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Inhibiting the Growth of 3D Brain Cancer Models with Bio-Coronated Liposomal Temozolomide
Giordano Perini1,2, Francesca Giulimondi3, Valentina Palmieri1,2,4
1Dipartimento di Neuroscienze, Università Cattolica del Sacro Cuore, Largo Francesco Vito 1, 00168 Rome, Italy.
Abstract:
Nanoparticles (NPs) have emerged as an effective means to deliver anticancer drugs into the brain. Among various forms of NPs, liposomal temozolomide (TMZ) is the drug-of-choice for the treatment and management of brain tumours, but its therapeutic benefit is suboptimal. Although many possible reasons may account for the compromised therapeutic efficacy, the inefficient tumour penetration of liposomal TMZ can be a vital obstacle. Recently, the protein corona, i.e., the layer of plasma proteins that surround NPs after exposure to human plasma, has emerged as an endogenous trigger that mostly controls their anticancer efficacy. Exposition of particular biomolecules from the corona referred to as protein corona fingerprints (PCFs) may facilitate interactions with specific receptors of target cells, thus, promoting efficient internalization. In this work, we have synthesized a set of four TMZ-encapsulating nanomedicines made of four cationic liposome (CL) formulations with systematic changes in lipid composition and physical-chemical properties. We have demonstrated that precoating liposomal TMZ with a protein corona made of human plasma proteins can increase drug penetration in a 3D brain cancer model derived from U87 human glioblastoma multiforme cell line leading to marked inhibition of tumour growth. On the other side, by fine-tuning corona composition we have also provided experimental evidence of a non-unique effect of the corona on the tumour growth for all the complexes investigated, thus, clarifying that certain PCFs (i.e., APO-B and APO-E) enable favoured interactions with specific receptors of brain cancer cells. Reported results open new perspectives into the development of corona-coated liposomal drugs with enhanced tumour penetration and antitumour efficacy.
Insights
Protein corona coating enhances liposomal temozolomide (TMZ) penetration in brain tumors. Specific protein corona fingerprints (PCFs) like APO-B and APO-E improve drug delivery and inhibit tumor growth.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Liposomal temozolomide (TMZ) is a primary treatment for brain tumors, but its efficacy is limited by poor tumor penetration.
- The protein corona, formed by plasma proteins on nanoparticles (NPs), influences NP behavior and therapeutic outcomes.
- Specific protein corona fingerprints (PCFs) can mediate cell interactions and enhance NP internalization.
Purpose of the Study:
- To investigate the effect of protein corona precoating on the tumor penetration and efficacy of liposomal TMZ.
- To explore how varying cationic liposome (CL) formulations and their resulting protein coronas impact brain tumor treatment.
- To identify specific PCFs responsible for enhanced drug delivery and anti-cancer activity.
Main Methods:
- Synthesis of four liposomal TMZ formulations with systematic variations in lipid composition.
- Precoating liposomal TMZ with human plasma-derived protein corona.
- Evaluation of drug penetration in a 3D U87 human glioblastoma multiforme cell model.
- Assessment of tumor growth inhibition in response to corona-coated liposomal TMZ.
Main Results:
- Protein corona precoating significantly increased liposomal TMZ penetration in the 3D brain cancer model.
- Corona-coated liposomal TMZ demonstrated marked inhibition of tumor growth.
- Fine-tuning of corona composition revealed a non-unique effect, with specific PCFs (APO-B, APO-E) mediating enhanced interactions with brain cancer cells.
Conclusions:
- Protein corona engineering offers a promising strategy to enhance the therapeutic efficacy of liposomal drugs for brain tumors.
- Targeting specific PCFs can optimize drug delivery and improve anti-cancer outcomes.
- This approach opens new avenues for developing advanced nanomedicines for challenging cancers.
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