胰腺癌KRAS抑制耐药机制研究方向博士职位
Fully-funded PhD studentship: Unmasking mechanisms of resistance to KRAS inhibition across pancreatic cancer genetic profiles
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AI 中文速览
- 研究内容
- 本项目旨在研究胰腺导管腺癌(PDAC)中针对KRAS抑制的耐药机制,探讨恶性细胞内在及外在(如成纤维细胞介导的)机制,并结合类器官、小鼠模型、单细胞RNA测序和空间转录组学等技术进行综合分析。
- 申请条件
- 申请者需具备实验室或工业研究环境的先前经验,愿意在整个博士期间使用小鼠模型工作;具备组织培养、常规分子生物学实验或小鼠实验经验者优先。
- 待遇
- 全额资助的博士生奖学金项目。
- 申请方式
- 请通过剑桥大学申请者门户网站进行申请,选择于2027年10月入学,并在申请中注明参考编号SW51012。申请截止日期为2026年10月16日。
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- 学术申请表
由 gemini-2.5-flash-lite 生成,博士岗判定置信度 100%。
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- 截止
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- 学科
- 生命科学
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- 导师
- Dr Giulia Biffi
- 来源
- University of Cambridge 官方招聘 · 最近核对 2026-10-09
- 详情核验
判定依据(原文摘录)
- 这是一个博士生培养岗位
Fully-funded PhD studentship: Unmasking mechanisms of resistance to KRAS inhibition across pancreatic cancer genetic profiles
- 欢迎英国和海外学生申请,默认英语授课与申请环境
We welcome applications from both UK and overseas students.
原文
Supervisor: Dr Giulia Biffi
Department/location: Cancer Research UK Cambridge Institute
Deadline for application: 16th October 2026
Course start date: 1st October 2027
Project details
For further information about the research group, including their most recent publications, please visit their website at https://biffilab.wordpress.com
Pancreatic ductal adenocarcinoma (PDAC) remains a formidable clinical challenge. A major recent advance has been the development of KRAS inhibitors, which have shown considerable promise in clinical trials (1). For decades, KRAS was considered undruggable; however, these new inhibitors represent a potential turning point for patients with PDAC. Despite this progress, rapid therapy resistance has already been observed in both patients and pre-clinical mouse models, highlighting the urgent need to define the mechanisms that drive resistance and to identify rational combination therapies.
In our laboratory, we have established and validated a panel of genetically heterogeneous PDAC models. These studies have shown that malignant-cell genetics shape distinct, therapeutically actionable vulnerabilities through both cell-intrinsic programmes and changes in the surrounding tumour microenvironment [(2) and unpublished]. These observations create an important opportunity: we hypothesise that malignant¿stromal crosstalk within defined genetic contexts drives distinct mechanisms of resistance to KRAS inhibition. In support of this, our work indicates that cancer-associated fibroblasts play diverse roles in PDAC progression and activate pathways that may contribute to therapy resistance (3, 4). This PhD project will therefore identify malignant cell-intrinsic and malignant cell-extrinsic mechanisms of resistance to KRAS inhibition, including fibroblast-mediated mechanisms, across genetically distinct PDACs. We will prioritise PDAC genotypes for which we already have preliminary data suggesting candidate mechanisms of resistance.
The project will combine complementary models and techniques, including co-transplantation of organoids in mouse models, in vivo CRISPR, single-cell RNA sequencing, flow cytometry, multiplex immunofluorescence, spatial transcriptomics, and standard molecular biology approaches. A computational component may also be available, depending on the skills and interests of the student. Together, these strategies will define how intra-tumour genetic heterogeneity influences response and resistance to KRAS inhibition, complementing ongoing studies in the laboratory investigating inter-tumour genetic heterogeneity.
References/further reading
• Daraxonrasib or Chemotherapy in Previously Treated Metastatic Pancreatic Cancer. N Engl J Med. 2026. (PMID: 42223072)
• SMAD4 and KRAS status shape malignant-stromal crosstalk in pancreatic cancer. Cancer Res. 2025. (PMID: 39841099)
• EGFR-activated myofibroblasts promote metastasis of pancreatic cancer. Cancer Cell. 2024. (PMID: 38157863)
• Functional heterogeneity of fibroblasts in primary tumours and metastases. Trends in Cancer. 2024. (PMID: 39674792)
Preferred skills/knowledge
We are looking for a motivated student who is excited by this project, enthusiastic about joining a collaborative and hard-working laboratory, and committed to the complementary experimental strategies required for its successful completion. As this project will rely heavily on mouse models, willingness to work with mouse models throughout the PhD is essential. Prior experience in a laboratory or industry research environment is required. Experience with tissue culture, including cell lines and/or organoids, common laboratory techniques such as immunohistochemistry, western blotting and/or PCR, and work with mouse models would be viewed favourably. Prior experience or knowledge of pancreatic cancer or cancer biology would also be advantageous.
Eligibility
We welcome applications from both UK and overseas students.
How to apply
Please apply via the University Applicant Portal at https://www.postgraduate.study.cam.ac.uk/courses/directory/cvcrpdmsc
You should select to commence study in October 2027.
Please quote reference SW51012 on your application and in any correspondence about this vacancy.
The University actively supports equality, diversity and inclusion and encourages applications from all sections of society.
The University has a responsibility to ensure that all employees are eligible to live and work in the UK.