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Journal articles on the topic 'Radiation theray'

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1

Kim, Sung-Kyu. "Quality Assurance in Intensity Modulated Radiation Theray." Yeungnam University Journal of Medicine 25, no. 2 (2008): 85. http://dx.doi.org/10.12701/yujm.2008.25.2.85.

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Muñoz-Neira, Milton, Jorge Cruz-Duarte, and Rodrigo Correa. "Calentamiento simultáneo microondas-radiación térmica." Revista UIS Ingenierías 19, no. 2 (2020): 33–41. http://dx.doi.org/10.18273/revuin.v19n2-2020004.

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En este artículo se presentan resultados de la simulación del tratamiento térmico híbrido de materiales, utilizando ondas electromagnéticas en el rango de las microondas y el calor por radiación térmica generado por una resistencia eléctrica. La resistencia se ubicó de tal forma que solo la mitad del sólido (una esfera de dos capas) recibela energía generada por ésta. Además, la resistenciase controló de tal forma que generó energía térmicadeforma uniforme y constante. Igualmente,se definieronmateriales con propiedades termofísicas diferentes en cada capa, pero invariantes tantocon la posición
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3

Chiang, Ren-Tai. "Analysis of Radiation Interactions and Biological Effects for Boron Neutron Capture Therapy." ASEAN Journal on Science and Technology for Development 35, no. 3 (2018): 203–7. http://dx.doi.org/10.29037/ajstd.535.

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The direct and indirect ionizing radiation sources for boron neutron capture therapy (BNCT)are identi?ed. The mechanisms of physical, chemical and biological radiation interactions for BNCT are systematically described and analyzed. The relationship between the effect of biological radiation and radiation dose are illustrated and analyzed for BNCT. If the DNAs in chromosomes are damaged by ion- izing radiations, the instructions that control the cell function and reproduction are also damaged. This radiation damage may be reparable, irreparable, or incorrectly repaired. The irreparable damage
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LI Sujun, 李素钧, 谷牧 GU Mu, 彭翔 PENG Xiang, 赖雪峰 LAI Xuefeng та 周金梅 ZHOU Jinmei. "基于系统热辐射相消的大口径宽动态红外辐射测量研究". Infrared and Laser Engineering 54, № 2 (2025): 20240511. https://doi.org/10.3788/irla20240511.

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5

Mordachev, V. I. "Assessment of the Contribution of Radiations of User Equipment to the Anthropogenic Electromagnetic Background Created by Mobile (Cellular) Communications." Doklady BGUIR 21, no. 5 (2023): 50–58. http://dx.doi.org/10.35596/1729-7648-2023-21-5-50-58.

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The declared increase in spatial density of user (terminal, peripheral, etc.) radiating equipment (UE) of mobile communications up to 0.1 UE/m2 in 4G (LTE) networks, up to 1.0 UE/m2 in 5G (NR) networks and up to 10 UE/m2 in promising 6G networks may cause an unacceptable increase in electromagnetic background and in corresponding forced risks to public health. The paper proposes a method for assessing the contribution of UE radiations to the level of anthropogenic electromagnetic background created by mobile communications. This method is based on the analysis of the electromagnetic loading on
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6

Reddya, U. Umamaheswara, and Panduranganath . "Comparison of Volumetric Modulated ARC Therapy (VMAT) to Conventional Intensity Modulated Radiation Therapy for Carcinoma Cervix." Indian Journal of Cancer Education and Research 5, no. 2 (2017): 113–25. http://dx.doi.org/10.21088/ijcer.2321.9815.5217.10.

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7

Surzhikov, A. P. "PHASE TRANSFORMATIONS IN FERRITES DURING RADIATION-THERMAL SINTERING." Eurasian Physical Technical Journal 17, no. 1 (2020): 26–34. http://dx.doi.org/10.31489/2020no1/26-34.

