Literature DB >> 33009295

Acute Radiation-induced Lung Injury in the Non-human Primate: A Review and Comparison of Mortality and Co-morbidities Using Models of Partial-body Irradiation with Marginal Bone Marrow Sparing and Whole Thorax Lung Irradiation.

Thomas J MacVittie1, Ann M Farese1, George A Parker2, Alexander W Bennett3, William E Jackson4.   

Abstract

The nonhuman primate, rhesus macaque, is a relevant animal model that has been used to determine the efficacy of medical countermeasures to mitigate major signs of morbidity and mortality of radiation-induced lung injury. Herein, a literature review of published studies showing the evolution of lethal lung injury characteristic of the delayed effects of acute radiation exposure between the two significantly different exposure protocols, whole thorax lung irradiation and partial-body irradiation with bone marrow sparing in the nonhuman primate, is provided. The selection of published data was made from the open literature. The primary studies conducted at two research sites benefitted from the similarity of major variables; namely, both sites used rhesus macaques of approximate age and body weight and radiation exposure by LINAC-derived 6 MV photons at dose rates of 0.80 Gy min and 1.00 Gy min delivered to the midline tissue via bilateral, anterior/posterior, posterior/anterior geometry. An advantage relative to sex difference resulted from the use of male and female macaques by the Maryland and the Washington sites, respectively. Subject-based medical management was used for all macaques. The primary studies (6) provided adequate data to establish dose response relationships within 180 d for the radiation-induced lung injury consequent to whole thorax lung irradiation (male vs. female) and partial-body irradiation with bone marrow sparing exposure protocols (male). The dose response relationships established by probit analyses vs. linear dose relationships were characterized by two main parameters or dependent variables, a slope and LD50/180. Respective LD50/180 values for the primary studies that used whole thorax lung irradiation for respective male and female nonhuman primates were 10.24 Gy [9.87, 10.52] (n = 76, male) and 10.28 Gy [9.68, 10.92] (n = 40, female) at two different research sites. The respective slopes were steep at 1.73 [0.841, 2.604] and 1.15 [0.65, 1.65] probits per linear dose. The LD50/180 value and slope derived from the dose response relationships for the partial-body irradiation with bone marrow sparing exposure was 9.94 Gy [9.35, 10.29] (n = 87) and 1.21 [0.70, 1.73] probits per linear dose. A secondary study (1) provided data on limited control cohort of nonhuman primates exposed to whole thorax lung irradiation. The data supported the incidence of clinical, radiographic, and histological indices of the dose-dependent lung injury in the nonhuman primates. Tertiary studies (6) provided data derived from collaboration with the noted primary and secondary studies on control cohorts of nonhuman primates exposed to whole thorax lung irradiation and partial-body irradiation with bone marrow sparing exposure. These studies provided a summary of histological evidence of fibrosis, inflammation and reactive/proliferative changes in pneumonocytes characteristic of lung injury and data on biomarkers for radiation-induced lung injury based on matrix-assisted laser desorption ionization-mass spectrometry imaging and gene expression approaches. The available database in young rhesus macaques exposed to whole thorax lung irradiation or partial-body irradiation with bone marrow sparing using 6 MV LINAC-derived radiation with medical management showed that the dose response relationships were equivalent relative to the primary endpoint all-cause mortality. Additionally, the latency, incidence, severity, and progression of the clinical, radiographic, and histological indices of lung injury were comparable. However, the differences between the exposure protocols are remarkable relative to the demonstrated time course between the multiple organ injury of the acute radiation syndrome and that of the delayed effects of acute radiation exposure, respectively.

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Year:  2020        PMID: 33009295      PMCID: PMC9440605          DOI: 10.1097/HP.0000000000001346

Source DB:  PubMed          Journal:  Health Phys        ISSN: 0017-9078            Impact factor:   2.922


  54 in total

1.  Radiation pneumonitis following large single dose irradiation: a re-evaluation based on absolute dose to lung.

Authors:  J Van Dyk; T J Keane; S Kan; W D Rider; C J Fryer
Journal:  Int J Radiat Oncol Biol Phys       Date:  1981-04       Impact factor: 7.038

2.  Mean Organ Doses Resulting From Non-Human Primate Whole Thorax Lung Irradiation Prescribed to Mid-Line Tissue.

Authors:  Charlotte Prado; Abdul Kazi; Alexander Bennett; Thomas MacVittie; Karl Prado
Journal:  Health Phys       Date:  2015-11       Impact factor: 1.316

3.  The Evolving Mcart Multimodal Imaging Core: Establishing a Protocol for Computed Tomography and Echocardiography in the Rhesus Macaque to Perform Longitudinal Analysis of Radiation-Induced Organ Injury.

