Results 171 to 180 of about 3,469,794 (238)

Nanomaterial‐Mediated Radiotherapy–Immunotherapy Combinations: Breaking Immunosuppression and Revolutionizing Cancer Treatment

open access: yesMedComm – Biomaterials and Applications, Volume 5, Issue 3, September 2026.
Nanomaterials integrate radiotherapy and immunotherapy by enhancing radiosensitivity, remodeling the immunosuppressive tumor microenvironment, and promoting systemic antitumor immunity. This review summarizes the latest strategies of nanomaterial‐mediated combinations (RT, immunotherapy, IRT) and highlights future directions for overcoming clinical ...
Peijie Li, Xiangqin Wang, Sisi He, Hu Ma
wiley   +1 more source

Prognostic significance of the neutrophil-to-lymphocyte ratio in esophageal squamous cell carcinoma treated with proton beam therapy. [PDF]

open access: yesRadiat Oncol J
Makita K   +15 more
europepmc   +1 more source

Abscopal Effect in Radiation Therapy: The Immune Mechanisms and Clinical Advances

open access: yesMedComm, Volume 7, Issue 9, September 2026.
The schematic outlines the key events of the abscopal effect. (Ignition) Local radiotherapy (RT) induces the release of immunogenic signals from the tumor, leading to dendritic cell (DC) activation. (Orchestration) In the tumor‐draining lymph node (TDLN), DCs prime naive T cells into cytotoxic T lymphocytes (CTLs), a process modulated by regulatory T ...
Yihong Dong   +5 more
wiley   +1 more source

Case Report: Proton beam therapy - friend or foe for patients with <i>IDH</i>-mutated WHO grade 2 and 3 gliomas? [PDF]

open access: yesFront Oncol
Heggebø LC   +13 more
europepmc   +1 more source

Quantification of 10B and 11B in Biological Samples in Translational Science and Clinical Applications for Boron Neutron Capture Therapy (BNCT)

open access: yesMedicinal Research Reviews, Volume 46, Issue 5, Page 1362-1389, September 2026.
ABSTRACT Boron neutron capture therapy (BNCT) is a targeted radiotherapy that exploits the selective accumulation of the 10B isotope within tumors, followed by irradiation with low‐energy neutrons to induce high linear energy transfer particles with short path lengths, resulting in localized tumor cell destruction while sparing surrounding healthy ...
Christoph Selg   +2 more
wiley   +1 more source

Correction: Range quality assurance measurements for clinical and FLASH proton beam therapy using the quality assurance range calorimeter. [PDF]

open access: yesFront Oncol
Shaikh S   +8 more
europepmc   +1 more source

Megavoltage photon minibeam production through the embedded multi‐leaf collimator of a clinical linac: A dosimetric characterization

open access: yesMedical Physics, Volume 53, Issue 9, September 2026.
Abstract Background Although spatially‐fractionated radiation therapy (SFRT) has been receiving increasing clinical interest, its complete and optimized clinical transfer requires several technological and radiobiological issues to be addressed. Purpose The aim of this work is to setup and dosimetrically characterize an experimental platform generating
Stefania Linsalata   +5 more
wiley   +1 more source

Proton beam therapy indications in the Kingdom of Saudi Arabia: A SARO clinical practice guideline. [PDF]

open access: yesSaudi Med J
Aljabab SA   +9 more
europepmc   +1 more source

Impact of millimeter‐scale target motion on the precision of spatially fractionated radiation therapy using proton minibeams

open access: yesMedical Physics, Volume 53, Issue 9, September 2026.
Abstract Background While pencil beam scanning (PBS) with motion mitigation such as re‐scanning, breath hold, or gating is well established for treating moving targets in clinical practice, the precision for Spatially Fractionated Radiation Therapy (SFRT) using proton minibeams introduces presents a unique challenge.
Oxana Actis   +7 more
wiley   +1 more source

Home - About - Disclaimer - Privacy