Literature DB >> 23503754

Cell survival and radiosensitisation: modulation of the linear and quadratic parameters of the LQ model (Review).

Nicolaas A P Franken1, Arlene L Oei, H Petra Kok, Hans M Rodermond, Peter Sminia, Johannes Crezee, Lukas J A Stalpers, Gerrit W Barendsen.   

Abstract

The linear-quadratic model (LQ model) provides a biologically plausible and experimentally established method to quantitatively describe the dose-response to irradiation in terms of clonogenic survival. In the basic LQ formula, the clonogenic surviving fraction Sd/S₀ following a radiation dose d (Gy) is described by an inverse exponential approximation: Sd/S₀ = e-(αd+βd²), wherein α and β are experimentally derived parameters for the linear and quadratic terms, respectively. Radiation is often combined with other agents to achieve radiosensitisation. In this study, we reviewed radiation enhancement ratios of hyperthermia (HT), halogenated pyrimidines (HPs), various cytostatic drugs and poly(ADP-ribose) polymerase‑1 (PARP1) inhibitors expressed in the parameters α and β derived from cell survival curves of various mammalian cell cultures. A significant change in the α/β ratio is of direct clinical interest for the selection of optimal fractionation schedules in radiation oncology, influencing the dose per fraction, dose fractionation and dose rate in combined treatments. The α/β ratio may increase by a mutually independent increase of α or decrease of β. The results demonstrated that the different agents increased the values of both α and β. However, depending on culture conditions, both parameters can also be separately influenced. Moreover, it appeared that radiosensitisation was more effective in radioresistant cell lines than in radiosensitive cell lines. Furthermore, radiosensitisation is also dependent on the cell cycle stage, such as the plateau or exponentially growing phase, as well as on post-treatment plating conditions. The LQ model provides a useful tool in the quantification of the effects of radiosensitising agents. These insights will help optimize fractionation schedules in multimodality treatments.

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Year:  2013        PMID: 23503754     DOI: 10.3892/ijo.2013.1857

Source DB:  PubMed          Journal:  Int J Oncol        ISSN: 1019-6439            Impact factor:   5.650


  30 in total

1.  Analysis of Radiomodulatory Effect of Low-Level Laser Irradiation by Clonogenic Survival Assay.

Authors:  Gholamreza Esmaeeli Djavid; Bahram Goliaie; Alireza Nikoofar
Journal:  Photomed Laser Surg       Date:  2015-09       Impact factor: 2.796

2.  Photobiomodulation by a new optical fiber device: analysis of the in vitro impact on proliferation/migration of keratinocytes and squamous cell carcinomas cells stressed by X-rays.

Authors:  Elodie Courtois; Jean-Baptiste Guy; Fabrice Axisa; Pierre Saint-Girons; Laure Alston; Narimène Houmera; René-Jean Bensadoun; Anne Visbecq; Claire Rodriguez-Lafrasse; Nicolas Magné
Journal:  Lasers Med Sci       Date:  2020-11-09       Impact factor: 3.161

3.  Characterization of in vitro radiosensitization in mammalian cells using biomathematical modelling: implications for hypofractionated radiotherapy with a combined modality approach.

Authors:  Yuji Seo; Keisuke Tamari; Yasuo Yoshioka; Fumiaki Isohashi; Osamu Suzuki; Kazuhiko Hayashi; Yutaka Takahashi; SungJae Baek; Keisuke Otani; Kazuhiko Ogawa
Journal:  Br J Radiol       Date:  2016-03-15       Impact factor: 3.039

4.  The major DNA repair pathway after both proton and carbon-ion radiation is NHEJ, but the HR pathway is more relevant in carbon ions.

Authors:  Ariungerel Gerelchuluun; Eri Manabe; Takaaki Ishikawa; Lue Sun; Kazuya Itoh; Takeji Sakae; Kenshi Suzuki; Ryoichi Hirayama; Aroumougame Asaithamby; David J Chen; Koji Tsuboi
Journal:  Radiat Res       Date:  2015-03-04       Impact factor: 2.841

5.  Inhibiting DNA-PKCS radiosensitizes human osteosarcoma cells.

Authors:  Tewodros Mamo; Ann C Mladek; Kris L Shogren; Carl Gustafson; Shiv K Gupta; Scott M Riester; Avudaiappan Maran; Mario Galindo; Andre J van Wijnen; Jann N Sarkaria; Michael J Yaszemski
Journal:  Biochem Biophys Res Commun       Date:  2017-03-12       Impact factor: 3.575

6.  Colony-Forming Ability and Residual Foci of DNA Repair Proteins in Human Lung Fibroblasts Irradiated with Subpicosecond Beams of Accelerated Electrons.

Authors:  N S Babayan; D V Guryev; N Yu Vorobyeva; B A Grigoryan; G L Tadevosyan; L S Apresyan; A K Chigasova; E I Yashkina; S M Rodneva; A A Tsishnatti; Yu A Fedotov; N K Sarkisyan; A T Manukyan; R M Aroutiounian; A N Osipov
Journal:  Bull Exp Biol Med       Date:  2021-11-18       Impact factor: 0.804

7.  The RelB-BLNK Axis Determines Cellular Response to a Novel Redox-Active Agent Betamethasone during Radiation Therapy in Prostate Cancer.

Authors:  Luksana Chaiswing; Fangfang Xu; Yanming Zhao; Jon Thorson; Chi Wang; Daheng He; Jinpeng Lu; Sally R Ellingson; Weixiong Zhong; Kristy Meyer; Wei Luo; William St Clair; Daret St Clair
Journal:  Int J Mol Sci       Date:  2022-06-08       Impact factor: 6.208

8.  Terbium-Based AGuIX-Design Nanoparticle to Mediate X-ray-Induced Photodynamic Therapy.

Authors:  Joël Daouk; Mathilde Iltis; Batoul Dhaini; Denise Béchet; Philippe Arnoux; Paul Rocchi; Alain Delconte; Benoît Habermeyer; François Lux; Céline Frochot; Olivier Tillement; Muriel Barberi-Heyob; Hervé Schohn
Journal:  Pharmaceuticals (Basel)       Date:  2021-04-22

9.  Mathematical model for the thermal enhancement of radiation response: thermodynamic approach.

Authors:  Adriana M De Mendoza; Soňa Michlíková; Johann Berger; Jens Karschau; Leoni A Kunz-Schughart; Damian D McLeod
Journal:  Sci Rep       Date:  2021-03-09       Impact factor: 4.379

10.  Using state variables to model the response of tumour cells to radiation and heat: a novel multi-hit-repair approach.

Authors:  Stephan Scheidegger; Hans U Fuchs; Kathrin Zaugg; Stephan Bodis; Rudolf M Füchslin
Journal:  Comput Math Methods Med       Date:  2013-12-16       Impact factor: 2.238

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