이 페이지는 자동 번역되었으며 번역의 정확성을 보장하지 않습니다. 참조하십시오 영문판 원본 텍스트의 경우.

이것은 자궁 경부암에 대한 MRIGABT의 대안으로서 IBS-GECESTRO-ABS 권장사항에 따른 표적 윤곽 설정을 위한 BT/Pre BT MR 중 TRUS를 포함하거나 포함하지 않는 CT 기반 IGABT를 구현 관점에서 평가하는 EMBRACE-III:TRIPLET IMPACT 연구 하의 다기관 국제 연구입니다. (IMPACT)

2025년 11월 21일 업데이트: Umesh Mahantshetty, Homi Bhabha Cancer Hospital & Research Centre

자궁경부암 영상 유도 적응성 근접 치료(IGABT)를 위한 다중 모드 영상 프로토콜 통합 - CT에 중점을 둔 EMBRACE III-IMPACT 연구

제목: 자궁경부암의 영상유도 적응성 근접방사선치료(IGABT)에서 CT를 강조한 다중영상 프로토콜 통합 - EMBRACE III-TRIPLET : IMPACT 연구 국소 진행성 자궁경부암(LACC)은 특히 중저소득 국가(LMICs)에서 주요 건강 문제로 남아 있으며, 전 세계 사례의 대다수를 차지합니다. 표준적인 치료법은 동시화학요법을 병행한 외부방사선치료(EBRT)와 근접방사선치료(BT)의 조합으로 이루어집니다. 근접방사선치료는 내부에 위치한 방사성 선원을 통해 종양에 직접 방사선을 전달함으로써 높은 국소 조절률을 달성하는 데 중요한 역할을 합니다.

역사적으로 BT 선량 처방은 2차원(2D) X선 영상과 정의된 해부학적 "점"을 기반으로 하여 60-70%의 5년 국소 조절률을 달성했습니다. 지난 10년간 자기공명영상(MRI) 기반 영상유도 적응성 근접방사선치료(MR-IGABT)는 3차원(3D) 표적 기반 선량 처방과 종양 퇴축에 따른 적응을 가능하게 함으로써 실제 치료 방식을 변화시켰습니다. 1,300명 이상의 환자를 포함한 획기적인 EMBRACE I 연구는 MR-IGABT로 90% 이상의 5년 국소 조절률을 보여주었으며, 이는 NCG, ICRU, NCCN, ESGO-ESTRO 지침에서 인정한 국제적 표준 치료법으로 확립되었습니다.

그러나 많은 기관, 특히 중저소득 국가에서는 IGABT를 위한 MRI 기반 계획 수립이 여전히 물류적, 재정적으로 어려운 과제로 남아 있습니다. CT와 경직장 초음파(TRUS)는 보다 넓은 접근성을 제공하는 실현 가능한 대안으로 부상했습니다. 소규모 기관 연구에서 고무적인 결과가 나왔음에도 불구하고, CT-IGABT에 대한 표준화되고 검증된 표적 윤곽 설정 개념의 부재로 인해 임상 적용에서 상당한 변동성이 발생했습니다. 이를 인식하여 인도 근접방사선치료 학회(IBS), 미국 근접방사선치료 학회(ABS), GEC-ESTRO는 2020년 다양한 임상 환경에서 CT-IGABT 관행을 표준화하기 위한 합의 권고안을 공동으로 발표했습니다.

비샤카파트남에 위치한 호미 바바 암 병원 및 연구 센터에서 우리의 이전 연구(RetroLACER 연구)는 CT 기반 IGABT가 MR-IGABT와 유사한 결과를 달성할 수 있음을 보여주었으며, 이는 그 실현 가능성과 보다 넓은 채택 가능성을 강조합니다. 이 기반을 바탕으로 EMBRACE III-IMPACT 연구는 다기관 환경에서 CT-IGABT가 체계적이고 균일하게 구현될 수 있는지 평가하고, 임상 결과를 MR-IGABT가 설정한 기준과 비교하여 벤치마킹하는 것을 목표로 합니다.

연구 설계:

이 연구는 국소 진행성 자궁경부암 환자 약 1,200명을 포함할 계획인 다기관, 전향적, 관찰 연구입니다. 모든 참가자는 EBRT, 주간 동시 시스플라틴 화학요법, 영상유도 계획을 통한 근접방사선치료를 포함한 표준 치료를 받게 됩니다.

목적:

다양한 임상 환경에서 표준화된 CT-IGABT 프로토콜 구현의 실현 가능성을 평가합니다.

CT-IGABT의 국소 조절, 무병 생존율, 치료 관련 독성 결과를 평가합니다.

CT-IGABT 결과를 이전 국제 연구에서 확립된 MR-IGABT 벤치마크와 비교하고 벤치마킹합니다.

참가자 참여:

참가자는 표준 진단 영상, 주간 시스플라틴을 병행한 EBRT, CT 기반 계획을 사용한 근접방사선치료를 받게 됩니다. 영상 및 치료 데이터는 수집, 익명화되어 검토를 위해 중앙 데이터베이스로 제출됩니다. 정기적인 추적 관찰을 통해 종양 조절과 치료 관련 부작용을 모니터링합니다.

혜택:

참가자는 국제적으로 표준화되고 질이 보장된 치료 프로토콜을 받습니다. 기관은 국제 협력자들의 전문가 검토 및 QA 지원에 접근할 수 있어 치료 질과 결과를 개선할 가능성이 있습니다.

이 연구는 CT-IGABT를 MRI 기반 IGABT에 대한 비용 효율적이고 접근 가능한 대안으로 확립하기 위한 글로벌 노력을 지원하며, 형평성 있는 암 치료 접근성을 확대합니다.