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8

Meyer, Christian P., Christer Groeben, Phillip Marks, Rainer Koch, and Johannes Huber. "Trends of Metastasis-Directed Treatments in Patients with Renal Cell Carcinoma: A Total Population-Based Analysis in Germany in the Era of Targeted Therapies." Oncology Research and Treatment 43, no. 12 (2020): 679–85. http://dx.doi.org/10.1159/000511753.

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<b><i>Introduction:</i></b> We characterize trends of metastasis-directed treatments in patients with metastatic renal cell carcinoma (mRCC) in Germany in the targeted therapy era. <b><i>Methods:</i></b> We identified all cases with a diagnosis of renal cell carcinoma (ICD-10: C.64) and site-specific codes for secondary malignant neoplasms (C79.x) in combination with procedural codes for resection and radiation from the Institute of Hospital Remuneration and the German Federal Statistical Office (Destatis) between 2006 and 2014. We assessed site-
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9

Cruz, Marli. "Stroke-Like Migraine Attacks After Radiation Therapy (SMART): Um Caso Clínico." Medicina Interna 26, no. 4 (2019): 308–11. http://dx.doi.org/10.24950/rspmi/cc/20/19/4/2019.

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10

Rebeca, Steve. "Metastatic Brain Tumors: Current Therapeutic Options through Surgery and Radiation Therapy." Neuroscience and Neurological Surgery 1, no. 2 (2017): 01–03. http://dx.doi.org/10.31579/2578-8868/055.

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11

Dempsey, Shane E., Naomi Findlay, and Lesley MacDonald-Wicks. "Increasing nutritional support for patients undergoing radiation therapy: the radiation therapist perspective." Journal of Radiotherapy in Practice 10, no. 3 (2010): 181–89. http://dx.doi.org/10.1017/s1460396910000257.

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AbstractPurpose: The aim of this study was to determine radiation therapists’ knowledge on the nutritional management of side effects for patients receiving treatment to the gastrointestinal tract and genitourinary system and to determine the willingness of radiation therapists’ to participate in nutritional training.Method: A cross-sectional survey at a Radiation Oncology Treatment Centre was performed coupled with a semi-structured interview to explore radiation therapists’ knowledge and experiences related to patient nutritional care.Results: Eighty-one percent of participants agreed that t
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12

Malyshev A.V., A. V. "RELATIONSHIP BETWEEN MAGNETIC PROPERTIES AND MICROSTRUCTURE OF FERRITES DURING SINTERING IN RADIATION AND RADIATION-THERMAL CONDITIONS." Eurasian Physical Technical Journal 18, no. 1 (2021): 3–8. http://dx.doi.org/10.31489/2021no1/3-8.

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The studies of correlation between magnetic properties and microstructure were conducted on samples of lithium-substituted ferrite, sintered in radiation and radiation-thermal conditions. Radiation-thermal sintering was performed for compacts irradiated with a pulsed electron beam with energy of (1.5–2.0) MeV, beam current per pulse of (0.5-0.9) A, irradiation pulse duration of 500 μs, pulse repetition rate of (5–50) Hz, and compact heating rate of 1000 C/min. Sintering in thermal furnaces (T-sintering) was carried out in a preheated chamber electric furnace. The paper shows that magnetic ind
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13

OMORUYI, C. I., I. M. OYEM, and A. A. ODAGWE. "IONIZING RADIATIONS AND CANCERS." African Journal of Health, Safety and Environment 4, no. 1 (2023): 132–40. http://dx.doi.org/10.52417/ajhse.v4i1.442.

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Ionizing radiations are types of energies that have sufficient force to remove electrons from atoms, creating ions in the process. They include all electromagnetic waves from ultraviolet light to x-rays and gamma rays as well as alpha to beta particles. Ionizing radiations results in harmful effects on living organisms such as damage of cell structures and DNA due to their ability to ionize atoms and molecules. This paper seeks to review the effects of these radiations and how to be protected in real time. Exposure to high levels of ionizing radiations cause immediate symptoms, such as burns,
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14

Scott, Bobby R., and Jennifer Di Palma. "Sparsely Ionizing Diagnostic and Natural Background Radiations are Likely Preventing Cancer and other Genomic-Instability-Associated Diseases." Dose-Response 5, no. 3 (2007): dose—response.0. http://dx.doi.org/10.2203/dose-response.06-002.scott.

