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Published in: Journal of Ovarian Research 1/2018

Open Access 01-12-2018 | Research

Use of a Small Animal Radiation Research Platform (SARRP) facilitates analysis of systemic versus targeted radiation effects in the mouse ovary

Authors: Allison R. Grover, Bruce F. Kimler, Francesca E. Duncan

Published in: Journal of Ovarian Research | Issue 1/2018

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Abstract

Background

Radiation exposure is known to cause accelerated aging and damage to the ovary, but the contribution of indirect versus direct effects is not well understood. We used the Small Animal Radiation Research Platform (SARRP) (Xstrahl) to deliver radiation to precise fields equivalent to clinical practice, allowing us to investigate systemic versus targeted damage in a structure as small as the mouse ovary. The X-ray dose was kept constant at 1 Gy, but the field varied. Mice either received total body irradiation (TBI), radiation targeted to both ovaries (T2), or radiation targeted to one ovary (left) while the contralateral ovary (right) was spared (T1). Sham mice, handled similarly to the other cohorts but not exposed to radiation, served as controls. Two weeks post-exposure, ovaries were harvested and analyzed histologically to identify and count follicles within each ovary.

Results

Radiation significantly reduced primordial follicles in the TBI and T2 cohorts compared to the Sham cohort. There were no significant differences between these two irradiated groups. These findings suggest that at 1 Gy, the extent of damage to the ovary caused by radiation is similar despite the different delivery methods. When investigating the T1 cohort, targeted ovaries showed a significant decrease in primordial and growing follicles compared to non-targeted contralateral ovaries.