위험:

이 연구는 관찰 연구이며 표준 치료를 포함하므로, 위험과 비용은 일상적인 자궁경부암 치료와 유사합니다.

기밀성 및 윤리:

모든 데이터는 윤리 및 규제 기준을 준수하여 익명화되고 처리됩니다. 참가자의 기밀성은 엄격히 유지됩니다. 연구 참여 전 서면 동의서를 받습니다.

의의:

표준화된 CT 기반 프로토콜을 검증하고 결과 벤치마크를 확립함으로써, 이 연구는 자원이 제한된 환경에서 IGABT의 광범위한 채택을 촉진하고 궁극적으로 치료 접근성과 생존 결과를 개선하는 것을 목표로 합니다.

연구 개요

상태

아직 모집하지 않음

개입 / 치료

상세 설명

The study is a multi-centre prospective observational study. Reporting on the key clinical treatment and outcome parameters are mandatory for the individual centre.

The study will evaluate CT-IGABT for cervical cancer in two different CT based clinico- radiological environments.

Cohort A - Advanced CT Environment: [CT or MR at Diagnosis] and [ (Pre BT MR or TRUS) and CT at BT] Cohort B - Basic CT Environment: [CT or MR at Diagnosis] and [CT at BT]

After satisfying the inclusion and exclusion criteria, patients will be taken up in the study.

External Beam Radiotherapy:

The primary focus of this protocol is to prospectively validate the target volume concepts and benchmark the clinical outcomes with CT based IGABT for cervical cancer. However, for the overall outcome of the study with regards to secondary endpoints like regional control and survival as well as to morbidity, the contribution from EBRT may have a certain impact. Harmonization of dose and volume components of EBRT for targets (local and regional) as well as organs at risk is mandatory to ensure comparable treatment volumes across treating centres. Nomenclature of targets and organs at risk preferably needs to be uniform and in line with the EBRT protocols of EMBRACE-II study to maintain uniform reporting. Contrast CT scan in supine position with adequate positioning and immobilisation as per institutional protocols is mandatory for planning, with a slice thickness not exceeding 5 mm (preferably 1-3 mm). Oral contrast and vaginal markers are optional, as per institutional protocols. A reproducible protocol for bladder and rectal filling (at the time of simulation as well as treatment delivery) is mandatory and may be adopted as per institutional protocols. Delineation of target volumes and organs at risk should be done on the planning CT scan, taking into consideration all the information obtained from diagnostic and staging investigations including clinical drawings and NMD's. CTV_T should include the cervix, parametrium, entire uterus (and adnexa), and 2cm of uninvolved vagina as a minimum. Involved lymph nodes should be contoured as GTV_N and an optional margin of 0 to 3mm may be given to generate CTV_N. Lymph nodal regions to be included in elective nodal CTV (CTV_E). ITV and PTV should be generated around the CTV_T as per institutional practice (population based generic margins, or patient specific margins based on empty and full bladder scans) and should reflect the protocol employed for reproducible bladder and rectal filling. In general, a total safety margin of approximately 1 to 1.5cm is recommended around the CTV_T (including ITV and PTV). A PTV should be generated around CTV_E, and CTV_N as per institutional practice for elective and involved nodal boost volumes, respectively.

For uniform reporting of EBRT dose-volume parameters, the final PTVs should be labelled as PTV_Prescribed Dose (Eg: PTV_45, PTV_55, etc).

The dose contribution from EBRT must be homogenous for patients included in this study, especially in regions corresponding to the small volumes of interest for BT (CTV-THR-CT and adjacent OARs like anterior-lateral walls of rectum and sigmoid, posterior-inferior wall of the bladder, walls of the vagina adjacent to macroscopic disease, etc). Such homogeneity ensures optimal comparison of dose-volume effects of BT on local control and morbidity.

For reporting dose in defined absolute tissue volumes it is necessary to report the dose for EBRT in each OAR. It is assumed that the small volumes of interest for BT will receive the EBRT dose prescribed to PTV. Therefore, no additional dose volume assessment is required for the different organs at risk, apart from the confirmation that the EBRT dose received in the volumes of interest does not exceed the prescribed dose by ± 5%. If nodal boost given by EBRT is contributing to a specific OAR volume adjacent to / overlapping with the target of interest for BT, the total dose including the EBRT boost dose received by that organ must be reported and used for the cumulative EQD2 calculations for that OAR. Dose volume constraints being utilized in the EMBRACE II protocol may be used as a general reference for treatment planning (Annexure-5). Participating institution to evaluate their EBRT plans, especially when IG-IMRT and/or simultaneous integrated boost techniques are used.

Physical dose ranges for EBRT should not be beyond the range of 45 to 50 Gy in conventional fractionation of 1.8 to 2 Gy per fraction and 5 fractions a week. To compensate for unplanned treatment breaks, however, two daily EBRT fractions at least 6 hours apart may be used. To minimize the risk of consequential late damage, dose accumulation of EBRT must, however, not exceed 12 Gy per week. A nodal boost equivalent to a cumulative dose of 55 to 60 Gy (10) (including potential contribution from BT) may be used for node positive disease, as per institutional practice. Nodal boost may be delivered either as simultaneous integrated boost (SIB) or sequential boost (SEB) using IG-IMRT, without compromising on the overall treatment time. Parametrial / nodal EBRT boost through midline shielding or 3D-CRT is not allowed.

Based on the observations from EMBRACE I study, overall treatment time (OTT) has a significant impact on local control probability. Therefore, OTT (including EBRT, BT and concurrent chemotherapy) must be limited to less than 49 days. Any prolongation in OTT beyond 49 days should be documented and reported, along with specific reasons for such prolongation.