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Routine diagnostic X-rays (e.g., chest X-rays, mammograms, computed tomography scans) and routine diagnostic nuclear medicine procedures using sparsely ionizing radiation forms (e.g., beta and gamma radiations) stimulate the removal of precancerous neoplastically transformed and other genomically unstable cells from the body (medical radiation hormesis). The indicated radiation hormesis arises because radiation doses above an individual-specific stochastic threshold activate a system of cooperative protective processes that include high-fidelity DNA repair/apoptosis (presumed p53 related), an
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15

Castela, A. S., A. M. Simões, G. Davies, and M. G. S. Ferreira. "Weathering of coil-coatings: UV radiation and thermal effects." Revista de Metalurgia 39, Extra (2003): 167–73. http://dx.doi.org/10.3989/revmetalm.2003.v39.iextra.1115.

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16

Zaspa, Yu. "CORPUSCULAR-VORTEX-WAVE SYNTHESIS OF MATTER FROM THERMAL RADIATION." Herald of Khmelnytskyi National University. Technical sciences 285, no. 3 (2020): 142–56. https://doi.org/10.31891/2307-5732-2020-285-3-24.

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The physical mechanisms of corpuscular-vortex-wave synthesis of a matter from thermal radiation in heterogeneous systems: technical, space, pseudo-elementary, biological are established. The method of quasiparticles was used to describe mutually agreed complexes of perturbations of the thermal radiation field and the velocity field of the material medium. The scheme of high-temperature transformation of such complexes into stable and quasi-stable particles of matter, associated with spontaneous violation of the antisymmetry of the system, is given.. The mass spectrum of stable and quasi-stable
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17

Goel, Anshu. "From Manual to AI - Based Tumor Contouring: Advancements in Radiation Therapy Planning." International Journal of Science and Research (IJSR) 12, no. 7 (2023): 697–703. http://dx.doi.org/10.21275/sr23706193113.

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18

Barreda Bolaños, Fernando, Enaida Medrano Palma, Claudia Barreda Velit, Rita Quispe Cordova, and Mercedes del Pilar Bravo Taxa. "Adenocarcinoma gastrico metacrónico luego de linfoma gastrico tratado con quimioterapia mas radioterapia." Horizonte Médico (Lima) 25, no. 1 (2025): e3321. https://doi.org/10.24265/horizmed.2025.v25n1.16.

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19

Ali, Suha Ismail Ahmed, and Éva Lublóy. "Radiation shielding structures : Concepts, behaviour and the role of the heavy weight concrete as a shielding material - Rewiev." Concrete Structures 21 (2020): 24–30. http://dx.doi.org/10.32970/cs.2020.1.4.

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The construction of radiation shielding buildings still developed. Application of ionizing radiations became necessary for different reasons, like electricity generation, industry, medical (therapy treatment), agriculture, and scientific research. Different countries all over the world moving toward energy saving, besides growing the demand for using radiation in several aspects. Nuclear power plants, healthcare buildings, industrial buildings, and aerospace are the main neutrons and gamma shielding buildings. Special design and building materials are required to enhance safety and reduce the
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20

Chiuyo, Julius, Peter Msaki, and Ismail Makundi. "Radiation Dose to the Contralateral Breast and Effectiveness of Superflab in Dose Reduction during Treatment of Breast Cancer by Cobalt-60 External Beam." Tanzania Journal of Science 46, no. 3 (2020): 873–85. http://dx.doi.org/10.4314/tjs.v46i3.26.