Conclusions

These findings demonstrate that the SARRP is an effective strategy for delivering precise ionizing radiation to small organs such as mouse ovaries. Such tools will facilitate identifying the relative risks to ovarian function associated with different radiation fields as well as screening the efficacy of emerging fertoprotective agents.
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Literature
1.
go back to reference ACS. Cancer Facts and Figures 2017. Atlanta: American Cancer Society; 2017. ACS. Cancer Facts and Figures 2017. Atlanta: American Cancer Society; 2017.
2.
go back to reference DeSantis CE, Lin CC, Mariotto AB, Siegel RL, Stein KD, Kramer JL, Alteri R, Robbins AS, Jemal A. Cancer treatment and survivorship statistics, 2014. CA Cancer J Clin. 2014;64:252–71.CrossRefPubMed DeSantis CE, Lin CC, Mariotto AB, Siegel RL, Stein KD, Kramer JL, Alteri R, Robbins AS, Jemal A. Cancer treatment and survivorship statistics, 2014. CA Cancer J Clin. 2014;64:252–71.CrossRefPubMed
3.
go back to reference Siegel R, DeSantis C, Virgo K, Stein K, Mariotto A, Smith T, Cooper D, Gansler T, Lerro C, Fedewa S, et al. Cancer treatment and survivorship statistics, 2012. CA Cancer J Clin. 2012;62:220–41.CrossRefPubMed Siegel R, DeSantis C, Virgo K, Stein K, Mariotto A, Smith T, Cooper D, Gansler T, Lerro C, Fedewa S, et al. Cancer treatment and survivorship statistics, 2012. CA Cancer J Clin. 2012;62:220–41.CrossRefPubMed
5.
go back to reference Larsen EC, Müller J, Schmiegelow K, Rechnitzer C, Andersen AN. Reduced ovarian function in long-term survivors of radiation- and chemotherapy-treated childhood Cancer. J Clin Endocrinol Metab. 2003;88:5307–14.CrossRefPubMed Larsen EC, Müller J, Schmiegelow K, Rechnitzer C, Andersen AN. Reduced ovarian function in long-term survivors of radiation- and chemotherapy-treated childhood Cancer. J Clin Endocrinol Metab. 2003;88:5307–14.CrossRefPubMed
6.
go back to reference Adriaens I, Smitz J, Jacquet P. The current knowledge on radiosensitivity of ovarian follicle development stages. Hum Reprod Update. 2009;15:359–77.CrossRefPubMed Adriaens I, Smitz J, Jacquet P. The current knowledge on radiosensitivity of ovarian follicle development stages. Hum Reprod Update. 2009;15:359–77.CrossRefPubMed
7.
go back to reference Reulen RC, Bright CJ, Winter DL, Fidler MM, Wong K, Guha J, Kelly JS, Frobisher C, Edgar AB, Skinner R, et al. Pregnancy and Labor Complications in Female Survivors of Childhood Cancer: The British Childhood Cancer Survivor Study. J Natl Cancer Inst. 2017;109:djx056.CrossRefPubMedCentral Reulen RC, Bright CJ, Winter DL, Fidler MM, Wong K, Guha J, Kelly JS, Frobisher C, Edgar AB, Skinner R, et al. Pregnancy and Labor Complications in Female Survivors of Childhood Cancer: The British Childhood Cancer Survivor Study. J Natl Cancer Inst. 2017;109:djx056.CrossRefPubMedCentral
8.
go back to reference Bluethmann SM, Mariotto AB, Rowland JH. Anticipating the “silver tsunami”: prevalence trajectories and comorbidity burden among older cancer survivors in the United States. Cancer Epidemiol Biomarkers Prev. 2016;25(7):1029–36.CrossRefPubMedPubMedCentral Bluethmann SM, Mariotto AB, Rowland JH. Anticipating the “silver tsunami”: prevalence trajectories and comorbidity burden among older cancer survivors in the United States. Cancer Epidemiol Biomarkers Prev. 2016;25(7):1029–36.CrossRefPubMedPubMedCentral
9.
go back to reference Meirow D, Biederman H, Anderson RA, Wallace WHB. Toxicity of chemotherapy and radiation on female reproduction. Clin Obstet Gynecol. 2010;53:727–39.CrossRefPubMed Meirow D, Biederman H, Anderson RA, Wallace WHB. Toxicity of chemotherapy and radiation on female reproduction. Clin Obstet Gynecol. 2010;53:727–39.CrossRefPubMed
10.
