• Title/Summary/Keyword: 입자 치료

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방사선치료빔 실시간 측정장치 개발

  • Kim, Jae-Hong;Swanepoe, M.W.;deKock, E.A.;Park, Yeon-Su;Yang, Tae-Geon
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.288-288
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    • 2010
  • 현대사회의 급속한 고령화로 암 환자의 수는 2002년 기준 약 10만 명에서 매년 7~10 %씩 증가되어 2012년에는 20만 명이 될 것으로 추정되어지고 있다. 수술, 방사선 치료, 약물요법 등이 주요 치료방법이며, 암 환자의 30-50 %가 전리 방사선치료를 받고 있다. 방사선치료는 19세기 말에 발견된 미지의 X-선이 희망의 방사선으로 변화하여 암의 진단 및 치료에 활용되고 있으며, 인간 삶의 질 향상에 핵심적인 역할을 담당하고 있다. 기존의 X-선이나 감마선의 단점을 극복 할 수 있는 입자 빔을 1970년대 미국의 캘리포니아 대학 Berkely National Laboratory에서 처음으로 암 치료에 적용하였다. 현재는 일본과 독일에서 활발하게 활용되고 있으며 국내에서도 입자 치료시설을 구축 또는 개발계획 중에 있다. 방사선치료의 완치율을 높이기 위해서는 정확한 선량을 암세포에 전달해야 한다. 환자에 전달되는 입자빔을 실시간으로 측정하는 기술이 연구되어지고 있다. 지금까지는 빔의 특성을 측정하기 위해 간섭적인 방법을 사용하였으나, 투과형 검출기를 개발하여 실시간으로 치료와 빔 특성을 동시에 수행하는 기술개발연구가 보고되고 있다. 본 연구에서는 Multileaf Faraday Cup (MLPC) 검출기 설계구조와 데이터 측정방법에 관한 연구를 수행하고자 한다. 빔의 전송 방향으로 3개층의 $4{\times}4$ 배열의 구조로 48 channel의 전류값을 측정하여 입자빔의 분포를 실시간으로 관측하고, 측정된 전류는 ADC를 거쳐 치료계획에 의해 선택된 영역의 SOBP를 유지하도록 range modulation propeller를 조절하는 feed-back system을 갖춘 방사선치료빔 실시간 측정장치 개발에 관한 결과를 보고하고자 한다.

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Evaluation of Absorbed Dose According to the Nanoparticle in Prostate Cancer Brachytherapy (전립선암의 근접치료 시 나노입자에 따른 흡수선량평가)

  • Park, Eun-tae;Lee, Deuk-hee;Im, In-chul
    • Journal of the Korean Society of Radiology
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    • v.12 no.2
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    • pp.167-172
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    • 2018
  • This study evaluated absorbed dose of brachytherapy according to the nanoparticle in prostate cancer which many occurred in Korean man and provided basic data. Absorbed dose evaluation was using MCNPX program which was applied Monte Carlo simulation. Source was applied $^{192}Ir$ which was many using in Korean HDR machine and gold, ferric oxide, gadolinium and iodine nanoparticle were applied. Prostate absorbed dose result was increased when using nanoparticle, in particular gold nanoparticle was the highest result as $3.13E-03J/kg{\cdot}e$. Absorbed dose of surrounding organs and distance was similar between using nanoparticle and non-using nanoparticle. Therefore, brachytherapy was used nanoparticle was increased therapeutic ratio and efficiency of radiation therapy.