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Radiation therapy for breast cancer inevitably results in scattered dose to contralateral breast. Breast tissues being highly sensitive to ionizing radiations, the chance of the contralateral breast developing second cancer after radiation therapy is high. This study investigated dose to contralateral breast and its reduction by superflab during the course of breast cancer radiation therapy. A thorax breast phantom constructed from tissue-equivalent materials and diodes (type IVD2 1137) were used to measure surface doses to the contralateral breast. The mean doses received by the contralateral
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21

Stary, O. "FORMATION OF MAGNETIC PROPERTIES OF FERRITES DURING RADIATION-THERMAL SINTERING." Eurasian Physical Technical Journal 17, no. 2 (2020): 6–10. http://dx.doi.org/10.31489/2020no2/6-10.

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The results of a comparative analysis of the laws governing the formation of ferrite hysteresis loop parameters sintered in thermal and radiation-thermal conditions were shown. The influence of radiation exposure on the interconversion of microstructure defects and their content in ferrites, depending on the duration and temperature of treatment, was established. Also, it was shown that recrystallization grain growth under irradiation conditions is ahead of grain growth during thermal heating. The observed radiation effects were associated with the effect of radiation on the microstructure. Th
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22

Lv Xiangyin, 吕相银, 陈宗胜 Chen Zongsheng, 李志刚 Li Zhigang та 时家明 Shi Jiaming. "环境辐射对热像仪测温的影响". Infrared and Laser Engineering 51, № 3 (2022): 20210159. http://dx.doi.org/10.3788/irla20210159.

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23

RADES, DIRK, LIESA DZIGGEL, THEO VENINGA, AMIRA BAJROVIC, and STEVEN E. SCHILD. "Overall Survival After Whole-Brain Radiation Therapy for Intracerebral Metastases from Testicular Cancer." Anticancer Research 36, no. 9 (2016): 4817–20. http://dx.doi.org/10.21873/anticanres.11042.

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24

Tanaka, Osamu, Masahide Hayashi, Shinya Hayashi, and Iida Takayoshi. "Analiza zastosowania radioterapii w leczeniu nowotworów kobiecych z przerzutami do węzłów chłonnych nadobojczykowych." Current Gynecologic Oncology 14, no. 2 (2016): 85–88. http://dx.doi.org/10.15557/cgo.2016.0009.

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25

Lodhi, Anand. "Functioning of Radiation Therapy During COVID-19 Pandemic in Red Zone COVID Hospital." Indian Journal of Cancer Education and Research 8, no. 1 (2020): 35–38. http://dx.doi.org/10.21088/ijcer.2321.9815.8120.5.

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26

Conda, Ashith, and Pranav Chadha. "Stereotactic Body Radiation Therapy for Early - Stage, Inoperable Non-Small Cell Lung Cancer." International Journal of Science and Research (IJSR) 10, no. 1 (2021): 1187–90. https://doi.org/10.21275/sr21120160058.

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27

Tasaki, Yutaro, Kazuto Ashizawa, Daisuke Nakamura, and Takashi Mizowaki. "Radiation pneumonitis after repeat stereotactic body radiation therapy for early-stage non-small cell lung cancer: A case series of two patients." Journal of Case Reports and Images in Oncology 8, no. 2 (2023): 10–14. http://dx.doi.org/10.5348/100109z10yt2022cs.

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Introduction: Stereotactic body radiation therapy (SBRT) is a well-established treatment option for patients with early-stage non-small cell lung cancer (NSCLC). We retrospectively identified 82 patients with early-stage NSCLC treated with SBRT at our institution between November 2009 and September 2019. Among these patients, two developed local recurrence or new primary lung cancer and lung metastasis or new primary lung cancer, respectively, and were treated with repeat SBRT. We herein report a case series of two patients with radiation pneumonitis after repeat SBRT. Case Series: Case A was
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28

Jingu, K., R. Umezawa, T. Yamamoto, et al. "Radiation Therapy." Nihon Kikan Shokudoka Gakkai Kaiho 72, no. 2 (2021): 84–87. http://dx.doi.org/10.2468/jbes.72.84.

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29

Article, Editorial. "RADIATION THERAPY." Diagnostic radiology and radiotherapy, no. 1 (April 26, 2018): 133–37. http://dx.doi.org/10.22328/2079-5343-2018-9-1-133-137.