Reporting EBRT parameters:

  • Dose per fraction, number of fractions, total prescription for each target
  • Overall treatment time of whole EBRT
  • Dose Volume parameters for EBRT as per CRF

    • Body Absolute volume (in cc) receiving atleast 43 Gy dose (V43Gy )
    • Volume (in cc) of PTV-E

Concomitant chemotherapy:

Cisplatin is to be given intravenously at a dose 40 mg/m2 once a week for a total of preferably 5-6 cycles during the entire course of radiotherapy including BT, according to institutional practice. Patients not suitable for cisplatin chemotherapy are to be excluded from the IMPACT study. Cisplatin dosing may be adjusted / withheld at the discretion of the treating physician, based on tolerance and hematological / renal parametres.

Response to EBRT + Concomitant Chemotherapy:

The categorical classification system is based on the disease extent of the cervix, parametria, vagina, uterine corpus, bladder and rectum at diagnosis and at BT as per IBS-GEC ESTRO - ABS Guidelines.

Brachytherapy:

Treatment planning and performance of BT is based on the recommendations of the "ICRU 89/GEC ESTRO Report" on "Prescribing, Recording and Reporting Brachytherapy for Cancer of the Cervix" (ICRU Report 89, 2013/2016) where the concepts and parameters for image guided adaptive brachytherapy are systematically described.

Overall Schedule for EBRT and BT and chemotherapy:

The overall treatment time (OTT), defined from the first external beam fraction to the end of brachytherapy fraction dose delivered should be < 49 days. This is based on the Retroembrace and Embrace I clinical outcome studies.

To obtain maximal tumour regression the treatment should always be initiated with EBRT and concomitant chemotherapy for 4-5 weeks before BT is applied in weeks 5-7. For a small and/or well responding tumour BT may be initiated already during EBRT to shorten the overall treatment to 5-6 weeks. In any case every effort should be made to keep the overall treatment time < 49 days.

Concomitant chemotherapy given on the first 2-3 days of the week also theoretically paves the way for sensitizing more fractions of EBRT in that week, rather than giving chemotherapy towards the weekend where the sensitizing effect is expected to vanish during the weekend. There is limited data on the optimal timing of EBRT and concomitant chemotherapy on the actual day where it is given. Centres can use their own schedule. Minimum of 5 cycles of cisplatin should be delivered throughout the radiation therapy including BT to ensure optimal outcome from concomitant chemotherapy effect.

Pre-Brachytherapy Planning:

For an ideal brachytherapy application for cervix cancer, a pre-planning procedure is essential which allows tailoring the BT application based on tumour topography and patient anatomy at the time of brachytherapy. This requires a comprehensive clinical gynaecologic examination assessing utero-vaginal topography, tumour response at the primary, parametria and vagina after external beam therapy. Precise documentation on the standard gynaecologic template in three orientations including the speculum view is mandatory. These findings can be supported by volumetric imaging like pre-BT MRI, TRUS imaging during BT application to efficiently define the NMD's on CT with BT applicator in situ. An individual adaptive CTV-THR is defined with a certain width, thickness and height based on the above information. Essential are the correlation of these CTV dimensions to cervical canal, later location of tandem, in particular, distances to outer borders of the contemplated CTV-THR and if symmetrical or not. A calculated decision is taken regarding type of application, in particular, if it can be only intracavitary or a combination of intracavitary and interstitial application. The most precise pre-treatment planning is with a tandem and vaginal applicators in place, and position of needles decided on the image taken according to extent of high- risk CTV. The type of BT application, use of interstitial tubes /needles, pre-BT MR protocol with/without tandem/vaginal applicator for each case is at the discretion of the treating physician and Institutional practice.

Based on the Imaging Environment during BT, two clinical scenarios for CT based BT planning can be utilized. BT treatment with more than 1 BT fraction for every BT application is allowed for either environment.

A. Advanced CT Environment: Pre BT MR to assess the regression of primary tumour after EBRT +/- CT, defining target and pre-planning of BT implantation followed by CT Imaging with BT applicator in place. Alternatively, if Pre-BT MR is not feasible, use of TRUS imaging information during BT application to define the target on CT Imaging with BT applicator in situ.

B. Basic CT Environment: CT Imaging with BT Applicator in place-based treatment planning for each BT application.

Patient preparation for BT Application:

Detailed counselling helps in patient acceptance and compliance to application and treatment. Fitness for anaesthesia will be obtained. In case of co-morbidities, adequate time for optimization of drug regimens is provided without compromise in overall treatment time. The practice of ward admission 1 day prior to BT application is encouraged. Bowel preparation is always to be used to ensure relatively empty recto-sigmoid and small bowel, which is of particular importance when interstitial needles in addition to intracavitary treatment are used and if more than one fraction of BT treatment is planned with same application. This would help to prevent major variations in OAR volumes and subsequently the DVH parameters. Supportive treatment such as DVT prophylaxis (lower limb stockings / low molecular weight heparin), antibiotics and analgesics may be given according to individual patient needs and institutional practice.

BT Applicator Implantation:

The procedure should be performed under anaesthesia (General /spinal) with /without sedation. Strict asepsis throughout the BT procedure has to be maintained. Bladder catheterization with 7 ml of normal saline/ distilled water (high density contrast should be avoided) to inflate the foley's balloon and maintaining the tip end towards base of bladder and a mild negative suction using asepto syringe is recommended.