Recent Trends in Photodynamic Therapy Using Upconversion Nanoparticles (업컨버전 나노입자를 이용한 광역학치료 연구 동향)

  • Im, Se Jin;Lee, Song Yeul;Park, Yong Il
    • Applied Chemistry for Engineering
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    • v.29 no.2
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    • pp.138-146
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    • 2018
  • Photodynamic therapy (PDT) is a great potential approach for the localized tumor removal with fewer metastatic potentials and side effects in treating the disease. In the treatment process, a photosensitizer (PS) that absorbs a light energy to generate reactive oxygen is essential. In general, a visible light is used as a light source of PDT, so that side effects from the light source are inevitable. For this reason, upconversion nanoparticles (UCNPs) using near-infrared (NIR) as an excitation source are attracting attention in the field of disease diagnosis and treatment. UCNPs have the low cytotoxicity and phototoxicity, and also advantages such as deep tissue penetration and low background autofluorescence. For PDT, UCNPs should be combined with a PS which absorbs the light energy from UCNPs and transfers it to the surrounding oxygen to produce reactive oxygen. In addition, the therapeutic efficacy can be improved by modifying nanoparticle surfaces, adding anti-cancer drugs, or combining with photothermal therapy (PTT). In this review, we summarize the recent research to improve the efficiency of PDT using UCNPs.

Estimation of Dose Distribution on Carbon Ion Therapy Facility using Monte Carlo Simulation (몬테카를로 시뮬레이션을 이용한 중입자 치료실의 선량분포 추정)

  • Song, Yongkeun;Heo, Seunguk;Cho, Gyuseok;Choi, Sanghyun;Han, Moojae;Park, Jikoon
    • Journal of the Korean Society of Radiology
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    • v.11 no.6
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    • pp.437-442
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    • 2017
  • Heavy ion therapy has a high cure rate for cancer cell. So many countries are introducing heavy ion therapy facility. When treating a cancer using heavy ion therapy, neutrons and gamma rays are generated and affect electronic equipment. A budget of about KRW 200 billion is needed to build a heavy ion therapy facility, and it takes more than five years to build it. Therefore it is important to observe the dose distribution in the treatment room using the monte carlo simulation before construction. In this study, we used the FLUKA of monte carlo simulation to investigate the dose distribution in the heavy ion treatment room.

Research Trends in Photothermal Therapy Using Gold Nanoparticles (금 나노입자를 이용한 광열치료 연구 동향)

  • Kim, Bong-Geun;Yeo, Do Gyeong;Na, Hyon Bin
    • Applied Chemistry for Engineering
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    • v.28 no.4
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    • pp.383-396
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    • 2017
  • The photothermal therapy is a method of cell ablation using the heat converted from the incident light by photothermal transducers. It offers a selective treatment to desired abnormal cells, in particular, tumor tissues. Among various photothermal agents, gold nanoparticles (Au NPs) have received enormous attention due to their unique physicochemical property over last two decades. In this review, we address research strategies and methods to improve treatment efficacy by organizing recent research works. We mainly focus on research works to enhance light-to-heat conversion via optimizing the morphology of Au NPs and related assemblies as well as the strategies to deliver Au NPs efficiently to specific targets. We also introduce convergence research efforts to combine Au NP-mediated photothermal treatment and other functions such as diagnostic capabilities and other therapeutic methods.

Evaluation of Absorbed Dose According to the Gold Nanoparticle Density in Prostate Cancer Brachytherapy (전립선암의 근접치료 시 금 나노입자 밀도에 따른 흡수선량평가)

  • Lee, Deuk-Hee;Kim, Jung-Hoon
    • Journal of the Korean Society of Radiology
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    • v.13 no.2
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    • pp.247-252
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    • 2019
  • This study was evaluated absorbed dose according to the gold nanoparticle density in prostate brachytherapy which was constantly occurred in Korean men. Absorbed dose evaluation was using MCNPX program which was applied Monte Carlo simulation. Source were applied $^{192}Ir$ which was temporary insertion source and $^{103}Pd$ which was permanently insertion source. And gold nanoparticle density was applied 0 mg, 7 mg, 18 mg and 30 mg. The prostate absorbed dose was increased in proportion to the density 2.95E-14 Gy/e to 4.42E-14 Gy/e in $^{192}Ir$ and showed the same tendency in $^{103}Pd$. And surrounding organ absorbed dose was inversely proportional to the density. Therefore using nanoparticle in brachytherapy was increased therapeutic ratio.