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30

Strohl, Roberta Anne. "Radiation Therapy." Nursing Clinics of North America 25, no. 2 (1990): 309–29. http://dx.doi.org/10.1016/s0029-6465(22)02928-0.

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31

Haylock, Pamela J. "Radiation Therapy." American Journal of Nursing 87, no. 11 (1987): 1441. http://dx.doi.org/10.2307/3425900.

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32

Frassica, Deborah A., Sarah Thurman, and James Welsh. "RADIATION THERAPY." Orthopedic Clinics of North America 31, no. 4 (2000): 557–66. http://dx.doi.org/10.1016/s0030-5898(05)70175-9.

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33

Shipley, William U. "Radiation Therapy." Journal of Urology 147, no. 3 Part 2 (1992): 929–30. http://dx.doi.org/10.1016/s0022-5347(17)37425-6.

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34

Charkravarti, A., M. Wang, I. Robins, et al. "Radiation Therapy." Neuro-Oncology 12, Supplement 4 (2010): iv105—iv112. http://dx.doi.org/10.1093/neuonc/noq116.s15.

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35

Behera, M. K., A. Sharma, S. Dutta, et al. "RADIATION THERAPY." Neuro-Oncology 13, suppl 3 (2011): iii127—iii133. http://dx.doi.org/10.1093/neuonc/nor160.

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36

Anwar, M., J. Lupo, A. Molinaro, et al. "RADIATION THERAPY." Neuro-Oncology 15, suppl 3 (2013): iii178—iii188. http://dx.doi.org/10.1093/neuonc/not187.

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37

Jeremic, Branislav. "Radiation therapy." Hematology/Oncology Clinics of North America 18, no. 1 (2004): 1–12. http://dx.doi.org/10.1016/s0889-8588(03)00143-6.

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38

Brooks, Claire. "Radiation Therapy." Physiotherapy 84, no. 8 (1998): 387–95. http://dx.doi.org/10.1016/s0031-9406(05)61467-8.

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39

Neal Mauldin, G. "Radiation Therapy." Veterinary Clinics of North America: Small Animal Practice 26, no. 1 (1996): 17–27. http://dx.doi.org/10.1016/s0195-5616(96)50003-3.

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40

Torpy, Janet M. "Radiation Therapy." JAMA 294, no. 10 (2005): 1296. http://dx.doi.org/10.1001/jama.294.10.1296.

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41

Jin, Jill. "Radiation Therapy." JAMA 310, no. 24 (2013): 2691. http://dx.doi.org/10.1001/jama.2013.282757.

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42

Brady, Luther W. "Radiation Therapy." JAMA: The Journal of the American Medical Association 258, no. 16 (1987): 2285. http://dx.doi.org/10.1001/jama.1987.03400160139043.

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43

Duemer, Joseph. "Radiation Therapy." Chest 150, no. 6 (2016): 1405. http://dx.doi.org/10.1016/j.chest.2016.07.046.

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44

Malyshev, A. V. "CORRECTIONto the article«RELATIONSHIP BETWEEN MAGNETIC PROPERTIES AND MICROSTRUCTURE OF FERRITES DURING SINTERING IN RADIATION AND RADIATION-THERMAL CONDITIONS»." Eurasian Physical Technical Journal 19, no. 42 (2022): 88. http://dx.doi.org/10.31489/2022no4/88.

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TheOriginal Article(https://phtj.buketov.edu.kz/index.php/EPTJ/article/view/78)was published on 2021-03-01Eurasian Physical Technical Journal, 2021, Vol.18, No.1 (35), pp. 3 –8.https://doi.org/10.31489/2021No1/3-8
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45

Liu, Xueni. "Targeted Intraoperative Radiotherapy (TARGIT-IORT) in Breast Cancer Surgery." Highlights in Science, Engineering and Technology 91 (April 15, 2024): 73–79. http://dx.doi.org/10.54097/rg2rnp09.