A thorough clinical assessment under anaesthesia with description of primary tumoral extension, and involvement of parametria, vagina, bladder and rectum are mandatory. In addition, tumour dimensions (width, height and thickness) and clinical NMD (right & left) in relation to central cervical canal is to be noted. Examination findings are documented in clinical drawing sheets. Sounding and dilatation if required of the utero-cervical canal can be guided by trans-abdominal or trans-rectal ultrasound and the length of uterine cavity is measured. Hydrometra / Pyometra (culture and antibiotic sensitivity if required) may be drained if present. A CT/MRI compatible BT applicator is chosen depending on topography of tumour, utero-cervical canal length, vaginal capacity. Choice of applicator type (IC / IC+IS) depends on individual anatomy, clinical NMD's, asymmetry of target topography and tumour spread at the time of brachytherapy. Applicator type (e.g. ring or ovoid type) can be decided by the treating physician. Additional implantation of CT/MR compatible needles/plastic tubes in the parametrium and/or vagina must be used as appropriate for adequate target coverage. Vaginal packing must be performed with gauze (without radio-opaque marker) to push away the rectum and bladder and to fix the applicator against the cervix. The gauze may be soaked with betadine or US gel or saline water to distinguish the packing from vaginal walls.

If TRUS imaging is performed during BT application, a set of images - axial and sagittal are acquired with tandem in place and TRUS based NMD's are measured. Applicator may be fixed to the patient by elastic T shaped bandages. Alternatively, an individual mould or other customized procedures may be used for fixation of applicator as per participating institutional practice. Fixed geometry of applicator in relation to target volume is critical for safe delivery of treatment plan. External fixation to the surgical table/board should not be used. In-vivo dosimetry by use of detectors may be used according to institutional practice. Patient is transferred to CT scanner to obtain appropriate images with the patient in supine treatment position with a specified protocol as detailed below.

Imaging for pre planning and planning to be performed as per environments is as follows:

Imaging Protocols for Brachytherapy:

  1. Pre BT MRI:

    MRI, the gold standard, is highly accurate (i) for GTV (high signal intensity zone on T2) assessment including the uterine cervix, parametria, uterine corpus, vagina and for organ wall involvement (bladder, rectum) and (ii) for identifying "grey zones" on T2 in the region of the initial GTV, which are used for the definition of the CTV-THR. Pre BT (preferably within 1 week of EBRT completion) Pelvic MRI should be performed with a well-defined protocol including patient position, use of a pelvic coil, introduction of vaginal ultra- sound gel, bladder and rectal filling protocols and appropriate standard sequences as recommended by GEC -ESTRO. Standardization of protocol prior to implementation is required along with defining an institutional bladder filling protocol. A minimum of T1 (as image localizer) and T2 weighted FRFSE non-contrast, axial, sagittal and coronal (para-axial / para-sagittal or para-coronal) sequences with 3-5 mm slice thickness, 0-2 mm spacing and 256 x 256 matrixes using 0.35 - 3 Tesla MR is preferred.

  2. TRUS:

    TRUS has been used to define target structure in relation to cervical canal at the time of BT which corresponds to target structure on MRI. The CTV-THR contains structures which appear dark (hypo- echoic) on ultrasound image: residual GTV, cervical stroma, extra-cervical residual GTV and/or parametrial fibrotic pathologic tissue. There is a significant contrast between normal fatty parametrial tissue (bright) and adjacent pathologic tissue (dark - hypo-echoic) which allows for defining and contouring the target.

    TRUS with biplanar probes and acquisition of images at various levels of cervical canal in relation to uterine vessels, external and internal os, provide useful information to define the target accurately as compared to stand-alone CT images. In-room intraoperative ultrasonography with a trans-rectal (5 - 7.5 MHz) probe can be used to guide and facilitate the application especially placement of uterine tandem to prevent uterine perforations. The TRUS probe is covered with sterile gel inside a plastic sheath and axial images can be acquired transrectally after the placement of tandem into the utero-cervical canal. With the uterine tandem in situ, scanning of cervical region is done to identify uterine arteries (assisted & confirmed by color doppler). From the level of these uterine vessels, a series of trans-axial images in inferior direction can be obtained by retracting TRUS probe sequentially. On axial images, the distances between the tandem / central canal and the outer margins of hypo-echoic (dark) regions (TRUS based NMD's) can be utilized to guide the target contouring on the corresponding axial CT images. This methodology with use of TRUS is associated with a learning curve (approximately 10 -15 patients). Training module for the same are available on Brachtyterra (https://brachyterra.thinkific.com/).

  3. CT Imaging with BT applicator in situ:

Standardized CT imaging protocol should be followed. CT imaging has to be performed with 1-1.5 ml/kg body weight iodine based intravenous contrast administration after utilizing a uniform bladder filling protocol for BT as defined in the Pre-BT MR protocol. During BT application, bladder is kept nearly empty with an indwelling catheter. At the time of CT Imaging, bladder cavity is instilled with 20 - 50 ml fluid (mixture of 1 ml of Sodium-meglumine diatrizoate 76%) contrast and 20-50 ml of normal saline) to achieve adequate contrast for outer wall contouring. A similar protocol using dilute contrast (10 - 15 ml) may be instilled into the recto-sigmoid, in addition to the rectal tube to assist in delineation of the rectum and sigmoid. CT imaging using ≤ 3 mm slice thickness should be performed, preferably include arterial/capillary phase or bolus tracking methods, to best define pelvic anatomy. Structures relevant to cervical cancer BT include primary tumor, cervical canal, cervix, vagina, uterine corpus, parametrium, pelvic vessels, uterine arteries, bladder, rectum and sigmoid. Training module for the same are available on Brachtyterra (https://brachyterra.thinkific.com/).

