A Review of Boron Neutron Capture Therapy: Its History and Current Challenges

Author:

Jin Will H.1,Seldon Crystal1,Butkus Michael1,Sauerwein Wolfgang2,Giap Huan B.3

Affiliation:

1. 1 Department of Radiation Oncology, Jackson Memorial Hospital/Sylvester Comprehensive Cancer Center, University of Miami Health Systems, Miami, FL, USA

2. 2 Deutsche Gesellschaft für Bor-Neutroneneinfangtherapie (DGBNCT), Universitätsklinikum Essen, Essen, Germany

3. 3 Department of Radiation Oncology, Nancy N. and J. C. Lewis Cancer & Research Pavilion, Savannah, GA, USA

Abstract

Abstract Mechanism of Action External beam, whether with photons or particles, remains as the most common type of radiation therapy. The main drawback is that radiation deposits dose in healthy tissue before reaching its target. Boron neutron capture therapy (BNCT) is based on the nuclear capture and fission reactions that occur when 10B is irradiated with low-energy (0.0025 eV) thermal neutrons. The resulting 10B(n,α)7Li capture reaction produces high linear energy transfer (LET) α particles, helium nuclei (4He), and recoiling lithium-7 (7Li) atoms. The short range (5-9 μm) of the α particles limits the destructive effects within the boron-containing cells. In theory, BNCT can selectively destroy malignant cells while sparing adjacent normal tissue at the cellular levels by delivering a single fraction of radiation with high LET particles. History BNCT has been around for many decades. Early studies were promising for patients with malignant brain tumors, recurrent tumors of the head and neck, and cutaneous melanomas; however, there were certain limitations to its widespread adoption and use. Current Limitations and Prospects Recently, BNCT re-emerged owing to several developments: (1) small footprint accelerator-based neutron sources; (2) high specificity third-generation boron carriers based on monoclonal antibodies, nanoparticles, among others; and (3) treatment planning software and patient positioning devices that optimize treatment delivery and consistency.

Publisher

International Journal of Particle Therapy

Subject

Radiology, Nuclear Medicine and imaging,Atomic and Molecular Physics, and Optics

Reference48 articles.

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3. Farr LE, Sweet WH, Locksley HB, Robertson JS. Neutron capture therapy of gliomas using boron. Trans Am Neurol Assoc. 1954; 13: 110– 3.

4. Farr LE, Sweet WH, Robertson JS, Foster CG, Locksley HB, Sutherland DL, Mendelsohn ML, Stickley EE. Neutron capture therapy with boron in the treatment of glioblastoma multiforme. Am J Roentgenol Radium Ther Nucl Med. 1954; 71: 279– 93.

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