go back to reference Metzger ML, Meacham LR, Patterson B, Casillas JS, Constine LS, Hijiya N, Kenney LB, Leonard M, Lockart BA, Likes W. Female reproductive health after childhood, adolescent, and young adult cancers: guidelines for the assessment and management of female reproductive complications. J Clin Oncol. 2013;31:1239–47.CrossRefPubMedPubMedCentral Metzger ML, Meacham LR, Patterson B, Casillas JS, Constine LS, Hijiya N, Kenney LB, Leonard M, Lockart BA, Likes W. Female reproductive health after childhood, adolescent, and young adult cancers: guidelines for the assessment and management of female reproductive complications. J Clin Oncol. 2013;31:1239–47.CrossRefPubMedPubMedCentral
12.
go back to reference Bath LE, Critchley HO, Chambers SE, Anderson RA, Kelnar CJ, Wallace WHB. Ovarian and uterine characteristics after total body irradiation in childhood and adolescence: response to sex steroid replacement. BJOG Int J Obstet Gynaecol. 1999;106:1265–72.CrossRef Bath LE, Critchley HO, Chambers SE, Anderson RA, Kelnar CJ, Wallace WHB. Ovarian and uterine characteristics after total body irradiation in childhood and adolescence: response to sex steroid replacement. BJOG Int J Obstet Gynaecol. 1999;106:1265–72.CrossRef
13.
go back to reference Filicori M, Santoro N, Merriam GR, Crowley WR Jr. Characterization of the physiological pattern of episodic gonadotropin secretion throughout the human menstrual cycle. J Clin Endocrinol Metab. 1986;62:1136–44.CrossRefPubMed Filicori M, Santoro N, Merriam GR, Crowley WR Jr. Characterization of the physiological pattern of episodic gonadotropin secretion throughout the human menstrual cycle. J Clin Endocrinol Metab. 1986;62:1136–44.CrossRefPubMed
14.
go back to reference Grigsby PW, Russell A, Bruner D, Eifel P, Koh W-J, Spanos W, Stetz J, Stitt JA, Sullivan J. Late injury of cancer therapy on the female reproductive tract. Int J Radiat Oncol Biol Phys. 1995;31:1281–99.CrossRefPubMed Grigsby PW, Russell A, Bruner D, Eifel P, Koh W-J, Spanos W, Stetz J, Stitt JA, Sullivan J. Late injury of cancer therapy on the female reproductive tract. Int J Radiat Oncol Biol Phys. 1995;31:1281–99.CrossRefPubMed
15.
go back to reference Sologuren I, Rodríguez-Gallego C, Lara PC. Immune effects of high dose radiation treatment: implications of ionizing radiation on the development of bystander and abscopal effects. Transl Cancer Res. 2014;3:18–31. Sologuren I, Rodríguez-Gallego C, Lara PC. Immune effects of high dose radiation treatment: implications of ionizing radiation on the development of bystander and abscopal effects. Transl Cancer Res. 2014;3:18–31.
16.
go back to reference Klammer H, Mladenov E, Li F, Iliakis G. Bystander effects as manifestation of intercellular communication of DNA damage and of the cellular oxidative status. Cancer Lett. 2015;356:58–71.CrossRefPubMed Klammer H, Mladenov E, Li F, Iliakis G. Bystander effects as manifestation of intercellular communication of DNA damage and of the cellular oxidative status. Cancer Lett. 2015;356:58–71.CrossRefPubMed
17.
go back to reference Desouky O, Ding N, Zhou G. Targeted and non-targeted effects of ionizing radiation. J Radiat Res Appl Sci. 2015;8:247–54.CrossRef Desouky O, Ding N, Zhou G. Targeted and non-targeted effects of ionizing radiation. J Radiat Res Appl Sci. 2015;8:247–54.CrossRef
18.
go back to reference Rzeszowska-Wolny J, Przybyszewski WM, Widel M. Ionizing radiation-induced bystander effects, potential targets for modulation of radiotherapy. Eur J Pharmacol. 2009;625:156–64.CrossRefPubMed Rzeszowska-Wolny J, Przybyszewski WM, Widel M. Ionizing radiation-induced bystander effects, potential targets for modulation of radiotherapy. Eur J Pharmacol. 2009;625:156–64.CrossRefPubMed
19.
go back to reference Kadhim M, Salomaa S, Wright E, Hildebrandt G, Belyakov OV, Prise KM, Little MP. Non-targeted effects of ionizing radiation–implications for low dose risk. Mutat Res. 2013;752:84–98.CrossRefPubMedPubMedCentral Kadhim M, Salomaa S, Wright E, Hildebrandt G, Belyakov OV, Prise KM, Little MP. Non-targeted effects of ionizing radiation–implications for low dose risk. Mutat Res. 2013;752:84–98.CrossRefPubMedPubMedCentral