Applicator reconstruction and dose points for OARs:

Uncertainties of 4% (k=1) due to applicator reconstruction are assumed when reporting dose parameters for cervix brachytherapy. An appropriate step-by-step quality assurance program in each centre is compulsory as follows:

Step 1: The first step is to define source path (which is subsequent dwell positions of actual source inside applicator) in relation to applicator. This is usually defined during commissioning of applicators and after-loaders. The source path can be related to outer dimensions of an applicator/ marker wires or other indicators placed inside applicator. Autoradiographs are performed to visualize dwell positions. Commissioning procedure should result in determination of offsets (if any), drawings of essential dimensions or even applicator templates which can be integrated into treatment planning systems.

Step 2: Accuracy of applicator reconstruction depends on resolution of 3D image set. Appropriate imaging must be performed, either by reducing slice thickness, combining different image orientations (e.g. oblique orientations in transverse, sagittal and coronal) or using dedicated 3D sequences (e.g. isotropic voxel size). Each centre must ensure that applicator reconstruction can be performed with an uncertainty of < 2 mm. This includes overall deviation of planned dwell position to the finally realized dwell position on an anatomical situation as visualized on planning CT. This includes deviations due to source path definition (commissioning), equipment performance (constancy checks) and reconstruction process in treatment planning system.

Step 3: Direct reconstruction on CT or library plans may be an optimal solution for reducing uncertainties. Fusion of CT to Pre BT MRI / TRUS imaging is most often not helpful for applicator reconstruction, as fusion techniques have to be based on the already reconstructed applicator in both image modalities. Dose points for brachytherapy are defined directly on CT imaging with applicator in situ.

The following dose points should be defined directly in the 3D imaging study:

  • Point 'A'
  • ICRU bladder point
  • ICRU recto-vaginal point Point A, recto-vaginal, and bladder reference points on CT as defined by ICRU 89 report must be strictly followed. Point A is a geometrical point in relation to applicator. A coordinate system is rotated and centred to have it aligned to applicator, with its origin in intrauterine applicator axis and the z=0 plane at the surface of the vaginal part of applicators. For defining recto-vaginal and bladder reference points, image orientation is essential. Both points are defined according to patient coordinate system - on anterior-posterior lines, which are strictly perpendicular to the longitudinal axis of the patient.

Contouring of target and organs at risk at BT:

Contouring of targets and OARs is performed for each BT applicator insertion / implant by contouring on axial CT images with BT applicator in situ, in a dedicated 3D brachytherapy dose- planning system according to GEC ESTRO ICRU 89 concept and IBS/ GEC-ESTRO/ ABS CT Recommendations.

No safety margins/ PTV margins are needed for internal movement ("tracking brachytherapy") since the applicator moves with the CTV. Although there are some uncertainties for setup (applicator reconstruction), these seem to be rather negligible, if systematic error can be kept below 2 mm and slice thickness below 5 mm (random error). In the present study it is therefore assumed that for BT no margins should be added to CTV, i.e. CTV = PTV.

Tumor targets and dose points:

• High risk target (CTV-THR): clinic-radiological macroscopic tumour extension at time of brachytherapy (GTVB) + whole cervix + presumed extra cervical tumour extension It should be noted that the CTV-THR target concept has been extrapolated from MR based target concepts. With mature clinical evidence (RetroEMBRACE, EMBRACE- I and many mono- institutional studies) for MR based target concept, CT based target concepts details are provided in the IBS GEC ESTRO ABS target recommendations. Clinical evaluation of CT based target concept is one of the main aims of the present study. Results obtained may then be used to further generate robust evidence and implement IGABT in regions where access to MR Imaging is limited or challenging.

CTV-THR-CT Contouring The CTV-THR-CT, can be defined and delineated based on the following information and documentation in various environments

  • Clinical drawings / NMD's at diagnosis and at BT
  • Imaging at diagnosis - CT or MR with documentation of NMD's
  • Response categorization- Category I, II, or III.
  • Pre-BT Imaging - Utilization of the NMD's on Pre-BT MR or representative TRUS images with tandem in place
  • CT imaging with a defined protocol and BT applicator in situ is available.
  • Defining width in the parametrial region utilizing NMD's (Clinical, Pre BT MR or TRUS), while thickness and height based on anatomical boundaries and the clinico-radiological environments.

For OARs the following organs and dose points should be defined:

Organs-at-risk:

OARs for routine CT based delineation include the rectum, bladder, sigmoid, bowel, while others like anal canal, vagina, urethra are recommended only when target volume and dose distribution are in close proximity. The definition of OARs follows anatomical boundaries and principles as detailed in ICRU 89.

For OAR volumes, organ outer walls have to be defined and delineated slice by slice using only one line as recommended by ICRU 89.

The assessment of small OAR volumes for brachytherapy planning and reporting (0.1 cm3 and 2 cm3) is applicable as recommended in ICRU 89 / GEC-ESTRO Recommendations II. For the rectum, a length of about 5 cm in cranio-caudal direction or longer related to vaginal sources needs to be delineated. Sigmoid colon, with specific focus on areas adjacent to uterus and target, should be clearly identified and contoured. Similarly, bowel loops have to be identified and areas (i.e., wall or organ volumes) near uterus need to be contoured with their entire circumference. The entire bladder including whole posterior, posterior-caudal (trigone), and posterior-cranial bladder wall should be delineated. For most of these parameters, in particular for 2 cm3 volume, a strong correlation has been demonstrated to clinical morbidity endpoints (eg cystitis, proctitis, fistula, vaginal stenosis, diarrhea.

