Literature DB >> 27479087

A survey of changing trends in modelling radiation lung injury in mice: bringing out the good, the bad, and the uncertain.

Mohamad B Dabjan1, Carolyn Ms Buck2, Isabel L Jackson2, Zeljko Vujaskovic2, Brian Marples1, Julian D Down3.   

Abstract

Within this millennium there has been resurgence in funding and research dealing with animal models of radiation-induced lung injury to identify and establish predictive biomarkers and effective mitigating agents that are applicable to humans. Most have been performed on mice but there needs to be assurance that the emphasis on such models is not misplaced. We therefore considered it timely to perform a comprehensive appraisal of the literature dealing with radiation lung injury of mice and to critically evaluate the validity and clinical relevance of the research. A total of 357 research papers covering the period of 1970-2015 were extensively reviewed. Whole thorax irradiation (WTI) has become the most common treatment for studying lung injury in mice and distinct trends were seen with regard to the murine strain, radiation dose, intended pathology investigated, length of study, and assays. Recently, the C57BL/6 strain has been increasingly used in the majority of these studies with the notion that they are susceptible to pulmonary fibrosis. Nonetheless, many of these investigations depend on animal survival as the primary end point and neglect the importance of radiation pneumonitis and the anomaly of lethal pleural effusions. A relatively large variation in survival times of C5BL/6 mice is also seen among different institutions pointing to the need for standardization of radiation treatments and environmental conditions. An analysis of mitigating drug treatments is complicated by the fact that the majority of studies are limited to the C57BL/6 strain with a premature termination of the experiments and do not establish whether the treatment actually prevents or simply delays the progression of radiation injury. This survey of the literature has pointed to several improvements that need to be considered in establishing a reliable preclinical murine model of radiation lung injury. The lethality end point should also be used cautiously and with greater emphasis on other assays such as non-invasive lung functional and imaging monitoring in order to quantify specific pulmonary injury that can be better extrapolated to radiation toxicity encountered in our own species.

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Year:  2016        PMID: 27479087     DOI: 10.1038/labinvest.2016.76

Source DB:  PubMed          Journal:  Lab Invest        ISSN: 0023-6837            Impact factor:   5.662


  133 in total

Review 1.  Preventing or reducing late side effects of radiation therapy: radiobiology meets molecular pathology.

Authors:  Søren M Bentzen
Journal:  Nat Rev Cancer       Date:  2006-09       Impact factor: 60.716

2.  The nature and relevance of late lung pathology following localised irradiation of the thorax in mice and rats.

Authors:  J D Down
Journal:  Br J Cancer Suppl       Date:  1986

3.  The radioprotective effect of N-acetylcysteine in thorax irradiation of mice.

Authors:  L E Blank; J Haveman; N van Zandwijk
Journal:  Radiother Oncol       Date:  1987-09       Impact factor: 6.280

4.  Delayed mortality after mid-lethal exposures to wholebody irradiation and its modification by treatment with syngeneic lymph-node or bone-marrow cells.

Authors:  D W Barnes; G T Bungay; R H Mole
Journal:  Int J Radiat Biol Relat Stud Phys Chem Med       Date:  1966

Review 5.  Pulmonary effects of radiation therapy.

Authors:  N J Gross
Journal:  Ann Intern Med       Date:  1977-01       Impact factor: 25.391

6.  The influence of butylated hydroxytoluene-induced cell proliferation on mouse lung damage after x rays or fission neutrons.

Authors:  R L Ullrich; K R Meyer
Journal:  Radiat Res       Date:  1982-02       Impact factor: 2.841

7.  Regional differences in lung radiosensitivity after radiotherapy for non-small-cell lung cancer.

Authors:  Yvette Seppenwoolde; Katrien De Jaeger; Liesbeth J Boersma; José S A Belderbos; Joos V Lebesque
Journal:  Int J Radiat Oncol Biol Phys       Date:  2004-11-01       Impact factor: 7.038

8.  Lung function after bone marrow grafting.

Authors:  M H Depledge; A Barrett; R L Powles
Journal:  Int J Radiat Oncol Biol Phys       Date:  1983-02       Impact factor: 7.038

9.  Practical advice on calculating confidence intervals for radioprotection effects and reducing animal numbers in radiation countermeasure experiments.