20.
go back to reference Lorimore S, Wright E. Radiation-induced genomic instability and bystander effects: related inflammatory-type responses to radiation-induced stress and injury? A review. Int J Radiat Biol. 2003;79:15–25.CrossRefPubMed Lorimore S, Wright E. Radiation-induced genomic instability and bystander effects: related inflammatory-type responses to radiation-induced stress and injury? A review. Int J Radiat Biol. 2003;79:15–25.CrossRefPubMed
21.
go back to reference Mothersill C, Rusin A, Seymour C. Low doses and non-targeted effects in environmental radiation protection; where are we now and where should we go? Environ Res. 2017;159:484–90.CrossRefPubMed Mothersill C, Rusin A, Seymour C. Low doses and non-targeted effects in environmental radiation protection; where are we now and where should we go? Environ Res. 2017;159:484–90.CrossRefPubMed
22.
go back to reference Rödel F, Frey B, Multhoff G, Gaipl U. Contribution of the immune system to bystander and non-targeted effects of ionizing radiation. Cancer Lett. 2015;356:105–13.CrossRefPubMed Rödel F, Frey B, Multhoff G, Gaipl U. Contribution of the immune system to bystander and non-targeted effects of ionizing radiation. Cancer Lett. 2015;356:105–13.CrossRefPubMed
23.
go back to reference Frey B, Hehlgans S, Rödel F, Gaipl US. Modulation of inflammation by low and high doses of ionizing radiation: implications for benign and malign diseases. Cancer Lett. 2015;368:230–7.CrossRefPubMed Frey B, Hehlgans S, Rödel F, Gaipl US. Modulation of inflammation by low and high doses of ionizing radiation: implications for benign and malign diseases. Cancer Lett. 2015;368:230–7.CrossRefPubMed
24.
go back to reference Wallace WHB, Thomson AB, Saran F, Kelsey TW. Predicting age of ovarian failure after radiation to a field that includes the ovaries. Int J Radiat Oncol Biol Phys. 2005;62:738–44.CrossRefPubMed Wallace WHB, Thomson AB, Saran F, Kelsey TW. Predicting age of ovarian failure after radiation to a field that includes the ovaries. Int J Radiat Oncol Biol Phys. 2005;62:738–44.CrossRefPubMed
27.
go back to reference Winship AL, Stringer JM, Liew SH, Hutt KJ. The importance of DNA repair for maintaining oocyte quality in response to anti-cancer treatments, environmental toxins and maternal ageing. Hum Reprod Update. 2018;24(2):119–34.CrossRef Winship AL, Stringer JM, Liew SH, Hutt KJ. The importance of DNA repair for maintaining oocyte quality in response to anti-cancer treatments, environmental toxins and maternal ageing. Hum Reprod Update. 2018;24(2):119–34.CrossRef
28.
go back to reference Pesty A, Doussau M, Lahaye J-B, Lefèvre B. Whole-body or isolated ovary 60Co irradiation: effects on in vivo and in vitro folliculogenesis and oocyte maturation. Reprod Toxicol. 2010;29:93–8.CrossRefPubMed Pesty A, Doussau M, Lahaye J-B, Lefèvre B. Whole-body or isolated ovary 60Co irradiation: effects on in vivo and in vitro folliculogenesis and oocyte maturation. Reprod Toxicol. 2010;29:93–8.CrossRefPubMed
29.
go back to reference Lee CJ, Park HH, Do BR, Yoon Y-D, Kim JK. Natural and radiation-induced degeneration of primordial and primary follicles in mouse ovary. Anim Reprod Sci. 2000;59:109–17.CrossRefPubMed Lee CJ, Park HH, Do BR, Yoon Y-D, Kim JK. Natural and radiation-induced degeneration of primordial and primary follicles in mouse ovary. Anim Reprod Sci. 2000;59:109–17.CrossRefPubMed
30.
go back to reference Lee CJ, Yoon Y-D. γ-Radiation-induced follicular degeneration in the prepubertal mouse ovary. Mutat Res Fundam Mol Mech Mutagen. 2005;578:247–55.CrossRef Lee CJ, Yoon Y-D. γ-Radiation-induced follicular degeneration in the prepubertal mouse ovary. Mutat Res Fundam Mol Mech Mutagen. 2005;578:247–55.CrossRef
31.
