Genotyping of Ebus-tbna Supernant Cell-free Dna in Nsclc
Ориентир для пациента и семьи
Простыми словами
Автоматическая сводка по структурированным данным реестра. Она помогает сориентироваться, но не заменяет официальный протокол или оценку врача.
- Что изучают
- В протоколе указаны: Molecular analysis of surnatant.
- Кому может быть актуально
- Состояния в реестре: Lung Cancer. Базовые параметры: 18 лет — 65 лет · Все.
- Что важно проверить
- Возраст, диагноз и пол — только базовые ориентиры. Предыдущее лечение, анализы и другие обязательные условия указаны ниже в критериях участия.
- Где проводится
- Франция
- Следующий шаг
- Сохраните исследование, покажите его лечащему врачу и уточните актуальный статус у исследовательского центра. Расходы, документы и поездка →
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Официальное название
Molecular Analysis of the Surnantant of Echoguidated Bronchoscopic Cytopunctions in Lung Cancer
Обзор
The wide uptake of "liquid biopsy" diagnostics in the care of advanced cancer patients highlights the desire for improved access to tumor allowing accurate tumor genotyping (1). Genotyping of plasma cfDNA is now routine for detection of EGFR driver mutations at diagnosis of NSCLC, or for detection of the EGFR T790M mutation after TKI resistance, and is an emerging approach for the detection of other drivers (HER2 or BRAF mutations, ALK or ROS1 fusions…) (2) or the estimation of tumor mutation burden (TMB) (3). However, the most sensitive plasma genotyping platforms still have a sensitivity of only 70%-80%, such that a negative result requires tissue biopsy confirmation.
Подробное описание
The wide uptake of "liquid biopsy" diagnostics in the care of advanced cancer patients highlights the desire for improved access to tumor allowing accurate tumor genotyping (1). Genotyping of plasma cfDNA is now routine for detection of EGFR driver mutations at diagnosis of NSCLC, or for detection of the EGFR T790M mutation after TKI resistance, and is an emerging approach for the detection of other drivers (HER2 or BRAF mutations, ALK or ROS1 fusions…) (2) or the estimation of tumor mutation burden (TMB) (3). However, the most sensitive plasma genotyping platforms still have a sensitivity of only 70%-80%, such that a negative result requires tissue biopsy confirmation. This poses a clinical challenge because negative plasma genotyping is correlated with more limited metastatic spread and lower tumor burden, such that biopsy of these patients may be even more challenging. Because invasive biopsy remains an integral part of the diagnostic strategy, methods are needed for maximizing the yield from these biopsy procedures.
There is a current paradox between the need for large amounts of tissue for multiplex analysis of an increasing number of targetable drivers and markers of response to immune therapy (PD-L1, TMB) and the development of minimally invasive biopsy procedures that results in limited specimens. Up to 25% of patients are thus treated without knowledge of the molecular profile of their tumor (4). In particular, 20% of endobronchial ultrasonography transbronchial needle aspiration (EBUS-TBNA) are rejected from genotyping due to lack of tissue (5) after time and tissue consuming diagnostics steps that are sometimes not required (resistance setting). Circulating tumor DNA is an emerging approach for cancer genotyping but sensitivity is limited to 70-80% (6) by inconsistent tumor shed and low DNA concentrations, so that tissue biopsy is still routine. Also, feasibility of TMB assessment on tissue is only 60% (likely much less on EBUS-TBNA specimens) (7) and approximately 80% in plasma (blood TMB, bTMB) (3).
The presence of cfDNA in several biological fluids and the feasibility of detecting mutations of interest (usually targeting only EGFR) in these fluids (urine, pleural fluid, CSF) have been clearly demonstrated (8-12), while blood is the most widely studied liquid biopsy substrate in advanced NSCLC.
Furthermore, we showed in a proof of concept study, investigating various FNA specimens in a limited numbers of patients that cytology samples' supernatant (usually discarded) is a rich source of DNA. Our results suggest that supernatant free DNA (sfDNA) can be used for baseline and resistance genotyping (13).
Вмешательства
- Другое Molecular analysis of surnatant
The interventional pulmonologist selects the most suspect node. The corresponding TBNA is placed in Cytolyt and tagged using a sticker to indicate the specimen from which supernatant must be saved after the initial spin. The supernatant is transferred to the "Laboratoire de Biologie Médicale Oncologique" where it undergoes a further hard spin. The remaining supernatant is stored at -80°C before to send it to Foundation One for DNA extraction from 3 ml of supernatant and genotyping. Two 7,5 mL
Первичные конечные точки
- main aim of the study [Срок оценки: 18 months]
Вторичные конечные точки (6)
- TMB estimation [Срок оценки: 18 months]
- sensitivity of plasma [Срок оценки: 18 months]
- concordance between plasma and supernatant [Срок оценки: 18 months]
- mutation rate [Срок оценки: 18 months]
- Sensitivity of supernatant and plasma [Срок оценки: 18 months]
- Turnaround time of supernatant [Срок оценки: 18 months]
Критерии участия
Критерии включения
- Age > 18 years-old
- Patients planned for an EBUS-TBNA for
- Suspicion of stage IV lung cancer (PET+ mediastinal node(s)) (Cohort 1)
- Stage IV NSCLC with an EGFR, BRAF, HER2, MET mutation or ALK, RET or ROS1 rearranged NSCLC and acquired resistance to targeted therapy (Cohort 2)
- Performance status 0-3
- Informed consent
Критерии исключения
- Refusal to participate
- Patient under legal tutelage
Критерии приведены из реестра в оригинале (на английском). Окончательную оценку соответствия проводит исследовательский центр.
Здоровые добровольцы: Нет
Дизайн исследования
- Модель наблюдения
- Когортное
Центры проведения
Франция · 1 центр
- Nicolas Guibert — Toulouse
Идентификаторы
NCT: NCT04624373 · RC31/19/0090