Literature DB >> 16580554

Introduction to clinical radiation biology.

Henning Willers1, Kathryn D Held.   

Abstract

The authors have reviewed some of the most important and established factors that determine the effectiveness of IR in a wide variety of tumor types and normal tissues: the significance of increasing the dose of radiation, the importance of altered fractionation schemes, such as accelerated fractionation or hyperfractionation, and the need to address tumor hypoxia. Therapeutic gain can only be achieved when the increased tumor toxicity produced by these treatment modifications is balanced against injury to early-responding as well as late-responding normal tissues. In the not too distant future, therapeutic gain may be maximized by individualized therapies that are based on phenotypic and genotypic profiling of tumors and patients. For example, predicting which tumors respond to IR with accelerated tumor cell repopulation will allow us to apply more intense accelerated treatment regimens, while subjecting patients with slowly proliferating tumors to less toxic therapies. Similarly, the combination of radiation therapy with molecularly targeted pharmacologic agents will be a highly individualized treatment approach. However, to some degree, radiation therapy will always have to remain unselective and indiscriminant to inactivate the last surviving dormant and probably drug-resistant tumor clonogen. Although the field of radiation biology is rapidly evolving as a result of advances in molecular biology and genetics and the availability of new technologies, a thorough understanding of the established factors that determine radiation responses will remain an important prerequisite for the successful application of multimodal cancer therapies and molecularly targeted approaches in the future.

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Year:  2006        PMID: 16580554     DOI: 10.1016/j.hoc.2006.01.007

Source DB:  PubMed          Journal:  Hematol Oncol Clin North Am        ISSN: 0889-8588            Impact factor:   3.722


  15 in total

1.  Adapting a drug screening platform to discover associations of molecular targeted radiosensitizers with genomic biomarkers.

Authors:  Qi Liu; Meng Wang; Ashley M Kern; Saman Khaled; Jing Han; Beow Y Yeap; Theodore S Hong; Jeff Settleman; Cyril H Benes; Kathryn D Held; Jason A Efstathiou; Henning Willers
Journal:  Mol Cancer Res       Date:  2015-02-09       Impact factor: 5.852

Review 2.  Integration of Stereotactic Body Radiation Therapy With Tyrosine Kinase Inhibitors in Stage IV Oncogene-Driven Lung Cancer.

Authors:  Meghan Campo; Hani Al-Halabi; Melin Khandekar; Alice T Shaw; Lecia V Sequist; Henning Willers
Journal:  Oncologist       Date:  2016-06-27

3.  The Future of Radiobiology.

Authors:  David G Kirsch; Max Diehn; Aparna H Kesarwala; Amit Maity; Meredith A Morgan; Julie K Schwarz; Robert Bristow; Sandra Demaria; Iris Eke; Robert J Griffin; Daphne Haas-Kogan; Geoff S Higgins; Alec C Kimmelman; Randall J Kimple; Isabelle M Lombaert; Li Ma; Brian Marples; Frank Pajonk; Catherine C Park; Dörthe Schaue; Phuoc T Tran; Eric J Bernhard
Journal:  J Natl Cancer Inst       Date:  2018-04-01       Impact factor: 13.506

Review 4.  Radiation-Induced Cardiovascular Toxicity: Mechanisms, Prevention, and Treatment.

Authors:  Johan Spetz; Javid Moslehi; Kristopher Sarosiek
Journal:  Curr Treat Options Cardiovasc Med       Date:  2018-03-20

Review 5.  MicroRNAs in the ionizing radiation response and in radiotherapy.

Authors:  Chanatip Metheetrairut; Frank J Slack
Journal:  Curr Opin Genet Dev       Date:  2013-02-28       Impact factor: 5.578

6.  Torin2 Suppresses Ionizing Radiation-Induced DNA Damage Repair.

Authors:  Durga Udayakumar; Raj K Pandita; Nobuo Horikoshi; Yan Liu; Qingsong Liu; Kwok-Kin Wong; Clayton R Hunt; Nathanael S Gray; John D Minna; Tej K Pandita; Kenneth D Westover
Journal:  Radiat Res       Date:  2016-05-02       Impact factor: 2.841

Review 7.  Basic mechanisms of therapeutic resistance to radiation and chemotherapy in lung cancer.

Authors:  Henning Willers; Christopher G Azzoli; Wil L Santivasi; Fen Xia
Journal:  Cancer J       Date:  2013 May-Jun       Impact factor: 3.360

Review 8.  Immunological Mechanisms Responsible for Radiation-Induced Abscopal Effect.

Authors:  María E Rodríguez-Ruiz; Claire Vanpouille-Box; Ignacio Melero; Silvia Chiara Formenti; Sandra Demaria
Journal:  Trends Immunol       Date:  2018-07-11       Impact factor: 16.687

Review 9.  Radiation-induced brain tumours after central nervous system irradiation in childhood: a review.

Authors:  Benedetta Ludovica Pettorini; Young-Soo Park; Massimo Caldarelli; Luca Massimi; Gianpiero Tamburrini; Concezio Di Rocco
Journal:  Childs Nerv Syst       Date:  2008-04-08       Impact factor: 1.475

10.  EGFR-mediated chromatin condensation protects KRAS-mutant cancer cells against ionizing radiation.

Authors:  Meng Wang; Ashley M Kern; Marieke Hülskötter; Patricia Greninger; Anurag Singh; Yunfeng Pan; Dipanjan Chowdhury; Mechthild Krause; Michael Baumann; Cyril H Benes; Jason A Efstathiou; Jeff Settleman; Henning Willers
Journal:  Cancer Res       Date:  2014-03-19       Impact factor: 12.701

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