go back to reference Kaufman M, Nikitin AY, Sundberg JP. Histologic basis of mouse endocrine system development: a comparative analysis. CRC Press Taylor & Francis Group;Boca Raton, FL. 2016. Kaufman M, Nikitin AY, Sundberg JP. Histologic basis of mouse endocrine system development: a comparative analysis. CRC Press Taylor & Francis Group;Boca Raton, FL. 2016.
32.
go back to reference Clement PB. Anatomy and histology of the ovary. In: Blaustein’s pathology of the female genital tract: Springer;New York, NY. 1987. p. 438–70. Clement PB. Anatomy and histology of the ovary. In: Blaustein’s pathology of the female genital tract: Springer;New York, NY. 1987. p. 438–70.
33.
go back to reference Treuting PM, Dintzis SM, Liggitt D, Frevert CW. Comparative anatomy and histology: a mouse and human atlas (expert consult): Academic Press;New York, NY. 2011. Treuting PM, Dintzis SM, Liggitt D, Frevert CW. Comparative anatomy and histology: a mouse and human atlas (expert consult): Academic Press;New York, NY. 2011.
34.
go back to reference Bazalova M, Nelson G, Noll JM, Graves EE. Modality comparison for small animal radiotherapy: a simulation study. Med Phys. 2014;41:011710.CrossRefPubMed Bazalova M, Nelson G, Noll JM, Graves EE. Modality comparison for small animal radiotherapy: a simulation study. Med Phys. 2014;41:011710.CrossRefPubMed
35.
go back to reference Brodin NP, Velcich A, Guha C, Tomé WA. A model for precise and uniform pelvic-and limb-sparing abdominal irradiation to study the radiation-induced gastrointestinal syndrome in mice using small animal irradiation systems. Dose-Response. 2017;15:1559325816685798.CrossRefPubMedPubMedCentral Brodin NP, Velcich A, Guha C, Tomé WA. A model for precise and uniform pelvic-and limb-sparing abdominal irradiation to study the radiation-induced gastrointestinal syndrome in mice using small animal irradiation systems. Dose-Response. 2017;15:1559325816685798.CrossRefPubMedPubMedCentral
36.
go back to reference Tillner F, Thute P, Löck S, Dietrich A, Fursov A, Haase R, Lukas M, Rimarzig B, Sobiella M, Krause M. Precise image-guided irradiation of small animals: a flexible non-profit platform. Phys Med Biol. 2016;61:3084.CrossRefPubMed Tillner F, Thute P, Löck S, Dietrich A, Fursov A, Haase R, Lukas M, Rimarzig B, Sobiella M, Krause M. Precise image-guided irradiation of small animals: a flexible non-profit platform. Phys Med Biol. 2016;61:3084.CrossRefPubMed
37.
go back to reference Kimler BF, Briley SM, Johnson BW, Armstrong AG, Jasti S, Duncan FE. Radiation-induced ovarian follicle loss occurs without overt stromal changes. Reproduction. 2018;155:553–62.CrossRefPubMed Kimler BF, Briley SM, Johnson BW, Armstrong AG, Jasti S, Duncan FE. Radiation-induced ovarian follicle loss occurs without overt stromal changes. Reproduction. 2018;155:553–62.CrossRefPubMed
38.
go back to reference Duncan FE, Jasti S, Paulson A, Kelsh JM, Fegley B, Gerton JL. Age-associated dysregulation of protein metabolism in the mammalian oocyte. Aging Cell. 2017;16:1381–93.CrossRefPubMedPubMedCentral Duncan FE, Jasti S, Paulson A, Kelsh JM, Fegley B, Gerton JL. Age-associated dysregulation of protein metabolism in the mammalian oocyte. Aging Cell. 2017;16:1381–93.CrossRefPubMedPubMedCentral
39.
go back to reference Zhang H, Zhang X, Yuan Z, Li X, Li W, Zhou Q, Min F, Xie Y, Liu B, Duan X. Germ cell loss induced by 12C6+ ion irradiation in young female mice. J Radiat Res. 2006;47:131–4.CrossRefPubMed Zhang H, Zhang X, Yuan Z, Li X, Li W, Zhou Q, Min F, Xie Y, Liu B, Duan X. Germ cell loss induced by 12C6+ ion irradiation in young female mice. J Radiat Res. 2006;47:131–4.CrossRefPubMed
40.
