From single cells to populations: generalized pseudotime analysis to identify patient trajectories from cross-sectional data in cancer genomics
From single cells to populations: generalized pseudotime analysis to identify patient trajectories from cross-sectional data in cancer genomics
批准号:
MR/P02646X/2
负责人:
Christopher Yau
金额:
$15.01万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2020
资助国家:
英国
项目状态:
已结题
起止时间:
2020 至 --
中文摘要
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英文摘要
Cancer continually evolves at the genetic level through the acquisition of mutations that subsequently lead to the reprogramming of normal cellular activity and ultimately abnormal function. The evolution of cancer in each patient is unique, even when they are of the same type, although they will share some core similarities. In order to understand how cancers evolve over time, it would be ideal to conduct studies where individual patients are followed over time and samples of tumours continually obtained to understand the molecular changes that are ongoing. In practice, this is both logistically impossible and unethical as multiple invasive surgeries to obtain biopsies would be both costly and distressing to patients and treatment cannot be withheld to enable prospective monitoring of the disease. The most practical clinical studies involve obtaining a single tumour biopsy from a patient (or multiple biopsies collected during the same surgery) for a large number of patients. This cross-sectional profile across a random patient population would not give us direct information about how the disease of individual patients evolve but we could combine all the information across the patients to identify sub-groups of individuals who appear to have similar disease trajectories. That is, suppose we have two patients, one at an advanced stage of disease with many mutations and another who presents at a relatively earlier disease stage, and both share a similar set of core mutations. The molecular status of the advanced patient could be an indicator of the future molecular profile of the early stage patient, if left untreated. This project proposes to develop novel statistical machine learning algorithms to apply such logic and rationale to integrate molecular profiles obtained from whole genome sequencing analysis of patients in a cross-sectional study to identify and learn temporal information that is not directly observed but may leave tell-tale clues behind.We will apply these algorithms to the national Genomics England 100,000 Genomes Projects which seeks to sequence tens of thousands of cancer genomes across a range of cancer type over the next few years. The project will give insight into how cancers evolves and importantly provide a means of developing prognostic indicators that are based on molecular information to tell us the severity of a patient's disease and their likely trajectories.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1186/s13059-021-02561-2
发表时间:
2021-12-13
期刊:
Genome biology
影响因子:
12.3
作者:
[Hu Z, Ahmed AA, Yau C]
通讯作者:
Yau C
From single cells to populations: generalized pseudotime analysis to identify patient trajectories from cross-sectional data in cancer genomics
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批准号:MR/P02646X/1
-
项目类别:Research Grant
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资助金额:$41.49万
-
财政年份:2017
-
负责人:Christopher Yau
-
依托单位:
Novel statistical approaches for the characterization of genomic structural rearrangements in cancers from high-throughput genome sequencing data
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批准号:MR/L001411/1
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项目类别:Research Grant
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资助金额:$43.99万
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财政年份:2014
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负责人:Christopher Yau
-
依托单位:
Developing novel statistical methodology incorporating biological structure for high-throughput genomic data analysis
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批准号:G0701810/2
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项目类别:Fellowship
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资助金额:$2.31万
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财政年份:2012
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负责人:Christopher Yau
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依托单位:
Developing novel statistical methodology incorporating biological structure for high-throughput genomic data analysis
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批准号:G0701810/1
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项目类别:Fellowship
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资助金额:$29.13万
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财政年份:2009
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负责人:Christopher Yau
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依托单位:
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