Authors:  Reid D Landes; Shelly Y Lensing; Ralph L Kodell; Martin Hauer-Jensen
Journal:  Radiat Res       Date:  2013-10-28       Impact factor: 2.841

10.  Genomic and genome-wide association of susceptibility to radiation-induced fibrotic lung disease in mice.

Authors:  Alexandra Paun; Christina K Haston
Journal:  Radiother Oncol       Date:  2012-09-04       Impact factor: 6.280

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  14 in total

1.  Immediate Release of Gastrin-Releasing Peptide Mediates Delayed Radiation-Induced Pulmonary Fibrosis.

Authors:  Robert M Tighe; Karissa Heck; Erik Soderblom; Shutang Zhou; Anastasiya Birukova; Kenneth Young; Douglas Rouse; Jessica Vidas; Miglena K Komforti; Christopher B Toomey; Frank Cuttitta; Mary E Sunday
Journal:  Am J Pathol       Date:  2019-03-18       Impact factor: 4.307

2.  Blockade of Aquaporin 4 Inhibits Irradiation-Induced Pulmonary Inflammation and Modulates Macrophage Polarization in Mice.

Authors:  Yuhui Li; Hongda Lu; Xiaojuan Lv; Qiu Tang; Wangxia Li; Hongfei Zhu; Yuan Long
Journal:  Inflammation       Date:  2018-12       Impact factor: 4.092

3.  Radiation Mitigating Properties of Intranasally Administered KL4 Surfactant in a Murine Model of Radiation-Induced Lung Damage.

Authors:  Melpo Christofidou-Solomidou; Ralph A Pietrofesa; Evguenia Arguiri; Constantinos Koumenis; Robert Segal
Journal:  Radiat Res       Date:  2017-09-06       Impact factor: 2.841

4.  A Trans-Agency Workshop on the Pathophysiology of Radiation-Induced Lung Injury.

Authors:  Merriline M Satyamitra; David R Cassatt; Libero Marzella
Journal:  Radiat Res       Date:  2022-04-01       Impact factor: 2.841

5.  Rat Models of Partial-body Irradiation with Bone Marrow-sparing (Leg-out PBI) Designed for FDA Approval of Countermeasures for Mitigation of Acute and Delayed Injuries by Radiation.

Authors:  Brian L Fish; Thomas J MacVittie; Feng Gao; Jayashree Narayanan; Tracy Gasperetti; Dana Scholler; Yuri Sheinin; Heather A Himburg; Barry Hart; Meetha Medhora
Journal:  Health Phys       Date:  2021-10-01       Impact factor: 2.922

Review 6.  Modeling radiation-induced lung injury: lessons learned from whole thorax irradiation.

Authors:  Tyler A Beach; Angela M Groves; Jacqueline P Williams; Jacob N Finkelstein
Journal:  Int J Radiat Biol       Date:  2018-10-25       Impact factor: 2.694

7.  BIO 300, a nanosuspension of genistein, mitigates pneumonitis/fibrosis following high-dose radiation exposure in the C57L/J murine model.

Authors:  Isabel L Jackson; Andrew Zodda; Ganga Gurung; Radmila Pavlovic; Michael D Kaytor; Michael A Kuskowski; Zeljko Vujaskovic
Journal:  Br J Pharmacol       Date:  2017-11-03       Impact factor: 8.739

Review 8.  All for one, though not one for all: team players in normal tissue radiobiology.

Authors:  Marjan Boerma; Catherine M Davis; Isabel L Jackson; Dörthe Schaue; Jacqueline P Williams
Journal:  Int J Radiat Biol       Date:  2021-07-01       Impact factor: 2.694

Review 9.  Modeling DNA damage-induced pneumopathy in mice: insight from danger signaling cascades.

Authors:  Florian Wirsdörfer; Verena Jendrossek
Journal:  Radiat Oncol       Date:  2017-08-24       Impact factor: 3.481

10.  Ilomastat, a synthetic inhibitor of MMPs, prevents lung injury induced by γ-ray irradiation in mice.

Authors:  Xiaoman Li; Dehui Ma; Xiaodan Zha; Dongqin Quan; Dong Pan; Manji Sun; Burong Hu; Baoquan Zhao
Journal:  Oncotarget       Date:  2017-06-15
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