go back to reference Zelinski MB, Murphy MK, Lawson MS, Jurisicova A, Pau KF, Toscano NP, Jacob DS, Fanton JK, Casper RF, Dertinger SD. In vivo delivery of FTY720 prevents radiation-induced ovarian failure and infertility in adult female nonhuman primates. Fertil Steril. 2011;95:1440–5.CrossRefPubMedPubMedCentral Zelinski MB, Murphy MK, Lawson MS, Jurisicova A, Pau KF, Toscano NP, Jacob DS, Fanton JK, Casper RF, Dertinger SD. In vivo delivery of FTY720 prevents radiation-induced ovarian failure and infertility in adult female nonhuman primates. Fertil Steril. 2011;95:1440–5.CrossRefPubMedPubMedCentral
41.
go back to reference Nguyen QN, Zerafa N, Liew SH, Morgan FH, Strasser A, Scott CL, Findlay JK, Hickey M, Hutt KJ. Loss of PUMA protects the ovarian reserve during DNA-damaging chemotherapy and preserves fertility. Cell Death Dis. 2018;9:618.CrossRefPubMedPubMedCentral Nguyen QN, Zerafa N, Liew SH, Morgan FH, Strasser A, Scott CL, Findlay JK, Hickey M, Hutt KJ. Loss of PUMA protects the ovarian reserve during DNA-damaging chemotherapy and preserves fertility. Cell Death Dis. 2018;9:618.CrossRefPubMedPubMedCentral
42.
go back to reference Eppig JJ, Wigglesworth K, Pendola FL. The mammalian oocyte orchestrates the rate of ovarian follicular development. Proc Natl Acad Sci U S A. 2002;99:2890–4.CrossRefPubMedPubMedCentral Eppig JJ, Wigglesworth K, Pendola FL. The mammalian oocyte orchestrates the rate of ovarian follicular development. Proc Natl Acad Sci U S A. 2002;99:2890–4.CrossRefPubMedPubMedCentral
43.
go back to reference Wright EG, Coates PJ. Untargeted effects of ionizing radiation: implications for radiation pathology. Mutat Res Fundam Mol Mech Mutagen. 2006;597:119–32.CrossRef Wright EG, Coates PJ. Untargeted effects of ionizing radiation: implications for radiation pathology. Mutat Res Fundam Mol Mech Mutagen. 2006;597:119–32.CrossRef
44.
go back to reference Briley SM, Jasti S, McCracken JM, Hornick JE, Fegley B, Pritchard MT, Duncan FE. Reproductive age-associated fibrosis in the stroma of the mammalian ovary. Reproduction. 2016;152:245–60.CrossRefPubMedPubMedCentral Briley SM, Jasti S, McCracken JM, Hornick JE, Fegley B, Pritchard MT, Duncan FE. Reproductive age-associated fibrosis in the stroma of the mammalian ovary. Reproduction. 2016;152:245–60.CrossRefPubMedPubMedCentral
45.
go back to reference Myers M, Morgan FH, Liew SH, Zerafa N, Gamage TU, Sarraj M, Cook M, Kapic I, Sutherland A, Scott CL. PUMA regulates germ cell loss and primordial follicle endowment in mice. Reproduction. 2014;148:211–9.CrossRefPubMed Myers M, Morgan FH, Liew SH, Zerafa N, Gamage TU, Sarraj M, Cook M, Kapic I, Sutherland A, Scott CL. PUMA regulates germ cell loss and primordial follicle endowment in mice. Reproduction. 2014;148:211–9.CrossRefPubMed
46.
go back to reference Kim S-Y, Kim SK, Lee JR, Woodruff TK. Toward precision medicine for preserving fertility in cancer patients: existing and emerging fertility preservation options for women. J Gynecol Oncol. 2015;27:e22.CrossRefPubMedCentral Kim S-Y, Kim SK, Lee JR, Woodruff TK. Toward precision medicine for preserving fertility in cancer patients: existing and emerging fertility preservation options for women. J Gynecol Oncol. 2015;27:e22.CrossRefPubMedCentral
47.
go back to reference Bolcun-Filas E, Rinaldi VD, White ME, Schimenti JC. Reversal of female infertility by Chk2 ablation reveals the oocyte DNA damage checkpoint pathway. Science. 2014;343:533–6.CrossRefPubMedPubMedCentral Bolcun-Filas E, Rinaldi VD, White ME, Schimenti JC. Reversal of female infertility by Chk2 ablation reveals the oocyte DNA damage checkpoint pathway. Science. 2014;343:533–6.CrossRefPubMedPubMedCentral
Metadata
Title
Use of a Small Animal Radiation Research Platform (SARRP) facilitates analysis of systemic versus targeted radiation effects in the mouse ovary
Authors
Allison R. Grover
Bruce F. Kimler
Francesca E. Duncan
Publication date
01-12-2018
Publisher
BioMed Central
Published in
Journal of Ovarian Research / Issue 1/2018
Electronic ISSN: 1757-2215
DOI
https://doi.org/10.1186/s13048-018-0442-8

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