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According to the WHO, breast cancer (BC) has become the largest increase cancer in the world. The vast majority of cancers require radiotherapy and it is the mainstream treatment modality. Although there are numerous treatments, it still does not have a suitable one because of the side effects of radiotherapy. To reduce the harm to the body, people are attending to find a fewer side-effect one. Nowadays, the intraoperative radiation therapy(IORT)is starting to come into its own. TARGIT-IORT is a type of accelerated partial breast irradiation (APBI). The differences between TARGIT-IORT and trad
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46

Georgakilas, Alexandros G. "Role of DNA Damage and Repair in Detrimental Effects of Ionizing Radiation." Radiation 1, no. 1 (2020): 1–4. http://dx.doi.org/10.3390/radiation1010001.

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Ionizing radiation (IR) is considered a traditional mutagen and genotoxic agent. Exposure to IR affects in all cases biological systems and living organisms from plants to humans mostly in a pernicious way. At low (<0.1 Gy) and low-to-medium doses (0.1–1 Gy), one can find in the literature a variety of findings indicating sometimes a positive-like anti-inflammatory effect or detrimental-like toxicity. In this Special Issue and in general in the current research, we would like to acquire works and more knowledge on the role(s) of DNA damage and its repair induced by ionizing radiations as in
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47

Dutta, Subhajit, Raju R. Wadekar, and Tilottama Roy. "Radioprotective natural products as alternative complements in oncological radiotherapy." Boletin Latinoamericano y del Caribe de Plantas Medicinales y Aromaticas 20, no. 2 (2021): 101–22. http://dx.doi.org/10.37360/blacpma.21.20.2.9.

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Humans when exposed to harmful ionising radiations suffer from various pathophysiological disorders including cancer. Radiotherapy is a treatment where these cancerous cells within a tumor are targeted and killed by means of high energy waves. This therapy is very expensive and involves highly sophisticated instruments. In addition to this, most synthetic radioprotectors including Amifostine have been found to possess toxicity. This led researchers to develop a novel, economically viable, and efficient therapeutic alternative to radiation therapy. The last two decades have observed a major shi
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48

Moningi, Shalini, Elwood P. Armour, Stephanie A. Terezakis, et al. "High-dose-rate intraoperative radiation therapy: the nuts and bolts of starting a program." Journal of Contemporary Brachytherapy 1 (2014): 99–105. http://dx.doi.org/10.5114/jcb.2014.42027.

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49

R Barke, Matthew, Sujata Ojha, Madeline Fitzpatrick, and Boone Goodgame. "Empyema after radiation therapy for cutaneous squamous cell carcinoma in a patient with scleroderma." Journal of Case Reports and Images in Oncology 11, no. 1 (2025): 9–13. https://doi.org/10.5348/100142z10mb2025cr.

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Introduction: Cutaneous squamous cell carcinoma (cSCC) is a non-melanomatous neoplasm of the skin that is more likely to develop in immunosuppressed patients or those with autoimmune diseases. Individuals with connective tissue disorders in particular, such as scleroderma, are particularly at an increased risk of developing cancer due to chronic inflammation, tissue damage, genetic susceptibility, and immunosuppressive therapy. Additionally, treatment of cSCC with surgery and radiation therapy, especially in those with autoimmune connective tissue disorders, presents an increased risk of adver
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50

Blakely, Eleanor A. "The 20th Gray lecture 2019: health and heavy ions." British Journal of Radiology 93, no. 1115 (2020): 20200172. http://dx.doi.org/10.1259/bjr.20200172.

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Objective Particle radiobiology has contributed new understanding of radiation safety and underlying mechanisms of action to radiation oncology for the treatment of cancer, and to planning of radiation protection for space travel. This manuscript will highlight the significance of precise physical and biologically effective dosimetry to this translational research for the benefit of human health. This review provides a brief snapshot of the evolving scientific basis for, and the complex current global status, and remaining challenges of hadron therapy for the treatment of cancer. The need for
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