  • Bladder: The outer bladder wall is contoured.
  • Rectum: The outer rectal wall is contoured from above the anal sphincter to the level of transition into the sigmoid
  • Sigmoid: The outer sigmoid wall is to be contoured from the recto-sigmoid flexure to well above the parametria and the uterus (at least 2 cm)
  • ICRU bladder point
  • ICRU recto-vaginal point

Planning aims and dose prescription for IMPACT Based on the experience from MR-IGABT, all participating centres are encouraged to aim for a D90 dose of 85 to 95 Gy (EQD2) to CTV-THR without a major compromise in the OAR doses. However, there is no specific dose level recommended for target volume prescription in this study, as there is limited evidence for such recommendation using CT-IGABT. Therefore, every centre is encouraged to follow the specific institutional practice which reflects the clinical experience accumulated through implementation of MR-IGABT. Planning aims (soft constraints) and limits for prescribed dose (hard constraints) for treatment planning in Embrace II study should be used. In principle, the BT dose and fractionation scheduling is left to the discretion of individual participating institutions. However, recording and reporting process, must be uniform and in accordance with ICRU 89 reporting.

BT Planning and Dwell time optimisation:

The starting point in planning is usually a standard plan normalised to defined point A, which has been in use for a very long time for x-ray based BT in institutional tradition. It is recommended to follow this tradition in cases of only intracavitary as well as combined intracavitary/interstitial application geometries and adapt dose and volume according to specific individual needs of the clinical situation. It is not recommended to create a plan which is completely new, as this may imply uncertainties which may result in outcome, little predictable, the worst in significant adverse events.

STEP 1: Source loading which results in standardized pear shaped isodose distributions normalized to point A (sometimes named as standard plan) is usually achieved by certain loading patterns in the intrauterine and vaginal applicator parts. The balance of target dose coverage for defined volumes of target and OARs is achieved by optimization which is performed by optimising the implant geometry, the dwell time distribution and the fractionation.

STEP 2: The use of implant geometries with interstitial needles in addition to an intracavitary applicator is essential for unfavourable topography (either larger target volumes or unfavourable relation between target and OARs). It is assumed that at least 20 % of a representative cohort of cervical cancer cases needs such implant techniques to fulfil planning aims and prescription limits. The loading and dose contribution from the needles is added to the intracavitary dose distribution. This ensures that the dose levels and dose gradients around the implant geometry stay comparable to intracavitary plans and not interstitial plans, where each applicator has a similar weighting to avoid hot and cold spots in any areas not directly controlled via dose points or dose-volume relations. The contribution of TRAK resulting from the interstitial components to the overall TRAK varies on each situation, but is usually between 5-20 %.

The loading pattern and the dwell times are optimized in iterative steps until planning aims are fulfilled. Dwell time distribution can be optimised by using - (1) Manual dwell time or dwell weight optimization and/or (2) Graphical optimization ("dose shaping") combined with manual verification and adjustments for unnecessarily large deviations from typical pear shaped isodose with prescription to point A (also called standard loading pattern). Inverse planning tools are not recommended at present. It should only be used if individual centres perform reproducible and safe additional adaptations during or after inverse optimization process.

According to chapter 10.6.4 of the EMBRACE II protocol the dwell time optimization should not be solely based on dose and volume constraints. DVH constraints as suggested and used at present do not take into account high dose volumes within target and adjacent normal tissue. This applies for all organs where no recommendations for delineation have been developed so far (e.g. vagina, ureter, vessels, nerves or connective tissue in the pelvis). Therefore, to avoid any significant adverse clinical events specific attention is needed to ensure that dose distributions (especially for high dose volumes) are within the range and place of clinical experience collected so far and which seems to be achievable by not allowing for too large differences from traditional approaches. Especially the TRAK resulting from loading in the intrauterine applicator part, intravaginal applicator part and the interstitial needles should be monitored.

With increasing volume of CTV-THR-CT, the intravaginal applicator loading usually reaches a low plateau in TRAK and the intrauterine loading dominates the entire applied dose. Loading in the interstitial needles is lower compared to the intracavitary part and on average increases with target size. Only in case of extremely large CTV sizes, the interstitial component may reach TRAK values up to 50% of the entire TRAK, while it remains usually below 20% for the majority of cases.

Dose and volume recording and reporting All patients should receive both EBRT and BT. Summation of EBRT and BT doses will be performed by calculation of a biologically equivalent dose in 2 Gy per fraction (EQD2) using the linear-quadratic model with α/β of 10 Gy for tumour effects and α/β of 3 Gy for late normal tissue damage. The repair half time is assumed to be 1.5 hrs.

Recording and reporting follows the recommendations of ICRU/GEC ESTRO Report 89.

Reporting of dose and volume parameters for BT (from ICRU 89) CTV-THR-CT: Volume, D98, D90 Point A (only when intracavitary): Point dose Bladder: D2 cm³ Rectum: D2 cm³ Sigmoid: D2 cm³ and assessment of mobility Bowel: D2 cm³ and assessment of mobility ICRU recto-vaginal point: Point dose ICRU bladder point: Point dose TRAK: Total, needle, Vaginal

Quality Assurance:

Only approved departments and investigators can contribute patients to the protocol. It is the responsibility of the study coordinators to evaluate and approve participation. Approval requires a successful dummy run and an individual assessment of the performance of each participating centre. Online monitoring tools available at Medical University Vienna will be utilized. Centre based queries will be generated periodically for discussion and improve the quality of treatment

연구 유형

관찰

등록 (추정된)

1200

연락처 및 위치

이 섹션에서는 연구를 수행하는 사람들의 연락처 정보와 이 연구가 수행되는 장소에 대한 정보를 제공합니다.