Authors:  Eduardo B de Faria; Kory R Barrow; Bradley T Ruehle; Jordan T Parker; Elisa Swartz; Cheryl Taylor-Howell; Kaitlyn M Kieta; Cynthia J Lees; Meg M Sleeper; Travis Dobbin; Adam D Baron; Pranshu Mohindra; Thomas J MacVittie
Journal:  Health Phys       Date:  2015-11       Impact factor: 1.316

Review 4.  Managing the adverse effects of radiation therapy.

Authors:  Franklin J Berkey
Journal:  Am Fam Physician       Date:  2010-08-15       Impact factor: 3.292

5.  Radiation Nephropathy in a Nonhuman Primate Model of Partial-body Irradiation with Minimal Bone Marrow Sparing-Part 1: Acute and Chronic Kidney Injury and the Influence of Neupogen.

Authors:  Eric P Cohen; Kim G Hankey; Ann M Farese; George A Parker; Jace W Jones; Maureen A Kane; Alexander Bennett; Thomas J MacVittie
Journal:  Health Phys       Date:  2019-03       Impact factor: 1.316

Review 6.  Pulmonary complications after acute kidney injury.

Authors:  Sarah Faubel
Journal:  Adv Chronic Kidney Dis       Date:  2008-07       Impact factor: 3.620

7.  Lung and Heart Injury in a Nonhuman Primate Model of Partial-body Irradiation with Minimal Bone Marrow Sparing: Histopathological Evidence of Lung and Heart Injury.

Authors:  George A Parker; Na Li; Kyle Takayama; Ann M Farese; Thomas J MacVittie
Journal:  Health Phys       Date:  2019-03       Impact factor: 1.316

8.  A pilot study in rhesus macaques to assess the treatment efficacy of a small molecular weight catalytic metalloporphyrin antioxidant (AEOL 10150) in mitigating radiation-induced lung damage.

Authors:  Michael C Garofalo; Amanda A Ward; Ann M Farese; Alexander Bennett; Cheryl Taylor-Howell; Wanchang Cui; Allison Gibbs; Karl L Prado; Thomas J MacVittie
Journal:  Health Phys       Date:  2014-01       Impact factor: 1.316

9.  The Effect of Radiation Dose and Variation in Neupogen® Initiation Schedule on the Mitigation of Myelosuppression during the Concomitant GI-ARS and H-ARS in a Nonhuman Primate Model of High-dose Exposure with Marrow Sparing.

Authors:  Thomas J MacVittie; Alexander W Bennett; Ann M Farese; Cheryl Taylor-Howell; Cassandra P Smith; Allison M Gibbs; Karl Prado; William Jackson
Journal:  Health Phys       Date:  2015-11       Impact factor: 2.922

10.  Post-Irradiation Treatment with a Superoxide Dismutase Mimic, MnTnHex-2-PyP5+, Mitigates Radiation Injury in the Lungs of Non-Human Primates after Whole-Thorax Exposure to Ionizing Radiation.

Authors:  John Mark Cline; Greg Dugan; John Daniel Bourland; Donna L Perry; Joel D Stitzel; Ashley A Weaver; Chen Jiang; Artak Tovmasyan; Kouros Owzar; Ivan Spasojevic; Ines Batinic-Haberle; Zeljko Vujaskovic
Journal:  Antioxidants (Basel)       Date:  2018-03-07
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  6 in total

1.  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

2.  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

3.  Acute Proteomic Changes in Lung after Radiation: Toward Identifying Initiating Events of Delayed Effects of Acute Radiation Exposure in Non-human Primate after Partial Body Irradiation with Minimal Bone Marrow Sparing.

Authors:  Weiliang Huang; Jianshi Yu; Tian Liu; Amy E Defnet; Stephanie Zalesak-Kravec; Ann M Farese; Thomas J MacVittie; Maureen A Kane
Journal:  Health Phys       Date:  2021-10-01       Impact factor: 2.922

4.  The Natural History of Acute Radiation-induced H-ARS and Concomitant Multi-organ Injury in the Non-human Primate: The MCART Experience.

Authors:  Ann M Farese; Catherine Booth; Greg L Tudor; Wanchang Cui; Eric P Cohen; George A Parker; Kim G Hankey; Thomas J MacVittie
Journal:  Health Phys       Date:  2021-10-01       Impact factor: 2.922

5.  Development of Biomarkers for Radiation Biodosimetry and Medical Countermeasures Research: Current Status, Utility, and Regulatory Pathways.

Authors:  Merriline M Satyamitra; Andrea L DiCarlo; Brynn A Hollingsworth; Thomas A Winters; Lanyn P Taliaferro
Journal:  Radiat Res       Date:  2022-05-01       Impact factor: 3.372

6.  Gene expression changes in male and female rhesus macaque 60 days after irradiation.

Authors:  Matthäus Majewski; Patrick Ostheim; Zoya Gluzman-Poltorak; Vladimir Vainstein; Lena Basile; Simone Schüle; Michael Haimerl; Christian Stroszczynski; Matthias Port; Michael Abend
Journal:  PLoS One       Date:  2021-07-21       Impact factor: 3.240

  6 in total

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