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호흡주기에 따른 방사선입체조형치료법의 개발.

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dc.contributor.author서창옥-
dc.contributor.author이창걸-
dc.date.accessioned2016-05-16T11:18:51Z-
dc.date.available2016-05-16T11:18:51Z-
dc.date.issued2002-
dc.identifier.issn1229-8719-
dc.identifier.urihttps://ir.ymlib.yonsei.ac.kr/handle/22282913/144274-
dc.description.abstractPurpose : 3D conformal radiotherapy, the optimum dose delivered to the tumor and provided the risk of normal tissue unless marginal miss, was restricted by organ motion. For tumors in the thorax and abdomen, the planning target volume (PTV) is decided including the margin for movement of tumor volumes during treatment due to patients breathing. We designed the respiratory gating radiotherapy device (RGRD) for using during CT simulation, dose planning and beam delivery at identical breathing period conditions. Using RGRD, reducing the treatment margin for organ (thorax or abdomen) motion due to breathing and improve dose distribution for 3D conformal radiotherapy. Materials and Methods : The internal organ motion data for lung cancer patients were obtained by examining the diaphragm in the supine position to find the position dependency. We made a respiratory gating radiotherapy device (RGRD) that is composed of a strip band, drug sensor, micro switch, and a connected on-off switch in a LINAC control box. During same breathing period by RGRD, spiral CT scan, virtual simulation, and 3D dose planing for lung cancer patients were peformed, without an extended PTV margin for free breathing, and then the dose was delivered at the same positions. We calculated effective volumes and normal tissue complication probabilities (NTCP) using dose volume histograms for normal lung, and analyzed changes in doses associated with selected NTCP levels and tumor control probabilities (TCP) at these new dose levels. The effects of 3D conformal radiotherapy by RGRD were evaluated with DVH (Dose Volume Histogram), TCP, NTCP and dose statistics. Results : The average movement of a diaphragm was 1.5 cm in the supine position when patients breathed freely. Depending on the location of the tumor, the magnitude of the PTV margin needs to be extended from 1 cm to 3 cm, which can greatly increase normal tissue irradiation, and hence, results in increase of the normal tissue complications probabiliy. Simple and precise RGRD is very easy to setup on patients and is sensitive to length variation (+2 mm), it also delivers on-off information to patients and the LINAC machine. We evaluated the treatment plans of patients who had received conformal partial organ lung irradiation for the treatment of thorax malignancies. Using RGRD, the PTV margin by free breathing can be reduced about 2 cm for moving organs by breathing. TCP values are almost the same values $(4\~5\%\;increased)$ for lung cancer regardless of increasing the PTV margin to 2.0 cm but NTCP values are rapidly increased $(50\~70\%\;increased)$ for upon extending PTV margins by 2.0 cm. Conclusion : Internal organ motion due to breathing can be reduced effectively using our simple RGRD. This method can be used in clinical treatments to reduce organ motion induced margin, thereby reducing normal tissue irradiation. Using treatment planning software, the dose to normal tissues was analyzed by comparing dose statistics with and without RGRD. Potential benefits of radiotherapy derived from reduction or elimination of planning target volume (PTV) margins associated with patient breathing through the evaluation of the lung cancer patients treated with 3D conformal radiotherapy.-
dc.description.statementOfResponsibilityopen-
dc.format.extent41~52-
dc.languageKorean-
dc.publisher대한방사선종양학회-
dc.relation.isPartOfJournal of the Korean Society for Therapeutic Radiology and Oncology-
dc.rightsCC BY-NC-ND 2.0 KR-
dc.rights.urihttps://creativecommons.org/licenses/by-nc-nd/2.0/kr/-
dc.title호흡주기에 따른 방사선입체조형치료법의 개발.-
dc.title.alternativeDevelopment of Conformal Radiotherapy with Respiratory Gate Device-
dc.typeArticle-
dc.contributor.collegeCollege of Medicine (의과대학)-
dc.contributor.departmentDept. of Radiation Oncology (방사선종양학)-
dc.contributor.googleauthor추성실-
dc.contributor.googleauthor조광환-
dc.contributor.googleauthor이창걸-
dc.contributor.googleauthor서창옥-
dc.admin.authorfalse-
dc.admin.mappingfalse-
dc.contributor.localIdA01919-
dc.contributor.localIdA03240-
dc.relation.journalcodeJ01857-
dc.subject.keyword호흡동기방사선치료기구-
dc.subject.keyword종양억제확률-
dc.subject.keyword건강조직손상확률-
dc.subject.keyword선량체적표-
dc.subject.keyword방사선입체조형치료-
dc.subject.keyword호흡동기 방사선입체조형치료-
dc.contributor.alternativeNameSuh, Chang Ok-
dc.contributor.alternativeNameLee, Chang Geol-
dc.contributor.affiliatedAuthorSuh, Chang Ok-
dc.contributor.affiliatedAuthorLee, Chang Geol-
dc.rights.accessRightsfree-
dc.citation.volume20-
dc.citation.number1-
dc.citation.startPage41-
dc.citation.endPage52-
dc.identifier.bibliographicCitationJournal of the Korean Society for Therapeutic Radiology and Oncology, Vol.20(1) : 41-52, 2002-
dc.identifier.rimsid56727-
dc.type.rimsART-
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Radiation Oncology (방사선종양학교실) > 1. Journal Papers

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