연구 장소

    • Andhra Pradesh
      • Visakhapatnam, Andhra Pradesh, 인도, 530053
        • Homi Bhabha Cancer Hopsital & Research Centre
        • 연락하다:
          • Dr Umesh Mahanshetty, MD, DNB
          • 전화번호: 0891 2871 595 +91 9819885774
          • 이메일: drumeshm@gmail.com
        • 연락하다:
        • 수석 연구원:
          • Dr Umesh Mahantshetty, MD, DNB
        • 부수사관:
          • Dr Raviteja Miriyala, MD
        • 부수사관:
          • Dr Kiriti Chiriki, DNB
        • 부수사관:
          • Dr Elna Jerod, MD
        • 부수사관:
          • Mr Raghavendra Hajare, M.Sc

참여기준

연구원은 적격성 기준이라는 특정 설명에 맞는 사람을 찾습니다. 이러한 기준의 몇 가지 예는 개인의 일반적인 건강 상태 또는 이전 치료입니다.

자격 기준

공부할 수 있는 나이

  • 성인
  • 고령자

건강한 자원 봉사자를 받아들입니다

아니

샘플링 방법

비확률 샘플

연구 인구

이 연구는 주 치료 센터에서 근치적 화학방사선 치료 후 근접방사선 치료를 계획한 조직학적으로 확인된 국소 진행성 자궁경부암(FIGO 병기 IB3-IVA) 여성 약 1200명을 포함할 것입니다. 참가자는 CT 기반 근접방사선 치료 시설을 갖춘 여러 국내외 센터에서 모집됩니다. 모든 참가자는 연구 프로토콜에 따라 표준화된 치료 및 추적 관찰을 받으며, 화상 및 결과 데이터는 품질 보증 및 분석을 위해 중앙 데이터베이스에 제출됩니다.

설명

포함 기준:

  1. 근치적 화학방사선 치료(근접치료 포함)로 적합한 자궁경부암.
  2. 자궁경부의 침습성 편평세포암종 또는 선암종 또는 선편평세포암종을 보여주는 생검.
  3. FIGO(2018) 병기 IB2 ~ IVA.
  4. 동의서 서명을 통한 참여 의사.

제외 기준:

  • 자궁경부 상피내암종을 제외한 다른 이전 또는 현재의 원발성 악성종양.

    • 근치적 방사선 치료가 불가능한 서혜부 림프절 전이
    • 신장 혈관 이상의 대동맥 주위 부위 전이
    • 동시 항암제(시스플라틴) 화학요법 부적합(크레아티닌 청소율 < 50mg/ml/min)
    • 이전 골반 또는 복부 방사선 치료.
    • 이전 전자궁적출술 또는 부분 자궁적출술.
    • BT 단독 치료 환자.
    • EBRT 단독 치료 환자.
    • 근치적 치료 전 또는 보조 치료로 어떤 형태의 선행 항암 치료를 받는 환자
    • 근치적 화학방사선 치료를 방해하는 활동성 감염 또는 중증 의학적 상태.
    • 임신 중이거나 수유 중이거나 적절한 피임 없이 가임 능력이 있는 경우.

공부 계획

이 섹션에서는 연구 설계 방법과 연구가 측정하는 내용을 포함하여 연구 계획에 대한 세부 정보를 제공합니다.

연구는 어떻게 설계됩니까?

디자인 세부사항

코호트 및 개입

그룹/코호트
개입 / 치료
코호트 A - 고급 CT 환경, 코호트 B - 기본 CT 환경

코호트 A: EBRT +\/- CT 후 1차 종양 퇴행을 평가하기 위한 근접치료 전 MRI, 표적 정의 및 근접치료 삽입물 사전 계획, 다음으로 근접치료 적용기가 제자리에 있는 상태에서 CT 영상 촬영. 대안적으로, 근접치료 전 MRI가 실행 불가능한 경우 근접치료 적용 중 TRUS 영상 정보를 사용하여 근접치료 적용기가 제자리에 있는 상태에서 CT 영상 상 표적 정의

코호트 B: 각 근접치료 적용을 위한 근접치료 적용기가 제자리에 있는 상태에서 CT 영상 기반 치료 계획.

국소 진행성 자궁경부암 환자는 표준 치료를 받게 되며, 이는 주간 동시 시스플라틴 화학요법을 병행한 외부방사선치료(EBRT)와 이어지는 영상 유도 적응형 근접방사선치료(IGABT)를 포함합니다. 근접방사선치료 계획은 국제적 합의 지침에 따라 표적 부피와 위험 장기를 정의하기 위해 CT 기반 영상을 활용할 것입니다. 고급 영상 기능을 갖춘 센터는 근접방사선치료 전 평가를 위해 MRI 또는 경직장 초음파(TRUS)를 통합할 수 있으며(코호트 A), 다른 센터는 CT 전용 계획을 사용할 것입니다(코호트 B). 모든 치료는 다양한 임상 환경에서 CT-IGABT 구현의 실행 가능성, 일관성 및 임상 결과를 평가하기 위해 중앙 집중식 품질 보증 및 데이터 검토와 함께 표준화된 프로토콜을 따를 것입니다.

연구는 무엇을 측정합니까?

