Low-energy/low-dose unconventional cancer therapeutic approach using a radiosensitizing TMD-based hybrid nanosystem

Two-dimensional (2D) nanomaterials including emerging post-graphene materials such as transition metal dichalcogenides (TMDs) have shown promising potential for different biomedical applications. Owing to their high atomic number elements, large surface area, and strong optical absorption/photothermal conversion, TMD-based platforms have been successfully applied to drug delivery and multimodal therapies. Here, we present an unconventional TMD-based cancer therapeutic approach that achieves nanosystem-mediated radiosensitization in the low-energy/low-dose X-ray irradiation regime, differing from standard radiotherapy which typically uses high-energy (1-10 MeV) X-ray beams. We designed a multicomponent inorganic-organic (hybrid) nanosystem comprising 2D WS 2 nanocrystals functionalized with gold nanoparticles and porphyrin photosensitizers and showed that it enhances low-energy (40 kV) X-ray irradiation mediated killing of human colorectal cancer cells at a dose of 2 Gy delivered in a single treatment. Monte Carlo simulations guided nanosystem optimization and predicted enhanced radiation energy deposition within tumor tissues. Transmission electron microscopy combined with energy-dispersive X-ray spectroscopy confirmed cellular uptake of the nanosystem. Moreover, its excellent biocompatibility and the absence of proinflammatory responses were demonstrated using peripheral blood mononuclear cells from healthy human donors. Finally, radiosensitization efficacy was validated in radioresistant human colorectal adenocarcinoma cells (HT-29), showing significantly increased cancer cell killing versus radiation alone. The observed effect was mechanistically explained in terms of cell cycle arrest, apoptosis, and upregulation of oxidative-stress-related genes. These findings provide proof-of-concept that low-energy, low-dose X-ray irradiation, mediated by a purpose-designed multicomponent hybrid nanosystem, is a feasible cancer cell killing modality.

Authors

Institutions

Publication Details

Journal
Materials Today Advances
Published
2026-09-11
DOI
https://doi.org/10.1016/j.mtadv.2026.100956
Primary Topic
Radiation Therapy and Dosimetry
Type
article
Field-Weighted Citation Impact
0.00

Funders

Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Low-energy/low-dose unconventional cancer therapeutic approach using a radiosensitizing TMD-based hybrid nanosystem

Bengt Fadeel, Mirko Prato, Franca Bigi, Marco Bormetti et al.
Materials Today Advances
Radiation Therapy and Dosimetry
article

Low-energy/low-dose unconventional cancer therapeutic approach using a radiosensitizing TMD-based hybrid nanosystem

Bengt Fadeel, Mirko Prato, Franca Bigi, Marco Bormetti, Melissa Santi, Marco Villani, Francesco Bonaccorso, Francesca Rossi, Gábor Bortel, Silvana Pinelli, Nicola Rivi, Dávid Beke, G. Salviati, Evie L. Papadopoulou, Valentina Sinisi, C. Ferrari, Zdeněk Sofer, Árpád Jakab, Elena Ferrari, Jasreen Kaur, Gloria Cenci, Lavinia Crosio, Filippo Fabbri, Ahmad Bagheri, Bing Jiang
article en

Abstract

Two-dimensional (2D) nanomaterials including emerging post-graphene materials such as transition metal dichalcogenides (TMDs) have shown promising potential for different biomedical applications. Owing to their high atomic number elements, large surface area, and strong optical absorption/photothermal conversion, TMD-based platforms have been successfully applied to drug delivery and multimodal therapies. Here, we present an unconventional TMD-based cancer therapeutic approach that achieves nanosystem-mediated radiosensitization in the low-energy/low-dose X-ray irradiation regime, differing from standard radiotherapy which typically uses high-energy (1-10 MeV) X-ray beams. We designed a multicomponent inorganic-organic (hybrid) nanosystem comprising 2D WS 2 nanocrystals functionalized with gold nanoparticles and porphyrin photosensitizers and showed that it enhances low-energy (40 kV) X-ray irradiation mediated killing of human colorectal cancer cells at a dose of 2 Gy delivered in a single treatment. Monte Carlo simulations guided nanosystem optimization and predicted enhanced radiation energy deposition within tumor tissues. Transmission electron microscopy combined with energy-dispersive X-ray spectroscopy confirmed cellular uptake of the nanosystem. Moreover, its excellent biocompatibility and the absence of proinflammatory responses were demonstrated using peripheral blood mononuclear cells from healthy human donors. Finally, radiosensitization efficacy was validated in radioresistant human colorectal adenocarcinoma cells (HT-29), showing significantly increased cancer cell killing versus radiation alone. The observed effect was mechanistically explained in terms of cell cycle arrest, apoptosis, and upregulation of oxidative-stress-related genes. These findings provide proof-of-concept that low-energy, low-dose X-ray irradiation, mediated by a purpose-designed multicomponent hybrid nanosystem, is a feasible cancer cell killing modality.

Materials Today AdvancesVol. 32
Obuda University (HU), University of Parma (IT), Scuola Normale Superiore (IT), Karolinska Institutet (SE), Italian Institute of Technology (IT), BeDimensional (Italy) (IT), Istituto Nanoscienze (IT), Institute of Materials for Electronics and Magnetism (IT), National Enterprise for NanoScience and NanoTechnology (IT), HUN-REN Wigner Research Centre for Physics (HU), University of Chemistry and Technology, Prague (CZ)
Consiglio Nazionale delle Ricerche, HORIZON EUROPE Framework Programme
Openalex Percentile: Top 12%
Radiation Therapy and Dosimetry
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.