Theoretical Analyses of Particle Deposition in a Five-lobe Compartment Human Lung Model (5-엽(葉) 인체 폐 모델에서의 흡입입자 침전해석)

  • 구재학
    • Proceedings of the Korea Air Pollution Research Association Conference
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    • 2000.04a
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    • pp.245-246
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    • 2000
  • 공기중의 오염 입자가 인체에 얼마나 많은 영향을 미치는가는 흡입된 입자 (inhaled particles) 중에서 얼마나 많은 양이 폐 (lung)에 침전되는가와 밀접한 관계가 있다. 또한 정상 및 비정상 (diseased) 폐에서, 흡입된 입자의 침전 위치와 침전양 (deposition site and dose)은 입자의 크기와 호흡 양식(breathing pattern)에 따라 큰 차이를 보이며, 이런 차이는 흡입오염입자 (inhaled pollutant particles)에 의한 건강 위험도 평가 (health risk assessment) 및 흡입용 약물 (inhaled drug aerosols)의 치료효과(therapeutic effects) 평가 등에 큰 영향을 미친다. (중략)

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Preparation and Characterization of Rosiglitazone-loaded PLGA Nanoparticles (Rosiglitazone약물을 함유한 PLGA 나노입자 제조 및 분석)

  • Shin, Ko-Eun;Huh, Kang-Moo;Lee, Yong-Kyu
    • KSBB Journal
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    • v.23 no.5
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    • pp.408-412
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    • 2008
  • The rosiglitazone loaded poly (lactide-co-glycolide) (PLGA) nanoparticles (NPs) were prepared by the emulsion-evaporation method and optimized for particle size and entrapment efficiency. The optimized particles were 140-180 nm in size with narrow size distribution and 80% entrapment efficiency at 1% w/w initial drug loading when prepared with 1-3% w/v of PVA as a surfactant. These particulate carriers exhibited controlled in vitro release of rosiglitazone for 36 hrs at a nearly constant rate after 4 hrs release. In conclusion, these results indicate that PLGA NPs have greater potential for oral delivery of rosiglitazone.

Nanoparticles in Healthcare: Development and Applications (생체 기능 모니터링용 나노 소재 개발 및 응용)

  • Lee, Hyojin
    • Prospectives of Industrial Chemistry
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    • v.22 no.6
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    • pp.13-25
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    • 2019
  • 건강한 미래, 건강 사회 구현과 함께 질병 진단, 치료, 예방에 대한 관심이 급증하고 있다. 이에 따라 적시적기에 질병을 치료하고 예방하기 위한 건강 검진용 바이오센서 수요가 증가하였고 이에 따라 바이오센서 시장은 전세계적으로 급격히 확장되고 있다. 혈액 샘플을 기반으로 한 검진 방법이 보편적이지만 최근에는 고감도 센서 개발에 따라 소변, 침, 눈물 등과 같은 체액으로도 검진이 가능한 환자 친화적 비침습 센싱 방법도 활발하게 연구되고 있다. 이러한 센서 시장 패러다임의 변화 및 급속한 발전은 마이크로, 나노 재료 제작과 분석 기술 발전으로 체액 내 존재하는 나노 크기의 바이오 마커(단백질, 유전자, 펩타이드, 사이토카인)를 검출하는 소형화된 고감도의 센서를 개발할 수 있게 되었고 그 결과 화학, 물리, 재료, 의약 등 다양한 학문 분야에서 다양한 형태의 센서가 활발히 보고되었다. 본 기고문에서는 바이오센서용 소재 중에서 나노입자에 집중하여 첨단 센서 구현을 위해 사용된 입자의 종류, 센서 내에서의 입자의 역할을 소개하고 나노입자의 광학적, 물리적 특성에 따른 타겟 물질 검출 방법 및 동향에 대해 논의하고자 한다.