주요 결과 측정

결과 측정
측정값 설명
기간
해부학적 구획 및 특정 BT 표적(CTV-THR)과 관련된 국소 조절 및 골반 내 OAR 관련 이환율
기간: 36 & 60개월
완전 관해, 부분 관해, 안정 및 진행성 질환으로 구성된 관해 상태는 치료 후 3-6개월 이내에 부인과 검진 및 적절한 경우 영상 검사를 통해 평가해야 합니다. 치료 후 6, 9, 12, 18, 24, 30 및 36개월에 계획된 예약을 통한 부인과 검진을 포함한 정기적인 추적 관찰을 수행하고 기록해야 합니다. 재발이 의심되는 경우, 재발을 확인하기 위해 생검/세침 흡인 세포 검사를 실시하고, 치료 의사 및 기관 프로토콜의 재량에 따라 적절한 영상 검사를 수행해야 합니다. 의사 평가 이환율은 위장관, 비뇨생식기, 질 및 여러 비특이적 증상과 관련된 사전 선정된 임상적으로 관련된 종점에 대해 공통 용어 기준(CTCAE V 5.0)을 사용하여 전향적으로 점수화됩니다. 이환율은 표준 정의에 따라 조기 및 후기로 분류됩니다(조기는 치료 완료 후 첫 90일 이내).
36 & 60개월

2차 결과 측정

결과 측정
측정값 설명
기간
지역적 통제
기간: 6, 9, 12, 18, 24, 30 및 36개월
완전 관해, 부분 관해, 안정 및 진행성 질환으로 구분되는 관해 상태는 치료 후 3~6개월 이내에 부인과 검진 및 영상 검사를 통해 평가되어야 합니다. 치료 후 6, 9, 12, 18, 24, 30, 36개월에 예정된 진료 일정을 포함한 정기 추적 관찰을 시행하고 기록해야 합니다. 재발이 의심되는 경우, 치료 담당 의사 및 기관 프로토콜의 판단에 따라 재발을 확인하기 위한 생검/세침 흡인 세포 검사와 적절한 영상 검사를 시행해야 합니다.
6, 9, 12, 18, 24, 30 및 36개월
무진행 생존
기간: 6, 9, 12, 18, 24, 30 및 36개월
완전 관해, 부분 관해, 안정 및 진행성 질환 상태는 치료 후 3~6개월 이내에 부인과 검진 및 필요한 경우 영상 검사를 통해 평가해야 합니다. 치료 후 6, 9, 12, 18, 24, 30, 36개월에 계획된 예약을 통해 부인과 검진을 포함한 정기 추적 관찰을 수행하고 기록해야 합니다. 재발이 의심되는 경우, 치료 담당 의사 및 기관 규정에 따라 재발을 확인하기 위한 생검/세침 흡인 세포 검사와 적절한 영상 검사를 수행해야 합니다.
6, 9, 12, 18, 24, 30 및 36개월
전체 생존율
기간: 6, 9, 12, 18, 24, 30 및 36개월
완전 관해, 부분 관해, 안정 및 진행성 질환으로 구성된 관해 상태는 치료 후 3~6개월 이내에 부인과 검진 및 적절한 경우 영상 검사를 통해 평가해야 합니다. 치료 후 6, 9, 12, 18, 24, 30 및 36개월에 계획된 예약을 포함한 정기적인 추적 관찰(부인과 검진 포함)을 수행하고 기록해야 합니다. 재발이 의심되는 경우, 재발을 확인하기 위해 생검/세침 흡인 세포검사를 실시하고, 적절한 영상 검사는 담당 의사의 판단 및 기관별 프로토콜에 따라 수행해야 합니다.
6, 9, 12, 18, 24, 30 및 36개월
이환율
기간: 6, 9, 12, 18, 24, 30 및 36개월
의사가 평가한 이환율은 사전에 선정된 위장관, 비뇨생식기, 질 및 여러 비특이적 증상과 관련된 임상적으로 관련된 종료점에 대해 공통 용어 부작용 기준(CTCAE V 5.0 모두)을 사용하여 전향적으로 점수화됩니다. 이환율은 표준 정의에 따라 조기 및 후기로 분류됩니다(조기는 치료 완료 후 첫 90일 이내).
6, 9, 12, 18, 24, 30 및 36개월

공동 작업자 및 조사자

여기에서 이 연구와 관련된 사람과 조직을 찾을 수 있습니다.

수사관

  • 수석 연구원: Dr Umesh Mahantshetty, MD, DNB, HOMI BHABHA CANCER HOSPITAL AND RESEARCH CENTRE

간행물 및 유용한 링크

연구에 대한 정보 입력을 담당하는 사람이 자발적으로 이러한 간행물을 제공합니다. 이것은 연구와 관련된 모든 것에 관한 것일 수 있습니다.

일반 간행물

연구 기록 날짜

이 날짜는 ClinicalTrials.gov에 대한 연구 기록 및 요약 결과 제출의 진행 상황을 추적합니다. 연구 기록 및 보고된 결과는 공개 웹사이트에 게시되기 전에 특정 품질 관리 기준을 충족하는지 확인하기 위해 국립 의학 도서관(NLM)에서 검토합니다.

연구 주요 날짜

연구 시작 (추정된)

2025년 11월 1일

기본 완료 (추정된)

2031년 11월 1일

연구 완료 (추정된)

2031년 11월 1일

연구 등록 날짜

최초 제출

2025년 11월 17일

QC 기준을 충족하는 최초 제출

2025년 11월 21일

처음 게시됨 (실제)

2025년 11월 25일

연구 기록 업데이트

마지막 업데이트 게시됨 (실제)

2025년 11월 25일

QC 기준을 충족하는 마지막 업데이트 제출

2025년 11월 21일

마지막으로 확인됨

2025년 11월 1일

추가 정보

이 정보는 변경 없이 clinicaltrials.gov 웹사이트에서 직접 가져온 것입니다. 귀하의 연구 세부 정보를 변경, 제거 또는 업데이트하도록 요청하는 경우 register@clinicaltrials.gov. 문의하십시오. 변경 사항이 clinicaltrials.gov에 구현되는 즉시 저희 웹사이트에도 자동으로 업데이트됩니다. .

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