials Science
Background:
- Glioblastoma is a lethal brain cancer with limited treatment options.
- Hybrid nanomaterials offer potential for targeted cancer therapy.
- Polysaccharide peptides can enhance nanocarrier functionality.
Purpose of the Study:
- To design and synthesize novel hybrid colloidal nanostructures for glioblastoma treatment.
- To create a dual-nanozyme system for multimodal cancer therapy.
- To develop bioengineered nanocarriers for targeted drug delivery and cancer cell killing.
Main Methods:
- Synthesis of gold nanoparticles (AuNP@TSC) and cobalt-doped superparamagnetic iron oxide nanoparticles (Co-MION@CMC).
- Formation of inorganic-inorganic dual-nanozyme systems functionalized with a carboxymethylcellulose shell.
- Biofunctionalization with integrin-targeting peptide (iRGD) for targeted delivery.
- Evaluation of biocatalytic activity and cancer cell killing efficacy.
Main Results:
- Successfully synthesized AuNP@TSC and Co-MION@CMC nanozymes with specific characteristics.
- Created water-dispersible supramolecular nanostructures (AuNP//Co-MION@CMC).
- Demonstrated dual-nanozyme cascade biocatalytic activity and cancer cell killing via glucose deprivation and ROS generation.
- Showcased enhanced therapeutic effects through magneto-hyperthermotherapy.
Conclusions:
- Developed innovative hybrid nanostructures for glioblastoma theranostics.
- The dual-nanozyme system effectively targets and kills cancer cells through combined therapies.
- This platform holds potential for developing advanced cancer treatments with reduced side effects.

